4.7 Article

c-kit is required for cardiomyocyte terminal differentiation

期刊

CIRCULATION RESEARCH
卷 102, 期 6, 页码 677-685

出版社

LIPPINCOTT WILLIAMS & WILKINS
DOI: 10.1161/CIRCRESAHA.107.161737

关键词

c-kit; cardiomyocyte; terminal differentiation; cardiac stem cells; pressure overload

资金

  1. NHLBI NIH HHS [R01HL79040, R01 HL079040, R01 HL079040-01A1, P50 HL077100, P50 HL077100-01, P50HL077100, R01 HL079040-02, R01 HL079040-05, R01 HL079040-03, R01 HL127726, R01 HL079040-04] Funding Source: Medline

向作者/读者索取更多资源

c-kit, the transmembrane tyrosine kinase receptor for stem cell factor, is required for melanocyte and mast cell development, hematopoiesis, and differentiation of spermatogonial stem cells. We show here that in the heart, c-kit is expressed not only by cardiac stem cells but also by cardiomyocytes, commencing immediately after birth and terminating a few days later, coincident with the onset of cardiomyocyte terminal differentiation. To examine the function of c-kit in cardiomyocyte terminal differentiation, we used compound heterozygous mice carrying the W ( null) and W-v ( dominant negative) mutations of c-kit. In vivo, adult W/W-v cardiomyocytes are phenotypically indistinguishable from their wild-type counterparts. After acute pressure overload adult W/W-v cardiomyocytes reenter the cell cycle and proliferate, leading to left ventricular growth; furthermore in transgenic mice with cardiomyocyte-restricted overexpression of the dominant negative Wv mutant, pressure overload causes cardiomyocytes to reenter the cell cycle. In contrast, in wild-type mice left ventricular growth after pressure overload results mainly from cardiomyocyte hypertrophy. Importantly, W/ Wv mice with pressure overload - induced cardiomyocyte hyperplasia had improved left ventricular function and survival. In W/ Wv mice, c-kit dysfunction also resulted in an approximate to 14-fold decrease (P < 0.01) in the number of c-kit(+)/GATA4(+) cardiac progenitors. These findings identify novel functions for c-kit: promotion of cardiac stem cell differentiation and regulation of cardiomyocyte terminal differentiation.

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