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Original Article

Interleukin-11

, , &
Pages 45-49 | Received 30 Oct 1993, Published online: 01 Jul 2009

References

  • Paul S.R., Bennett F., Calvetti J.A., Kelleher K., Wood C.R., Ohara R.M., Jr., Leary A.C., Sibley B., Clark S.C., Williams D.A., Yang Y.C. Molecular cloning of a cDNA encoding interleukin 11, a stromal cell-derived lymphopoietic cytokine. Proc. Natl. Acad. Sci. USA 1990; 87: 7512–7516
  • Kawashima J., Ohsumi J., Honjo M., Shimoda-Takano K., Ishikawa H., Sakakibara S., Miyadai K., Takiguchi Y. Molecular cloning of cDNA encoding adipogenesis inhibitory factor identity with interleukin-11. FEBS Lett. 1991; 283: 199–202
  • McKinley D., Wu Q., Yang-Feng T., Yang Y.C. Genomic sequence and chromosomal location of human interleukin-11(IL11). Genomics 1992; 13: 814–819
  • Yin T., Miyazawa K., Yang Y.C. Characterization of interleukin-11 receptor and protein tyrosine phosphorylation induced by interleukin-11 in mouse 3T3-L1 cells. J. Biol. Chem. 1992; 267: 8347–8351
  • Yang Y.C., Yin T. Interleukin-11 and its receptor. BioFactors 1992; 4: 15–21
  • Gearing D.P., Comeau M.R., Friend D.J., Gimpel S.D., Thut C.J., McGourty J., Brasher K.K., King J.A., Gillis S., Mosley B., Ziegler S.F., David C. The IL-6 signal transducer gp130: An oncostatin M receptor and affinity converter for the LIF receptor. Science 1992; 255: 1434–1437
  • Ip N.Y., Nye S.H., Boulton T.G., Davis S., Taga Y., Li Y., Birre S.J., Yasukawa K., Kishimoto Ackerson D.J., Stahl N., Yancopoulos G.D. CNTF and LIF act on neuronal cells via shared signaling pathways that involve the IL-6 signal transducing receptor component gp130. Cell 1991; 69: 1121–1132
  • Nakahata T., Ogawa M. Identification in culture of a class of hemopoietic colony forming units with extensive capability to self renew and generate multipotential hemopoietic colonies. Proc. Natl. Acad. Sci. USA 1982; 79: 3843–3847
  • Suda T., Suka J., Ogawa M. Proliferative kinetics and differentiation of murine blast colonies in culture: Evidence for variable Go periods and constant doubling rates of early hemopoietic progenitors. J. Cell. Physiol. 1983; 117: SOS–SIS
  • Idebuchi K., Wong G.G., Clark S.C., Ihle J.N., Hirai Y., Ogawa M. Interleukin-6 enhancement of in-terleukin-3-dependent proliferation of multipotential hemopoietic progenitors. Proc. Natl. Acad. Sci. USA 1987; 84: 9035–9039
  • Idebuchi K., Clark S.C., Ihle J.N., Souza L.M., Ogawa M. Granulocyte colony-stimulating factor enhances interleukin-3-dependent proliferation of multi-potential hemopoietic progenitors. Proc. Natl. Acad. Sci. USA 1988; 85: 3445–3449
  • Musashi M., Yang Y.C., Paul S.R., Clark S.C., Sudo T., Ogawa M. Direct and synerfistic effects of interleukin 11 on murine hemopoiesis in culture. Proc. Natl. Acad. Sci. USA 1991; 88: 765–769
  • Musashi M., Clark S.C., Sudo T., Urdal D.L., Ogawa M. Synergistic interactions between interleukin-11 and interleukin-4 in support of proliferation of primitive hematopoietic progenitors of mice. Blood 1991; 78: 1448–1451
  • Schibler K.R., Yang Y.C., Christensen R.D. Effect of interleukin-11 on cycling status and colongenic maturation of fetal and adult hematopoietic progenitors. Blood 1992; 80: 900–903
  • Hu J.P., Cesano A., Santoli D., Clark S.C., Hoang T. Effects of interleukin-11 on the proliferation and cell cycle status of myeloid leukemic cells. Blood 1993; 81: 1583–1592
  • Yonemura Y., Kawakita M., Masuda T., Fujimoto K., Rata K., Takatsuki K. Synergistic effects of interleukin 3 and interleukin-11 on murine megakaryopoiesis in serum-free culture. Br. J. Haematol. 1992; 20: 1011–1016
  • Teramura M., Kobayashi S., Hoshino S., Oshimi K., Mizoguchi H. Interleukin-11 enhances human megakaryocytopoiesis in vitro. Blood 1992; 79: 327–331
  • Bruno E., Briddell R.A., Cooper R.J., Hoffman R. Effects of recombinant interleukin 11 on human megakaryocyte progenitor cells. Exp. Hematol. 1991; 19: 378–381
  • Teramura M., Katahira J., Hoshino S., Motoji T., Oshimi K., Mizoguchi H. Clonal growth of human megakaryocyte progenitors in serum-free-cultures: Effect of recombinant human interleukin 3. Exp. Hematol. 1988; 16: 843–848
  • Teramura M., Katahira J., Hoshino S., Motoji T., Oshimi K., Mizoguchi H. Effect of recombinant hemopoietic growth factors on human megakaryocyte colony formation in serum-free cultures. Exp. Hematol. 1989; 17: 1011–1016
  • Ganser A., Lindemann A., Seipelt G., Ottmann O.G., Herrmann F., Eder M., Frisch H., Schulz G., Miertels-Mann R., Hoelzer D. Effects of recombinant human interleukin-3 in patients with normal hematopoiesis and in patients with bone marrow failure. Blood 1990; 76: 666–676
  • Ishibashi T., Kimura H., Uchida T., Kariyone S., Freise P., Burstein S.A. Human interleukin 6 is a direct promoter of maturation of megakaryocytes in vitro. Proc. Natl. Acad. Sci. USA 1989; 86: 5953–5957
  • Ishibashi T., Kimura H., Shikama Y., Uchida T., Kariyone S., Hirano T., Kishimoto T., Takatsuki F., Akiyama Y. Interleukin 6 is a potent thrombopoietic factor in vivo in mice. Blood 1989; 74: 1241–1244
  • Mazur E.M., Cohen J.L., Wong G.G., Clark S.C. Modest stimulatory effect of recombinant human GM-CSF on colony growth from peripheral blood human megakaryocyte colony formation. Exp. Hematol. 1987; 16: 1128–1133
  • Vannucchi A.M., Frossi A., Rafanelli D. In vivo stimulation of megakaryocytopoiesis by granulocyte-macrophage colony stimulating factor. Blood 1990; 76: 1473–1478
  • Burstein S.A., Mei R., Henthorn J. Recombinant human leukemia inhibitory factor (LIF) and interleukin-11 (IL-11) promote murine and human megakaryocytopoiesis in vitro. Blood 1990; 76(Suppl. 1)450a
  • Metcalf D., Nicola N.A., Gearing D.P. Effects of injected leukemia inhibitory factor on hematopoietic and other tissues in mice. Blood 1990; 76: 50–56
  • Kobayashi S., Teramura M., Sugawara I., Oshimi K., Mizoguchi H. Interleukin-11 acts as an autocrine growth factor for human megakaryoblastic cell lines. Blood 1993; 81: 889–893
  • Quesniaux V. F. J., Clark S.C., Turner K., Fagg B. Interleukin-11 stimulated multiple phases of erythropoiesis in vitro. Blood 1992; 80: 1218–1223
  • Yin T., Schendel P., Yang Y.C. Enhancement of in vitro and in vivo antigen-specific antibody responses by interleukin 11. J. Exp. Med. 1992; 175: 211–216
  • Anderson K.C., Morimot C., Paul S.R., Chquhan D., Williams D., Cochran M., Barut B.A. Interleukin-11 promotes accessory cell-dependent B-cell differentiation in humans. Blood 1992; 80: 2797–2804
  • Paul S.R., Barut B.A., Bennett F., Cochran M.A., Anderson K.C. Lack of a role of interleukin 11 in the growth of multiple myeloma. Leuk. Res. 1992; 16: 247–252
  • Mehler M.F., Rozental R., Dougherty M., Spray D.C., Kessler J.A. Cytokine regulation of neuronal differentiation of hippocampal progenitor cells. Nature 1993; 362: 62–65
  • Baumann H., Schendel P. Interleukin-11 regulate the hepatic expression of the same plasma protein genes as interleukin-6. J. Biol. Chem. 1991; 266: 20424–20427
  • Yonemura Y., Kawakita M., Masuda T., Fujimoto K., Takatsuki K. Effect of recombinant human interleukin-11 on rat megakaryopoiesis and thrombopoiesis in vivo: Comparative study with interleukin-6. Br. J. Haematol. 1993; 84: 16–23
  • Neben T.Y., Loebelenz J., Hayes L., McCarthy K., Stoudemire J., Schaub R., Goldman S.J. Recombinant human interleukin-11 stimulates megakaryocytopoiesis and increases peripheral platelets in normal and sple-nectomized mice. Blood 1993; 81: 901–908
  • Hangoc G., Yin T., Cooper S., Schendel P., Yang Y.C., Broxmeyer H.E. In vivo effects of recombinant interleukin-11 on myelopoiesis in mice. Blood 1992; 81: 965–972
  • Du X.X., Neben T., Goldmann S., Williams D.A. Effects of recombinant human interleukin-11 on he matopoietic reconstitution in transplant mice: Acceleration of recovery of peripheral blood neutrophils and platelets. Blood 1993; 81: 27–34

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