US20120271127A1 - Sanitary swab collection system, microfluidic assay device, and methods for diagnostic assays - Google Patents

Sanitary swab collection system, microfluidic assay device, and methods for diagnostic assays Download PDF

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Publication number
US20120271127A1
US20120271127A1 US13/491,009 US201213491009A US2012271127A1 US 20120271127 A1 US20120271127 A1 US 20120271127A1 US 201213491009 A US201213491009 A US 201213491009A US 2012271127 A1 US2012271127 A1 US 2012271127A1
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Prior art keywords
swab
sample
collection device
sample collection
external
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US13/491,009
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C. Frederick Battrell
Jason Capodanno
John Clemmens
Joan Haab
John Gerdes
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Revvity Health Sciences Inc
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Micronics Inc
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Assigned to PERKINELMER HEALTH SCIENCES, INC. reassignment PERKINELMER HEALTH SCIENCES, INC. ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: MICRONICS, INC.
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    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N1/00Sampling; Preparing specimens for investigation
    • G01N1/02Devices for withdrawing samples
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B10/00Other methods or instruments for diagnosis, e.g. instruments for taking a cell sample, for biopsy, for vaccination diagnosis; Sex determination; Ovulation-period determination; Throat striking implements
    • A61B10/0096Casings for storing test samples
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01LCHEMICAL OR PHYSICAL LABORATORY APPARATUS FOR GENERAL USE
    • B01L3/00Containers or dishes for laboratory use, e.g. laboratory glassware; Droppers
    • B01L3/50Containers for the purpose of retaining a material to be analysed, e.g. test tubes
    • B01L3/502Containers for the purpose of retaining a material to be analysed, e.g. test tubes with fluid transport, e.g. in multi-compartment structures
    • B01L3/5027Containers for the purpose of retaining a material to be analysed, e.g. test tubes with fluid transport, e.g. in multi-compartment structures by integrated microfluidic structures, i.e. dimensions of channels and chambers are such that surface tension forces are important, e.g. lab-on-a-chip
    • B01L3/502715Containers for the purpose of retaining a material to be analysed, e.g. test tubes with fluid transport, e.g. in multi-compartment structures by integrated microfluidic structures, i.e. dimensions of channels and chambers are such that surface tension forces are important, e.g. lab-on-a-chip characterised by interfacing components, e.g. fluidic, electrical, optical or mechanical interfaces
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B10/00Other methods or instruments for diagnosis, e.g. instruments for taking a cell sample, for biopsy, for vaccination diagnosis; Sex determination; Ovulation-period determination; Throat striking implements
    • A61B10/0045Devices for taking samples of body liquids
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01LCHEMICAL OR PHYSICAL LABORATORY APPARATUS FOR GENERAL USE
    • B01L2200/00Solutions for specific problems relating to chemical or physical laboratory apparatus
    • B01L2200/02Adapting objects or devices to another
    • B01L2200/026Fluid interfacing between devices or objects, e.g. connectors, inlet details
    • B01L2200/027Fluid interfacing between devices or objects, e.g. connectors, inlet details for microfluidic devices
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01LCHEMICAL OR PHYSICAL LABORATORY APPARATUS FOR GENERAL USE
    • B01L2200/00Solutions for specific problems relating to chemical or physical laboratory apparatus
    • B01L2200/08Ergonomic or safety aspects of handling devices
    • B01L2200/082Handling hazardous material
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01LCHEMICAL OR PHYSICAL LABORATORY APPARATUS FOR GENERAL USE
    • B01L2200/00Solutions for specific problems relating to chemical or physical laboratory apparatus
    • B01L2200/10Integrating sample preparation and analysis in single entity, e.g. lab-on-a-chip concept
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01LCHEMICAL OR PHYSICAL LABORATORY APPARATUS FOR GENERAL USE
    • B01L2300/00Additional constructional details
    • B01L2300/06Auxiliary integrated devices, integrated components
    • B01L2300/069Absorbents; Gels to retain a fluid
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01LCHEMICAL OR PHYSICAL LABORATORY APPARATUS FOR GENERAL USE
    • B01L2300/00Additional constructional details
    • B01L2300/08Geometry, shape and general structure
    • B01L2300/0848Specific forms of parts of containers
    • B01L2300/0854Double walls
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01LCHEMICAL OR PHYSICAL LABORATORY APPARATUS FOR GENERAL USE
    • B01L2300/00Additional constructional details
    • B01L2300/08Geometry, shape and general structure
    • B01L2300/0861Configuration of multiple channels and/or chambers in a single devices
    • B01L2300/087Multiple sequential chambers
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01LCHEMICAL OR PHYSICAL LABORATORY APPARATUS FOR GENERAL USE
    • B01L2400/00Moving or stopping fluids
    • B01L2400/04Moving fluids with specific forces or mechanical means
    • B01L2400/0403Moving fluids with specific forces or mechanical means specific forces
    • B01L2400/0415Moving fluids with specific forces or mechanical means specific forces electrical forces, e.g. electrokinetic
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01LCHEMICAL OR PHYSICAL LABORATORY APPARATUS FOR GENERAL USE
    • B01L2400/00Moving or stopping fluids
    • B01L2400/04Moving fluids with specific forces or mechanical means
    • B01L2400/0475Moving fluids with specific forces or mechanical means specific mechanical means and fluid pressure
    • B01L2400/0487Moving fluids with specific forces or mechanical means specific mechanical means and fluid pressure fluid pressure, pneumatics
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01LCHEMICAL OR PHYSICAL LABORATORY APPARATUS FOR GENERAL USE
    • B01L3/00Containers or dishes for laboratory use, e.g. laboratory glassware; Droppers
    • B01L3/50Containers for the purpose of retaining a material to be analysed, e.g. test tubes
    • B01L3/502Containers for the purpose of retaining a material to be analysed, e.g. test tubes with fluid transport, e.g. in multi-compartment structures
    • B01L3/5029Containers for the purpose of retaining a material to be analysed, e.g. test tubes with fluid transport, e.g. in multi-compartment structures using swabs
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01LCHEMICAL OR PHYSICAL LABORATORY APPARATUS FOR GENERAL USE
    • B01L7/00Heating or cooling apparatus; Heat insulating devices
    • B01L7/52Heating or cooling apparatus; Heat insulating devices with provision for submitting samples to a predetermined sequence of different temperatures, e.g. for treating nucleic acid samples
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N1/00Sampling; Preparing specimens for investigation
    • G01N1/02Devices for withdrawing samples
    • G01N2001/028Sampling from a surface, swabbing, vaporising

Definitions

  • the invention relates to medical and veterinary sample collection devices and to medical and veterinary analytical devices of specialized form and function, and to integrated microfluidic devices for both sample collection and analysis.
  • the invention further relates to a method for biohazard sample collection.
  • U.S. Pat. No. 4,803,998 to Kezes relates to a swab retaining vial cap and describes a combination containment vial with cap and with swab mounted inside the cap, the vial containing a medium for preserving a sample on the swab during shipment.
  • the swab is removed from the cap to collect a sample and the swab tip can then be broken off when inserted into the vial so that the swab tip drops to the bottom of the vial without contamination by the user.
  • the cap is then sealed.
  • FIG. 4 shows a swab with frangible shaft.
  • U.S. Pat. No. 6,991,898 to O'Connor describes a self-contained diagnostic test device for collection and detection of an analyte in a biological specimen.
  • the device comprises a tubular swab and reagent dispensing cap.
  • the reagent dispensing cap delivers one or more selected reagents to an assay chamber upon the rotation of the reagent chamber.
  • a swab-based diagnostic test device contains a reagent and a rupturable seal for adding the reagent to the sample after the swab is sealed inside the device.
  • U.S. Pat. No. 6,277,646 to Guirguis provides a device for both collecting and testing a fluid specimen. A fluid specimen is collected and an aliquot is transferred to an isolation chamber, from which a flow path to a test chamber is opened.
  • U.S. Pat. No. 6,565,808 to Hudak describes a fluid flow actuating device or structure, such as a valve, which separates the sample receiving chamber from the test platform.
  • the test method involves collecting a sample, contacting the sample with the proprietary test device, and detecting the analyte in the sample.
  • U.S. Pat. No. 6,248,294 to Nason relates to a self-contained diagnostic test unit for use in the collection and analysis of a biological specimen.
  • the test unit comprises is tubular housing for capturing a swab.
  • a reagent dispenser cap delivers reagents to the specimen chamber and a diagnostic strip assembly is mounted on the housing so a portion of the specimen can flow by wick action through the test strip, producing a visible color change.
  • U.S. Pat. Nos. 5,266,266 and 5,879,635 to Nason relate to a reagent dispenser which includes a pair of reagent chambers with selected reagents therein, and a dual nib for hermetically sealing the reagent chambers.
  • a portion of the dispenser is deformable to break or otherwise to displace the nib in a manner permitting the two reagents to flow together and mix within one of the reagent chambers.
  • the deformable portion or the dispenser can then be squeezed to express the mixed reagents for delivery to contact the specimen to be analyzed.
  • the dispenser is a cap assembly on an open-ended tubular housing configured for receiving a swab.
  • U.S. Pat. No. 6,890,484 to Bautista relates to in-line test device and describes a swab receiving port integrated into the body of a lateral flow strip. No means for protecting the exterior of the test apparatus is described.
  • Goodfield, in Sampling and Assay Device (WO1997/23596), discloses a swab and swab container with liquid assay reagents accessible by rupture of foil liners, again with no outer disposable protective layer.
  • United States Patent Application 2005/0009200 to Guo relates to a sanitary and compact fecal occult blood collector kit.
  • the swab tip in this case is covered “for hygienic purposes”.
  • Also disclosed is a package for the swab and the cover.
  • the purpose of the cover is again to protect the sample, not the handle of the swab contacted by the operator or the external surfaces of the swab collection container, and the exterior of the package cannot be cleaned of contaminating matter that accumulates during sampling. Further, the swab must again be retrieved from the package. Thus while the sample is protected, the user is potentially exposed at multiple levels.
  • Microfluidic techniques known in the art include electrophoretic detectors, for example those designed by ACLARA BioSciences Inc., or the LabChipTM by Caliper Technologies Inc, and hybridization detectors such as those manufactured by Nanogen of San Diego. Also indicative of the state of the art are PCT Publication WO1994/05414, U.S. Pat. Nos.
  • microfluidic assays for nucleic acid assays is further demonstrated in the scientific literature, the teachings of which are incorporated by reference herein. These teachings include, for example, Nakano H et al. 1994. High speed polymerase chain reaction in constant flow. Biosci Biotechnol Biochem 58:349-52; Wilding, P et al. 1994. PCR in a silicon microstructure. Clin Chem 40(9):1815-18; Woolley A T et al. 1996. Functional integration of PCR amplification and capillary electrophoresis in a microfabricated DNA analysis device. Anal Chem 68:4081-86; Burke D T et al. 1997.
  • the sample collection device thus becomes a fomite potentially capable of spreading infectious disease to numerous persons, and a method or means for eliminating or at least reducing the exposure of health workers to the contaminated exterior of the sample collection vials, bottles, cups, tubes, and so forth, has been a longstanding and unmet need in the healthcare industry.
  • Swabs are extremely useful for collecting specimens. Following collection of a specimen on a swab, the swab must be generally protected during subsequent transport and processing for analysis. During initial handling, contamination of the external surfaces of the swab collection container by contact with residues of specimen or unrelated patient-derived bodily material, which may be unhygienic and grossly objectionable, is almost inevitable. Gloves are protective only to the hands on which they are worn, not to the swab collection container.
  • a biohazard swab collection device or container comprising a body with external surfaces, an internal hollow volume, and a sealable closure for separating said external surfaces from said internal hollow volume, said external surface further comprising a disposable external skin layer, whereby after the biohazardous swab is enclosed and sealed within the internal hollow volume, any biohazardous residues accumulated on the external surfaces are removed by removing and disposing of the disposable external skin layer, and further optionally comprising a valve separating said internal hollow volume into a swab receiving chamber and a microfluidic assay circuit with a microfluidic channel and an on-board liquid reagent.
  • the general method comprises the steps of:
  • FIG. 1 is a perspective view of a representative specimen collection device with external skins and with integrated sample processing and analytical assay capability.
  • FIG. 2 is a perspective view of a sample swab with frangible handle.
  • FIG. 3A is a plan view of the upper surface of the device of FIG. 1 , and shows section plane 3 B.
  • FIG. 3B is a section of the device of FIG. 1 on plane 3 B, and shows the swab receiving chamber and inner workings of an embodiment of the integrated device. Representative inner workings are indicated schematically.
  • FIG. 4 is an exploded view of protective external disposable skins applied to a representative specimen collection device.
  • FIG. 5 is a conceptual illustration of the manufacture of a heat-shrink external disposable skin on a representative specimen collection device.
  • FIG. 6 is an illustration of the assembly of a disposable bag applied to a representative specimen collection device.
  • FIG. 7 is an exploded view of a Styrofoam or composite coverblock assembly applied to a representative specimen collection device.
  • FIG. 8 is a sketch of a device with composite cover formed in place over and around the device.
  • FIGS. 9A-E is a sequential view of the steps of a method in which a representative specimen collection device fitted with a disposable external sanitary skin is used to collect a specimen on a swab.
  • FIG. 10 is a block diagram of the steps of a method for collecting a biohazardous swab in a swab collection device fitted with a disposable external sanitary skin.
  • FIG. 11 is a block diagram of the more general steps of a method for collecting a biohazardous specimen in a specimen collection device fitted with a disposable external sanitary skin.
  • FIGS. 12A and B show a detail of a tab on the disposable external cover for use in removing the protective cover after the specimen is collected.
  • FIG. 13 is a second embodiment of a specimen collection device for a swab or tampon, and includes operator interface and real-time point-of-care data display that is hidden under the cap of a protective removable overlayer during specimen collection.
  • FIG. 14 is a section down the long axis of a third embodiment of a specimen collection device for a swab or tampon, and includes operator interface and real-time point-of-care data display that is hidden under a protective removable overlayer during specimen collection.
  • FIGS. 15A and B is a first embodiment of a specimen collection device for a swab where the specimen collection device has no analytical capacity.
  • Fomite An inanimate object or substance, such as a doorknob, utensil, soap bar, or specimen container, that is capable of transmitting infectious organisms (broadly bacterial and viral) from one individual to another, typically by hand-to-hand or hand-to-mouth exposure to a biological residue on the surface of the inanimate object or substance.
  • infectious organisms broadly bacterial and viral
  • Test samples Representative biosamples taken by swab include, for example: gingival, buccal, and mucosal epithelial materials, saliva, wound exudates, pus, surgical specimens, lung and other respiratory secretions, nasal secretions, sinus drainage, sputum, blood, urine, medial and inner ear contents, ocular secretions and mucosa, cyst contents, cerebral spinal fluid, stool, diarrhoeal fluid, tears, mammary secretions, ovarian contents, ascites fluid, mucous, gastric fluid, gastrointestinal contents, urethral discharge, vaginal discharge, vaginal mucosa, synovial fluid, peritoneal fluid, meconium, amniotic fluid, semen, penile discharge, or the like may be presented for testing on a swab.
  • Assay from swabs representative of mucosal secretions and epithelia are acceptable, for example mucosal swabs of the throat, tonsils, gingival, nasal passages, vagina, urethra, rectum, lower colon, and eyes.
  • mucosal swabs of the throat tonsils, gingival, nasal passages, vagina, urethra, rectum, lower colon, and eyes.
  • samples of water, industrial discharges, food products, milk, air filtrates, and so forth are also likely test specimens.
  • Particularly preferred as samples are biosamples collected on swabs or tampons, where a tampon is essentially a handleless swab that is sometimes worn internally before testing.
  • Biohazard A biohazard is a material, either biologically active or inanimate, that poses a risk or threat to health. Also included in this category as biohazards, sensu lato, as defined here, are materials of likely biological origin that are visually, tangibly, or odorously objectionable or repulsive, and those materials which are not in fact a threat, but which potentially are a threat until tested negative. Biohazards include potentially infectious material of any kind, and may contain infectious agents from multiple biological categories, including but limited to, bacteria and viruses, either singly or in one or more combinations thereof, and microbial products such as toxins.
  • Bioassay Target Molecule may include a nucleic acid, a protein, an antigen, an antibody, a carbohydrate, a cell component, a lipid, a receptor ligand, a small molecule such as a drug, and so forth.
  • Target nucleic acids include genes, portions of genes, regulatory sequences of genes, mRNAs, rRNAs, tRNAs, siRNAs, cDNA and may be single stranded, double stranded or triple stranded.
  • Some nucleic acid targets have polymorphisms, deletions and alternate splice sequences.
  • an immunogen may include multiple antigenic determinants.
  • An antibody includes variable regions, constant regions, and the Fc region, which is of value in immobilizing antibodies.
  • the microfluidic analytical devices of the present invention are configured to detect a bioassay target molecule of these sorts, singly or in combinations.
  • Such bioassay target molecules may be associated with a pathogenic condition: which is taken as a condition of a mammalian host characterized by the absence of health, i.e., a disease, infirmity, morbidity, or a genetic trait associated with potential morbidity.
  • Microfluidic cartridge a “device”, “card”, or “chip” with fluidic structures and internal channels having microfluidic dimensions. These fluidic structures may include chambers, valves, vents, vias, pumps, inlets, nipples, and detection means, for example.
  • microfluidic channels are fluid passages having at least one internal cross-sectional dimension that is less than about 500 ⁇ m and typically between about 0.1 ⁇ m and about 500 ⁇ m, but we extend the upper limit of the range to 600 um because the macroscopic character of the bead suspensions sometimes used as analytical aids require it. Therefore, as defined herein, microfluidic channels are fluid passages having at least one internal cross-sectional dimension that is less than 600 um.
  • Microfluidic cartridges may be fabricated from various materials using techniques such as laser stenciling, embossing, stamping, injection molding, masking, etching, and three-dimensional soft lithography. Laminated microfluidic cartridges are further fabricated with adhesive interlayers or by adhesiveless bonding techniques, such by thermal or pressure treatment of oriented polypropylene or by ultrasonic welding.
  • the microarchitecture of laminated and molded microfluidic cartridges can differ according to the limitations of their fabrication methods.
  • Microfluidic pumps include for example, bulbs, bellows, diaphragms, or bubbles intended to force movement of fluids, where the substructures of the pump have a thicknesses or other dimension of less than 1 millimeter.
  • Such pumps include the mechanically actuated recirculating pumps described in U.S. Pat. No. 6,743,399 to Weigl and US 2005/0106066 to Saltsman, commonly assigned to the applicant. Such pumps may be robotically operated or operated by hand. Electroosmotic pumps are also provided. Such pumps can be used in place of external drives to propulse the flow of solubilized reagents and sample in microfluidic device-based assays.
  • Blister pack an on-board reagent pack or sachet under a deformable (or elastic) diaphragm. Used to deliver reagents by pressurizing the diaphragm and may appose a “sharp”, such as a metal chevron, so that pressure on the diaphragm ruptures the “pillow” (see pillow). These may be used with check valves or closable vents to produce directional fluid flow and reagent delivery. Elastic diaphragms are readily obtained from polyurethane, polysilicone and polybutadiene, and nitrile for example (see elastomer).
  • Deformable, inelastic diaphragms are made with polyethylene terephthalate (PET), mylar, polypropylene, polycarbonate, or nylon, for example.
  • PET polyethylene terephthalate
  • Other suitable materials for the deformable film include parafilm, latex, foil, and polyethylene terephthalate
  • Key factors in selecting a deformable film include the yield point and the deformation relaxation coefficient (elastic modulus).
  • Use of these devices permits delivery or acceptance of a fluid while isolating the contents of the microfluidic device from the external environment, and protecting the user from exposure to the fluid contents.
  • Single entry refers to a microfluidic device, card or cartridge that requires, or permits, only a single introduction of sample, and the assay is then conducted within a self-contained, sealed system.
  • Such devices optionally contain a device for sealing or locking the sample port and an on-board means for disinfecting the contents of the device and any waste following completion of the assay. In one embodiment, the device can be discarded after use without special precautions.
  • Waste chamber or “pack” is a cavity or chamber that serves as a receptacle for sequestering discharged sample, rinse solution, and waste reagents. Typically also includes a wicking material (see wick). Waste packs may also be sealed under an elastic isolation membrane sealingly attached to the body of the microfluidic device. This inner membrane expands as the bibulous material expands, thus enclosing the waste material. The cavity outside the isolation membrane is vented to atmosphere so that the waste material is contained and isolated. Waste packs may optionally contain dried or liquid sterilants.
  • Vent a pore intercommunicating between an internal cavity and the atmosphere.
  • a “sanitary” or “isolation vent” also contains a filter element that is permeable to gas, but is hydrophobic and resists wetting. Optionally these filter elements have pore diameters of 0.45 microns or less. These filters function both in forward and reverse isolation. Filter elements of this type and construction may also be placed internally, for example to isolate a valve or bellows pump from the pneumatic manifold controlling it.
  • Means for extracting refers to various cited elements of a device, such as a solid substrate, filter, filter plug, bead bed, frit, or column, for capturing target nucleic acids from a biological sample, and includes the cumulative knowledge in the art cited herein. Extracting further comprises methods of solubilizing, and relates to the resuspension of cells and tissue from the tip of a swab. This includes methods, for example, for dissolution of mucous and protein as described in United States Patent Application 2004/0175695 to Debad. Generally, extraction means include a mechanical pumping component that promotes physical resuspension by turbulent or near turbulent flow.
  • Extraction means may be reciprocating flow, and may be pulsatile at varying frequencies to achieve the desired resuspension in a reasonable interval of time.
  • Extraction means also include use of detergent-based buffers, sulfhydryl-reducing agents, proteolytics, chaotropes, passivators, and other solubilizing means.
  • a means for polymerizing may refer to various species of molecular machinery described as polymerases and their cofactors and substrates, for example reverse transcriptases and TAQ polymerase, and includes the cumulative knowledge of enzymology cited herein by reference to a few examples.
  • PCR Polymerase chain reaction
  • An excess of deoxynucleoside triphosphates are added to a reaction mixture along with a DNA polymerase, e.g., Taq polymerase. If the target sequence is present in a sample, the primers will bind to the target and the polymerase will cause the primers to be extended along the marker sequence by adding on nucleotides. By raising and lowering the temperature of the reaction mixture, the extended primers will dissociate from the template to form reaction products, excess primers will bind to the template and to the reaction products and the process is repeated. By adding fluorescent intercalating agents, PCR products can be detected in real time.
  • a DNA polymerase e.g., Taq polymerase
  • LAMP loop-mediated isothermal amplification of DNA
  • RT-PCR reverse transcription polymerase chain reaction
  • LCR ligase chain reaction
  • TAS transcription-based amplification systems
  • NASBA nucleic acid sequence based amplification
  • RACE Rolling Circle
  • RACE one-sided PCR
  • microfluidic PCR should be considered representative and exemplary of a general class of microfluidic devices capable of executing one or various amplification protocols.
  • Means for detecting refers to an apparatus for displaying an endpoint, i.e., the result of an assay, and may include a detection channel and test pads, and a means for evaluation of a detection endpoint. Detection endpoints are evaluated by an observer visually in a test field, or by a machine equipped with a spectrophotometer, fluorometer, luminometer, photomultiplier tube, photodiode, nephlometer, photon counter, voltmeter, ammeter, pH meter, capacitative sensor, radio-frequency transmitter, magnetoresistometer, or Hall-effect device.
  • Magnetic particles, beads and microspheres haing or impregnated color or having a higher diffraction index may be used to facilitate visual or machine-enhanced detection of an assay endpoint.
  • Magnifying lenses in the cover plate, optical filters, colored fluids and labeling may be used to improve detection and interpretation of assay results.
  • Means for detection of magnetic particles, beads and microspheres may also include embedded or coated “labels” or “tags” such as, but not limited to, dyes such as chromophores and fluorophores; radio frequency tags, plasmon resonance, spintronic, radiolabel, Raman scattering, chemoluminescence, or inductive moment as are known in the prior art.
  • QDots such as CdSe coated with ZnS, decorated on magnetic beads, or amalgamations of QDots and paramagnetic Fe 304 microparticles, optionally in a sol gel microparticulate matrix or prepared in a reverse emulsion, are a convenient method of improving the sensitivity of an assay of the present invention, thereby permitting smaller test pads and larger arrays. Fluorescence quenching detection endpoints are also anticipated.
  • a variety of substrate and product chromophores associated with enzyme-linked immunoassays are also well known in the art and provide a means for amplifying a detection signal so as to improve the sensitivity of the assay, for example “up-converting” fluorophores.
  • Detection systems are optionally qualitative, quantitative or semi-quantitative. Visual detection is preferred for its simplicity, however detection means can involve visual detection, machine detection, manual detection or automated detection.
  • Means for isolation include impermeable cartridge body, gas permeable hydrophobic venting, bibulous padding in waste chamber, disinfectant in waste chamber, elastomeric membrane separating pneumatic actuator from blister pack, valve with elastomeric membrane actuated by suction pressure, suction pressure in said sample entry port, on-board reagent pack, self-locking single-entry sample port, gasketed closure, and disposable external skin or skins Isolation refers both to the protection of the user from potentially biohazardous specimens, and to the protection of the specimen from contamination by the user or by foreign environmental materials.
  • Closure means include caps, lids, threaded closures, “ziplock” closures, ball valves, gasketed closures, gaskets, seals, snap caps of all sorts, bungs, corks, stoppers, lip seals, press seals, adhesive seals, waterproof seals, single-entry seals, tamper-proof seals, locking seals, track-slidable sealable covers, compression seals, one-way valves, spring-loaded valves, spring-loaded lids, septa, tee-valves, snap-locking closures in general, piston-valves, double-reed valves, diaphragm closures, hinged closures, folding closures, Luer lock closures, and so forth.
  • FIG. 1 is a conceptual view of a microfluidic analytical device ( 1 ) with integrated sanitary swab collection features.
  • the device which is hand sized, is provided with upper and lower disposable external skins ( 2 , lower not shown). Tabs ( 4 , 5 ) assist in peeling off the skins.
  • the closure is provided with a seal and track guide ( 8 ) whereby the closure is slid into position sealingly covering the swab receiving orifice.
  • the closure is textured with ribs ( 9 ) to aid the thumb in moving from left to right (as shown here) in order to effectuate swab capture within the device.
  • the card body ( 10 ) is bounded by external surfaces ( 11 ).
  • FIG. 2 is a representation of a swab ( 20 ) as would be used in an embodiment of the invention.
  • the swab comprises a shaft ( 21 ) with handle portion ( 22 ), neck portion ( 23 ), frangible breakaway notch ( 24 ), and tip ( 25 ) mounted at the distal end of the shaft.
  • the shaft may be of various shapes or materials.
  • Shaft materials include polypropylene, polyurethane, polycarbonate, polyethylene terephthalate, and other polyesters. Also conceived are polyimides such as nylon and natural fibers such as pine, bamboo, compressed paper, and so forth.
  • the tip may be of various shapes or materials.
  • Preferred swab shapes include a pipe-cleaner shape of bristles, a spade shape with sponge pad, and a “bud” shape with fiber bat.
  • Non-limiting examples of synthetic fiber materials useful in forming swabs include acetate fibers, aramide fibers, polyamide fibers, e.g. nylons, polyester fibers, e.g. polyethylene terephthalate fibers (PET), polyolefin fibers, e.g. polypropylene and polyethylene fibers, polyvinyl alcohol fibers, polyurethane fibers or foams, and mixtures thereof.
  • Further suitable synthetic fibers include bi- or tricomponent fibers such as PE/PET- or PP/PE fibers.
  • Fibers can for example be so-called core-sheath-, side-by-side- or island-in-the-sea type fibers, as may be useful in selected applications. Lyocell fibers are also useful.
  • Non-synthetic materials include woven paper or cotton. Fiber chemistry is generally chosen to be compatible with extraction or analytical chemistries.
  • Swab fibers may be interlaid, either knitted or randomly entwined.
  • Interlaid webs or fabrics have been formed from many processes, such as, for example, meltblowing processes, spunbonding processes, and bonded carded web processes.
  • interlaid swab materials as utilized in the present invention are produced from polymers, such as, for example, polyethylene or polypropylene.
  • the swab fibers optionally may be made from interbonded fibers, for example as of thermoplastic fibers.
  • thermoplastic polymers such as polyolefins including polyethylene, polypropylene as well as polystyrene can be used as may be polyesters including polyethylene terephthalate, and polyamides including nylons. Also useful are other thermoplastic polymers such as those which are elastomeric including elastomeric polyurethanes and block copolymers. Compatible blends of any of the foregoing may also be used.
  • additives such as wax, fillers, and the like may be incorporated in amounts consistent with the fiber forming process used to achieve desired results.
  • Other fiber or filament forming materials will suggest themselves to those skilled in the art.
  • Bicomponent fibers may be also used.
  • the fibers may also be formed from solution, and examples include viscose. It is only essential that the composition be capable of spinning into filaments or fibers of some form that can be deposited onto a forming surface and thermally formed or interbonded in a manner dependent upon the forming surface.
  • the swab tip may comprise a sponge element.
  • FIG. 3 shows a representative device for swab capture and analysis.
  • FIG. 3A is a plan view of the top surface of the device, showing plane of section 3 B and the location of the swab receiving orifice and sealing closure.
  • the device body 10 and exterior surfaces 11 are again shown.
  • FIG. 3B is a view of the internal workings of a representative device ( 30 ), showing a section through the device solid body interior ( 31 ), with captive swab tip ( 32 ) in swab receiving chamber ( 33 ), also termed herein an “internal hollow volume”.
  • closure ( 34 ) and gasket ( 35 ) form a liquid-tight seal over the swab receiving chamber 33 .
  • Also shown in schematic form are the elements of an on-board nucleic acid assay.
  • at least one valve ( 37 ) will separate the internal hollow volume of the device body into at least two compartments, one for the sample receiving chamber and the other the analytical microfluidics compartment or circuit (dotted lines with arrows, 42 ).
  • valves ( 38 ) may also be used to add functionality to the microfluidic circuit. Any valve known in the art may be used.
  • On-board microfluidic elements for a nucleic acid assay include at least one microfluidic channel ( 39 ), and optionally provision for reagent packs such as for lysis reagent and extract reagents ( 40 , 41 ), and an optional microfluidic nucleic acid assay circuit ( 42 ), shown schematically.
  • the internal hollow volume comprises a first compartment for receiving the swab ( 33 ) and a second compartment ( 42 , dotted lines) for performing a fluidic operation on the sample, such as a sample preparation step or a sample analysis such as PCR.
  • first and second compartments are joined by a valved ( 37 ) microfluidic channel ( 39 ).
  • This channel provides for fluidic connection between the compartments so that reagent and sample may be interechanged.
  • Other compartments such as waste compartment ( 36 ) may also be provided.
  • Variants of the illustrated microfluidic circuit for joining the compartments and exchanging fluids between the compartments are readily within the scope of the invention.
  • Sample processing steps could include extraction of the biological material and lysis of cells of interest, followed by filtration and entry of the filtrate into a nucleic acid capture and elution module. Steps of capture, elution, amplification and detection are indicated without detail.
  • Mesoscale devices for amplification and detection of a nucleic acid in a sample were first described in 1992 (U.S. Pat. No. 5,498,392 to Wilding, “Mesoscale Polynucleotide Amplification Device and Method”) and conventional mechanisms are known to those skilled in the art. These devices include various filters, pumps, vents, microfluidic channels, valves, and so forth.
  • the device also optionally includes a display capability, although this function could be a simple visual indicator, or could be a complex interaction between the device and a docking site on an instrument that examines fluorescence of an array or a lateral flow strip, and so forth. Therefore, both stand-alone manual diagnostic applications and automated or semi-automated applications are envisaged.
  • the inner workings of these devices are defined in various embodiments of the prior art. It should be noted that the claimed invention is not limited to a particular embodiment of the inner workings, and that applications for devices used in performing chemical or immunoassays are also anticipated. Devices may be built to assay for bioassay target molecules indicative of pathological conditions and biological threats of any kind
  • Sealing closure 34 comprises a gasket or gasket layer 35 .
  • the guide track 8 serves also to force a tight seal between the gasket material and the swab receiving orifice 6 , thus forming a fluid-tight seal over swab capture chamber 33 .
  • the swab is treated by flowing extraction reagent or buffer in and out of the swab receiving chamber.
  • the extraction buffer may include detergents, solvents such as water, and water in combination with DMSO, NMP, DMF, Formamide, THF, and detergents, co-detergents, cosolvents, proteolytics, sulfhydryl-reducing agents such as n-acetyl-cysteine and dithiothreitol, selective nucleases, mucopolysaccharidases, cellulases, proteases, and the like.
  • DMSO solvents
  • NMP solvent
  • DMF Deoxys
  • Formamide Formamide
  • THF Trifluorous tane
  • detergents co-detergents
  • cosolvents co-detergents
  • proteolytics sulfhydryl-reducing agents
  • selective nucleases mucopolysaccharidases
  • cellulases cellulases
  • proteases and the like.
  • a discussion of mucolytics is provided in United States Patent Application 2004/0175695
  • the swab receiving chamber may contain active pump elements in tandem pairs, operating in alternation by positive and negative displacement, so that venting is not required.
  • the structure of these paired pump elements consists of elastomeric or flexible diaphragms and the operation requires merely that as the diaphragm of one pump element is compressed, the other diaphragm is distended, so that the fluid is forced back and forth between the two pump elements.
  • the diaphragms may be operated manually, hydraulically, electrostatically, magnetically, or pneumatically as is known in the art.
  • the device will typically contain buffer and bioactive reagents for sample processing and analysis and all such material is best viewed as biohazardous. Ideally, all such waste is retained in the sealed body of the device and can be disposed of without hazard by autoclaving or incinerating the device itself. Shown here is a waste chamber ( 36 ) that would in operation be vented. Such vents as are permeable to air but not to liquid are well known. Added isolation is possible using a flexible diaphragm as described in co-assigned US Patent Document “Integrated Nucleic Acid Assays”, where fully operative details of assay systems of this sort are disclosed, and which is herein incorporated in full by reference. Also useful are absorbent bats.
  • the devices are self-contained and contain at least on-board reagent for conducting the analysis.
  • the reagent is a fluid, for example an extraction buffer or a lysis reagent, but in other cases the reagent is a dried biological, for example a primer mix, an antibody, a polymerase, a divalent cation, or a dried weak acid and its salt.
  • Liquid reagent storage may be achieved by supplying the reagents in sachets, which are ruptured when needed, by methods known in the art. These methods typically supply a sharp upon which the sachet is compressed so that it ruptures. Compression of the sachet may be by manual means or by pneumatic means.
  • FIG. 4 shows an exploded view of disposable external skins ( 2 , 3 ) applied to a device body ( 45 ).
  • both the upper skin ( 2 ) and lower skin ( 3 ) are shown.
  • a ribbed surface ( 44 ) is provided for gripping the device.
  • These skins may be applied as decals.
  • the upper and lower skins may be made from a flexible plastic film or sheet, such as polyethylene, vinyl, polyvinyl chloride, PET or polyurethane, and are typically applied to the device with a removable, pressure sensitive adhesive that can be removed without residue.
  • Candidate commercially available films include 3MTM ScotchcalTM Graphic Film Series 3470 or 3MTM ScotchcalTM Graphic Film Series 8000 available from 3M (St. Paul.
  • adhesives include ROBONDTM PS-8211 latexes available from Rohm And Haas (Philadephia, Pa.).
  • suitable decal materials include paper sheet, waxed paper sheet, and fiber/plastic or plastic/plastic composite sheets or films, such as polyethylene film bonded over cloth scrim. These sheets or films are typically printed with graphics and written instructions for the user. Optionally the instructions are printed onto the device body and the film cover is transparent.
  • the adhesive is typically an acrylate derivative.
  • repositionable and removable adhesives are emulsified polymers made from “soft” monomers such as n-butyl acrylate, isooctyl acrylate, or the like, or ionomeric copolymers made from a soft component, such as isobutylene, n-butyl acrylate, isooctyl acrylate, ethyl hexyl acrylate, or the like; in combination with a polar monomer such as acrylic acid, acrylonitrile, acrylamide, methacrylic acid, methyl methacrylate, trimethylamine methacrylimide, trimethylamine p-vinyl benzimide, ammonium acrylate, sodium acrylate, N,N-dimethyl-N-(.beta.-methacryloxyethyl)ammonium propionate betaine, 1,1-dimethyl-1-(2-hydroxypropyl)amine methacrylimide, 4,4,9-trimethyl-4-az
  • Non-spherical polyacrylate adhesives are commercially available, for example, as the Rohm and Haas RhoplexTM line of adhesives.
  • the adhesive applied to the film is typically repositionable or removable without residue, the adhesive may be selected from any adhesive that may be repeatably adhered to and removed from a substrate without substantial loss of adhesion capability.
  • An example of such an adhesive is disclosed in U.S. Pat. No. 3,691,140 to Silver, which relates to solid tacky microspheres.
  • Preferred adhesives are water resistant when dry.
  • Repositionable adhesives are also known in which microspheres contained in the adhesive are non-tacky. A disclosure of this type of adhesive is provided in U.S. Pat. No.
  • the decal to be applied to the device is typically supplied on a release liner and has good moisture and chemical resistance and the adhesive has a working life of greater than 6 months.
  • the decal may be a composite multilayered sheet to achieve these objectives. Multilayered decals variously fabricated from overlayer, liquid crystalline polymer, plastic, silicone, rubber, thermoplastic, paper, interlaid fiber, underlayer, microporous plastic, backing, scrim, cloth, and adhesive are anticipated for this use.
  • FIG. 5 shows a representation of how a disposable protective cover can be applied using tubestock of heatshrink plastic ( 50 ), as is readily commercially available.
  • heat is applied to form the coverlayer to the shape of the device.
  • the swab receiving orifice can be provided with an adhesive-backed decal or appliqué that would be removed immediately before use, exposing the orifice, and also serves as a tamper-evident seal.
  • a tearstrip may similarly be applied to the heatshrink wrapping so that the entire skin can be removed with a single motion.
  • suitable heat shrinkable thermoplastic films include those polyethylene composites described in U.S. Pat. No. 7,235,607, the polyethylene terephthalate esters of U.S. Pat. No. 6,623,821, and the thermoplastics of U.S. Pat. No. 3,655,503, for example.
  • FIG. 6 describes a similar protective cover, but made out of a soft plastic bag such as a polyethylene or polyolefin, or out of paper.
  • the paper may be impregnated with a water repellent material or may be absorbent.
  • the plastic or paper bag ( 60 ) is formed to include a male sealing rib ( 61 ) that mates with a corresponding female locking groove ( 62 ) on the exterior circumference of the device body. A tearstrip is provided for ease of removal.
  • the swab receiving orifice 6 can be configured to a variety of swab dimensions and shapes. When the swab is safely captured within the device, closure 7 is pushed across the opening to seal the device.
  • the disposable outer skin consists of a Styrofoam block or similar expanded material formed by molding, which is fabricated to fit the lower half of the device ( 71 ), and a partial lid fitted to the upper half of the device ( 72 ), leaving the swab receiving orifice 6 exposed.
  • a tearstrip ( 73 ) serves the dual function of adhering the two halves of the outer skin together during sample collection, and is then torn or peeled away so that the halves can be separated and the device removed for further processing or analysis.
  • the tearstrip typically includes a freehanging tab to facilitate this.
  • the lower block and upper lid are discarded after the device is removed.
  • the shape of the blocks forming the outer skin 70 is variable.
  • a clamshell formed of right and left halves is equally suitable, as are more complex interdigitated two part blocks.
  • a single block is useful.
  • the dual block system has the advantage that squeezing pressure applied to the lower block has the effect of holding the device in place while the tear strip and upper lid are removed. The device can then be pulled out of the lower block with clean hands and presents an uncontaminated exterior, the closure having been pulled over the swab receiving orifice from its protected position under the upper lid.
  • FIG. 8 shows a conceptual view of a more general form of the composite sample collection device ( 80 ) with disposable outer skin ( 81 ).
  • the disposable outer layer material can be a quilted material, a composite of waterproof and absorbent layers, a diaper, a foil composite, and so forth. The material is knit or fused around the edges into a pouch holding the device, and is torn away at a frangible or pre-weakened tear point after the sample is collected.
  • U.S. Pat. No. 4,279,344 describes a packaging laminate which is heat sealable and peelable suitable for this construction.
  • FIG. 9 is a pictorial representation of the essential features of the swab capture method, and shows a multistep process with steps A-E and a representative device ( 1 ) and swab ( 20 ).
  • the swab ( 20 ) is oriented to the swab receiving orifice ( 6 ) of the device body ( 1 ) and the tip of the swab ( 25 ) is inserted into the device.
  • the handle ( 22 ) is broken away and discarded.
  • the locking closure ( 7 ) is then slid over the orifice ( 6 ) to irreversibly capture and seal the swab tip in the device, as shown in FIG. 9D .
  • step E the disposable external skins, or “decals”, are then peeled away (shown is the upper skin 2 peeling away), refreshing the external surfaces and removing any extraneous material inadvertently deposited when collecting the sample.
  • the fresh external surfaces are used to label the specimen contents and patient identification, or optionally a label with that information can be applied to those surfaces.
  • FIG. 10 is a block diagram of these steps of the general method for swab capture. The steps are: collect a specimen on a swab; insert the swab tip into the collection device as designed for receiving the swab, and break off the swab handle; seal the swab in the device using a locking closure; remove the disposable skin or skins from the external surfaces of the collection device, taking care to avoid contaminating the freshly exposed surfaces. Optionally, an analysis may then be performed on the swab in the device without further exposure to the biohazardous sample.
  • the order of the steps is not strictly followed if the swab handle is broken off and the device sealed after the external skins are removed, and it may be that handling the device in this way is more convenient.
  • the preferred method is to capture the swab and seal the device before removing and discarding the external protective skins. As claimed, the invention is not limited by the order of these steps.
  • FIG. 11 is a block diagram of a more general method for specimen capture.
  • the specimen is first collected and inserted in a suitable container, the container having been supplied with disposable external skin or skins; the container is then sealed; and the external skins or skins are removed and discarded.
  • FIGS. 12A and 12B are overview and detail, respectively, of the tab members ( 4 , 5 ) used as a peelaway strip for removing the external skins of a representative device. As shown in detailed view 12 B, the tabs are freestanding at the edges of the body of the device, and are easily grasped between finger and thumb. The entire protective film or pad is then readily peeled away.
  • FIG. 13 is an alternate embodiment of a combination specimen collection container and sheath ( 130 ), showing an alternate form of the external protective skin and internal specimen collection device.
  • the analytical device ( 131 ) shown is fitted with internal analytical works and a user interactive panel and display window.
  • the body of the sample collection device 131 is encased in an outer sleeve member ( 132 ) and cap member ( 133 ).
  • the outer sleeve member is supplied with an endwise swab receiving orifice ( 134 ) and internal swab receiving chamber for collecting the swab.
  • a ball valve type closure is used to capture and seal the swab in the device and a knob is provided ( 135 ) for rotating the ball valve from open to closed.
  • the control head 136 may also be rotated, and serves to power a spring-driven pressure source for the pumps, and to initiate the assay protocol. Assay status is shown in the leftmost window 137 . Assay results are shown in the rightmost window 138 .
  • the outside protective sleeve 132 is removed and the sample receiving chamber is closed with the ball valve 135 .
  • the cap can then be removed and the apparatus is generally free of external contamination.
  • the sample entry end can be covered.
  • the control head is then rotated and the assay commenced. In a few minutes, the assay result is read in the display window. Status and validity of the assay is displayed in the left panel.
  • the device can be inserted into a machine and the assay conducted by machine-aided power and control.
  • the outer sleeve and cap are discarded as contaminated medical waste.
  • the device is also discarded along with its entrained specimen.
  • the outside protective sleeves are disposable external skins
  • the sleeves may be replaced by decals as described in FIG. 4 , wherein the decals are adapted for a cylindrical body form.
  • the disposable protective overlayer may be as provided in FIGS. 5-8 .
  • This device is also suitable for collection of tampons, which lack the handle characteristic of swabs.
  • the tampon must be inserted into the swab receiving orifice with tweezers or by other means and the orifice must be dimensioned appropriately. Tampons are useful sample collection devices, and their use is hereby taken within the scope of the invention described herein.
  • This device is conceived as part of a kit, the kit consisting of a sterile swab, the combination specimen collection device and sheath 130 , and a tray.
  • the tray optionally may also contain surgical gloves, instructions, and labeling aids.
  • FIG. 14 A variation of composite device 130 is shown in FIG. 14 .
  • the sample is inserted through orifice ( 141 ) in external disposable cap ( 142 ) into device ( 140 ), the body of which contains a sample receiving chamber with threaded neck ( 143 ).
  • the cap 142 is immediately removed and a clean, sterile lid (not shown) is threaded onto the neck.
  • the device body thus functions as bottle. Holding the assembly by the clean lid, the lower outside protective sheath ( 144 ) is then removed.
  • the operator then presses the start button ( 146 ); the instrument cycles, its status continuously displayed in status bar 147 , and the raw data is read from nucleic acid hybridization array 148 .
  • the machine is placed under a modified bar code reader or strip reader and the data is electronically displayed on the reader and transmitted as an electronic medical record to the patient's chart.
  • the present invention relates to methods and devices for collecting specimens and for analyzing specimens in which a pre-formed disposable external skin is removed from the collection device or sample holder after the specimen is deposited in it.
  • a swab collection container is shown with no analytical capabilities.
  • the composite swab holder consists of an internal bottle and an external skin or sheath, so that after the swab is collected and sealed within the internal bottle, the external sheath is removed and the swab in its bottle, or other sealed vessel, is safely transported and handled with the assurance that any biohazardous external residues have been disposed of with the external sheath.
  • Swab collection container ( 150 ) is shown in FIG. 15A .
  • Internal swab collection container ( 151 ) is shown in FIG. 15B .
  • the two figures illustrate essentially a “before” and “after”, wherein the device is supplied as shown in FIG. 15A without collected swab, and in FIG. 15B with collected swab.
  • the steps involve capturing the swab and removal of the external skins, so that the product of the method is the slender, clean swab holder shown in FIG. 15B .
  • the swab collection container 150 has a swab receiving port ( 153 ) formed of disposable funnel ( 154 ) and barbed lip ( 164 ) of the internal swab receiving channel ( 156 ), also termed herein an “internal hollow volume ( 156 )”.
  • the temporary shipping cap ( 160 ) is first removed and the swab is inserted tip-down into the internal hollow volume ( 156 ).
  • the disposable funnel serves to protect the barbed rim ( 164 ) of the internal sheathed tube ( 157 ) from contamination with specimen residues.
  • the sealing strip, or tear strip ( 168 ) is removed and the upper protective skin ( 155 ) is lifted up and away from the device, along with the disposable funnel 154 , both of which are discarded. This exposes the uppermost bezeled rim 164 of the inner cylinder.
  • a sealing closure ( 165 ) with locking lip or flange ( 166 ) and plug ( 167 ) can be locked in place over the barbed bezel of the inner cylinder, and the outer lower protective sheath 159 is slid off the inner cylinder and discarded.
  • the sealing closure is supplied separately.
  • the swab is now isolated within the internal hollow volume 156 , separated from the external surfaces ( 169 ) by closure 165 , and the external surfaces are as clean as supplied by the factory.
  • the device 150 may be stood on its base, which can be formed with a foot as would be useful for stability.
  • a kit for this process may contain, in a tray, the device 150 , a swab 20 , and a closure, along with any instructions and labeling.
  • a swab is provided in a sterile packet, the shaft of the swab being formed with a notch separating the handle from the sampling tip.
  • the swab is rubbed in the gingiva separating the teeth from the gums of a child and inserted into a collection device of the invention.
  • the swab handle is bent vigorously so that it breaks at the notch, releasing the swab tip with specimen into the device.
  • the swab insertion channel is then covered with a sliding closure that rides in tracks in the housing, and sealed irreversibly, the sliding closure having a ratcheted underside which mates and locks over a locking tooth or spur on the body of the device.
  • the professional then removes a protective external skin from the device, taking care not to contaminate the freshly exposed surfaces, and hands the device to an aide for processing.
  • a swab is provided in a sterile envelope, the shaft of the swab being formed of a material suitable for cutting with a blade.
  • the patient is asked to provide a self-collected specimen of the vaginal mucosa and is given instructions.
  • the patient collects the sample and inserts the soft tip of the swab into the sample collection device that was provided.
  • the patient hands the device to a health professional, who takes it with gloved hands.
  • the health professional closes the cover of the device, cutting free the swab handle and discarding it, and then removes the disposable external skins on the device, taking care not to contaminate the freshly exposed surfaces.
  • the health professional After removing the skins, the health professional inserts the device into a semi-automated analytical apparatus and completes the assay. The result is read and the device with sample is then discarded.
  • the analytical apparatus is equipped with networking capability so as to transmit identifying and “smart” electronic data as an electronic medical record to a database on a server.

Abstract

Biohazard specimen collection containers are provided with an external disposable skin, that is stripped away and discarded after the biohazardous specimen is collected, thus reducing or eliminating objectionable or dangerous residues on the outside surfaces of the container. Further, we teach that the sample collection container with external disposable skin may also serve as an integrated microfluidic biosample processing and analytical device, thereby providing a single entry, disposable assay unit, kit and system for “world-to-result” clinical diagnostic testing. These integrated assay devices are provided with synergic, multiple safe-handling features for protecting healthcare workers who handle them. The modified collection containers and analytical devices find application, for example, in PCR detection of infectious organisms or pathogenic markers collected on a swab.

Description

    CROSS-REFERENCE TO RELATED APPLICATIONS
  • This application is a divisional of U.S. patent application Ser. No. 12/695,487 filed Jan. 28, 2010, now allowed; which application is a continuation of International Patent Application No. PCT/US2008/071810 filed Jul. 31, 2008; which application claims the benefit under 35 U.S.C. §119(e) of U.S. Provisional Application No. 60/953,045, filed Jul. 31, 2007; which applications are incorporated herein by reference in their entireties.
  • STATEMENT OF GOVERNMENT INTEREST
  • This invention was made with government support under Contract No. U01 AI070801 awarded by National Institutes of Health. The government has certain rights in this invention.
  • BACKGROUND
  • 1. Technical Field
  • The invention relates to medical and veterinary sample collection devices and to medical and veterinary analytical devices of specialized form and function, and to integrated microfluidic devices for both sample collection and analysis. The invention further relates to a method for biohazard sample collection.
  • 2. Description of the Related Art
  • The art relating to handling of swabs is well established, but remains in need of improvement, both to ensure the integrity of the clinical sample and its protection from contamination, but also to ensure that healthcare professionals are not unnecessarily or inadvertently exposed to biological material on the exterior surfaces of the swab container. Once the external surfaces are contaminated during sample collection, exposure readily occurs when a swab container is passed from hand to hand, and no on-board means is known to refresh or cleanse the outside surfaces of the sample container.
  • We have reviewed the patent literature, and found little or no teaching that comments on this problem. U.S. Pat. No. 4,803,998 to Kezes relates to a swab retaining vial cap and describes a combination containment vial with cap and with swab mounted inside the cap, the vial containing a medium for preserving a sample on the swab during shipment. The swab is removed from the cap to collect a sample and the swab tip can then be broken off when inserted into the vial so that the swab tip drops to the bottom of the vial without contamination by the user. The cap is then sealed. FIG. 4 shows a swab with frangible shaft. The patent is indicative of early efforts to protect a sample from contamination. This seems to accurately reflect the overall state of the art as it exists at this filing. We note that while the interior of the vial is carefully protected from contamination, the exterior is subject to contamination during handling, and becomes a fomite vector for infectious disease. Samples collected in this way are frequently removed for analysis at a separate location, and those who handle the sample container may inadvertently be exposed to material on the exterior surface of the sample container.
  • U.S. Pat. No. 6,991,898 to O'Connor (Jan. 31, 2006) describes a self-contained diagnostic test device for collection and detection of an analyte in a biological specimen. The device comprises a tubular swab and reagent dispensing cap. The reagent dispensing cap delivers one or more selected reagents to an assay chamber upon the rotation of the reagent chamber.
  • In U.S. Pat. No. 7,098,040 to Kaylor, a swab-based diagnostic test device is provided. The test device contains a reagent and a rupturable seal for adding the reagent to the sample after the swab is sealed inside the device.
  • U.S. Pat. No. 6,277,646 to Guirguis provides a device for both collecting and testing a fluid specimen. A fluid specimen is collected and an aliquot is transferred to an isolation chamber, from which a flow path to a test chamber is opened.
  • U.S. Pat. No. 6,565,808 to Hudak describes a fluid flow actuating device or structure, such as a valve, which separates the sample receiving chamber from the test platform. The test method involves collecting a sample, contacting the sample with the proprietary test device, and detecting the analyte in the sample.
  • U.S. Pat. No. 6,248,294 to Nason relates to a self-contained diagnostic test unit for use in the collection and analysis of a biological specimen. The test unit comprises is tubular housing for capturing a swab. A reagent dispenser cap delivers reagents to the specimen chamber and a diagnostic strip assembly is mounted on the housing so a portion of the specimen can flow by wick action through the test strip, producing a visible color change.
  • U.S. Pat. Nos. 5,266,266 and 5,879,635 to Nason relate to a reagent dispenser which includes a pair of reagent chambers with selected reagents therein, and a dual nib for hermetically sealing the reagent chambers. A portion of the dispenser is deformable to break or otherwise to displace the nib in a manner permitting the two reagents to flow together and mix within one of the reagent chambers. The deformable portion or the dispenser can then be squeezed to express the mixed reagents for delivery to contact the specimen to be analyzed. In a preferred form, the dispenser is a cap assembly on an open-ended tubular housing configured for receiving a swab.
  • Similarly, U.S. Pat. No. 6,890,484 to Bautista relates to in-line test device and describes a swab receiving port integrated into the body of a lateral flow strip. No means for protecting the exterior of the test apparatus is described. Goodfield, in Sampling and Assay Device (WO1997/23596), discloses a swab and swab container with liquid assay reagents accessible by rupture of foil liners, again with no outer disposable protective layer.
  • All the above devices and methods are deficient for the present purpose in that the operator is exposed to contamination of the external surfaces of the specimen collection container by contact with residues of specimen or unrelated patient-derived bodily material, which may be unhygienic and grossly objectionable. This problem is apparently not considered.
  • United States Patent Application 2005/0009200 to Guo relates to a sanitary and compact fecal occult blood collector kit. The swab tip in this case is covered “for hygienic purposes”. Also disclosed is a package for the swab and the cover. However, on closer study, the purpose of the cover is again to protect the sample, not the handle of the swab contacted by the operator or the external surfaces of the swab collection container, and the exterior of the package cannot be cleaned of contaminating matter that accumulates during sampling. Further, the swab must again be retrieved from the package. Thus while the sample is protected, the user is potentially exposed at multiple levels.
  • Miniaturizing some of the processes involved in clinical analyses, including nucleic acid, immunological and enzymatic analysis, or combinations thereof, has been achieved using microfluidic devices. Microfluidic techniques known in the art include electrophoretic detectors, for example those designed by ACLARA BioSciences Inc., or the LabChip™ by Caliper Technologies Inc, and hybridization detectors such as those manufactured by Nanogen of San Diego. Also indicative of the state of the art are PCT Publication WO1994/05414, U.S. Pat. Nos. 5,498,392, 5,304,487, 5,296,375, 5,856,174, 6,180,372, 5,939,312, 5,939,291, 5,863,502, 6,054,277, 6,261,431, 6,440,725, 5,587,128, 5,955,029, 5,498,392, 5,639,423, 5,786,182, 6,261,431, 6,126,804, 5,958,349, 6,303,343, 6,403,037, 6,429,007, 6,420,143, 6,572,830, 6,541,274, 6,544,734, 6,960,437, 6,762,049, 6,509,186, 6,432,695, 7,018,830, and 2001/0046701, 2003/0138941, and International Pat. Nos. WO 2003/004162, WO2002/18823, WO2001/041931, WO1998/50147, WO1997/27324, all of which describe apparatuses and methods incorporating various microfluidic processing and analytical operations involved in nucleic acid analysis, and are incorporated herein by reference.
  • Co-assigned to Micronics, Inc of Redmond Wash., and also incorporated herein in full by reference, are U.S. Pat. No. 6,743,399 (“Pumpless Microfluidics”), U.S. Pat. No. 6,488,896 (“Microfluidic Analysis Cartridge”), U.S. Pat. No. 5,726,404 (“Valveless Liquid Microswitch”), U.S. Pat. No. 5,932,100 (“Microfabricated Differential Extraction Device and Method”), (“Tangential Flow Planar Microfluidic Fluid Filter”), U.S. Pat. No. 5,872,710 (“Microfabricated Diffusion-Based Chemical Sensor”), U.S. Pat. No. 5,971,158 (“Absorption-Enhancing Differential Extraction Device”), U.S. Pat. No. 6,007,775 (“Multiple Analyte Diffusion-Based Chemical Sensor”), U.S. Pat. No. 6,581,899 (“Valve for Use in Microfluidic Structures”), U.S. Pat. No. 6,431,212 (“Valve for Use in Microfluidic Structures”), U.S. Pat. No. 7,223,371 (“Microfluidic Channel Network Device”), U.S. Pat. No. 6,541,213 (“Microscale Diffusion Immunoassay”), U.S. Pat. No. 7,226,562 (“Liquid Analysis Cartridge”), U.S. Pat. No. 5,747,349 (“Fluorescent Reporter Beads for Fluid Analysis”), US Patent Applications 2005/0106066 (“Microfluidic Devices for Fluid Manipulation and Analysis”), 2002/0160518 (“Microfluidic Sedimentation”), 2003/0124619 (“Microscale Diffusion Immunoassay”), 2003/0175990 (“Microfluidic Channel Network Device”), 2005/0013732 (“Method and system for Microfluidic Manipulation, Amplification and Analysis of Fluids”), 2007/0042427, “Microfluidic Laminar Flow Detection Strip”, 2005/0129582 (System and Method for Heating, Cooling and Heat Cycling on a Microfluidic Device); and unpublished US Patent documents titled, “Integrated Nucleic Acid Assays,” “Microfluidic Cell Capture and Mixing Circuit”, “Microfluidic Mixing and Analytical Apparatus,” “System and Method for Diagnosis of Infectious Diseases”, “Methods and Devices for Microfluidic Point of Care Assays”, “Integrated Microfluidic Assay Devices and Methods”, and “Microscale Diffusion Immunoassay Utilizing Multivalent Reactants”, all of which are hereby incorporated in full by reference. Also representative of microfluidic technologies that are co-assigned to Micronics are PCT Publications WO 2006/076567 and 2007/064635, all incorporated herein in full by reference for what they enable.
  • The utility and breadth of microfluidic assays for nucleic acid assays is further demonstrated in the scientific literature, the teachings of which are incorporated by reference herein. These teachings include, for example, Nakano H et al. 1994. High speed polymerase chain reaction in constant flow. Biosci Biotechnol Biochem 58:349-52; Wilding, P et al. 1994. PCR in a silicon microstructure. Clin Chem 40(9):1815-18; Woolley A T et al. 1996. Functional integration of PCR amplification and capillary electrophoresis in a microfabricated DNA analysis device. Anal Chem 68:4081-86; Burke D T et al. 1997. Microfabrication technologies for integrated nucleic acid analysis. Genome Res 7:189-197; Kopp et al. 1998. Chemical amplification: continuous-flow PCR on a chip. Science 280:1046-48; Burns, M A. 1998. An Integrated Nanoliter DNA Analysis Device. Science 282:484-87; Belgrader P et al. 1999. PCR Detection of bacteria in seven minutes. Science 284:449-50; Lagally E T et al. 2001. Fully integrated PCR-capillary electrophoresis microsystem for DNA analysis. Lab Chip 1:102-07; Tudos A J et al. 2001. Trends in miniaturized total analysis systems for point-of-care testing in clinical chemistry. Lab Chip 1:83-95; Belgrader P et al. 2002. A battery-powered notebook thermocycler for rapid multiplex real-time PCR analysis. Anal Chem 73:286-89; Hupert L M et al. 2003. Polymer-Based Microfluidic Devices for Biomedical Applications. In, (H Becker and P Woias, eds) Microfluidics, BioMEMS, and Medical Microsystems, Proc SPIE Vol 4982:52-64; Chartier I et al. 2003. Fabrication of an hybrid plastic-silicon microfluidic device for high-throughput genotyping. In, (H Becker and P Woias, eds) Microfluidics, BioMEMS, and Medical Microsystems, Proc SPIE Vol 4982:208-219; Anderson R C et al. 2000. A miniature integrated device for automated multistep genetic assays. Nucl Acids Res 28(12):[e60,i-vi]; Yang, J et al. 2002. High sensitivity PCR assay in plastic micro reactors. Lab Chip 2:179-87; Giordano B C et al. 2001. Polymerase chain reaction in polymeric microchips: DNA amplification in less than 240 sec. Anal Biochem 291:124-132; Khandurina J et al. 2000. Integrated system for rapid PCR-based DNA analysis in microfluidic devices. Anal Chem 72:2995-3000; Chiou, J et al. 2001. A Closed-Cycle Capillary Polymerase Chain Reaction Machine. Anal Chem 73:2018-21; Yuen, P K et al. 2001. Microchip module for blood sample preparation and nucleic acid amplification reactions. Genome Res 11:405-412; Zhou X, et al. 2004. Determination of SARS-coronavirus by a microfluidic chip system. Electrophoresis. 25(17):3032-9; Liu Y et al. 2002. DNA amplification and hybridization assays in integrated plastic monolithic devices. Anal Chem 74(13):3063-70; Zou, Q et al. 2002. Micro-assembled multi-chamber thermal cycler for low-cost reaction chip thermal multiplexing. Sensors Actuators A 102:224-121; Zhang C et al. 2006. PCR Microfluidic devices for DNA amplification. Biotech Adv 24:243-84, and Zhang, C and Xing D. 2007. Miniaturized PCR chips for nucleic acid amplification and analysis: latest advances and future trends. Nucl Acids Res 35(13):4223-37.
  • Thus there is a clear and ongoing interest in microfluidic devices for clinical and veterinary diagnostic assays. As these commercial applications increase, the world-to-chip interface is receiving increasing attention, and we note that little has been done in the area of sample collection to both improve the validity of nucleic acid amplifications by preventing cross-sample contamination, and just as importantly, to prevent exposure of those persons handling the specimens to objectionable or potentially infectious materials. As has been noted, (Nelson, D. B. et al. 2003. “Self-Collected Versus Provider-Collected Vaginal Swabs for the Diagnosis of Bacterial Vaginosis: an Assessment of Validity and Reliability,” J Clin Epidemiol, 56:862-866), there is an increasing trend toward patient self-collection of samples, often with swabs or cups. Typically the patient is not provided with means to ensure that the external surfaces of the sample collection device does not become contaminated with the sample or related biological fluids during handling. These swabs or cups are typically then processed or handled by ungloved couriers and paraprofessionals and must then be transferred to the analytical device or further handled and processed by nursing and laboratory personnel. The sample collection device thus becomes a fomite potentially capable of spreading infectious disease to numerous persons, and a method or means for eliminating or at least reducing the exposure of health workers to the contaminated exterior of the sample collection vials, bottles, cups, tubes, and so forth, has been a longstanding and unmet need in the healthcare industry.
  • Furthermore, awareness of the dangers of unsafe handing of biological fluids and specimens has increased dramatically in the last two decades, and single-entry devices are increasingly needed that seamlessly integrate sample preparation, extraction, and analysis without unnecessary operator exposure. A further objective we have identified is the need to fully integrate the device into a disposable format, so that once a sample is collected, either by patient or by a health professional, all remaining steps of the analysis, up to and including display of the result, are performed without further personal exposure to the sample. A critical step in this process is thus the refreshing or disinfecting of the external surface sample collection container (whether it is also the analytical device or not), and to our knowledge, satisfactory solutions to this problem have not been recognized or brought forward prior to our disclosure herein.
  • BRIEF SUMMARY
  • Swabs are extremely useful for collecting specimens. Following collection of a specimen on a swab, the swab must be generally protected during subsequent transport and processing for analysis. During initial handling, contamination of the external surfaces of the swab collection container by contact with residues of specimen or unrelated patient-derived bodily material, which may be unhygienic and grossly objectionable, is almost inevitable. Gloves are protective only to the hands on which they are worn, not to the swab collection container. We see a solution to this problem as an unrecognized and unmet need with significant potential benefits, particularly in reduction of nosocomial infections, for example, and more generally in reduction of disease transmission to health care workers, and also in improvement of sample quality, which is mandatory for tests such as PCR, where false positives due to cross-contamination will invalidate any testing system.
  • Cross-contamination by transmission on the surfaces of fomites is a longstanding problem. We find that this problem can be alleviated or significantly reduced by applying a disposable external skin to the collection device, and by removing the skin after the risk of exposure to further contamination is ended. Contamination risk is most great during the act of specimen collection itself, and decreases greatly after the specimen collection container is removed from the sampling site. Contamination of the external surfaces of an article passed from hand-to-hand, or hand-to-machine, with normal flora and normal squamous epithelial cells, is significantly less likely to result in false diagnostic positives for a pathogenic condition.
  • We disclose a biohazard swab collection device or container, comprising a body with external surfaces, an internal hollow volume, and a sealable closure for separating said external surfaces from said internal hollow volume, said external surface further comprising a disposable external skin layer, whereby after the biohazardous swab is enclosed and sealed within the internal hollow volume, any biohazardous residues accumulated on the external surfaces are removed by removing and disposing of the disposable external skin layer, and further optionally comprising a valve separating said internal hollow volume into a swab receiving chamber and a microfluidic assay circuit with a microfluidic channel and an on-board liquid reagent.
  • We further disclose a method wherein the specimen is not limited to a swab and the specimen collection device is not limited to an analytical device. The general method comprises the steps of:
  • a) providing a sample and a specimen collection container with body and with sample receiving orifice, said body with external surface and internal hollow volume, said external surface with disposable skin or skins, said sample receiving orifice with sealable closure;
  • b) inserting said sample into said sample receiving orifice;
  • c) closing said sealable closure said sample receiving orifice; thereby capturing said sample; and,
  • d) removing said disposable skin or skins from said external surface; thereby renewing said external surface.
  • BRIEF DESCRIPTION OF THE FIGURES
  • FIG. 1 is a perspective view of a representative specimen collection device with external skins and with integrated sample processing and analytical assay capability.
  • FIG. 2 is a perspective view of a sample swab with frangible handle.
  • FIG. 3A is a plan view of the upper surface of the device of FIG. 1, and shows section plane 3B. FIG. 3B is a section of the device of FIG. 1 on plane 3B, and shows the swab receiving chamber and inner workings of an embodiment of the integrated device. Representative inner workings are indicated schematically.
  • FIG. 4 is an exploded view of protective external disposable skins applied to a representative specimen collection device.
  • FIG. 5 is a conceptual illustration of the manufacture of a heat-shrink external disposable skin on a representative specimen collection device.
  • FIG. 6 is an illustration of the assembly of a disposable bag applied to a representative specimen collection device.
  • FIG. 7 is an exploded view of a Styrofoam or composite coverblock assembly applied to a representative specimen collection device.
  • FIG. 8 is a sketch of a device with composite cover formed in place over and around the device.
  • FIGS. 9A-E is a sequential view of the steps of a method in which a representative specimen collection device fitted with a disposable external sanitary skin is used to collect a specimen on a swab.
  • FIG. 10 is a block diagram of the steps of a method for collecting a biohazardous swab in a swab collection device fitted with a disposable external sanitary skin.
  • FIG. 11 is a block diagram of the more general steps of a method for collecting a biohazardous specimen in a specimen collection device fitted with a disposable external sanitary skin.
  • FIGS. 12A and B show a detail of a tab on the disposable external cover for use in removing the protective cover after the specimen is collected.
  • FIG. 13 is a second embodiment of a specimen collection device for a swab or tampon, and includes operator interface and real-time point-of-care data display that is hidden under the cap of a protective removable overlayer during specimen collection.
  • FIG. 14 is a section down the long axis of a third embodiment of a specimen collection device for a swab or tampon, and includes operator interface and real-time point-of-care data display that is hidden under a protective removable overlayer during specimen collection.
  • FIGS. 15A and B is a first embodiment of a specimen collection device for a swab where the specimen collection device has no analytical capacity.
  • DETAILED DESCRIPTION Definitions:
  • The following definitions are provided as an aid in interpreting the claims and specification herein. Where works are cited or incorporated by reference, and any definition contained therein is inconsistent with that supplied here, the definition used therein shall not supersede or limit the definition supplied herein.
  • Fomite: An inanimate object or substance, such as a doorknob, utensil, soap bar, or specimen container, that is capable of transmitting infectious organisms (broadly bacterial and viral) from one individual to another, typically by hand-to-hand or hand-to-mouth exposure to a biological residue on the surface of the inanimate object or substance.
  • Test samples: Representative biosamples taken by swab include, for example: gingival, buccal, and mucosal epithelial materials, saliva, wound exudates, pus, surgical specimens, lung and other respiratory secretions, nasal secretions, sinus drainage, sputum, blood, urine, medial and inner ear contents, ocular secretions and mucosa, cyst contents, cerebral spinal fluid, stool, diarrhoeal fluid, tears, mammary secretions, ovarian contents, ascites fluid, mucous, gastric fluid, gastrointestinal contents, urethral discharge, vaginal discharge, vaginal mucosa, synovial fluid, peritoneal fluid, meconium, amniotic fluid, semen, penile discharge, or the like may be presented for testing on a swab. Assay from swabs representative of mucosal secretions and epithelia are acceptable, for example mucosal swabs of the throat, tonsils, gingival, nasal passages, vagina, urethra, rectum, lower colon, and eyes. Besides physiological fluids, samples of water, industrial discharges, food products, milk, air filtrates, and so forth are also likely test specimens. Particularly preferred as samples are biosamples collected on swabs or tampons, where a tampon is essentially a handleless swab that is sometimes worn internally before testing.
  • Biohazard: A biohazard is a material, either biologically active or inanimate, that poses a risk or threat to health. Also included in this category as biohazards, sensu lato, as defined here, are materials of likely biological origin that are visually, tangibly, or odorously objectionable or repulsive, and those materials which are not in fact a threat, but which potentially are a threat until tested negative. Biohazards include potentially infectious material of any kind, and may contain infectious agents from multiple biological categories, including but limited to, bacteria and viruses, either singly or in one or more combinations thereof, and microbial products such as toxins.
  • Bioassay Target Molecule: or “analyte of interest”, or “target molecule”, may include a nucleic acid, a protein, an antigen, an antibody, a carbohydrate, a cell component, a lipid, a receptor ligand, a small molecule such as a drug, and so forth. Target nucleic acids include genes, portions of genes, regulatory sequences of genes, mRNAs, rRNAs, tRNAs, siRNAs, cDNA and may be single stranded, double stranded or triple stranded. Some nucleic acid targets have polymorphisms, deletions and alternate splice sequences. Multiple target domains may exist in a single molecule, for example an immunogen may include multiple antigenic determinants. An antibody includes variable regions, constant regions, and the Fc region, which is of value in immobilizing antibodies. The microfluidic analytical devices of the present invention are configured to detect a bioassay target molecule of these sorts, singly or in combinations.
  • Such bioassay target molecules may be associated with a pathogenic condition: which is taken as a condition of a mammalian host characterized by the absence of health, i.e., a disease, infirmity, morbidity, or a genetic trait associated with potential morbidity.
  • Microfluidic cartridge: a “device”, “card”, or “chip” with fluidic structures and internal channels having microfluidic dimensions. These fluidic structures may include chambers, valves, vents, vias, pumps, inlets, nipples, and detection means, for example. Generally, microfluidic channels are fluid passages having at least one internal cross-sectional dimension that is less than about 500 μm and typically between about 0.1 μm and about 500 μm, but we extend the upper limit of the range to 600 um because the macroscopic character of the bead suspensions sometimes used as analytical aids require it. Therefore, as defined herein, microfluidic channels are fluid passages having at least one internal cross-sectional dimension that is less than 600 um.
  • Microfluidic cartridges may be fabricated from various materials using techniques such as laser stenciling, embossing, stamping, injection molding, masking, etching, and three-dimensional soft lithography. Laminated microfluidic cartridges are further fabricated with adhesive interlayers or by adhesiveless bonding techniques, such by thermal or pressure treatment of oriented polypropylene or by ultrasonic welding. The microarchitecture of laminated and molded microfluidic cartridges can differ according to the limitations of their fabrication methods.
  • Microfluidic pumps: include for example, bulbs, bellows, diaphragms, or bubbles intended to force movement of fluids, where the substructures of the pump have a thicknesses or other dimension of less than 1 millimeter. Such pumps include the mechanically actuated recirculating pumps described in U.S. Pat. No. 6,743,399 to Weigl and US 2005/0106066 to Saltsman, commonly assigned to the applicant. Such pumps may be robotically operated or operated by hand. Electroosmotic pumps are also provided. Such pumps can be used in place of external drives to propulse the flow of solubilized reagents and sample in microfluidic device-based assays.
  • Blister pack: an on-board reagent pack or sachet under a deformable (or elastic) diaphragm. Used to deliver reagents by pressurizing the diaphragm and may appose a “sharp”, such as a metal chevron, so that pressure on the diaphragm ruptures the “pillow” (see pillow). These may be used with check valves or closable vents to produce directional fluid flow and reagent delivery. Elastic diaphragms are readily obtained from polyurethane, polysilicone and polybutadiene, and nitrile for example (see elastomer). Deformable, inelastic diaphragms are made with polyethylene terephthalate (PET), mylar, polypropylene, polycarbonate, or nylon, for example. Other suitable materials for the deformable film include parafilm, latex, foil, and polyethylene terephthalate Key factors in selecting a deformable film include the yield point and the deformation relaxation coefficient (elastic modulus).
  • Use of these devices permits delivery or acceptance of a fluid while isolating the contents of the microfluidic device from the external environment, and protecting the user from exposure to the fluid contents.
  • Single entry: refers to a microfluidic device, card or cartridge that requires, or permits, only a single introduction of sample, and the assay is then conducted within a self-contained, sealed system. Such devices optionally contain a device for sealing or locking the sample port and an on-board means for disinfecting the contents of the device and any waste following completion of the assay. In one embodiment, the device can be discarded after use without special precautions.
  • Waste chamber or “pack”: is a cavity or chamber that serves as a receptacle for sequestering discharged sample, rinse solution, and waste reagents. Typically also includes a wicking material (see wick). Waste packs may also be sealed under an elastic isolation membrane sealingly attached to the body of the microfluidic device. This inner membrane expands as the bibulous material expands, thus enclosing the waste material. The cavity outside the isolation membrane is vented to atmosphere so that the waste material is contained and isolated. Waste packs may optionally contain dried or liquid sterilants.
  • Vent: a pore intercommunicating between an internal cavity and the atmosphere. A “sanitary” or “isolation vent” also contains a filter element that is permeable to gas, but is hydrophobic and resists wetting. Optionally these filter elements have pore diameters of 0.45 microns or less. These filters function both in forward and reverse isolation. Filter elements of this type and construction may also be placed internally, for example to isolate a valve or bellows pump from the pneumatic manifold controlling it.
  • Herein, where a “means for a function” is described, it should be understood that the scope of the invention is not limited to the mode or modes illustrated in the drawings alone, but also encompasses all means for performing the function that are described in this specification, and all other means commonly known in the art at the time of filing. A “prior art means” encompasses all means for performing the function as are known to one skilled in the art at the time of filing, including the cumulative knowledge in the art cited herein by reference to a few examples.
  • Means for extracting: refers to various cited elements of a device, such as a solid substrate, filter, filter plug, bead bed, frit, or column, for capturing target nucleic acids from a biological sample, and includes the cumulative knowledge in the art cited herein. Extracting further comprises methods of solubilizing, and relates to the resuspension of cells and tissue from the tip of a swab. This includes methods, for example, for dissolution of mucous and protein as described in United States Patent Application 2004/0175695 to Debad. Generally, extraction means include a mechanical pumping component that promotes physical resuspension by turbulent or near turbulent flow. Such flow may be reciprocating flow, and may be pulsatile at varying frequencies to achieve the desired resuspension in a reasonable interval of time. Extraction means also include use of detergent-based buffers, sulfhydryl-reducing agents, proteolytics, chaotropes, passivators, and other solubilizing means.
  • A means for polymerizing, for example, may refer to various species of molecular machinery described as polymerases and their cofactors and substrates, for example reverse transcriptases and TAQ polymerase, and includes the cumulative knowledge of enzymology cited herein by reference to a few examples.
  • Means for Amplifying: The grandfather of this art is the “polymerase chain reaction” (referred to as PCR) which is described in detail in U.S. Pat. Nos. 4,683,195, 4,683,202 and 4,800,159, Ausubel et al. Current Protocols in Molecular Biology, John Wiley and Sons, Baltimore, Md. (1989), and in Innis et al., (“PCR Protocols”, Academic Press, Inc., San Diego Calif., 1990). Polymerase chain reaction methodologies require thermocycling and are well known in the art. Briefly, in PCR, two primer sequences are prepared that are complementary to regions on opposite complementary strands of a target sequence. An excess of deoxynucleoside triphosphates are added to a reaction mixture along with a DNA polymerase, e.g., Taq polymerase. If the target sequence is present in a sample, the primers will bind to the target and the polymerase will cause the primers to be extended along the marker sequence by adding on nucleotides. By raising and lowering the temperature of the reaction mixture, the extended primers will dissociate from the template to form reaction products, excess primers will bind to the template and to the reaction products and the process is repeated. By adding fluorescent intercalating agents, PCR products can be detected in real time.
  • Other amplification protocols include LAMP (loop-mediated isothermal amplification of DNA) reverse transcription polymerase chain reaction (RT-PCR), ligase chain reaction (“LCR”), transcription-based amplification systems (TAS), including nucleic acid sequence based amplification (NASBA), “Rolling Circle”, “RACE” and “one-sided PCR”.
  • These various non-PCR amplification protocols have various advantages in diagnostic assays, but PCR remains the workhorse in the molecular biology laboratory and in clinical diagnostics. Embodiments disclosed here for microfluidic PCR should be considered representative and exemplary of a general class of microfluidic devices capable of executing one or various amplification protocols.
  • Means for detecting: as used herein, refers to an apparatus for displaying an endpoint, i.e., the result of an assay, and may include a detection channel and test pads, and a means for evaluation of a detection endpoint. Detection endpoints are evaluated by an observer visually in a test field, or by a machine equipped with a spectrophotometer, fluorometer, luminometer, photomultiplier tube, photodiode, nephlometer, photon counter, voltmeter, ammeter, pH meter, capacitative sensor, radio-frequency transmitter, magnetoresistometer, or Hall-effect device. Magnetic particles, beads and microspheres haing or impregnated color or having a higher diffraction index may be used to facilitate visual or machine-enhanced detection of an assay endpoint. Magnifying lenses in the cover plate, optical filters, colored fluids and labeling may be used to improve detection and interpretation of assay results. Means for detection of magnetic particles, beads and microspheres may also include embedded or coated “labels” or “tags” such as, but not limited to, dyes such as chromophores and fluorophores; radio frequency tags, plasmon resonance, spintronic, radiolabel, Raman scattering, chemoluminescence, or inductive moment as are known in the prior art. Colloidal particles with unique chromogenic signatures depending on their self-association are also anticipated to provide detectable endpoints. QDots, such as CdSe coated with ZnS, decorated on magnetic beads, or amalgamations of QDots and paramagnetic Fe304 microparticles, optionally in a sol gel microparticulate matrix or prepared in a reverse emulsion, are a convenient method of improving the sensitivity of an assay of the present invention, thereby permitting smaller test pads and larger arrays. Fluorescence quenching detection endpoints are also anticipated. A variety of substrate and product chromophores associated with enzyme-linked immunoassays are also well known in the art and provide a means for amplifying a detection signal so as to improve the sensitivity of the assay, for example “up-converting” fluorophores. Detection systems are optionally qualitative, quantitative or semi-quantitative. Visual detection is preferred for its simplicity, however detection means can involve visual detection, machine detection, manual detection or automated detection.
  • Means for isolation include impermeable cartridge body, gas permeable hydrophobic venting, bibulous padding in waste chamber, disinfectant in waste chamber, elastomeric membrane separating pneumatic actuator from blister pack, valve with elastomeric membrane actuated by suction pressure, suction pressure in said sample entry port, on-board reagent pack, self-locking single-entry sample port, gasketed closure, and disposable external skin or skins Isolation refers both to the protection of the user from potentially biohazardous specimens, and to the protection of the specimen from contamination by the user or by foreign environmental materials. Closure means, or “means for sealingly closing”, include caps, lids, threaded closures, “ziplock” closures, ball valves, gasketed closures, gaskets, seals, snap caps of all sorts, bungs, corks, stoppers, lip seals, press seals, adhesive seals, waterproof seals, single-entry seals, tamper-proof seals, locking seals, track-slidable sealable covers, compression seals, one-way valves, spring-loaded valves, spring-loaded lids, septa, tee-valves, snap-locking closures in general, piston-valves, double-reed valves, diaphragm closures, hinged closures, folding closures, Luer lock closures, and so forth.
  • Unless the context requires otherwise, throughout the specification and claims which follow, the word “comprise” and variations thereof, such as, “comprises” and “comprising” are to be construed in an open, inclusive sense, that is, as “including, but not limited to”.
  • “Conventional” is a term designating that which is known in the prior art to which this invention relates.
  • “About” and “generally” are broadening expressions of inexactitude, describing a condition of being “more or less”, “approximately”, or “almost” in the sense of “just about”, where variation would be insignificant, obvious, or of equivalent utility or function, and further indicating the existence of obvious minor exceptions to a norm, rule or limit.
  • Reference throughout this specification to “one embodiment” or “an embodiment” means that a particular feature, structure or characteristic described in connection with the embodiment is included in at least one embodiment of the present invention. Thus, the appearances of the phrases “in one embodiment” or “in an embodiment” in various places throughout this specification are not necessarily all referring to the same embodiment. Furthermore, the particular features, structures, or characteristics may be combined in any suitable manner in one or more embodiments. Turning now to the figures, FIG. 1 is a conceptual view of a microfluidic analytical device (1) with integrated sanitary swab collection features. The device, which is hand sized, is provided with upper and lower disposable external skins (2, lower not shown). Tabs (4,5) assist in peeling off the skins. These skins are removed after the specimen collection process is completed. Also shown is the swab receiving orifice (6) and sliding closure (7) in the open position for receiving a swab. The closure is provided with a seal and track guide (8) whereby the closure is slid into position sealingly covering the swab receiving orifice. The closure is textured with ribs (9) to aid the thumb in moving from left to right (as shown here) in order to effectuate swab capture within the device. The card body (10) is bounded by external surfaces (11).
  • FIG. 2 is a representation of a swab (20) as would be used in an embodiment of the invention. The swab comprises a shaft (21) with handle portion (22), neck portion (23), frangible breakaway notch (24), and tip (25) mounted at the distal end of the shaft. The shaft may be of various shapes or materials. Shaft materials include polypropylene, polyurethane, polycarbonate, polyethylene terephthalate, and other polyesters. Also conceived are polyimides such as nylon and natural fibers such as pine, bamboo, compressed paper, and so forth.
  • The tip may be of various shapes or materials. Preferred swab shapes include a pipe-cleaner shape of bristles, a spade shape with sponge pad, and a “bud” shape with fiber bat. Non-limiting examples of synthetic fiber materials useful in forming swabs include acetate fibers, aramide fibers, polyamide fibers, e.g. nylons, polyester fibers, e.g. polyethylene terephthalate fibers (PET), polyolefin fibers, e.g. polypropylene and polyethylene fibers, polyvinyl alcohol fibers, polyurethane fibers or foams, and mixtures thereof. Further suitable synthetic fibers include bi- or tricomponent fibers such as PE/PET- or PP/PE fibers. These fibers can for example be so-called core-sheath-, side-by-side- or island-in-the-sea type fibers, as may be useful in selected applications. Lyocell fibers are also useful. Non-synthetic materials include woven paper or cotton. Fiber chemistry is generally chosen to be compatible with extraction or analytical chemistries.
  • Swab fibers may be interlaid, either knitted or randomly entwined. Interlaid webs or fabrics have been formed from many processes, such as, for example, meltblowing processes, spunbonding processes, and bonded carded web processes. In particular embodiments, interlaid swab materials as utilized in the present invention are produced from polymers, such as, for example, polyethylene or polypropylene. The swab fibers optionally may be made from interbonded fibers, for example as of thermoplastic fibers. The term “fibers” as used herein refers to a broad range of thermoplastic members that can be used to form a nonwoven fabric, including members having defined lengths like staple fibers, meltblown fibers that show a beginning and an end, filaments having endless or continuous lengths, and the like. For example, and without limiting the generality of the foregoing, thermoplastic polymers such as polyolefins including polyethylene, polypropylene as well as polystyrene can be used as may be polyesters including polyethylene terephthalate, and polyamides including nylons. Also useful are other thermoplastic polymers such as those which are elastomeric including elastomeric polyurethanes and block copolymers. Compatible blends of any of the foregoing may also be used. In addition, additives such as wax, fillers, and the like may be incorporated in amounts consistent with the fiber forming process used to achieve desired results. Other fiber or filament forming materials will suggest themselves to those skilled in the art. Bicomponent fibers may be also used. The fibers may also be formed from solution, and examples include viscose. It is only essential that the composition be capable of spinning into filaments or fibers of some form that can be deposited onto a forming surface and thermally formed or interbonded in a manner dependent upon the forming surface. The swab tip may comprise a sponge element.
  • FIG. 3 shows a representative device for swab capture and analysis. FIG. 3A is a plan view of the top surface of the device, showing plane of section 3B and the location of the swab receiving orifice and sealing closure. In FIG. 3A, the device body 10 and exterior surfaces 11 are again shown.
  • FIG. 3B is a view of the internal workings of a representative device (30), showing a section through the device solid body interior (31), with captive swab tip (32) in swab receiving chamber (33), also termed herein an “internal hollow volume”. In this view, closure (34) and gasket (35) form a liquid-tight seal over the swab receiving chamber 33. Also shown in schematic form are the elements of an on-board nucleic acid assay. Generally, at least one valve (37) will separate the internal hollow volume of the device body into at least two compartments, one for the sample receiving chamber and the other the analytical microfluidics compartment or circuit (dotted lines with arrows, 42). Other valves (38) may also be used to add functionality to the microfluidic circuit. Any valve known in the art may be used. On-board microfluidic elements for a nucleic acid assay include at least one microfluidic channel (39), and optionally provision for reagent packs such as for lysis reagent and extract reagents (40,41), and an optional microfluidic nucleic acid assay circuit (42), shown schematically. In this embodiment, the internal hollow volume comprises a first compartment for receiving the swab (33) and a second compartment (42, dotted lines) for performing a fluidic operation on the sample, such as a sample preparation step or a sample analysis such as PCR. Generally, the first and second compartments are joined by a valved (37) microfluidic channel (39). This channel provides for fluidic connection between the compartments so that reagent and sample may be interechanged. Other compartments such as waste compartment (36) may also be provided. Variants of the illustrated microfluidic circuit for joining the compartments and exchanging fluids between the compartments are readily within the scope of the invention. Sample processing steps could include extraction of the biological material and lysis of cells of interest, followed by filtration and entry of the filtrate into a nucleic acid capture and elution module. Steps of capture, elution, amplification and detection are indicated without detail. Mesoscale devices for amplification and detection of a nucleic acid in a sample were first described in 1992 (U.S. Pat. No. 5,498,392 to Wilding, “Mesoscale Polynucleotide Amplification Device and Method”) and conventional mechanisms are known to those skilled in the art. These devices include various filters, pumps, vents, microfluidic channels, valves, and so forth. The device also optionally includes a display capability, although this function could be a simple visual indicator, or could be a complex interaction between the device and a docking site on an instrument that examines fluorescence of an array or a lateral flow strip, and so forth. Therefore, both stand-alone manual diagnostic applications and automated or semi-automated applications are envisaged. The inner workings of these devices are defined in various embodiments of the prior art. It should be noted that the claimed invention is not limited to a particular embodiment of the inner workings, and that applications for devices used in performing chemical or immunoassays are also anticipated. Devices may be built to assay for bioassay target molecules indicative of pathological conditions and biological threats of any kind
  • Sealing closure 34 comprises a gasket or gasket layer 35. In this embodiment, the guide track 8 serves also to force a tight seal between the gasket material and the swab receiving orifice 6, thus forming a fluid-tight seal over swab capture chamber 33. Following capture, the swab is treated by flowing extraction reagent or buffer in and out of the swab receiving chamber. The extraction buffer may include detergents, solvents such as water, and water in combination with DMSO, NMP, DMF, Formamide, THF, and detergents, co-detergents, cosolvents, proteolytics, sulfhydryl-reducing agents such as n-acetyl-cysteine and dithiothreitol, selective nucleases, mucopolysaccharidases, cellulases, proteases, and the like. A discussion of mucolytics is provided in United States Patent Application 2004/0175695 to Debad. Mechanical agitation is important, and may be enhanced by sonication, such as with piezoelectric transducers. For reciprocal flow, air in the chamber can be vented through the waste sequestration chamber or at a secondary vent site. Optionally, the swab receiving chamber may contain active pump elements in tandem pairs, operating in alternation by positive and negative displacement, so that venting is not required. The structure of these paired pump elements consists of elastomeric or flexible diaphragms and the operation requires merely that as the diaphragm of one pump element is compressed, the other diaphragm is distended, so that the fluid is forced back and forth between the two pump elements. The diaphragms may be operated manually, hydraulically, electrostatically, magnetically, or pneumatically as is known in the art.
  • An important capacity of any such device is the sequestration of medical waste. The device will typically contain buffer and bioactive reagents for sample processing and analysis and all such material is best viewed as biohazardous. Ideally, all such waste is retained in the sealed body of the device and can be disposed of without hazard by autoclaving or incinerating the device itself. Shown here is a waste chamber (36) that would in operation be vented. Such vents as are permeable to air but not to liquid are well known. Added isolation is possible using a flexible diaphragm as described in co-assigned US Patent Document “Integrated Nucleic Acid Assays”, where fully operative details of assay systems of this sort are disclosed, and which is herein incorporated in full by reference. Also useful are absorbent bats.
  • Preferably, the devices are self-contained and contain at least on-board reagent for conducting the analysis. In some cases the reagent is a fluid, for example an extraction buffer or a lysis reagent, but in other cases the reagent is a dried biological, for example a primer mix, an antibody, a polymerase, a divalent cation, or a dried weak acid and its salt. By designing the device to be self-contained, single entry use at the point-of-care is enabled. Liquid reagent storage may be achieved by supplying the reagents in sachets, which are ruptured when needed, by methods known in the art. These methods typically supply a sharp upon which the sachet is compressed so that it ruptures. Compression of the sachet may be by manual means or by pneumatic means.
  • FIG. 4 shows an exploded view of disposable external skins (2,3) applied to a device body (45). Here, both the upper skin (2) and lower skin (3) are shown. A ribbed surface (44) is provided for gripping the device. These skins may be applied as decals. The upper and lower skins may be made from a flexible plastic film or sheet, such as polyethylene, vinyl, polyvinyl chloride, PET or polyurethane, and are typically applied to the device with a removable, pressure sensitive adhesive that can be removed without residue. Candidate commercially available films include 3M™ Scotchcal™ Graphic Film Series 3470 or 3M™ Scotchcal™ Graphic Film Series 8000 available from 3M (St. Paul. Minn.) and adhesives include ROBOND™ PS-8211 latexes available from Rohm And Haas (Philadephia, Pa.). Other suitable decal materials include paper sheet, waxed paper sheet, and fiber/plastic or plastic/plastic composite sheets or films, such as polyethylene film bonded over cloth scrim. These sheets or films are typically printed with graphics and written instructions for the user. Optionally the instructions are printed onto the device body and the film cover is transparent. The adhesive is typically an acrylate derivative. Examples of repositionable and removable adhesives are emulsified polymers made from “soft” monomers such as n-butyl acrylate, isooctyl acrylate, or the like, or ionomeric copolymers made from a soft component, such as isobutylene, n-butyl acrylate, isooctyl acrylate, ethyl hexyl acrylate, or the like; in combination with a polar monomer such as acrylic acid, acrylonitrile, acrylamide, methacrylic acid, methyl methacrylate, trimethylamine methacrylimide, trimethylamine p-vinyl benzimide, ammonium acrylate, sodium acrylate, N,N-dimethyl-N-(.beta.-methacryloxyethyl)ammonium propionate betaine, 1,1-dimethyl-1-(2-hydroxypropyl)amine methacrylimide, 4,4,9-trimethyl-4-azonia-7-oxo-8-oxa-9-decene-1-sulphonate, 1,1-dimethyl-1-(2,3-dihydroxypropyl)amine methacrylimide, and maleic anhydride or the like. Non-spherical polyacrylate adhesives are commercially available, for example, as the Rohm and Haas Rhoplex™ line of adhesives. The adhesive applied to the film is typically repositionable or removable without residue, the adhesive may be selected from any adhesive that may be repeatably adhered to and removed from a substrate without substantial loss of adhesion capability. An example of such an adhesive is disclosed in U.S. Pat. No. 3,691,140 to Silver, which relates to solid tacky microspheres. Preferred adhesives are water resistant when dry. Repositionable adhesives are also known in which microspheres contained in the adhesive are non-tacky. A disclosure of this type of adhesive is provided in U.S. Pat. No. 4,735,837 to Miyasaka, which describes removable adhesives containing elastic micro-balls with the desired properties. The decal to be applied to the device is typically supplied on a release liner and has good moisture and chemical resistance and the adhesive has a working life of greater than 6 months. The decal may be a composite multilayered sheet to achieve these objectives. Multilayered decals variously fabricated from overlayer, liquid crystalline polymer, plastic, silicone, rubber, thermoplastic, paper, interlaid fiber, underlayer, microporous plastic, backing, scrim, cloth, and adhesive are anticipated for this use.
  • FIG. 5 shows a representation of how a disposable protective cover can be applied using tubestock of heatshrink plastic (50), as is readily commercially available. Once the device is inside a suitable length of the heatshrink material, heat is applied to form the coverlayer to the shape of the device. The swab receiving orifice can be provided with an adhesive-backed decal or appliqué that would be removed immediately before use, exposing the orifice, and also serves as a tamper-evident seal. A tearstrip may similarly be applied to the heatshrink wrapping so that the entire skin can be removed with a single motion. Candidate heat shrinkable thermoplastic films include those polyethylene composites described in U.S. Pat. No. 7,235,607, the polyethylene terephthalate esters of U.S. Pat. No. 6,623,821, and the thermoplastics of U.S. Pat. No. 3,655,503, for example.
  • FIG. 6 describes a similar protective cover, but made out of a soft plastic bag such as a polyethylene or polyolefin, or out of paper. The paper may be impregnated with a water repellent material or may be absorbent. The plastic or paper bag (60) is formed to include a male sealing rib (61) that mates with a corresponding female locking groove (62) on the exterior circumference of the device body. A tearstrip is provided for ease of removal. The swab receiving orifice 6 can be configured to a variety of swab dimensions and shapes. When the swab is safely captured within the device, closure 7 is pushed across the opening to seal the device.
  • The theme is repeated in the composite device (70) of FIG. 7. Here the disposable outer skin consists of a Styrofoam block or similar expanded material formed by molding, which is fabricated to fit the lower half of the device (71), and a partial lid fitted to the upper half of the device (72), leaving the swab receiving orifice 6 exposed. A tearstrip (73) serves the dual function of adhering the two halves of the outer skin together during sample collection, and is then torn or peeled away so that the halves can be separated and the device removed for further processing or analysis. The tearstrip typically includes a freehanging tab to facilitate this. The lower block and upper lid are discarded after the device is removed.
  • Note that the shape of the blocks forming the outer skin 70 is variable. A clamshell formed of right and left halves is equally suitable, as are more complex interdigitated two part blocks. A single block is useful. The dual block system has the advantage that squeezing pressure applied to the lower block has the effect of holding the device in place while the tear strip and upper lid are removed. The device can then be pulled out of the lower block with clean hands and presents an uncontaminated exterior, the closure having been pulled over the swab receiving orifice from its protected position under the upper lid.
  • FIG. 8 shows a conceptual view of a more general form of the composite sample collection device (80) with disposable outer skin (81). Here the disposable outer layer material can be a quilted material, a composite of waterproof and absorbent layers, a diaper, a foil composite, and so forth. The material is knit or fused around the edges into a pouch holding the device, and is torn away at a frangible or pre-weakened tear point after the sample is collected. U.S. Pat. No. 4,279,344 describes a packaging laminate which is heat sealable and peelable suitable for this construction.
  • FIG. 9 is a pictorial representation of the essential features of the swab capture method, and shows a multistep process with steps A-E and a representative device (1) and swab (20). In FIG. 9A and B, the swab (20) is oriented to the swab receiving orifice (6) of the device body (1) and the tip of the swab (25) is inserted into the device. In step C, the handle (22) is broken away and discarded. The locking closure (7) is then slid over the orifice (6) to irreversibly capture and seal the swab tip in the device, as shown in FIG. 9D. In step E, the disposable external skins, or “decals”, are then peeled away (shown is the upper skin 2 peeling away), refreshing the external surfaces and removing any extraneous material inadvertently deposited when collecting the sample. The fresh external surfaces are used to label the specimen contents and patient identification, or optionally a label with that information can be applied to those surfaces.
  • FIG. 10 is a block diagram of these steps of the general method for swab capture. The steps are: collect a specimen on a swab; insert the swab tip into the collection device as designed for receiving the swab, and break off the swab handle; seal the swab in the device using a locking closure; remove the disposable skin or skins from the external surfaces of the collection device, taking care to avoid contaminating the freshly exposed surfaces. Optionally, an analysis may then be performed on the swab in the device without further exposure to the biohazardous sample.
  • Note that the order of the steps is not strictly followed if the swab handle is broken off and the device sealed after the external skins are removed, and it may be that handling the device in this way is more convenient. However, the preferred method is to capture the swab and seal the device before removing and discarding the external protective skins. As claimed, the invention is not limited by the order of these steps.
  • FIG. 11 is a block diagram of a more general method for specimen capture. The specimen is first collected and inserted in a suitable container, the container having been supplied with disposable external skin or skins; the container is then sealed; and the external skins or skins are removed and discarded.
  • FIGS. 12A and 12B are overview and detail, respectively, of the tab members (4,5) used as a peelaway strip for removing the external skins of a representative device. As shown in detailed view 12B, the tabs are freestanding at the edges of the body of the device, and are easily grasped between finger and thumb. The entire protective film or pad is then readily peeled away.
  • FIG. 13 is an alternate embodiment of a combination specimen collection container and sheath (130), showing an alternate form of the external protective skin and internal specimen collection device. Here the analytical device (131) shown is fitted with internal analytical works and a user interactive panel and display window.
  • In use, the body of the sample collection device 131 is encased in an outer sleeve member (132) and cap member (133). The outer sleeve member is supplied with an endwise swab receiving orifice (134) and internal swab receiving chamber for collecting the swab. A ball valve type closure is used to capture and seal the swab in the device and a knob is provided (135) for rotating the ball valve from open to closed. The control head 136 may also be rotated, and serves to power a spring-driven pressure source for the pumps, and to initiate the assay protocol. Assay status is shown in the leftmost window 137. Assay results are shown in the rightmost window 138.
  • After the sample is collected, the outside protective sleeve 132 is removed and the sample receiving chamber is closed with the ball valve 135. The cap can then be removed and the apparatus is generally free of external contamination. The sample entry end can be covered. The control head is then rotated and the assay commenced. In a few minutes, the assay result is read in the display window. Status and validity of the assay is displayed in the left panel. Optionally, the device can be inserted into a machine and the assay conducted by machine-aided power and control. The outer sleeve and cap are discarded as contaminated medical waste. At the completion of the assay, the device is also discarded along with its entrained specimen.
  • Note that the embodiment is illustrative of a general concept, and is not limited by its specificity. The outside protective sleeves are disposable external skins The sleeves may be replaced by decals as described in FIG. 4, wherein the decals are adapted for a cylindrical body form. Similarly, the disposable protective overlayer may be as provided in FIGS. 5-8.
  • This device is also suitable for collection of tampons, which lack the handle characteristic of swabs. The tampon, however, must be inserted into the swab receiving orifice with tweezers or by other means and the orifice must be dimensioned appropriately. Tampons are useful sample collection devices, and their use is hereby taken within the scope of the invention described herein.
  • This device is conceived as part of a kit, the kit consisting of a sterile swab, the combination specimen collection device and sheath 130, and a tray. The tray optionally may also contain surgical gloves, instructions, and labeling aids.
  • A variation of composite device 130 is shown in FIG. 14. Here the sample is inserted through orifice (141) in external disposable cap (142) into device (140), the body of which contains a sample receiving chamber with threaded neck (143). After the sample is deposited in the device, the cap 142 is immediately removed and a clean, sterile lid (not shown) is threaded onto the neck. The device body thus functions as bottle. Holding the assembly by the clean lid, the lower outside protective sheath (144) is then removed.
  • The external surfaces of the device are now clean and safely handled without gloves. Objectionable materials deposited on the outside sheath are discarded along with the disposable sheaths, which function as an external protective skin.
  • In this embodiment, the operator then presses the start button (146); the instrument cycles, its status continuously displayed in status bar 147, and the raw data is read from nucleic acid hybridization array 148. The machine is placed under a modified bar code reader or strip reader and the data is electronically displayed on the reader and transmitted as an electronic medical record to the patient's chart.
  • These various analytical features are not presently viewed as limitations of the present invention. The present invention relates to methods and devices for collecting specimens and for analyzing specimens in which a pre-formed disposable external skin is removed from the collection device or sample holder after the specimen is deposited in it.
  • Thus in FIG. 15, a swab collection container is shown with no analytical capabilities. The composite swab holder consists of an internal bottle and an external skin or sheath, so that after the swab is collected and sealed within the internal bottle, the external sheath is removed and the swab in its bottle, or other sealed vessel, is safely transported and handled with the assurance that any biohazardous external residues have been disposed of with the external sheath.
  • Swab collection container (150) is shown in FIG. 15A. Internal swab collection container (151) is shown in FIG. 15B. The two figures illustrate essentially a “before” and “after”, wherein the device is supplied as shown in FIG. 15A without collected swab, and in FIG. 15B with collected swab. The steps involve capturing the swab and removal of the external skins, so that the product of the method is the slender, clean swab holder shown in FIG. 15B.
  • As supplied, the swab collection container 150 has a swab receiving port (153) formed of disposable funnel (154) and barbed lip (164) of the internal swab receiving channel (156), also termed herein an “internal hollow volume (156)”. The temporary shipping cap (160) is first removed and the swab is inserted tip-down into the internal hollow volume (156). Note that the disposable funnel serves to protect the barbed rim (164) of the internal sheathed tube (157) from contamination with specimen residues. Following collection of the swab and placement within the inner tube, the sealing strip, or tear strip (168), is removed and the upper protective skin (155) is lifted up and away from the device, along with the disposable funnel 154, both of which are discarded. This exposes the uppermost bezeled rim 164 of the inner cylinder. Now, as shown in FIG. 15B, a sealing closure (165) with locking lip or flange (166) and plug (167) can be locked in place over the barbed bezel of the inner cylinder, and the outer lower protective sheath 159 is slid off the inner cylinder and discarded. The sealing closure is supplied separately. After these steps, the swab is now isolated within the internal hollow volume 156, separated from the external surfaces (169) by closure 165, and the external surfaces are as clean as supplied by the factory.
  • Note that the removal of the outer shells is a two part process. With a gloved hand, the contaminated outer shell is grasped and the upper shell is removed. A clean hand is then used to install the closure, and the upper part of the inner cylinder is held while the lower shell is removed. The final specimen container is now free of contamination and can be handled without gloves. To later gain access to the swab, fracture lines such as described in U.S. Pat. No. 6,516,947 may be formed in the internal cylinder, which can be formed generally as described in FIG. 1 of that publication. In that way, it is never necessary to touch the directly swab again. Alternatively, the closure of the device of FIG. 15 can be a threaded closure, and the internal cylinder may be formed with a mating threaded rim and sealing flange. Various combinations are anticipated.
  • If a patient were to collect the sample, we envisage that the patient will place the swab in the device and return it, outer shell intact, to a healthcare professional or laboratory technician. The technician will then complete the steps of removing the upper shell, inserting and sealing the cap, and then removing the lower shell, taking care to avoid contaminating the external surfaces of the inner cylinder during the process. Between steps of the process, the device 150 may be stood on its base, which can be formed with a foot as would be useful for stability.
  • A kit for this process may contain, in a tray, the device 150, a swab 20, and a closure, along with any instructions and labeling.
  • It will be appreciated by persons skilled in the art that numerous variations, combinations of elements, and/or modifications may be made to the invention as shown in the specific embodiments without departing from the spirit or scope of the invention as broadly described. The present embodiments are, therefore, to be considered in all respects as illustrative and not restrictive.
  • EXAMPLES Example 1
  • A swab is provided in a sterile packet, the shaft of the swab being formed with a notch separating the handle from the sampling tip. The swab is rubbed in the gingiva separating the teeth from the gums of a child and inserted into a collection device of the invention. The swab handle is bent vigorously so that it breaks at the notch, releasing the swab tip with specimen into the device. The swab insertion channel is then covered with a sliding closure that rides in tracks in the housing, and sealed irreversibly, the sliding closure having a ratcheted underside which mates and locks over a locking tooth or spur on the body of the device. The professional then removes a protective external skin from the device, taking care not to contaminate the freshly exposed surfaces, and hands the device to an aide for processing.
  • Example 2
  • A swab is provided in a sterile envelope, the shaft of the swab being formed of a material suitable for cutting with a blade. The patient is asked to provide a self-collected specimen of the vaginal mucosa and is given instructions. The patient collects the sample and inserts the soft tip of the swab into the sample collection device that was provided. The patient hands the device to a health professional, who takes it with gloved hands. The health professional closes the cover of the device, cutting free the swab handle and discarding it, and then removes the disposable external skins on the device, taking care not to contaminate the freshly exposed surfaces. After removing the skins, the health professional inserts the device into a semi-automated analytical apparatus and completes the assay. The result is read and the device with sample is then discarded. The analytical apparatus is equipped with networking capability so as to transmit identifying and “smart” electronic data as an electronic medical record to a database on a server.

Claims (12)

1. A sample collection device, the device comprising:
a) a body having an external surface and an internal hollow volume;
b) a removable disposable external skin layer or shell covering a first portion of the external surface of the body and dividing the external surface into a covered area and an uncovered area, the uncovered area defining a swab receiving orifice for inserting a swab into the internal hollow volume, the swab receiving orifice compatible with a sealable closure that may be sealably closed over the swab receiving orifice; and,
wherein the removable disposable external skin layer or shell comprises a first gripping surface and the uncovered area comprises a second gripping surface, said first gripping surface having means for removing said external skin layer or shell from said body.
2. The sample collection device of claim 1, wherein the external skin layer or shell is a decal having a pressure sensitive adhesive that can be removed without leaving a residue.
3. The sample collection device of claim 1, wherein the external skin layer or shell comprises a first part and a second part.
4. The sample collection device of claim 3, wherein the first part and the second part are joined by a tear strip.
5. The sample collection device of claim 1, wherein the external skin layer or shell is a foam sheath shaped with a receptacle covering the first portion of the external surface of the body.
6. The sample collection device of claim 1, wherein the external skin layer or shell is a foam block encasing the first portion of the external surface of the body.
7. The sample collection device of claim 6, wherein the foam block is divided into a first member and a second member, wherein the first gripping surface is defined on the first member.
8. The sample collection device of claim 1, wherein said second gripping surface comprises a cap adapted to hold the body with a clean hand while removing and discarding the external skin layer or shell.
9. The sample collection device of claim 1, further comprising a swab, wherein the swab comprises a handle with frangible neck and an absorbent tip for collecting the sample.
10. The sample collection device of claim 1, wherein the swab is a tampon.
11. The sample collection device of claim 1, wherein the body comprises internal workings for processing the sample prior to performing an analysis on the sample.
12. The sample collection device of claim 1, wherein the body comprises internal workings for analyzing the sample.
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Cited By (23)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20150140646A1 (en) * 2013-03-11 2015-05-21 Cue Inc. Systems and methods for detection and quantification of analytes
USD745423S1 (en) 2014-05-12 2015-12-15 Cue Inc. Automated analyzer test cartridge and sample collection device for analyte detection
US9222623B2 (en) 2013-03-15 2015-12-29 Genmark Diagnostics, Inc. Devices and methods for manipulating deformable fluid vessels
WO2016065297A1 (en) * 2014-10-23 2016-04-28 Ibis Biosciences, Inc. Swab port for microfluidic devices
WO2016132028A1 (en) * 2015-02-20 2016-08-25 L'etat Français Représenté Par Le Ministère De L'intérieur Device for collecting biological material from a biological trace
US9498778B2 (en) 2014-11-11 2016-11-22 Genmark Diagnostics, Inc. Instrument for processing cartridge for performing assays in a closed sample preparation and reaction system
US9598722B2 (en) 2014-11-11 2017-03-21 Genmark Diagnostics, Inc. Cartridge for performing assays in a closed sample preparation and reaction system
US9623409B2 (en) 2013-03-11 2017-04-18 Cue Inc. Cartridges, kits, and methods for enhanced mixing for detection and quantification of analytes
WO2017075586A1 (en) * 2015-10-29 2017-05-04 Alere Inc. Disposable diagnostic assay device
US9718058B2 (en) 2015-07-17 2017-08-01 Cue Inc. Cartridges, kits, and methods for enhanced detection and quantification of analytes
US9957553B2 (en) 2012-10-24 2018-05-01 Genmark Diagnostics, Inc. Integrated multiplex target analysis
US10005080B2 (en) 2014-11-11 2018-06-26 Genmark Diagnostics, Inc. Instrument and cartridge for performing assays in a closed sample preparation and reaction system employing electrowetting fluid manipulation
WO2018200677A1 (en) * 2017-04-26 2018-11-01 Microban Products Company System and method for rapid microbial detection and analysis
EP3402595A4 (en) * 2016-01-11 2019-10-02 Fluoresentric, Inc. Systems, apparatus, and methods for inline sample preparation
US10495656B2 (en) 2012-10-24 2019-12-03 Genmark Diagnostics, Inc. Integrated multiplex target analysis
US10545161B2 (en) 2013-03-11 2020-01-28 Cue Health Inc. Systems and methods for detection and quantification of analytes
USD881409S1 (en) 2013-10-24 2020-04-14 Genmark Diagnostics, Inc. Biochip cartridge
CN111820955A (en) * 2020-07-27 2020-10-27 南方科技大学 Intelligent device is gathered to portable pharynx swab
WO2021209996A1 (en) * 2020-04-14 2021-10-21 Eyal Bressler A sleeve-like swab and case thereof, and methods of using the same
WO2021237293A1 (en) * 2020-05-27 2021-12-02 3DMEDiTech Pty Ltd Swab
US11215562B2 (en) 2017-08-28 2022-01-04 Hewlett-Packard Development Company, L.P. Deformable covers on sensors and reservoirs
US11237161B2 (en) 2017-01-25 2022-02-01 Cue Health Inc. Systems and methods for enhanced detection and quantification of analytes
US11293855B2 (en) 2012-06-28 2022-04-05 XCR Diagnostics, Inc. Chemical indicator device with heat blocks

Families Citing this family (102)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP5852781B2 (en) 2007-07-31 2016-02-03 マイクロニクス, インコーポレイテッド Hygienic swab collection system, microfluidic assay device and method for diagnostic assays
US20120180580A1 (en) * 2009-09-21 2012-07-19 Koninklijke Philips Electronics N.V. Disposable cartridge and sample analyzer
US9292731B2 (en) * 2009-12-30 2016-03-22 Intel Corporation Gesture-based signature authentication
WO2011094577A2 (en) 2010-01-29 2011-08-04 Micronics, Inc. Sample-to-answer microfluidic cartridge
JP5065503B2 (en) * 2010-02-05 2012-11-07 株式会社シン・コーポレイション Inspection kit
JP2011229523A (en) * 2010-04-06 2011-11-17 Kyoei Giken Kk Sampling tool for collecting mucus from nasal cavity or throat
US8420385B2 (en) 2010-04-21 2013-04-16 Puritan Medical Products Company, Llc Collection device and material
US8475394B1 (en) * 2010-06-24 2013-07-02 John Elliot Randal Stivers Pet DNA specimen sampling for transport and long term storage
US20120095369A1 (en) 2010-10-15 2012-04-19 Teixeira Scott M System and Method for Sampling Device for Bodily Fluids
JP2012125195A (en) * 2010-12-16 2012-07-05 Kyoei Giken Kk Specimen collection device
US9522396B2 (en) 2010-12-29 2016-12-20 S.D. Sight Diagnostics Ltd. Apparatus and method for automatic detection of pathogens
WO2012122564A2 (en) * 2011-03-10 2012-09-13 Xagenic, Inc. Diagnostic and sample preparation devices and methods
US9469871B2 (en) 2011-04-14 2016-10-18 Corporos Inc. Methods and apparatus for point-of-care nucleic acid amplification and detection
US8911941B2 (en) * 2011-04-14 2014-12-16 Kenneth J. Michlitsch Methods and apparatus for point-of-care nucleic acid amplification and detection
US20140162941A1 (en) * 2011-07-27 2014-06-12 Baylor College Of Medicine Process for preparing biological samples
US9140693B2 (en) 2011-12-23 2015-09-22 Abbott Point Of Care Inc. Integrated test device for optical detection of microarrays
WO2013096804A2 (en) 2011-12-23 2013-06-27 Abbott Point Of Care Inc Optical assay device with pneumatic sample actuation
WO2013096822A2 (en) 2011-12-23 2013-06-27 Abbott Point Of Care Inc Integrated test device for optical and electrochemical assays
WO2013096801A1 (en) 2011-12-23 2013-06-27 Abbott Point Of Care Inc Reader devices for optical and electrochemical test devices
CN106840812B (en) 2011-12-29 2019-12-17 思迪赛特诊断有限公司 Methods and systems for detecting pathogens in biological samples
US9719130B2 (en) 2012-02-22 2017-08-01 Life Technologies Corporation Sample collection devices, kits and methods of use
RU2012124156A (en) * 2012-03-18 2015-05-27 Пасвэй Геномикс SALIVATION SAMPLE SYSTEM
US9063037B2 (en) 2012-05-02 2015-06-23 Stat-Diagnostica & Innovation, S.L. Swab elution chamber in a test cartridge
US9354159B2 (en) 2012-05-02 2016-05-31 Nanoscopia (Cayman), Inc. Opto-fluidic system with coated fluid channels
DE102012011411B3 (en) * 2012-06-08 2013-11-28 Dräger Safety AG & Co. KGaA Test system for portioning, mixing and distribution of biological sample liquids
US10519434B2 (en) 2012-07-13 2019-12-31 Diomics Corporation Biologic sample collection devices and methods of production and use thereof
US8759075B2 (en) * 2012-07-13 2014-06-24 Diomics Corporation Biologic sample collection devices and methods of production and use thereof
US20140200167A1 (en) 2012-08-01 2014-07-17 Nanomdx, Inc. Functionally integrated device for multiplex genetic identification
DE102012015706A1 (en) * 2012-08-07 2014-02-13 Prionics Ag Sampling device for DNA samples in particular
WO2014052590A1 (en) * 2012-09-26 2014-04-03 Ibis Biosciences, Inc. Swab interface for a microfluidic device
JP2016509206A (en) 2012-12-21 2016-03-24 マイクロニクス, インコーポレイテッド Portable fluorescence detection system and microassay cartridge
KR20150096788A (en) 2012-12-21 2015-08-25 마이크로닉스 인코포레이티드. Low elasticity films for microfluidic use
WO2014100732A1 (en) 2012-12-21 2014-06-26 Micronics, Inc. Fluidic circuits and related manufacturing methods
US9434977B2 (en) 2013-02-27 2016-09-06 Avent, Inc. Rapid identification of organisms in bodily fluids
US10386377B2 (en) 2013-05-07 2019-08-20 Micronics, Inc. Microfluidic devices and methods for performing serum separation and blood cross-matching
US10190153B2 (en) 2013-05-07 2019-01-29 Micronics, Inc. Methods for preparation of nucleic acid-containing samples using clay minerals and alkaline solutions
WO2014182847A1 (en) 2013-05-07 2014-11-13 Micronics, Inc. Device for preparation and analysis of nucleic acids
US9057721B1 (en) 2013-05-07 2015-06-16 Point of Care Technologies, LLC Fail-safe assay device for controlled and ordered delivery of reagents to a sample
WO2014188405A1 (en) 2013-05-23 2014-11-27 Parasight Ltd. Method and system for imaging a cell sample
WO2014190249A1 (en) * 2013-05-24 2014-11-27 Occam Biolabs, Inc. System and method for collecting a sample of nucleic acid
WO2014201138A1 (en) * 2013-06-11 2014-12-18 Stelling James R Method for detection of fetal abnormalities
US10088397B2 (en) * 2013-06-19 2018-10-02 Advance Dx, Inc. Fluid separator collection card assembly
IL227276A0 (en) 2013-07-01 2014-03-06 Parasight Ltd A method and system for preparing a monolayer of cells, particularly suitable for diagnosis
US10946376B2 (en) * 2013-07-05 2021-03-16 Thinxxs Microtechnology Ag Carrier element for introducing a dry substance into a flow cell
US10831013B2 (en) 2013-08-26 2020-11-10 S.D. Sight Diagnostics Ltd. Digital microscopy systems, methods and computer program products
SG2013078050A (en) * 2013-10-16 2015-05-28 Clearbridge Biomedics Pte Ltd An interface for packaging a microfluidic device
WO2015138343A1 (en) 2014-03-10 2015-09-17 Click Diagnostics, Inc. Cartridge-based thermocycler
US9662096B2 (en) 2014-05-01 2017-05-30 Diomics Corporation Devices and kits for collection, storage and analysis of samples and methods of production and use thereof
US9091680B1 (en) 2014-05-20 2015-07-28 Robert Schreiber Fecal occult blood testing system
WO2016014455A1 (en) 2014-07-22 2016-01-28 Diomics Corporation Airborne agent collectors, methods, systems and devices for monitoring airborne agents
JP2017529199A (en) * 2014-08-12 2017-10-05 ネクストジェン ジェイン, インコーポレイテッド System and method for monitoring health based on collected body fluid
WO2016025021A1 (en) 2014-08-15 2016-02-18 Diomics Corporation Films for biologic analyte collection and analysis and methods of production and use thereof
EP3186778B1 (en) 2014-08-27 2023-01-11 S.D. Sight Diagnostics Ltd. System and method for calculating focus variation for a digital microscope
FR3026729A1 (en) * 2014-10-02 2016-04-08 Jean-Luc Montsarrat USED COTTON CONTAINER DEVICE
EP3221051A4 (en) 2014-11-21 2018-06-20 Occam Biolabs, Inc. System and method for collecting a sample of nucleic acid
TWI547695B (en) * 2014-11-28 2016-09-01 宏達國際電子股份有限公司 Analysis device and detecting module
EP4029606A1 (en) 2014-12-31 2022-07-20 Visby Medical, Inc. Molecular diagnostic testing
WO2016176195A1 (en) * 2015-04-27 2016-11-03 Cook Medical Technologies Llc Biopsy tissue handling apparatus
JP6664157B2 (en) * 2015-07-03 2020-03-13 株式会社クラレ Mucus collection device from nasal cavity or throat
EP3859425B1 (en) 2015-09-17 2024-04-17 S.D. Sight Diagnostics Ltd. Methods and apparatus for detecting an entity in a bodily sample
CA3006211A1 (en) * 2015-11-27 2017-06-01 Infagen (Hong Kong) Limited A kit for the detection of urease
CA3018536A1 (en) 2016-03-30 2017-10-05 S.D. Sight Diagnostics Ltd Distinguishing between blood sample components
WO2017180909A1 (en) 2016-04-13 2017-10-19 Nextgen Jane, Inc. Sample collection and preservation devices, systems and methods
US10987674B2 (en) 2016-04-22 2021-04-27 Visby Medical, Inc. Printed circuit board heater for an amplification module
WO2017197040A1 (en) 2016-05-11 2017-11-16 Click Diagnostics, Inc. Devices and methods for nucleic acid extraction
WO2017195208A1 (en) 2016-05-11 2017-11-16 S.D. Sight Diagnostics Ltd Performing optical measurements on a sample
US11307196B2 (en) 2016-05-11 2022-04-19 S.D. Sight Diagnostics Ltd. Sample carrier for optical measurements
NZ720675A (en) 2016-05-31 2017-07-28 Crime Scene Solutions Ltd Improved collection and storage apparatus
USD800331S1 (en) 2016-06-29 2017-10-17 Click Diagnostics, Inc. Molecular diagnostic device
WO2018005710A1 (en) 2016-06-29 2018-01-04 Click Diagnostics, Inc. Devices and methods for the detection of molecules using a flow cell
USD800913S1 (en) 2016-06-30 2017-10-24 Click Diagnostics, Inc. Detection window for molecular diagnostic device
USD800914S1 (en) 2016-06-30 2017-10-24 Click Diagnostics, Inc. Status indicator for molecular diagnostic device
USD834215S1 (en) * 2016-10-14 2018-11-20 Spartan Bioscience Inc. Swab
KR101935126B1 (en) 2017-01-18 2019-03-18 경희대학교 산학협력단 Apparatus for collecting and preprocessing sample
US11517903B2 (en) 2017-05-05 2022-12-06 Syracuse University Biological agent specimen collection and growth system
WO2019017912A1 (en) 2017-07-18 2019-01-24 Hewlett-Packard Development Company, L.P. Test sample devices and methods
WO2019060270A1 (en) 2017-09-21 2019-03-28 Becton, Dickinson And Company High dynamic range assays in hazardous contaminant testing
CA3075771A1 (en) 2017-09-21 2019-03-28 Becton, Dickinson And Company Reactive demarcation template for hazardous contaminant testing
US10916058B2 (en) * 2017-09-21 2021-02-09 Becton, Dickinson And Company Augmented reality devices for hazardous contaminant testing
USD859683S1 (en) 2017-09-21 2019-09-10 Becton, Dickinson And Company Collection device
EP3684944A4 (en) * 2017-09-21 2021-05-26 Becton, Dickinson and Company Hazardous contaminant collection kit and rapid testing
AU2018337035B2 (en) 2017-09-21 2023-10-12 Becton, Dickinson And Company Demarcation template for hazardous contaminant testing
US11385146B2 (en) 2017-09-21 2022-07-12 Becton, Dickinson And Company Sampling systems and techniques to collect hazardous contaminants with high pickup and shedding efficiencies
CN111108380B (en) 2017-09-21 2022-11-01 贝克顿·迪金森公司 Hazardous contaminant collection kit and rapid test
SG11202002931VA (en) 2017-11-09 2020-04-29 Visby Medical Inc Portable molecular diagnostic device and methods for the detection of target viruses
AU2018369859B2 (en) 2017-11-14 2024-01-25 S.D. Sight Diagnostics Ltd Sample carrier for optical measurements
US10561581B2 (en) * 2017-11-27 2020-02-18 Aam Care, Inc. Object detecting device using multi-touch pressure-sensing
WO2020081342A1 (en) * 2018-10-19 2020-04-23 President And Fellows Of Harvard College Smart toilet paper
EP3918300A4 (en) 2019-01-28 2022-11-16 Becton, Dickinson and Company Hazardous contaminant collection device with integrated swab and test device
US20220178943A1 (en) * 2019-02-06 2022-06-09 Fibrotx Oü Lateral flow device
USD950768S1 (en) 2019-02-22 2022-05-03 Bioplast Manufacturing, LLC Collection and transport device
WO2020190358A1 (en) * 2019-03-19 2020-09-24 Siemens Healthcare Diagnostics Inc. Compositions, devices, and methods of mitigating lipoprotein interference in in vitro diagnostic assays for hydrophobic analytes
EP4085149A4 (en) 2020-01-03 2024-03-06 Visby Medical Inc Devices and methods for antibiotic susceptibility testing
WO2021252810A1 (en) 2020-06-10 2021-12-16 Checkable Medical Incorporated In vitro diagnostic device
EP4244512A4 (en) 2020-11-16 2024-01-17 Siemens Healthcare Diagnostics Inc Valve for microfluidic device
US11135591B1 (en) 2020-11-17 2021-10-05 Aid Genomics Ltd Test tube with an internal member
US11285485B1 (en) * 2020-11-17 2022-03-29 Aid Genomics Ltd Test tube with an internal member and test tube with a narrowed region at its closed end
CN112457971B (en) * 2020-12-15 2021-08-20 杭州华硕医学检验实验室有限公司 Nucleic acid detector based on closed-loop control system
WO2022241009A1 (en) * 2021-05-13 2022-11-17 Burst Diagnostics Llc Device for allowing pressurization of fluid in a microfluidic diagnostic device
KR102333133B1 (en) * 2021-07-29 2021-12-02 한경준 All in one self checking kit
WO2023177685A1 (en) * 2022-03-15 2023-09-21 Cue Health Inc. Cross reference to related application
CN114933958B (en) * 2022-07-21 2023-06-16 北京泰豪生物科技有限公司 Sample collector and nucleic acid detection device

Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4949840A (en) * 1989-12-11 1990-08-21 Brown J Theodore Specimen collection kit for mailing
US20060029761A1 (en) * 2004-08-09 2006-02-09 Matthews Lowell F Multi-ply wrap label

Family Cites Families (102)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3655503A (en) * 1969-01-13 1972-04-11 Crown Zellerbach Corp Package of composite film with peelable, heatsealable surfaces
US3691140A (en) * 1970-03-09 1972-09-12 Spencer Ferguson Silver Acrylate copolymer microspheres
US3915806A (en) * 1974-01-17 1975-10-28 Denver Chemical Manufacturing Specimen holding kit
GB2059992B (en) * 1979-10-11 1983-10-19 Pike B R Culture-collecting kit and a method of taking a culture sample utilising it
US4279344A (en) * 1979-12-26 1981-07-21 Reynolds Metals Company Heat-sealable and peelable laminated packaging construction
JPS59191638U (en) * 1983-06-07 1984-12-19 株式会社 堀場製作所 Micro sample measuring device
US4683202A (en) * 1985-03-28 1987-07-28 Cetus Corporation Process for amplifying nucleic acid sequences
US4683195A (en) * 1986-01-30 1987-07-28 Cetus Corporation Process for amplifying, detecting, and/or-cloning nucleic acid sequences
JPH0414434Y2 (en) * 1985-04-08 1992-03-31
US4803998A (en) * 1986-01-27 1989-02-14 Ncs Diagnostics, Inc. Swab retaining vial cap and method of use
US4800159A (en) * 1986-02-07 1989-01-24 Cetus Corporation Process for amplifying, detecting, and/or cloning nucleic acid sequences
JPS63143943A (en) * 1986-12-05 1988-06-16 Nippon Petrochem Co Ltd Dust-free sterilized container and its manufacture
US5266266A (en) * 1988-02-09 1993-11-30 Nason Frederic L Specimen test unit
US5025920A (en) * 1990-09-11 1991-06-25 Walsh Alison J Evidence gathering kit
US5296375A (en) * 1992-05-01 1994-03-22 Trustees Of The University Of Pennsylvania Mesoscale sperm handling devices
US5304487A (en) * 1992-05-01 1994-04-19 Trustees Of The University Of Pennsylvania Fluid handling in mesoscale analytical devices
US5498392A (en) * 1992-05-01 1996-03-12 Trustees Of The University Of Pennsylvania Mesoscale polynucleotide amplification device and method
US5587128A (en) * 1992-05-01 1996-12-24 The Trustees Of The University Of Pennsylvania Mesoscale polynucleotide amplification devices
US5637469A (en) * 1992-05-01 1997-06-10 Trustees Of The University Of Pennsylvania Methods and apparatus for the detection of an analyte utilizing mesoscale flow systems
US5639423A (en) 1992-08-31 1997-06-17 The Regents Of The University Of Calfornia Microfabricated reactor
JPH0716200A (en) * 1993-07-02 1995-01-20 Olympus Optical Co Ltd Endoscope of cover system
JPH0819522A (en) * 1994-07-07 1996-01-23 Toshiba Corp Medical apparatus
US6623821B1 (en) * 1995-03-31 2003-09-23 E. I. Du Pont De Nemours And Company Heat-shrinkable, heat-sealable polyester film for packaging
DE19519015C1 (en) * 1995-05-24 1996-09-05 Inst Physikalische Hochtech Ev Miniaturised multi-chamber thermo-cycler for polymerase chain reaction
US5932100A (en) * 1995-06-16 1999-08-03 University Of Washington Microfabricated differential extraction device and method
US5856174A (en) 1995-06-29 1999-01-05 Affymetrix, Inc. Integrated nucleic acid diagnostic device
GB9526204D0 (en) 1995-12-21 1996-02-21 Biotrace Ltd Sampling and assay device
US5863502A (en) * 1996-01-24 1999-01-26 Sarnoff Corporation Parallel reaction cassette and associated devices
US5747349A (en) * 1996-03-20 1998-05-05 University Of Washington Fluorescent reporter beads for fluid analysis
US6541213B1 (en) * 1996-03-29 2003-04-01 University Of Washington Microscale diffusion immunoassay
US6054277A (en) * 1996-05-08 2000-04-25 Regents Of The University Of Minnesota Integrated microchip genetic testing system
US5726404A (en) * 1996-05-31 1998-03-10 University Of Washington Valveless liquid microswitch
US5939291A (en) 1996-06-14 1999-08-17 Sarnoff Corporation Microfluidic method for nucleic acid amplification
JP2000512541A (en) * 1996-06-14 2000-09-26 ユニバーシティ オブ ワシントン Difference extraction device with improved absorption
US5717518A (en) * 1996-07-22 1998-02-10 Kla Instruments Corporation Broad spectrum ultraviolet catadioptric imaging system
JP3372436B2 (en) * 1996-11-28 2003-02-04 オークマ株式会社 Inverter control device
US5958349A (en) * 1997-02-28 1999-09-28 Cepheid Reaction vessel for heat-exchanging chemical processes
US6277646B1 (en) * 1997-05-05 2001-08-21 Dade Behring Inc. Fluid specimen collecting and testing apparatus
JPH10262646A (en) * 1997-03-26 1998-10-06 Furusuteri:Kk Packaged culture medium and production of packaged culture medium
US5879635A (en) * 1997-03-31 1999-03-09 Nason; Frederic L. Reagent dispenser and related test kit for biological specimens
DE19717085C2 (en) * 1997-04-23 1999-06-17 Bruker Daltonik Gmbh Processes and devices for extremely fast DNA multiplication using polymerase chain reactions (PCR)
US6429007B1 (en) * 1997-05-02 2002-08-06 BIOMéRIEUX, INC. Nucleic acid amplification reaction station for disposable test devices
US5786182A (en) * 1997-05-02 1998-07-28 Biomerieux Vitek, Inc. Dual chamber disposable reaction vessel for amplification reactions, reaction processing station therefor, and methods of use
WO1998050147A1 (en) 1997-05-09 1998-11-12 The Regents Of The University Of California Peltier-assisted microfabricated reaction chambers for thermal cycling
US6126804A (en) * 1997-09-23 2000-10-03 The Regents Of The University Of California Integrated polymerase chain reaction/electrophoresis instrument
US6007775A (en) * 1997-09-26 1999-12-28 University Of Washington Multiple analyte diffusion based chemical sensor
AU758407B2 (en) * 1997-12-24 2003-03-20 Cepheid Integrated fluid manipulation cartridge
US6420143B1 (en) * 1998-02-13 2002-07-16 Caliper Technologies Corp. Methods and systems for performing superheated reactions in microscale fluidic systems
US6248294B1 (en) * 1998-04-15 2001-06-19 Frederic L. Nason Self contained diagnostic test unit
EP1046032A4 (en) * 1998-05-18 2002-05-29 Univ Washington Liquid analysis cartridge
US6010462A (en) * 1998-05-28 2000-01-04 Becton Dickinson And Company Blister style culture transport device and method for using the same
US6572830B1 (en) * 1998-10-09 2003-06-03 Motorola, Inc. Integrated multilayered microfludic devices and methods for making the same
US6261431B1 (en) * 1998-12-28 2001-07-17 Affymetrix, Inc. Process for microfabrication of an integrated PCR-CE device and products produced by the same
US6171850B1 (en) * 1999-03-08 2001-01-09 Caliper Technologies Corp. Integrated devices and systems for performing temperature controlled reactions and analyses
US6303343B1 (en) * 1999-04-06 2001-10-16 Caliper Technologies Corp. Inefficient fast PCR
JP2001004530A (en) * 1999-06-17 2001-01-12 Able Corp Cell for sampling and analyzing dispersion, dispersion sampling device and degree-of-dispersion measuring apparatus
WO2001026813A2 (en) * 1999-10-08 2001-04-19 Micronics, Inc. Microfluidics without electrically of mechanically operated pumps
CA2393690A1 (en) 1999-12-09 2001-06-14 Huinan Yu Multilayered microfluidic devices for analyte reactions
US6403037B1 (en) * 2000-02-04 2002-06-11 Cepheid Reaction vessel and temperature control system
JP4733331B2 (en) * 2000-03-14 2011-07-27 マイクロニックス、インコーポレーテッド Microfluidic analysis device
US7060223B2 (en) * 2000-03-31 2006-06-13 Neogen Corporation Polymeric medium for the retention of reagent species for use in a hand-held device for the relatively rapid detection of the presence of an analyte of interest in a sample
WO2001089696A2 (en) * 2000-05-24 2001-11-29 Micronics, Inc. Microfluidic concentration gradient loop
US6431212B1 (en) * 2000-05-24 2002-08-13 Jon W. Hayenga Valve for use in microfluidic structures
WO2002001081A2 (en) * 2000-06-23 2002-01-03 Micronics, Inc. Valve for use in microfluidic structures
US6516947B1 (en) * 2000-08-11 2003-02-11 Viridian Packaging Solutions, Llc Containers having a fracture recess for opening the containers
FR2813207B1 (en) 2000-08-28 2002-10-11 Bio Merieux REACTIONAL CARD AND USE OF SUCH A CARD
US6509186B1 (en) * 2001-02-16 2003-01-21 Institute Of Microelectronics Miniaturized thermal cycler
US6432695B1 (en) * 2001-02-16 2002-08-13 Institute Of Microelectronics Miniaturized thermal cycler
US20020159920A1 (en) * 2001-04-03 2002-10-31 Weigl Bernhard H. Multiple redundant microfluidic structures cross reference to related applications
AU2002307152A1 (en) * 2001-04-06 2002-10-21 California Institute Of Technology Nucleic acid amplification utilizing microfluidic devices
US6890484B2 (en) * 2001-05-18 2005-05-10 Acon Laboratories, Inc. In line test device and methods of use
US6565808B2 (en) * 2001-05-18 2003-05-20 Acon Laboratories Line test device and methods of use
CA2468260A1 (en) 2001-07-02 2003-01-16 Matthew Torres Flow-thru chip cartridge, chip holder, system & method thereof
US6762049B2 (en) * 2001-07-05 2004-07-13 Institute Of Microelectronics Miniaturized multi-chamber thermal cycler for independent thermal multiplexing
US7338760B2 (en) * 2001-10-26 2008-03-04 Ntu Ventures Private Limited Sample preparation integrated chip
US6613576B1 (en) * 2002-01-15 2003-09-02 Sandia Corporation Field kit and method for testing for the presence of gunshot residue
JP3708879B2 (en) * 2002-01-21 2005-10-19 株式会社アトレータ Urine collection container
US7223371B2 (en) * 2002-03-14 2007-05-29 Micronics, Inc. Microfluidic channel network device
US6733464B2 (en) * 2002-08-23 2004-05-11 Hewlett-Packard Development Company, L.P. Multi-function sensor device and methods for its use
AU2003269970A1 (en) * 2002-09-05 2004-03-29 Exxonmobil Chemical Patents Inc. Shrink film
WO2004059280A2 (en) * 2002-12-26 2004-07-15 Meso Scale Technologies, Llc Methods, compositions and kits for biomarker extraction
US7419638B2 (en) * 2003-01-14 2008-09-02 Micronics, Inc. Microfluidic devices for fluid manipulation and analysis
KR20050118668A (en) 2003-01-21 2005-12-19 마이크로닉스 인코포레이티드. Method and system for microfluidic manipulation, amplification and analysis of fluids, for example, bacteria assays and antiglobulin testing
US20040202571A1 (en) * 2003-04-10 2004-10-14 Epler Gary R. Directed medication system and method
EP1633481A1 (en) * 2003-06-06 2006-03-15 Micronics, Inc. System and method for heating, cooling and heat cycling on microfluidic device
CN2718561Y (en) * 2003-07-11 2005-08-17 艾康生物技术(杭州)有限公司 Protective cover for withdrawing sample label
US7004754B2 (en) * 2003-07-23 2006-02-28 Orametrix, Inc. Automatic crown and gingiva detection from three-dimensional virtual model of teeth
GB0322983D0 (en) * 2003-10-01 2003-11-05 Isohelix Limitd Sampling kits, devices and uses thereof
US6991898B2 (en) * 2003-10-20 2006-01-31 Kimberly-Clark Worldwide, Inc. Diagnostic test device and method of using same
US7098040B2 (en) * 2003-12-23 2006-08-29 Kimberly-Clark Worldwide, Inc. Self-contained swab-based diagnostic systems
WO2006036592A1 (en) * 2004-09-23 2006-04-06 University Of Washington Microscale diffusion immunoassay utilizing multivalent reactants
AU2006204858A1 (en) 2005-01-13 2006-07-20 Perkinelmer Health Sciences, Inc. Microfluidic rare cell detection device
US20060216196A1 (en) * 2005-03-23 2006-09-28 Neogen Corporation Narrow swab (access swab) for ATP Measurement
WO2006130299A2 (en) * 2005-05-03 2006-12-07 Micronics, Inc. Microfluidic laminar flow detection strip
TW200714898A (en) * 2005-08-02 2007-04-16 3M Innovative Properties Co Apparatus and method for detecting an analyte
US7763453B2 (en) 2005-11-30 2010-07-27 Micronics, Inc. Microfluidic mixing and analytic apparatus
WO2008002462A2 (en) * 2006-06-23 2008-01-03 Micronics, Inc. Methods and devices for microfluidic point-of-care immunoassays
US20090061450A1 (en) * 2006-03-14 2009-03-05 Micronics, Inc. System and method for diagnosis of infectious diseases
WO2007106579A2 (en) * 2006-03-15 2007-09-20 Micronics, Inc. Integrated nucleic acid assays
WO2008147382A1 (en) * 2006-09-27 2008-12-04 Micronics, Inc. Integrated microfluidic assay devices and methods
JP4464417B2 (en) * 2007-03-19 2010-05-19 英一 倉田 Cassette cover
JP5852781B2 (en) 2007-07-31 2016-02-03 マイクロニクス, インコーポレイテッド Hygienic swab collection system, microfluidic assay device and method for diagnostic assays

Patent Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4949840A (en) * 1989-12-11 1990-08-21 Brown J Theodore Specimen collection kit for mailing
US20060029761A1 (en) * 2004-08-09 2006-02-09 Matthews Lowell F Multi-ply wrap label

Cited By (60)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US11293855B2 (en) 2012-06-28 2022-04-05 XCR Diagnostics, Inc. Chemical indicator device with heat blocks
US11952618B2 (en) 2012-10-24 2024-04-09 Roche Molecular Systems, Inc. Integrated multiplex target analysis
US10495656B2 (en) 2012-10-24 2019-12-03 Genmark Diagnostics, Inc. Integrated multiplex target analysis
US9957553B2 (en) 2012-10-24 2018-05-01 Genmark Diagnostics, Inc. Integrated multiplex target analysis
USD900330S1 (en) 2012-10-24 2020-10-27 Genmark Diagnostics, Inc. Instrument
US9962703B2 (en) 2013-03-11 2018-05-08 Cue Inc. Cartridges, kits, and methods for amplification and detection of analytes
US20150140646A1 (en) * 2013-03-11 2015-05-21 Cue Inc. Systems and methods for detection and quantification of analytes
US9052275B2 (en) 2013-03-11 2015-06-09 Cue Inc. Systems and methods for detection and quantification of analytes
US9360491B2 (en) 2013-03-11 2016-06-07 Cue Inc. Systems and methods for detection and quantification of analytes
US10589267B2 (en) 2013-03-11 2020-03-17 Cue Health Inc. System for portable and easy-to-use detection of analytes with mobile computing device
US10272434B2 (en) 2013-03-11 2019-04-30 Cue Health Inc. Cartridges, kits, and methods for amplification and detection of analytes
US11845078B2 (en) 2013-03-11 2023-12-19 Cue Health Inc. Systems and methods for detection and quantification of analytes
US10195606B2 (en) 2013-03-11 2019-02-05 Cue Health Inc. Systems and methods for detection and quantification of analytes
US10603664B2 (en) 2013-03-11 2020-03-31 Cue Health Inc. Cartridges, kits, and methods for amplification and detection of analytes
US11717822B2 (en) 2013-03-11 2023-08-08 Cue Health Inc. System for portable and easy-to-use detection of analytes with mobile computing device
US10545161B2 (en) 2013-03-11 2020-01-28 Cue Health Inc. Systems and methods for detection and quantification of analytes
US9522397B2 (en) 2013-03-11 2016-12-20 Cue Inc. Systems and methods for detection and quantification of analytes
US9086417B2 (en) 2013-03-11 2015-07-21 Cue Inc. Systems and methods for detection and quantification of analytes
US9623409B2 (en) 2013-03-11 2017-04-18 Cue Inc. Cartridges, kits, and methods for enhanced mixing for detection and quantification of analytes
US9636676B2 (en) 2013-03-11 2017-05-02 Cue Inc. Systems and methods for detection and quantification of analytes
US9207244B2 (en) * 2013-03-11 2015-12-08 Cue Inc. Systems and methods for detection and quantification of analytes
US9789483B2 (en) 2013-03-11 2017-10-17 Cue Inc. System for portable and easy-to-use detection of analytes with mobile computing device
US9207245B2 (en) 2013-03-11 2015-12-08 Cue Inc. Systems and methods for detection and quantification of analytes
US9222623B2 (en) 2013-03-15 2015-12-29 Genmark Diagnostics, Inc. Devices and methods for manipulating deformable fluid vessels
US9410663B2 (en) 2013-03-15 2016-08-09 Genmark Diagnostics, Inc. Apparatus and methods for manipulating deformable fluid vessels
US10807090B2 (en) 2013-03-15 2020-10-20 Genmark Diagnostics, Inc. Apparatus, devices, and methods for manipulating deformable fluid vessels
US10391489B2 (en) 2013-03-15 2019-08-27 Genmark Diagnostics, Inc. Apparatus and methods for manipulating deformable fluid vessels
US9453613B2 (en) 2013-03-15 2016-09-27 Genmark Diagnostics, Inc. Apparatus, devices, and methods for manipulating deformable fluid vessels
USD881409S1 (en) 2013-10-24 2020-04-14 Genmark Diagnostics, Inc. Biochip cartridge
USD891959S1 (en) 2014-05-12 2020-08-04 Cue Health Inc. Analyte detection system
USD820130S1 (en) 2014-05-12 2018-06-12 Cue Health Inc. Analyte detection system
USD774407S1 (en) 2014-05-12 2016-12-20 Cue Inc. Cartridge of an analyte detection system
USD994516S1 (en) 2014-05-12 2023-08-08 Cue Health Inc. Reader device for an analyte detection system
USD745423S1 (en) 2014-05-12 2015-12-15 Cue Inc. Automated analyzer test cartridge and sample collection device for analyte detection
USD951789S1 (en) 2014-05-12 2022-05-17 Cue Health Inc. Reader device for an analyte detection system
USD789815S1 (en) 2014-05-12 2017-06-20 Cue Inc. Reader of an analyte detection system
USD869311S1 (en) 2014-05-12 2019-12-10 Cue Health Inc. Analyte detection system
WO2016065297A1 (en) * 2014-10-23 2016-04-28 Ibis Biosciences, Inc. Swab port for microfluidic devices
US10864522B2 (en) 2014-11-11 2020-12-15 Genmark Diagnostics, Inc. Processing cartridge and method for detecting a pathogen in a sample
US9498778B2 (en) 2014-11-11 2016-11-22 Genmark Diagnostics, Inc. Instrument for processing cartridge for performing assays in a closed sample preparation and reaction system
US10005080B2 (en) 2014-11-11 2018-06-26 Genmark Diagnostics, Inc. Instrument and cartridge for performing assays in a closed sample preparation and reaction system employing electrowetting fluid manipulation
US9598722B2 (en) 2014-11-11 2017-03-21 Genmark Diagnostics, Inc. Cartridge for performing assays in a closed sample preparation and reaction system
FR3033048A1 (en) * 2015-02-20 2016-08-26 L Etat Francais Represente Par Le Mini De L Interieur DEVICE FOR COLLECTING BIOLOGICAL MATERIAL FROM A BIOLOGICAL TRACE
FR3033047A1 (en) * 2015-02-20 2016-08-26 L'etat Francais Represente Par Le Mini De L'interieur COLLECTION DEVICES FOR THE DIRECT AND INDIRECT FAST ANALYSIS OF NUCLEIC ACIDS FROM BIOLOGICAL TRACES
WO2016132028A1 (en) * 2015-02-20 2016-08-25 L'etat Français Représenté Par Le Ministère De L'intérieur Device for collecting biological material from a biological trace
US9808804B2 (en) 2015-07-17 2017-11-07 Cue Inc. Cartridges, collectors, kits, and methods for enhanced detection and quantification of analytes in collected fluid samples
US9718058B2 (en) 2015-07-17 2017-08-01 Cue Inc. Cartridges, kits, and methods for enhanced detection and quantification of analytes
USD909600S1 (en) 2015-07-17 2021-02-02 Cue Health Inc. Sample collection device of an analyte detection system
US11059045B2 (en) 2015-07-17 2021-07-13 Cue Health Inc. Cartridges, kits, and methods for enhanced detection and quantification of analytes
US11154866B2 (en) 2015-07-17 2021-10-26 Cue Health Inc. Systems and methods for facilitating fluid flow during enhanced detection and quantification of analytes
US9724691B2 (en) 2015-07-17 2017-08-08 Cue Inc. Cartridges, kits, and methods for enhanced detection and quantification of analytes
US9999889B2 (en) 2015-07-17 2018-06-19 Cue Health Inc. Cartridges, kits, and methods for enhanced detection and quantification of analytes
WO2017075586A1 (en) * 2015-10-29 2017-05-04 Alere Inc. Disposable diagnostic assay device
EP3402595A4 (en) * 2016-01-11 2019-10-02 Fluoresentric, Inc. Systems, apparatus, and methods for inline sample preparation
US11237161B2 (en) 2017-01-25 2022-02-01 Cue Health Inc. Systems and methods for enhanced detection and quantification of analytes
WO2018200677A1 (en) * 2017-04-26 2018-11-01 Microban Products Company System and method for rapid microbial detection and analysis
US11215562B2 (en) 2017-08-28 2022-01-04 Hewlett-Packard Development Company, L.P. Deformable covers on sensors and reservoirs
WO2021209996A1 (en) * 2020-04-14 2021-10-21 Eyal Bressler A sleeve-like swab and case thereof, and methods of using the same
WO2021237293A1 (en) * 2020-05-27 2021-12-02 3DMEDiTech Pty Ltd Swab
CN111820955A (en) * 2020-07-27 2020-10-27 南方科技大学 Intelligent device is gathered to portable pharynx swab

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EP2171420A1 (en) 2010-04-07
US8216832B2 (en) 2012-07-10

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