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Synchronization of human leukemic cells: Relevance for high-resolution chromosome banding

Summary

The cell-cycle kinetics of synchronized K562 human leukemic cells and bone marrow cells from adults with acute leukemia were studied in order to develop more reliable methods for producing increased numbers of mitoses, particularly those with elongated chromosomes suitable for high-resolution banding. Parameters examined included DNA content, mitotic index (MI), and chromosome preparations. K562 cells synchronized with methotrexate (MTX), thymidine (Tdr), or hydroxyurea (HU) showed two-fold increases in peak MI. Optimal harvesting times after release from block were approximately 10.5, 12.5, and 14.5 h for MTX, HU, and Tdr, respectively. MTX was selected for studies with cells from patients. Cells from 7 of the 10 patients studied showed 4.4-fold increases in peak MI. The optimal harvesting time was 9.5 to 11.5 h after release from block, considerably later than the 6 h time previously assumed in studies using stimulated lymphocytes. Cells from the three remaining patients showed no increase in MI after synchronization: and the lack of response may have been related to the high proportion of cells in G0+G1 prior to MTX exposure. For both the K562 cell line and most patient specimens, the combination of synchronization with appropriate release times and short Colcemid exposure (10 min) resulted in substantially improved chromosome preparations.

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References

  • Barlogie B, Drewinko B, Schumann J, Freireich EJ (1976) Pulse cytophotometric analysis of cell cycle perturbation with bleomycin in vitro. Cancer Res 36:1182–1187

    Google Scholar 

  • Boucher B, Norman CS (1980) Cold synchronization for the study of peripheral blood and bone marrow chromosomes in leukemia and other hematologic disease states. Hum Genet 54:207–211

    Google Scholar 

  • Bøyum A (1968) Isolation of mononuclear cells and granulocytes from human blood. Scand J Clin Lab Invest [Suppl 97]21:77–89

    Google Scholar 

  • Brandt L, Mitelman F, Sjögren U (1975) Relation between chromosomes and mitotic activity in acute myeloid leukemia. Hereditas 79:305–306

    Google Scholar 

  • Camargo M, Cervenka J (1980) Pattern of chromosomal replication in synchronized lymphocytes. I. Evaluation and application of methotrexate block. Hum Genet 54:47–53

    Google Scholar 

  • Dean PN (1980) A simplified method of DNA distribution analysis. Cell Tissue Kinet 13:299–308

    Google Scholar 

  • Hagemeijer A, Smitt EME, Bootsma D (1979) Improved identification of chromosomes of leukemic cells in methotrexate-treated cultures. Cytogenet Cell Genet 23:208–212

    Google Scholar 

  • Hagemeijer A, Hahlen K, Sizoo W, Abels J (1982) Translocation (9;11)(p21;q23) in three cases of acute monoblastic leukemia. Cancer Genet Cytogenet 5:95–105

    Google Scholar 

  • Howell SB, Mansfield SJ, Taetle R (1981) Thymidine and hypoxanthine requirements of normal and malignant human cells for protection against methotrexate cytotoxicity. Cancer Res 41: 945–950

    Google Scholar 

  • ISCN (1981) An international system for human cytogenetic nomenclature—High-resolution banding (1981) Birth Defects XVII, pp 1–23; also in Cytogenet Cell Genet (1981) 31:1–23

    Google Scholar 

  • Krishan A (1975) Rapid flow cytofluorometric analysis of mammalian cell cycle by propidium iodide staining. J Cell Biol 66:188–193

    Google Scholar 

  • Krishan A, Frei E III (1976) Effect of Adriamycin on the cell cycle traverse of a human lymphoid cell line. Cancer Res 36:143–150

    Google Scholar 

  • Leyva A, van de Grint L, Pinedo HM (1978) Reversal of methotrexate toxicity to mouse bone marrow and L1210 leukemia cells grown in vitro. In: Pinedo HM (ed) Applied methods in oncology 1. Clinical pharmacology of anti-neoplastic drugs. Elsevier/North Holland, Amsterdam New York Oxford, pp 39–56

    Google Scholar 

  • Lozzio CB, Lozzio BB (1975) Human chronic myelogenous leukemia cell line with positive Philadelphia chromosome. Blood 45: 321–334

    Google Scholar 

  • Pinedo HM, Chabner BA (1977) Role of drug concentration, duration of exposure and endogenous metabolites in determining methotrexate cytotoxicity. Cancer Treat Rep 61:709–715

    Google Scholar 

  • Ross D, Akman SA, Schrecker AW, Bachur NR (1981) Effects of deoxynucleosides on cultured human leukemia cell growth and deoxynucleotide pools. Cancer Res 41:4493–4498

    Google Scholar 

  • Rowley JD, Testa JR (1982) Chromosome abnormalities in malignant hematologic diseases. Adv Cancer Res 36:103–148

    Google Scholar 

  • Rueckert RR, Mueller GC (1960) Studies on unbalanced growth in tissue culture. I. Induction and consequences of thymidine deficiency. Cancer Res 20:1584–1591

    Google Scholar 

  • Sandberg AA, Ishihara T, Miwa T, Hauschka TS (1961) The in vivo chromosome constitution of marrow from 34 human leukemias and 60 non-leukemic controls. Cancer Res 21:678–689

    Google Scholar 

  • Shackney S, Ford SS, Wittig AB (1973) The effects of counting threshold and emulsion exposure duration on the percent-labeled mitosis curve and their implications for cell cycle analysis. Cancer Res 33:2726–2731

    Google Scholar 

  • Shackney S, Ritch P, Wittig AB (1982) Cell kinetics. In: Chabner B (ed) Pharmacologic principles of cancer treatment. Saunders, Philadelphia London Toronto, pp 70–71

    Google Scholar 

  • Siegel S (1956) Non-parametric statistics for the behavioral sciences. McGraw-Hill, New York Toronto London, p 96, 111

    Google Scholar 

  • Sinclair WK (1967) Hydroxyurea: effects on Chinese hamster cells grown in culture. Cancer Res 27:297–308

    Google Scholar 

  • Stryckmans P, Debusscher L, Ronge-Colland E, Socquet M, Zippoun R (1980) The labelling index of marrow myeloblasts: a predictive test for relapse of acute nonlymphoblastic leukemia. Leuk Res 4:79–87

    Google Scholar 

  • Testa JR, Oguma N, Misawa S, Wiernik PH (1983) Chromosome abnormalities in acute leukemia: A higher incidence than previously assumed. Cancer Genet Cytogenet 9:305–306

    Google Scholar 

  • Tijo JH, Whang J (1962) Chromosome preparations of bone marrow cells without prior in vitro culture or in vivo colchicine administration. Stain Technol 37:17–20

    Google Scholar 

  • Viegas-Pequignot E, Dutrillaux B (1978) Une méthode simple pour obtenir des prophases et des prometaphases. Ann Genet (Paris) 21:122–125

    Google Scholar 

  • Webber LM, Garson OM (1983) Fluorodeoxyuridine synchronization of bone marrow cultures. Cancer Genet Cytogenet 8: 123–132

    Google Scholar 

  • Xeros N (1962) Deoxyriboside control and synchronization of mitosis. Nature 194:682–683

    Google Scholar 

  • Yataganas X, Clarkson BD (1974) Flow microfluorometric analysis of cell killing with cytotoxic drugs. J Histochem Cytochem 22: 651–659

    Google Scholar 

  • Yunis JJ (1981) New chromosome techniques in the study of human neoplasia. Hum Pathol 12:540–549

    Google Scholar 

  • Yunis JJ (1982) Comparative analysis of high-resolution chromosome techniques for leukemic bone marrows. Cancer Genet Cytogenet 7:43–50

    Google Scholar 

  • Yunis JJ, Blomfield CD, Ensrud BS (1981) All patients with acute nonlymphocytic leukemia may have a chromosomal defect. N Engl J Med 305:135–139

    Google Scholar 

  • Yunis JJ, Sawyer JR, Ball DW (1978) The characterization of high-resolution G-banded chromosomes of man. Chromosoma 67: 293–307

    Google Scholar 

  • Zietz S (1980) FP: analysis I. Theoretical outline of a new method to analyze time sequences of DNA histograms. Cell Tissue Kinet 13:461–471

    Google Scholar 

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Gallo, J.H., Ordonez, J.V., Brown, G.E. et al. Synchronization of human leukemic cells: Relevance for high-resolution chromosome banding. Hum Genet 66, 220–224 (1984). https://doi.org/10.1007/BF00286605

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  • DOI: https://doi.org/10.1007/BF00286605

Keywords

  • Bone Marrow Cell
  • K562 Cell
  • Mitotic Index
  • Acute Leukemia
  • Hydroxyurea