组织特异性因子GATA-1的水平影响细胞周期机制

David Whyatt, Alar Karis, Inge Harkes, Anton Verkerk, Nynke Gillemans, Andrew Elefanty, Gino Vairo, Rob Ploemacher, Frank Grosveld, Sjaak Philipsen
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引用次数: 81

摘要

GATA-1是一种组织特异性dna结合蛋白,含有两个锌指状结构域。它主要在红细胞中表达。GATA-1的一致结合位点已经在所有红细胞特异性基因的调控元件中被发现。GATA-1蛋白是红细胞在原红细胞阶段后分化所必需的。在本文中,我们证明了GATA-1在小鼠红细胞白血病(MEL)细胞中的过表达可减轻dmso诱导的终末红细胞分化。因此,没有诱导珠蛋白基因转录,细胞不会在细胞周期的G1期停滞。此外,我们证明GATA-1在非转化红细胞前体中的表达也会影响它们的增殖能力和终末分化,通过成人珠蛋白基因转录检测。为了深入了解这种作用的机制,我们研究了dmso诱导分化过程中细胞周期进程调节因子的水平和活性。在诱导对照组和过表达gata -1的MEL细胞时,观察到细胞周期蛋白d依赖性激酶活性降低。然而,细胞周期蛋白e依赖性激酶活性在对照组中下降了20倍以上,而在诱导后过表达gata -1的MEL细胞中下降了不到2倍。因此GATA-1可能通过调节周期蛋白e依赖性激酶活性发挥作用。我们还发现GATA-1在体外与视网膜母细胞瘤蛋白结合,但不与相关蛋白p107结合,这可能表明GATA-1在体内与细胞周期机制的特定成员直接相互作用。我们得出结论,GATA-1通过影响细胞周期装置,在分化或增殖方面调节细胞命运。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The level of the tissue-specific factor GATA-1 affects the cell-cycle machinery

GATA-1 is a tissue-specific DNA-binding protein containing two zinc-finger-like domains. It is expressed predominantly in erythrocytes. Consensus binding sites for GATA-1 have been found in the regulatory elements of all erythroid-specific genes examined. GATA-1 protein is required for erythroid differentiation beyond the proerythroblast stage. In this paper, we demonstrate that the overexpression of GATA-1 in murine erythroleukaemia (MEL) cells alleviates DMSO-induced terminal erythroid differentiation. Hence, there is no induction of globin gene transcription and the cells do not arrest in the G1 phase of the cell cycle. Furthermore, we demonstrate that expression of GATA-1 in non-transformed erythroid precursors also affects their proliferative capacity and terminal differentiation, as assayed by adult globin gene transcription. To gain insight into the mechanism of this effect, we studied the levels and activities of regulators of cell-cycle progression during DMSO-induced differentiation. A decrease in cyclin D-dependent kinase activity was observed during the induction of both control and GATA-1-overexpressing MEL cells. However, cyclin E-dependent kinase activity decreased more than 20-fold in control but less than 2-fold in GATA-1-overexpressing MEL cells upon induction. Thus GATA-1 may exert its effects by regulating cyclin E-dependent kinase activity. We also show that GATA-1 binds to the retinoblastoma protein in vitro, but not to the related protein p107, which may indicate that GATA-1 interacts directly with specific members of the cell-cycle machinery in vivo. We conclude that GATA-1 regulates cell fate, in terms of differentiation or proliferation, by affecting the cell-cycle apparatus.

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