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模拟揭示了法尼醇X受体(FXR)铰链区在FXR-视黄酸X受体(RXR)核受体异二聚体中的独特作用。

Simulations reveal unique roles for the FXR hinge in the FXR-RXR nuclear receptor heterodimer.

作者信息

Yu Tracy, Biswas Arumay, Dube Namita, Okafor C Denise

出版信息

bioRxiv. 2024 Oct 10:2024.05.29.596427. doi: 10.1101/2024.05.29.596427.

Abstract

Nuclear receptors are multidomain transcription factors whose full-length quaternary architecture is poorly described and understood. Most nuclear receptors bind DNA as heterodimers or homodimers, which could encompass a variety of arrangements of the individual domains. Only a handful of experimental structures currently exist describing these architectures. Given that domain interactions and protein-DNA interactions within transcriptional complexes are tightly linked to function, understanding the arrangement of nuclear receptor domains on DNA is of utmost importance. Here, we employ modeling and molecular dynamics (MD) simulations to describe the structure of the full-length farnesoid X receptor (FXR) and retinoid X receptor alpha (RXR) heterodimer bound to DNA. Combining over 100 microseconds of atomistic MD simulations with enhanced sampling simulations, we characterize the dynamic behavior of eight FXR-RXR-DNA complexes, showing that these complexes support a range of quaternary architectures. Our simulations reveal critical roles for the hinge in the DNA-bound dimer in facilitating interdomain allostery, mediating DNA binding and driving the dynamic flexibility of the complex. These roles have been hard to appreciate previously due to experimental limitations in studying the flexible hinge. These studies provide a much-needed framework that will enable the field to obtain a complete understanding of nuclear receptor quaternary architectures.

摘要

核受体是多结构域转录因子,其全长四级结构的描述和理解都很有限。大多数核受体以异二聚体或同二聚体形式结合DNA,这可能包含各个结构域的多种排列方式。目前仅有少数实验结构描述了这些结构。鉴于转录复合物中的结构域相互作用和蛋白质-DNA相互作用与功能紧密相关,了解核受体结构域在DNA上的排列至关重要。在此,我们采用建模和分子动力学(MD)模拟来描述与DNA结合的全长法尼醇X受体(FXR)和视黄酸X受体α(RXR)异二聚体的结构。通过将超过100微秒的原子MD模拟与增强采样模拟相结合,我们对八个FXR-RXR-DNA复合物的动态行为进行了表征,表明这些复合物支持一系列四级结构。我们的模拟揭示了铰链在结合DNA的二聚体中在促进结构域间变构、介导DNA结合以及驱动复合物动态灵活性方面发挥关键作用。由于研究柔性铰链存在实验局限性,这些作用以前很难被认识到。这些研究提供了一个急需的框架,将使该领域能够全面了解核受体的四级结构。

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