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mHDA1/HDAC5组蛋白去乙酰化酶与MEF2A转录活性相互作用并对其产生抑制作用。

mHDA1/HDAC5 histone deacetylase interacts with and represses MEF2A transcriptional activity.

作者信息

Lemercier C, Verdel A, Galloo B, Curtet S, Brocard M P, Khochbin S

机构信息

Laboratoire de Biologie Moléculaire et Cellulaire de la Différenciation, INSERM U309, Equipe, Chromatine et Expression des Gènes, Institut Albert Bonniot, Faculté de Médecine, Domaine de la Merci, 38706 La Tronche Cedex, France.

出版信息

J Biol Chem. 2000 May 19;275(20):15594-9. doi: 10.1074/jbc.M908437199.

DOI:10.1074/jbc.M908437199
PMID:10748098
Abstract

Recently we identified a new family of histone deacetylases in higher eukaryotes related to yeast HDA1 and showed their differentiation-dependent expression. Data presented here indicate that HDAC5 (previously named mHDA1), one member of this family, might be a potent regulator of cell differentiation by interacting specifically with determinant transcription factors. We found that HDAC5 was able to interact in vivo and in vitro with MEF2A, a MADS box transcription factor, and to strongly inhibit its transcriptional activity. Surprisingly, this repression was independent of HDAC5 deacetylase domain. The N-terminal non-deacetylase domain of HDAC5 was able to ensure an efficient repression of MEF2A-dependent transcription. We then mapped protein domains involved in the HDAC5-MEF2A interaction and showed that MADS box/MEF2-domain region of MEF2A interacts specifically with a limited region in the N-terminal part of HDAC5 which also possesses a distinct repressor domain. These data show that two independent class II histone deacetylases HDAC4 and HDAC5 are able to interact with members of the MEF2 transcription factor family and regulate their transcriptional activity, thus suggesting a critical role for these deacetylases in the control of cell proliferation/differentiation.

摘要

最近,我们在高等真核生物中鉴定出了一个与酵母HDA1相关的组蛋白去乙酰化酶新家族,并展示了它们的分化依赖性表达。此处呈现的数据表明,该家族的一个成员HDAC5(以前称为mHDA1)可能通过与决定性转录因子特异性相互作用,成为细胞分化的有效调节因子。我们发现HDAC5能够在体内和体外与MADS盒转录因子MEF2A相互作用,并强烈抑制其转录活性。令人惊讶的是,这种抑制作用独立于HDAC5去乙酰化酶结构域。HDAC5的N端非去乙酰化酶结构域能够有效抑制MEF2A依赖性转录。然后,我们绘制了参与HDAC5-MEF2A相互作用的蛋白质结构域,并表明MEF2A的MADS盒/MEF2结构域区域与HDAC5 N端部分的一个有限区域特异性相互作用,该区域也具有一个独特的抑制结构域。这些数据表明,两种独立的II类组蛋白去乙酰化酶HDAC4和HDAC5能够与MEF2转录因子家族成员相互作用并调节其转录活性,从而表明这些去乙酰化酶在控制细胞增殖/分化中起关键作用。

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