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配体结合对视黄酸受体RXR和RAR在溶液中的缔合特性及构象的影响。

Effects of ligand binding on the association properties and conformation in solution of retinoic acid receptors RXR and RAR.

作者信息

Egea P F, Rochel N, Birck C, Vachette P, Timmins P A, Moras D

机构信息

Laboratoire de Biologie et Génomique Structurales, Institut de Génétique et Biologie Moléculaire et Cellulaire, CNRS/INSERM/ULP/Collège de France, Parc d'Innovation BP163 1 rue Laurent Fries, 67404 Illkirch cedex, France.

出版信息

J Mol Biol. 2001 Mar 23;307(2):557-76. doi: 10.1006/jmbi.2000.4409.

Abstract

In higher eukaryotes, vitamin A derived metabolites such as 9-cis and all-trans retinoic acid (RA), are involved in the regulation of several essential physiological processes. Their pleiotropic physiological effects are mediated through direct binding to cognate nuclear receptors RXRs and RARs that act as regulated transcription factors belonging to the superfamily of nuclear hormone receptors. Hormone binding to the structurally conserved ligand-binding domain (LBD) of these receptors triggers a conformational change that principally affects the conserved C-terminal transactivation helix H12 involved in transcriptional activation. We report an extensive biophysical solution study of RAR alpha, RXR alpha LBDs and their corresponding RXR alpha/RAR alpha LBD heterodimers combining analytical ultracentrifugation (AUC), small-angle X-ray and neutron scattering (SAXS and SANS) and ab initio three-dimensional shape reconstruction at low resolution. We show that the crystal structures of RXRs and RARs LBDs correlate well with the average conformations observed in solution. Furthermore we demonstrate the effects of 9-cisRA and all-transRA binding on the association properties and conformations of RXR alpha and RAR alpha LBDs in solution. The present study shows that in solution RAR alpha LBD behaves as a monomer in both unliganded and liganded forms. It confirms the existence in solution of a ligand-induced conformational change towards a more compact form of the LBD. It also confirms the stability of the predicted RXR alpha/RAR alpha LBD heterodimers in solution. SAS measurements performed on three different types of RXR alpha/RAR alpha LBD heterodimers (apo/apo, apo/holo and holo/holo) with respect to their ligand-binding site occupancy show the existence of three conformational states depending on the progressive binding of RA stereoisomers on RAR alpha and RXR alpha LBD subunits in the heterodimeric context. These results suggest that the subunits are structurally independent within the heterodimers. Our study also underlines the particular behaviour of RXR alpha LBD. In solution unliganded RXR alpha LBD is observed as two species that are unambiguously identified as homotetramers and homodimers. Molecular modelling combined with SAS data analysis allows us to propose a structural model for this autorepressed apo-tetramer. In contrast to the monomeric state observed in the crystal structure, our data show that in solution active holo-RXR alpha LBD bound to 9-cisRA is a homodimer regardless of the protein concentration. This study demonstrates the crucial role of ligands in the regulation of homodimeric versus heterodimeric association state of RXR in the NR signalling pathways.

摘要

在高等真核生物中,维生素A衍生的代谢产物,如9-顺式和全反式视黄酸(RA),参与多种重要生理过程的调节。它们的多效生理作用是通过直接结合同源核受体RXR和RAR来介导的,这些受体作为受调控的转录因子,属于核激素受体超家族。激素与这些受体结构保守的配体结合域(LBD)结合会引发构象变化,主要影响参与转录激活的保守C末端反式激活螺旋H12。我们结合分析超速离心(AUC)、小角X射线和中子散射(SAXS和SANS)以及低分辨率从头三维形状重建,对RARα、RXRα LBD及其相应的RXRα/RARα LBD异二聚体进行了广泛的生物物理溶液研究。我们表明,RXR和RAR LBD的晶体结构与溶液中观察到的平均构象密切相关。此外,我们证明了9-顺式视黄酸和全反式视黄酸结合对溶液中RXRα和RARα LBD的缔合性质和构象的影响。本研究表明,在溶液中,RARα LBD在未结合配体和结合配体的形式下均表现为单体。它证实了溶液中存在配体诱导的构象变化,使LBD形成更紧凑的形式。它还证实了预测的RXRα/RARα LBD异二聚体在溶液中的稳定性。对三种不同类型的RXRα/RARα LBD异二聚体(无配体/无配体、无配体/有配体和有配体/有配体)进行的SAS测量,关于它们的配体结合位点占据情况,表明存在三种构象状态,这取决于视黄酸立体异构体在异二聚体环境中对RARα和RXRα LBD亚基的逐步结合。这些结果表明,亚基在异二聚体内在结构上是独立的。我们的研究还强调了RXRα LBD的特殊行为。在溶液中,未结合配体的RXRα LBD被观察为两种物种,明确鉴定为同四聚体和同二聚体。分子建模结合SAS数据分析使我们能够提出这种自抑制无配体四聚体的结构模型。与晶体结构中观察到的单体状态相反,我们的数据表明,在溶液中,与9-顺式视黄酸结合的活性有配体RXRα LBD是同二聚体,与蛋白质浓度无关。这项研究证明了配体在NR信号通路中RXR同二聚体与异二聚体缔合状态调节中的关键作用。

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