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Original Article

Abolition of Suppressive Effect of Acute Myeloid Leukemia Cells on Normal Granulocyte-Macrophage Colony Formation Induced by Interleukin-5 Associated with Eosinophilic Cell Induction

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Pages 171-178 | Received 12 Aug 1994, Published online: 01 Jul 2009

References

  • Cambell H. D., Tucker W. Q. J., Hort Y., Martinson M. E., Mayo G., Clutterbuck E. J., Sanderson C. J., Young I. G. Molecular cloning, nucleotide sequence, and expression of the gene encoding human eosinophilic differentiation factor (interleukin5). Proc. Natl. Acad. Sci. USA 1987; 84: 6629–6633
  • Clutterbuck E. J., Hirst E. M. A., Sanderson C. L. Human interleukin-5 (IL-5) regulates the production of eosinophils in human bone marrow cultures; comparison and interaction with IL-1, IL-3, IL-6 and GM-CSF. Blood 1989; 73: 1504–1512
  • Motoji T., Okada M., Takanashi M., Masuda M., Tanaka K., Oshimi K., Mizoguchi H. Induction of eosinophilic colonies by interleukin-5 on acute myeloblastic leukaemic cells. Br. J. Haematol 1990; 74: 169–172
  • Touw I., Donath J., Pouwels K., Buitenen C., Schipper P., Santini V., Hagemeijer A., Lowenberg B., Delwel R. Acute myeloid leukemias with chromosomal abnormalities involving the 21q22 region identified by their in vitro responsiveness to interleukin-5. Leukemia 1991; 5: 687–692
  • Ema H., Kitano K., Suda T., Sato Y., Muroi K., Ohta M., Yoshida M., Sakamoto S., Eguchi M., Miura Y. In vitro differentiation of leukemic cells to eosinophils in the presence of interleukin-5 in two cases of acute myeloid leukemia with the translocation (8;21) (q22;q22). Blood 1990; 75: 350–356
  • Chiyoda S., Mizoguchi H., Takaku F., Miura Y. Influence of leukaemic cells on the colony formation of human bone marrow cells in vitro. Br. J. Cancer 1975; 31: 355–358
  • Broxmeyer H. E., Jacobsen N., Kurland J., Mendelsohn N., Moore A. S. In vitro suppression of normal granulocytic stem cells by inhibitory activity derived from human leukemia cells. J. Natl. Cancer Inst 1978; 60: 497–511
  • Greenberg P. L., Nichols W. C., Schrier S. Granulopoiesis in acute leukemia and preleukemia. New Engl. J. Med 1971; 284: 1225–1232
  • Moore M. A. S., Williams N., Metcalf D. In vitro colony formation by normal and leukemic human hematopoietic cells: characterization of the colony-forming cells. J. Natl. Cancer Inst 1973; 50: 603–623
  • Motoji T., Takanashi M., Fuchinoue M., Masuda M., Oshimi K., Mizoguchi H. Effect of recombinant GM-CSF and recombinant G-CSF on colony formation of blast progenitors in acute myeloblastic leukemia. Exp. Hematol 1989; 17: 56–60
  • Bennett J. M., Catovsky D., Ganiel M. T., Flandrin G., Galton D. A. G., Gralnick H. R., Sutan C. Proposals for the classification of the acute leukaemias. Br. J. Haematol 1976; 33: 451–458
  • Tomonaga M., Sasaki T., Okuzaki M. Studies on leukocyte alkaline phosphatase I. Use of the Naphthol AS-MX phosphate-Fast blue RR staining method. Acta Haematol. Jap 1963; 26: 179–192
  • Takahashi M., Oshimi K., Mizoguchi H. Inhibition of human granulocyte-macrophage colony formation by interleukin 2-treated lymphocytes is mediated by interferon gamma and tumor necrosis factor alpha. Exp. Hematol 1990; 18: 395–399
  • Broxmeyer H. E., Lu L., Bicknell D. C., Williams D. E., Cooper S., Levi S., Salfeld J., Arosio P. The influence of purified recombinant human heavy-subunit and light-subunit ferritins on colony formation in vitro by granulocyte-macrophage and erythroid progenitor cells. Blood 1986; 68: 1257–1263
  • Olofsson T., Olsson I. Biochemical characterization of a leukemia-associated inhibitor (LAI) suppressing normal granulopoiesis in vitro. Blood 1980; 55: 983–991
  • Steinberg H. N., Tsiftsoglou A. S., Robinson S. H. Loss of suppression of normal bone marrow colony formation by leukemic cell lines after differentiation is induced by chemical agents. Blood 1985; 65: 100–106
  • Paul C. C., Tolbert M., Mahrer S., Singh A., Grace M. J., Baumann M. A. Cooperative effects of interleukin-3 (IL-3), IL-5, and granulocyte-macrophage colony-stimulating factor: a new myeloid cell line inducible to eosinophils. Blood 1993; 81: 1193–1199
  • Motoji T., Musashi M., Kurane R., Totsuka K., Masuda M., Aoyama M., Miyazaki T. A study on factors possibly affecting remission rate and survival of acute leukemia patients. Rinnsho Ketsueki 1980; 21: 144–150
  • Liu P., Tarle S. A., Hajra A., Claxton D. F., Marlton P., Freedman M., Siciliano M. J., Collins F. S. Fusion between transcription factor CBFβ/PEBP2β and a myosin heavy chain in acute myeloid leukemia. Science 1993; 261: 1041–1044
  • Wang S., Wang Q., Crute B. E., Melnikova I. N., Keller S. R., Speck N. A. Cloning and characterization of subunits of the T-cell receptor and murine leukemia virus enhancer core-binding factor. Mol. Cell. Biol 1993; 13: 3324–3339
  • Johnson P. R. E., Liu Yin J. A. Acute myeloid leukaemia in the elderly: biology and treatment. Br. J. Haematol 1993; 83: 1–6
  • Ohno R., Tomonaga M., Kobayashi T., Kanamaru A., Shirakawa S., Masaoka T., Omine M., Oh H., Nomura T., Sasaki Y., Hirano M., Yokomaku S., Yoshida Y., Miura A., Morishita Y., Dohy H., Niho Y., Hamajima N., Takaku F. Effect of granulocyte colony-stimulating factor after intensive induction therapy in relapsed or refractory acute leukemia. New Eng. J. Med 1990; 323: 871–877

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