MLchartDataset catalogue

Patent · US6537501B1 · B1 · US

Disposable hematology cartridge

(11) Publication number
US6537501B1
(21) Application number
09/428,801
(22) Filing date
1999-10-28
(30) Priority date
1998-05-18
(43) Publication date
2003-03-25
(45) Date of grant
2003-03-25
(51) IPC
B01L 3/00; B01L 99/00; G01N 15/14
(52) CPC
  • B01L Chemical or physical laboratory apparatus for general use: 3/502707, 2200/025, 2200/027, 2200/0636, 2200/0647, 2200/10, 2200/12, 2200/16, 2300/0627, 2300/0636, 2300/0645, 2300/0816, 2300/0861, 2300/0867, 2300/0874, 2300/0883, 2300/0887, 2400/0487, 2400/0655, 3/502715, 3/502738, 3/502746, 3/502776, 3/565
  • B01F Mixing, e.g. dissolving, emulsifying or dispersing: 25/433, 25/4331, 25/4332, 33/30
  • G01N Investigating or analysing materials by determining their chemical or physical properties: 15/14
  • Y10T Technical subjects covered by former us classification: 156/1064, 436/11, 436/117497, 436/118339, 436/25, 436/25125, 436/25375, 436/2575
(73) Assignee
University of Washington
(72) Inventors
Mark R. Holl; Floyd Edwards; Robert J. Morff; Gerald L. Klein
(54) Title
Disposable hematology cartridge
(57) Abstract

The present invention provides an apparatus and method for storing a particle-containing liquid. The storage apparatus comprises a microfluidic convoluted flow channel having a plurality of particle capture regions. The storage channel is preferably an isotropic spatially periodic channel. Sedimented particles can be resuspended following storage. This invention further provides a microfluidic analysis cartridge having a convoluted storage channel therein. The sample analysis can use optical, electrical, pressure sensitive, or flow sensitive detection. A plurality of analysis channels can be included in a single cartridge. The analysis channels can be joined to reagent inlets for diluents, indicators or lysing agents. A mixing channel can be positioned between the reagent inlet and the analysis region to allow mixing and reaction of the reagent. The cartridge can include additional valves and pumps for flow management. The analysis cartridge can be a self-contained disposable cartridge having an integral waste storage container. This invention further provides a sheath flow assembly. The sheath flow assembly includes a sample channel and first and second sheath fluid channels positioned on either side of and converging with the sample channel. The assembly also includes upper and lower sheath fluid chambers positioned above and below and converging with the sample channel. The flow cartridges of this invention can be formed by molding, machining or etching. In a preferred embodiment they are laminated. This invention further provides a method of fabricating a laminated microfluidic flow device. In the method, flow elements are formed in rigid sheets and abutting surfaces of the sheets are bonded together.

Full text
View on Google Patents

Claims (31)

  1. A disposable fluidic hematology cartridge for analyzing a particle-containing liquid sample, comprising: a sample inlet; an optical measuring channel fluidically coupled with said sample inlet and having an optical measuring region; a first valve interface positioned between said sample inlet and said optical measuring region; a flow cytometric measuring channel fluidically coupled with said sample inlet; a second valve interface positioned between said sample inlet and said flow cytometric measuring channel wherein said flow cytometric measuring channel further comprises a flow cytometric measuring region; a sheath flow assembly positioned along said flow cytometric measuring channel before said flow cytometric measuring region; and a plurality of laminate layers wherein at least one of said sample inlet, optical measuring channel, optical measuring region, first or second valve interfaces, flow cytometric measuring channel or flow cytometric measuring region is formed by at least three of said laminate layers.
  2. The hematology cartridge of claim 1 wherein said optical measuring channel is formed by a first sheet attached to a second sheet having a cutout region attached to a third sheet attached to the second sheet.
  3. The hematology cartridge of claim 1 wherein said optical measuring channel and said flow cytometric measuring channel are positioned in parallel.
  4. The hematology cartridge of claim 1 wherein said optical measuring and said flow cytometric measuring regions each comprise a first transparent window positioned over said, measuring channels.
  5. The hematology cartridge of claim 4 wherein said optical measuring and said flow cytometric measuring regions each further comprise a second transparent window, positioned under said measuring channels.
  6. The hematology cartridge of claim 5 wherein the width of said optical measuring channel is increased in said optical measuring region.
  7. The hematology cartridge of claim 4 wherein the optical pathlength of said optical measuring channel is increased by increasing the channel depth at the optical measuring region.
  8. The hematology cartridge of claim 1 wherein said flow cytometric measuring channel is narrowed in said flow cytometric measuring region to constrict particles into single file.
  9. The hematology cartridge of claim 1 wherein said sheath flow assembly comprises first and second sheath flow channels on either side of and converging with said flow cytometric measuring channel.
  10. The hematology cartridge of claim 9 wherein the width of said flow cytometric measuring channel does not contract within said sheath flow assembly.
  11. The hematology cartridge of claim 9 wherein said sheath flow assembly further comprises upper and lower sheath fluid chambers positioned above and below and converging with said flow cytometric measuring channel.
  12. The hematology cartridge of claim 1 further comprising a first reagent inlet, positioned along said optical measuring channel before said optical measuring region.
  13. The hematology cartridge of claim 12 further comprising a second reagent inlet, positioned along said flow cytometric measuring channel before said flow cytometric measuring region.
  14. The hematology cartridge of claim 13 further comprising said sheath flow assembly positioned along said flow cytometric measuring channel between said second reagent inlet and said flow cytometric measuring region.
  15. The hematology cartridge of claim 13 wherein each of said first and second reagent inlets comprises a syringe pump interface.
  16. The hematology cartridge of claim 13 further comprising a mixing channel positioned along said flow cytometric measuring channel between said second reagent inlet and said flow cytometric measuring region.
  17. The hematology cartridge of claim 16 wherein said mixing channel is a spatially periodic channel.
  18. The hematology cartridge of claim 1 further comprising a waste storage container positioned downstream of said flow cytometric measuring region.
  19. A method of blood analysis using the hematology cartridge of claim 1, comprising the steps of: introducing a sample of blood into said sample inlet; measuring the absorption of said blood in said optical measuring region; measuring the scattering by said blood in said flow cytometric measuring region; and using said sheath flow assembly to hydrodynamically focus said blood.
  20. The method of blood analysis of claim 19 wherein said hematology cartridge further comprises a convoluted sample storage channel positioned before said flow cytometric measuring region, and wherein said method further comprises the step of storing said blood in said storage channel, whereby particles in said blood sediment in said storage channel.
  21. The method of blood analysis of claim 20 further comprising the step of resuspending said particles in said blood.
  22. The method of blood analysis of claim 19 wherein said hematology cartridge further comprises a first reagent inlet positioned between said sample inlet and said optical measuring region, and wherein said method further comprises the steps of introducing a cell lysing agent through said first reagent inlet and obtaining the hemoglobin content of said blood from the measured absorption.
  23. The method of blood analysis of claim 22 wherein said hematology cartridge further comprises a second reagent inlet positioned between said sample inlet and said flow cytometric measuring region, and wherein said method further comprises the steps of introducing a second reagent through said second reagent inlet and characterizing the white blood cells from the measured scattering.
  24. The method of blood analysis of claimed 23 wherein said step of introducing a second reagent comprises introducing a reagent for masking red blood cells and platelets.
  25. The method of blood analysis of claim 23 wherein said hematology cartridge further comprises a mixing channel positioned between said second reagent inlet and said flow cytometric measuring region, and wherein said method further comprises the step of allowing said blood and said second reagent to mix and react in said mixing channel.
  26. The method of blood analysis of claim 19 wherein said hematology cartridge further comprises a waste storage container positioned downstream of said flow cytometric measuring region, and wherein said method further comprises the step of collecting said blood in said waste storage container.
  27. The method of blood analysis of claim 26 further comprising the step of disposing of said hematology cartridge after use.
  28. The hematology cartridge of claim 1 whereby said optical measuring channel is an absorption measuring channel and said optical measuring region is an absorption measuring region.
  29. A disposable fluidic hematology cartridge for analyzing a particle-containing liquid sample, comprising: a sample inlet; an optical measuring channel fluidically coupled with said sample inlet and having an optical measuring region; a first valve interface positioned between said sample inlet and said optical measuring region; a flow cytometric measuring channel fluidically coupled with said sample inlet; a second valve interface positioned between said sample inlet and said flow cytometric measuring channel wherein said flow cytometric measuring channel further comprises a flow cytometric measuring region; a convoluted sample storage channel positioned before said flow cytometric measuring channel; and a plurality of laminate layers wherein at least one of said sample inlet, optical measuring channel, optical measuring region, first or second valve interfaces, flow cytometric measuring channel or flow cytometric measuring region is formed by at least three of said laminate layers, and wherein said first valve interface is positioned between said storage channel and said optical measuring region and said second valve interface is positioned between said storage channel and said flow cytometric measuring region.
  30. The hematology cartridge of claim 29 wherein said storage channel is a spatially periodic channel.
  31. The hematology cartridge of claim 30 wherein said storage channel is an isotropic spatially periodic channel.

Description

This invention relates to microfluidic cartridges for analysis of liquid samples, and in particular to cartridges having a convoluted sample storage channel and to cartridges having a flow cytometric measuring region.

With the advent of micro-machining technology, microfluidic devices have proliferated (for example, U.S. Pat. No. 5,637,469 to Wilding et al., U.S. Pat. No. 4,983,038 to Ohki et al., U.S. Pat. No. 4,963,498 to Hillman et al., U.S. Pat. No. 5,250,263 to Manz et al., U.S. Pat. No. 5,376,252 to Ekstrom et al., E.P. Patent Publication 0381501B1, and Petersen, E. (1982) Proc. of the IEEE, vol. 70, No. 5, pp. 420-457). A practical limitation for particle-containing liquids such as blood is the sedimentation of particles within the device. Following loading the liquid in the device, appreciable particle sedimentation can occur within the time required to position the device in a measurement apparatus. For example, if the sample flow is slowed or stopped, blood cells can measurably settle out of plasma within 20 seconds. Without a sample management method and apparatus for sedimentation mitigation, quantitative analysis, especially using more than one analysis method sequentially, is impractical. Moreover, if samples are first collected and then transported to a measurement apparatus, as in a clinical setting or in field sampling, particle sedimentation can make accurate analysis impossible.

Microfluidic devices having sample storage reservoirs are known in the art (for example, E.P. Patent Publication 0381501B1). Because of particle sedimentation, these devices are useful only for samples without particles.

Citations (56)

  • DE2521236A1
  • US4726929A
  • US4781459A
  • US4963498A
  • US4894146A
  • US5464752A
  • US4983038A
  • US5007732A
  • EP0288029A2
  • EP0294701A2
  • EP0294701B1
  • US4908112A
  • US5011022A
  • EP0381501B1
  • US5141651A
  • US5182617A
  • US5147607A
  • US5376252A
  • US5250263A
  • US5599503A
  • US5240618A
  • US5635358A
  • US5744366A
  • US5637469A
  • US5639423A
  • US5288463A
  • US5500187A
  • US5674743A
  • US5480614A
  • EP0645169A1
  • WO1996004547A1
  • US5530540A
  • US5627041A
  • US5707799A
  • US5500071A
  • US5585069A
  • US5681484A
  • US5755942A
  • WO1996014934A1
  • US5793485A
  • US5932100A
  • WO1997002357A1
  • US5644395A
  • US5726751A
  • US6319469B1
  • US5863502A
  • US5716852A
  • WO1997039338A1
  • US6007690A
  • US6221654B1
  • US5748827A
  • US6159739A
  • US5993750A
  • US5919711A
  • US6251615B1
  • US6188474B1
Record as JSON
{
  "publication_number": "US6537501B1",
  "country": "US",
  "kind": "B1",
  "title": "Disposable hematology cartridge",
  "abstract": "The present invention provides an apparatus and method for storing a particle-containing liquid. The storage apparatus comprises a microfluidic convoluted flow channel having a plurality of particle capture regions. The storage channel is preferably an isotropic spatially periodic channel. Sedimented particles can be resuspended following storage. This invention further provides a microfluidic analysis cartridge having a convoluted storage channel therein. The sample analysis can use optical, electrical, pressure sensitive, or flow sensitive detection. A plurality of analysis channels can be included in a single cartridge. The analysis channels can be joined to reagent inlets for diluents, indicators or lysing agents. A mixing channel can be positioned between the reagent inlet and the analysis region to allow mixing and reaction of the reagent. The cartridge can include additional valves and pumps for flow management. The analysis cartridge can be a self-contained disposable cartridge having an integral waste storage container. This invention further provides a sheath flow assembly. The sheath flow assembly includes a sample channel and first and second sheath fluid channels positioned on either side of and converging with the sample channel. The assembly also includes upper and lower sheath fluid chambers positioned above and below and converging with the sample channel. The flow cartridges of this invention can be formed by molding, machining or etching. In a preferred embodiment they are laminated. This invention further provides a method of fabricating a laminated microfluidic flow device. In the method, flow elements are formed in rigid sheets and abutting surfaces of the sheets are bonded together.",
  "claims": [
    "1. A disposable fluidic hematology cartridge for analyzing a particle-containing liquid sample, comprising: a sample inlet; an optical measuring channel fluidically coupled with said sample inlet and having an optical measuring region; a first valve interface positioned between said sample inlet and said optical measuring region; a flow cytometric measuring channel fluidically coupled with said sample inlet; a second valve interface positioned between said sample inlet and said flow cytometric measuring channel wherein said flow cytometric measuring channel further comprises a flow cytometric measuring region; a sheath flow assembly positioned along said flow cytometric measuring channel before said flow cytometric measuring region; and a plurality of laminate layers wherein at least one of said sample inlet, optical measuring channel, optical measuring region, first or second valve interfaces, flow cytometric measuring channel or flow cytometric measuring region is formed by at least three of said laminate layers.",
    "2. The hematology cartridge of claim 1 wherein said optical measuring channel is formed by a first sheet attached to a second sheet having a cutout region attached to a third sheet attached to the second sheet.",
    "3. The hematology cartridge of claim 1 wherein said optical measuring channel and said flow cytometric measuring channel are positioned in parallel.",
    "4. The hematology cartridge of claim 1 wherein said optical measuring and said flow cytometric measuring regions each comprise a first transparent window positioned over said, measuring channels.",
    "5. The hematology cartridge of claim 4 wherein said optical measuring and said flow cytometric measuring regions each further comprise a second transparent window, positioned under said measuring channels.",
    "6. The hematology cartridge of claim 5 wherein the width of said optical measuring channel is increased in said optical measuring region.",
    "7. The hematology cartridge of claim 4 wherein the optical pathlength of said optical measuring channel is increased by increasing the channel depth at the optical measuring region.",
    "8. The hematology cartridge of claim 1 wherein said flow cytometric measuring channel is narrowed in said flow cytometric measuring region to constrict particles into single file.",
    "9. The hematology cartridge of claim 1 wherein said sheath flow assembly comprises first and second sheath flow channels on either side of and converging with said flow cytometric measuring channel.",
    "10. The hematology cartridge of claim 9 wherein the width of said flow cytometric measuring channel does not contract within said sheath flow assembly.",
    "11. The hematology cartridge of claim 9 wherein said sheath flow assembly further comprises upper and lower sheath fluid chambers positioned above and below and converging with said flow cytometric measuring channel.",
    "12. The hematology cartridge of claim 1 further comprising a first reagent inlet, positioned along said optical measuring channel before said optical measuring region.",
    "13. The hematology cartridge of claim 12 further comprising a second reagent inlet, positioned along said flow cytometric measuring channel before said flow cytometric measuring region.",
    "14. The hematology cartridge of claim 13 further comprising said sheath flow assembly positioned along said flow cytometric measuring channel between said second reagent inlet and said flow cytometric measuring region.",
    "15. The hematology cartridge of claim 13 wherein each of said first and second reagent inlets comprises a syringe pump interface.",
    "16. The hematology cartridge of claim 13 further comprising a mixing channel positioned along said flow cytometric measuring channel between said second reagent inlet and said flow cytometric measuring region.",
    "17. The hematology cartridge of claim 16 wherein said mixing channel is a spatially periodic channel.",
    "18. The hematology cartridge of claim 1 further comprising a waste storage container positioned downstream of said flow cytometric measuring region.",
    "19. A method of blood analysis using the hematology cartridge of claim 1, comprising the steps of: introducing a sample of blood into said sample inlet; measuring the absorption of said blood in said optical measuring region; measuring the scattering by said blood in said flow cytometric measuring region; and using said sheath flow assembly to hydrodynamically focus said blood.",
    "20. The method of blood analysis of claim 19 wherein said hematology cartridge further comprises a convoluted sample storage channel positioned before said flow cytometric measuring region, and wherein said method further comprises the step of storing said blood in said storage channel, whereby particles in said blood sediment in said storage channel.",
    "21. The method of blood analysis of claim 20 further comprising the step of resuspending said particles in said blood.",
    "22. The method of blood analysis of claim 19 wherein said hematology cartridge further comprises a first reagent inlet positioned between said sample inlet and said optical measuring region, and wherein said method further comprises the steps of introducing a cell lysing agent through said first reagent inlet and obtaining the hemoglobin content of said blood from the measured absorption.",
    "23. The method of blood analysis of claim 22 wherein said hematology cartridge further comprises a second reagent inlet positioned between said sample inlet and said flow cytometric measuring region, and wherein said method further comprises the steps of introducing a second reagent through said second reagent inlet and characterizing the white blood cells from the measured scattering.",
    "24. The method of blood analysis of claimed 23 wherein said step of introducing a second reagent comprises introducing a reagent for masking red blood cells and platelets.",
    "25. The method of blood analysis of claim 23 wherein said hematology cartridge further comprises a mixing channel positioned between said second reagent inlet and said flow cytometric measuring region, and wherein said method further comprises the step of allowing said blood and said second reagent to mix and react in said mixing channel.",
    "26. The method of blood analysis of claim 19 wherein said hematology cartridge further comprises a waste storage container positioned downstream of said flow cytometric measuring region, and wherein said method further comprises the step of collecting said blood in said waste storage container.",
    "27. The method of blood analysis of claim 26 further comprising the step of disposing of said hematology cartridge after use.",
    "28. The hematology cartridge of claim 1 whereby said optical measuring channel is an absorption measuring channel and said optical measuring region is an absorption measuring region.",
    "29. A disposable fluidic hematology cartridge for analyzing a particle-containing liquid sample, comprising: a sample inlet; an optical measuring channel fluidically coupled with said sample inlet and having an optical measuring region; a first valve interface positioned between said sample inlet and said optical measuring region; a flow cytometric measuring channel fluidically coupled with said sample inlet; a second valve interface positioned between said sample inlet and said flow cytometric measuring channel wherein said flow cytometric measuring channel further comprises a flow cytometric measuring region; a convoluted sample storage channel positioned before said flow cytometric measuring channel; and a plurality of laminate layers wherein at least one of said sample inlet, optical measuring channel, optical measuring region, first or second valve interfaces, flow cytometric measuring channel or flow cytometric measuring region is formed by at least three of said laminate layers, and wherein said first valve interface is positioned between said storage channel and said optical measuring region and said second valve interface is positioned between said storage channel and said flow cytometric measuring region.",
    "30. The hematology cartridge of claim 29 wherein said storage channel is a spatially periodic channel.",
    "31. The hematology cartridge of claim 30 wherein said storage channel is an isotropic spatially periodic channel."
  ],
  "description_excerpt": "This invention relates to microfluidic cartridges for analysis of liquid samples, and in particular to cartridges having a convoluted sample storage channel and to cartridges having a flow cytometric measuring region.\n\nWith the advent of micro-machining technology, microfluidic devices have proliferated (for example, U.S. Pat. No. 5,637,469 to Wilding et al., U.S. Pat. No. 4,983,038 to Ohki et al., U.S. Pat. No. 4,963,498 to Hillman et al., U.S. Pat. No. 5,250,263 to Manz et al., U.S. Pat. No. 5,376,252 to Ekstrom et al., E.P. Patent Publication 0381501B1, and Petersen, E. (1982) Proc. of the IEEE, vol. 70, No. 5, pp. 420-457). A practical limitation for particle-containing liquids such as blood is the sedimentation of particles within the device. Following loading the liquid in the device, appreciable particle sedimentation can occur within the time required to position the device in a measurement apparatus. For example, if the sample flow is slowed or stopped, blood cells can measurably settle out of plasma within 20 seconds. Without a sample management method and apparatus for sedimentation mitigation, quantitative analysis, especially using more than one analysis method sequentially, is impractical. Moreover, if samples are first collected and then transported to a measurement apparatus, as in a clinical setting or in field sampling, particle sedimentation can make accurate analysis impossible.\n\nMicrofluidic devices having sample storage reservoirs are known in the art (for example, E.P. Patent Publication 0381501B1). Because of particle sedimentation, these devices are useful only for samples without particles.",
  "cpc": [
    "B01L 3/502707",
    "B01F 25/433",
    "B01F 25/4331",
    "B01F 25/4332",
    "B01F 33/30",
    "B01L 2200/025",
    "B01L 2200/027",
    "B01L 2200/0636",
    "B01L 2200/0647",
    "B01L 2200/10",
    "B01L 2200/12",
    "B01L 2200/16",
    "B01L 2300/0627",
    "B01L 2300/0636",
    "B01L 2300/0645",
    "B01L 2300/0816",
    "B01L 2300/0861",
    "B01L 2300/0867",
    "B01L 2300/0874",
    "B01L 2300/0883",
    "B01L 2300/0887",
    "B01L 2400/0487",
    "B01L 2400/0655",
    "B01L 3/502715",
    "B01L 3/502738",
    "B01L 3/502746",
    "B01L 3/502776",
    "B01L 3/565",
    "G01N 15/14",
    "Y10T 156/1064",
    "Y10T 436/11",
    "Y10T 436/117497",
    "Y10T 436/118339",
    "Y10T 436/25",
    "Y10T 436/25125",
    "Y10T 436/25375",
    "Y10T 436/2575"
  ],
  "ipc": [
    "B01L 3/00",
    "B01L 99/00",
    "G01N 15/14"
  ],
  "assignees": [
    "University of Washington"
  ],
  "inventors": [
    "Mark R. Holl",
    "Floyd Edwards",
    "Robert J. Morff",
    "Gerald L. Klein"
  ],
  "filing_date": "1999-10-28",
  "publication_date": "2003-03-25",
  "grant_date": "2003-03-25",
  "priority_date": "1998-05-18",
  "application_number": "US-42880199-A",
  "family_id": "22159002",
  "cited_by_count": 193,
  "citations": [
    "DE2521236A1",
    "US4726929A",
    "US4781459A",
    "US4963498A",
    "US4894146A",
    "US5464752A",
    "US4983038A",
    "US5007732A",
    "EP0288029A2",
    "EP0294701A2",
    "EP0294701B1",
    "US4908112A",
    "US5011022A",
    "EP0381501B1",
    "US5141651A",
    "US5182617A",
    "US5147607A",
    "US5376252A",
    "US5250263A",
    "US5599503A",
    "US5240618A",
    "US5635358A",
    "US5744366A",
    "US5637469A",
    "US5639423A",
    "US5288463A",
    "US5500187A",
    "US5674743A",
    "US5480614A",
    "EP0645169A1",
    "WO1996004547A1",
    "US5530540A",
    "US5627041A",
    "US5707799A",
    "US5500071A",
    "US5585069A",
    "US5681484A",
    "US5755942A",
    "WO1996014934A1",
    "US5793485A",
    "US5932100A",
    "WO1997002357A1",
    "US5644395A",
    "US5726751A",
    "US6319469B1",
    "US5863502A",
    "US5716852A",
    "WO1997039338A1",
    "US6007690A",
    "US6221654B1",
    "US5748827A",
    "US6159739A",
    "US5993750A",
    "US5919711A",
    "US6251615B1",
    "US6188474B1"
  ]
}

Record 6,058 of 8,000 in Patents full text (MLC-0201). Request the full dataset.