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The acidic tail of HMGB1 regulates its secondary structure and conformational flexibility: A circular dichroism and molecular dynamics simulation study

机译:HMGB1的酸性尾部调节其二级结构和构象柔韧性:圆二色性和分子动力学模拟研究

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摘要

High mobility group box 1 (HMGB1) is a damage-associated molecular pattern (DAMP) molecule that triggers the progression of several pro-inflammatory diseases such as diabetes, Alzheimer’s disease and cancer, by inducing signals upon interaction with the receptors such as the receptor for advanced glycation end-products (RAGE) and toll-like receptors (TLRs). The acidic C-terminal tail of HMGB1 is an intrinsically disordered region of the protein which is known to determine the interaction of HMGB1 to DNA and histones. This study characterizes its structural properties using a combination of circular dichroism (CD) and molecular dynamics (MD) simulations. The full-length and tail-less forms of HMGB1 were compared to rationalise the role of the acidic tail in maintaining the stability of the entire structure of HMGB1 in atomistic detail. Consistent with experimental data, the acidic tail was predicted to adopt an extended conformation that allows it to make a range of hydrogen-bonding and electrostatic interactions with the box-like domains that stabilize the overall structure of HMGB1. Absence of the acidic tail was predicted to increase structural fluctuations of all amino acids, leading to changes in secondary structure from α-helical to more hydrophilic turns along with increased exposure of multiple amino acids to the surrounding solvent. These structural changes reveal the intrinsic conformational dynamics of HMGB1 that are likely to affect the accessibility of its receptors.
机译:高迁移率族框1(HMGB1)是一种损伤相关分子模式(DAMP)分子,通过与受体(例如受体)相互作用诱导信号,从而触发多种促炎性疾病(例如糖尿病,阿尔茨海默氏病和癌症)的进展用于高级糖基化终产物(RAGE)和通行费样受体(TLR)。 HMGB1的酸性C末端尾巴是蛋白质的固有无序区域,已知该区域决定HMGB1与DNA和组蛋白的相互作用。这项研究结合圆二色性(CD)和分子动力学(MD)模拟来表征其结构特性。比较了HMGB1的全长和无尾形式,以合理化酸性尾部在保持原子细节上HMGB1整个结构稳定性方面的作用。与实验数据一致,预计酸性尾巴将采用扩展的构象,从而使其能够与稳定HMGB1整体结构的盒状结构域进行一系列氢键和静电相互作用。预计不存在酸性尾巴会增加所有氨基酸的结构波动,从而导致二级结构从α螺旋转变为更亲水的转向,同时多个氨基酸暴露于周围的溶剂也会增加。这些结构变化揭示了HMGB1的固有构象动力学,这很可能会影响其受体的可及性。

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