首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Only subtle protein conformational adaptations are required for ligand binding to thyroid hormone receptors: Simulations using a novel multipoint steered molecular dynamics approach
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Only subtle protein conformational adaptations are required for ligand binding to thyroid hormone receptors: Simulations using a novel multipoint steered molecular dynamics approach

机译:配体与甲状腺激素受体的结合仅需要微妙的蛋白质构象适应:使用新型多点操纵分子动力学方法进行的模拟

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摘要

Thyroid hormone receptors (TR) are hormone-dependent transcription regulators that play a major role in human health, development, and metabolic functions. The thyroid hormone resistance syndrome, diabetes, obesity, and some types of cancer are just a few examples of important diseases that are related to TR malfunctioning, particularly impaired hormone binding. Ligand binding to and dissociation from the receptor ultimately control gene transcription and, thus, detailed knowledge of binding and release mechanisms are fundamental for the comprehension of the receptor's biological function and development of pharmaceuticals. In this work, we present the first computational study of ligand entry into the ligand binding domain (LBD) of a nuclear receptor. We report molecular dynamics simulations of ligand binding to TRs using a generalization of the steered molecular dynamics technique designed to perform single-molecule pulling simulations along arbitrarily nonlinear driving pathways. We show that only gentle protein movements and conformational adaptations are required for ligand entry into the LBDs and that the magnitude of the forces applied to assist ligand binding are of the order of the forces involved in ligand dissociation. Our simulations suggest an alternative view for the mechanisms ligand binding and dissociation of ligands from nuclear receptors in which ligands can simply diffuse through the protein surface to reach proper positioning within the binding pocket. The proposed picture indicates that the large-amplitude protein motions suggested by the apo- and holo-RXR alpha crystallographic structures are not required, reconciling conformational changes of LBDs required for ligand entry with other nuclear receptors apo-structures that resemble the ligand-bound LBDs.
机译:甲状腺激素受体(TR)是激素依赖性转录调节因子,在人类健康,发育和代谢功能中起主要作用。甲状腺激素抵抗综合症,糖尿病,肥胖症和某些类型的癌症只是与TR功能障碍相关的重要疾病的一些例子,特别是激素结合受损。配体与受体的结合和解离最终控制基因转录,因此,对结合和释放机制的详细了解对于理解受体的生物学功能和开发药物至关重要。在这项工作中,我们提出了配体进入核受体的配体结合域(LBD)的第一个计算研究。我们报告了配体结合到TRs的分子动力学模拟,使用了定向分子动力学技术的一般化,该技术旨在沿着任意非线性驱动路径执行单分子拉动模拟。我们表明,只有轻度的蛋白质运动和构象适应性才能使配体进入LBD,而协助配体结合的作用力的大小约为参与配体解离的作用力的大小。我们的模拟为配体结合和配体从核受体解离的机制提出了另一种观点,在配体中配体可以简单地扩散穿过蛋白质表面以达到在结合袋中的适当位置。拟议的图片表明,不需要载脂蛋白和全RXRα晶体结构建议的大幅度蛋白质运动,从而使配体进入所需的LBDs的构象变化与其他核受体的载脂蛋白结构(与配体结合的LBDs相似)相协调。

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