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通过螺旋8-9环在ERRα同二聚体界面与PGC-1α结合表面之间进行通讯。

Communication between the ERRalpha homodimer interface and the PGC-1alpha binding surface via the helix 8-9 loop.

作者信息

Greschik Holger, Althage Magnus, Flaig Ralf, Sato Yoshiteru, Chavant Virginie, Peluso-Iltis Carole, Choulier Laurence, Cronet Philippe, Rochel Natacha, Schüle Roland, Strömstedt Per-Erik, Moras Dino

机构信息

Département de Biologie et Génomique Structurales, Institut de Génétique et de Biologie Moléculaire et Cellulaire, Illkirch, France.

出版信息

J Biol Chem. 2008 Jul 18;283(29):20220-30. doi: 10.1074/jbc.M801920200. Epub 2008 Apr 25.

Abstract

Although structural studies on the ligand-binding domain (LBD) have established the general mode of nuclear receptor (NR)/coactivator interaction, determinants of binding specificity are only partially understood. The LBD of estrogen receptor-alpha (ERalpha), for example, interacts only with a region of peroxisome proliferator-activated receptor coactivator (PGC)-1alpha, which contains the canonical LXXLL motif (NR box2), whereas the LBD of estrogen-related receptor-alpha (ERRalpha) also binds efficiently an untypical, LXXYL-containing region (NR box3) of PGC-1alpha. Surprisingly, in a previous structural study, the ERalpha LBD has been observed to bind NR box3 of transcriptional intermediary factor (TIF)-2 untypically via LXXYL, whereas the ERRalpha LBD binds this region of TIF-2 only poorly. Here we present a new crystal structure of the ERRalpha LBD in complex with a PGC-1alpha box3 peptide. In this structure, residues N-terminal of the PGC-1alpha LXXYL motif formed contacts with helix 4, the loop connecting helices 8 and 9, and with the C terminus of the ERRalpha LBD. Interaction studies using wild-type and mutant PGC-1alpha and ERRalpha showed that these contacts are functionally relevant and are required for efficient ERRalpha/PGC-1alpha interaction. Furthermore, a structure comparison between ERRalpha and ERalpha and mutation analyses provided evidence that the helix 8-9 loop, which differs significantly in both nuclear receptors, is a major determinant of coactivator binding specificity. Finally, our results revealed that in ERRalpha the helix 8-9 loop allosterically links the LBD homodimer interface with the coactivator cleft, thus providing a plausible explanation for distinct PGC-1alpha binding to ERRalpha monomers and homodimers.

摘要

尽管对配体结合域(LBD)的结构研究已经确立了核受体(NR)/共激活因子相互作用的一般模式,但结合特异性的决定因素仍仅得到部分理解。例如,雌激素受体α(ERα)的LBD仅与过氧化物酶体增殖物激活受体共激活因子(PGC)-1α的一个区域相互作用,该区域包含典型的LXXLL基序(NR盒2),而雌激素相关受体α(ERRα)的LBD也能有效结合PGC-1α的一个非典型的、含LXXYL的区域(NR盒3)。令人惊讶的是,在先前的一项结构研究中,观察到ERα的LBD通过LXXYL以非典型方式结合转录中介因子(TIF)-2的NR盒3,而ERRα的LBD与TIF-2的该区域结合很差。在此,我们展示了ERRα的LBD与PGC-1α盒3肽复合物的新晶体结构。在该结构中,PGC-1α的LXXYL基序N端的残基与螺旋4、连接螺旋8和9的环以及ERRα的LBD的C端形成接触。使用野生型和突变型PGC-1α以及ERRα进行的相互作用研究表明,这些接触在功能上是相关的,并且是有效的ERRα/PGC-1α相互作用所必需的。此外,ERRα与ERα之间的结构比较以及突变分析提供了证据,表明在两种核受体中差异显著的螺旋8-9环是共激活因子结合特异性的主要决定因素。最后,我们的结果表明,在ERRα中,螺旋8-9环通过变构作用将LBD同二聚体界面与共激活因子裂隙连接起来,从而为PGC-1α与ERRα单体和同二聚体的不同结合提供了一个合理的解释。

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