EP0347210B1

Method for analysis of cellular components of a fluid.

Abstract

This record has no abstract on file.

EP0347210B1, drawing sheet 1
Sheet 1 of 4

Term

Term ended

Expired 14 June 2009, 17.3 years ago.

  1. Priority
  2. Filed
  3. Granted
  4. Expired
  5. Today

17 claims: 4 independent, 13 dependent

  1. 1
    A method for multi-parameter analysis of cells in a body fluid wherein said method comprises the steps of:1. taking a fluid sample derived from an individual;2. adding two fluorescent nucleic acid dyes to said sample to differentially label the DNA and RNA in each cell, wherein each dye has a fluorescent peak emission spectrum different from the other;3. adding a fluorescently labelled cell surface marker to said sample, wherein said marker recognizes an antigen that is differentially expressed on said cells in said fluid sample and wherein said fluorescent label has a peak emission spectrum different from said fluorescent dyes;and 4. analyzing said cells in said sample in an instrument capable of detecting and recording three channels of fluorescence and two channels of light scattering for each of the cells in said sample.
  2. 2
    The method of Claim 1 wherein the body fluid comprises peritoneal, spinal or brain fluid, urine, whole blood or a cell suspension of bone marrow, lymph node, liver or speen.
  3. 3
    The method of Claim 2 wherein the body fluid is whole blood.
  4. 4
    The method of Claim 2 wherein the body fluid is bone marrow.
  5. 5
    The method of Claim 1 wherein one of the nucleic acid dyes is LDS-751 (2-{2-[4-(dimethylamino)phenyl]ethenyl}-1-ethylquinolinium iodide).
  6. 6
    The method of Claim 1 wherein one of the nucleic acid dyes is Thiazole-Orange (1-methyl-4-{[3-methyl-2(3H)-benzothiazolylidene]methyl}quinolinium 4-methylbenzenesulfonate).
  7. 7
    The method of Claim 1 wherein the cell surface marker is a MAb conjugated to a fluorochrome.
  8. 8
    The method of Claim 7 wherein the MAb is a CD45 MAb
  9. 9
    The method of Claim 8 wherein the CD45 MAb is HLe-1.
  10. 10
    The method of Claim 1 wherein the fluorochrome is phycoerythrin.
  11. 11
    The method of Claim 1 wherein the instrument is a flow cytometer.
  12. 12
    A method for five-parameter analysis of cells in a blood sample wherein said method comprises the steps of:1. taking a blood sample derived from an individual;2. adding LDS-751 (2-{2-[4-(dimethylamino)phenyl)ethenyl})-1-ethylquinolinium iodide) and Thiazole-Orange (1-methyl-4-{[3-methyl-2(3H)-benzothiazolylidene]methyl}quinolinium 4-methylbenzenesulfonate) to said sample;3. adding phycoerythrin-labelled HLe-1 to said sample;4. passing said sample through a flow cytometer having single laser source tuned to 488nm and capable of recording and storing measurements o orthogonal and forward light scattering and of LDS-751 (2-{2-[4-(dimethylamino)phenyl]ethenyl}-1-ethylquinolinium iodide), Thiazole-Orange 1-methyl-4-{[3-methyl-2(3H)-benzothiazolylidene)methyl)quinolinium 4-methylbenzenesulfonate and phycoerythrin fluorescence emissions for each cell in said sample.
  13. 13
    A method for five-parameter analysis of cells in a bone marrow sample wherein said method comprises the steps of:1. taking a bone marrow sample derived from an individual;2. adding LDS-751 (2-{2-[4-(dimethylamino)phenyl]ethenyl}-1-ethylquinolinium iodide) and Thiazole-Orange (1-methyl-4-{[3-methyl-2(3H)-benzothiazolylidene)methyl)quinolinium 4-methylbenzenesulfonate) to said sample;3. adding phycoerythrin-labelled HLe-1 to said sample;4. passing said sample through a flow cytometer having single laser source turned to 488nm and capable of recording and storing measurements of orthogonal and forward light scattering and of LDS-751 (2-{2-[4-(dimethylamino)phenyl]ethenyl}-1-ethylquinolinium iodide), Thiazole-Orange (1-methyl-4-{[3-methyl-2(3H)-benzothiazolylidene)methyl)quinolinium 4-methylbenzenesulfonate), and phycoerythrin fluorescence emissions for each cell in said sample.
  14. 14
    A kit for multi-parameter analysis of cells in a body fluid sample which comprises a first container containing at least two nucleic acid dyes to differentially label the DNA and RNA in each cell and wherein each dye has a fluorescent peak emission spectrum different from the other, and a second container containing at least one fluorescently labelled cell surface marker, wherein said marker recognises an antigen that is differently expressed on said cells in said fluid sample and wherein said fluorescent label has a peak emission spectrum different from said fluorescent dyes, for use in a method for multi-parameter analysis of cells in a body fluid wherein said method comprises the steps of:1. taking a fluid sample derived from an individual;2. adding two fluorescent nucleic acid dyes to said sample to differentially label the DNA and RNA in each cell, wherein each dye has a fluorescent peak emission spectrum different from the other;3. adding a fluorescently labelled cell surface marker to said sample, wherein said marker recognizes an antigen that is differentially expressed on said cells in said fluid sample and wherein said fluorescent label has a peak emission spectrum different from said fluorescent dyes;and 4. analyzing said cells in said sample in an instrument capable of detecting and recording three channels of fluorescence and two channels of light scattering for each of the cells in said sample.
  15. 15
    The kit according to Claim 14 wherein said nucleic acid dyes comprise LDS-751 (2-{2-[4-(dimethylamino)phenyl]ethenyl}-1-ethylquinolinium iodide) and Thiazole-Orange (1-methyl-4-{[3-methyl-2(3H)-benzothiazolylidene)methyl)quinolinium 4-methylbenzenesulfonate).
  16. 16
    The kit according to Claim 14 wherein the fluorescently labelled cell surface marker comprises phycoerythrin-labelled HLe-1.
  17. 17
    A method for correcting a multi-parameter analysis of a bone marrow sample to adjust for increased white blood cell levels due to blood contamination of the bone marrow sample which comprises the steps of:1. performing the steps of the method of Claim 1 on whole blood;2. determining the percentages of various white blood cell components in the blood;3. performing the steps of the method of Claim 8;4. determining the absolute counts of various white blood cell components in the bone marrow;and 5. multiplying each of the percentages obtained in step (2) by the total number of cells in the bone marrow sample and subtracting that number from the respective absolute counts obtained in step (4).