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Kenneth Kaushansky

Publications and source records attributed to Kenneth Kaushansky.

40 records · Page 3Linked to original sources

Thrombopoietin: from theory to reality.

Much is now known about the physiology of platelets and their role in primary hemostasis; however, until recently far less was understood about their immediate precursors, marrow megakaryocytes (MKs). With the cloning and characterization of thrombopoietin (TPO), the principle regulator of the growth and development of MKs, research has been rapid and broad-based. In several laboratories TPO was cloned based on it's binding to the product of the proto-oncogene c-mpl, at the time an orphan cytokine receptor, and was subsequently found to affect nearly all aspects of thrombopoiesis. Many of the molecular pathways that mediate TPO action have been explored. Like all other members of the hematopoietic cytokine receptor family upon hormone binding members of the JAK family of kinases are activated, which, in turn, phosphorylate the TPO receptor, generating docking sites for second messengers that affect multiple signaling pathways. Ultimately, cellular proliferative and anti-apoptotic mechanisms are initiated, increasing MK numbers, and a process termed endomitosis (EnM) begins, generating large, highly polyploid cells. The net result is the expansion of cells that give rise to mature platelets, a process that can be accentuated by the therapeutic administration of the hormone to thrombocytopenic patients.

Humans↗

Thrombopoietin: a pan-hematopoietic cytokine.

The recent discovery of thrombopoietin has enhanced our understanding of both hematopoiesis and platelet production. Thrombopoietin supports hematopoietic stem cell survival and expansion as well as promoting all aspects of megakaryocyte development. The hormone displays many structural similarities to other members of the hematopoietic cytokine family and some notable differences, and regulation of its expression requires both receptor-mediated removal and other mechanisms. Thrombopoietin induces receptor dimerization and tyrosine phosphorylation, and a series of signaling events including activation of JAK/STAT, Shc/Ras/MAPK and PI3K/Akt; these pathways overlap with those induced by other cytokines, but the differences that lead to the unique biological effects of the hormone are gradually being uncovered. Our growing appreciation of how cytokine signaling pathways are translated into megakaryocyte development is discussed.

Animals↗

Thrombopoietin expands hematopoietic stem cells after transplantation.

Multiple lines of evidence indicate that thrombopoietin (TPO) contributes to the development of hematopoietic stem cells (HSC), supporting their survival and proliferation in vitro. To determine whether TPO supports the impressive expansion of HSC observed following transplantation, we transplanted normal marrow cells into lethally irradiated Tpo(-/-) and Tpo(+/+) mice and quantified HSC self-renewal and expansion and hematopoietic progenitor cell homing. Although essentially identical numbers of marrow-associated colony forming unit-culture (a surrogate measure of stem cell homing) were observed in each type of recipient 24 hours following transplantation, we found that a minimum of fourfold greater numbers of marrow cells were required to radioprotect Tpo-null mice than to radioprotect controls. To assess whether long-term repopulating (LTR) HSCs self-renew and expand in Tpo(-/-) recipients or controls, we performed limiting-dilution secondary transplants using donor cells from the Tpo(-/-) or Tpo(+/+) recipients 5-7.5 weeks following primary transplantation. We found that LTR HSCs expand to levels 10-20 times greater within this time period in normal recipients than in Tpo-null mice and that physiologically relevant amounts of TPO administered to the Tpo(-/-) recipients could substantially correct this defect. Our results establish that TPO greatly promotes the self-renewal and expansion of HSCs in vivo following marrow transplantation.

Animals↗