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Exploration of the Misfolding Mechanism of Transthyretin Monomer: Insights from Hybrid-Resolution Simulations and Markov State Model Analysis

机译:运甲状腺素蛋白单体错误折叠机制的探索:混合分辨率模拟和马尔可夫状态模型分析的见解

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摘要

Misfolding and aggregation of transthyretin (TTR) is widely known to be responsible for a progressive systemic disorder called amyloid transthyretin (ATTR) amyloidosis. Studies suggest that TTR aggregation is initiated by a rate-limiting dissociation of the homo-tetramer into its monomers, which can rapidly misfold and self-assemble into amyloid fibril. Thus, exploring conformational change involved in TTR monomer misfolding is of vital importance for understanding the pathogenesis of ATTR amyloidosis. In this work, microsecond timescale hybrid-resolution molecular dynamics (MD) simulations combined with Markov state model (MSM) analysis were performed to investigate the misfolding mechanism of the TTR monomer. The results indicate that a macrostate with partially unfolded conformations may serve as the misfolded state of the TTR monomer. This misfolded state was extremely stable with a very large equilibrium probability of about 85.28%. With secondary structure analysis, we found the DAGH sheet in this state to be significantly destroyed. The CBEF sheet was relatively stable and sheet structure was maintained. However, the F-strand in this sheet was likely to move away from E-strand and reform a new β-sheet with the H-strand. This observation is consistent with experimental finding that F and H strands in the outer edge drive the misfolding of TTR. Finally, transition pathways from a near native state to this misfolded macrostate showed that the conformational transition can occur either through a native-like β-sheet intermediates or through partially unfolded intermediates, while the later appears to be the main pathway. As a whole, we identified a potential misfolded state of the TTR monomer and elucidated the misfolding pathway for its conformational transition. This work can provide a valuable theoretical basis for understanding of TTR aggregation and the pathogenesis of ATTR amyloidosis at the atomic level.
机译:甲状腺素转运蛋白(TTR)的错误折叠和聚集是导致进行性全身疾病的原因,该疾病称为淀粉样蛋白甲状腺素转运蛋白(ATTR)淀粉样变性。研究表明,TTR聚集是由限速解离的同四聚体分解成其单体而引发的,该单体可以迅速错折叠并自组装成淀粉样原纤维。因此,探索涉及TTR单体错误折叠的构象变化对于理解ATTR淀粉样变性病的发病机理至关重要。在这项工作中,进行了微秒时标混合分辨率分子动力学(MD)模拟与马尔可夫状态模型(MSM)分析相结合,以研究TTR单体的错误折叠机制。结果表明,具有部分展开构象的大分子状态可以用作TTR单体的错误折叠状态。这种误折叠状态非常稳定,具有大约85.28%的非常大的平衡概率。通过二级结构分析,我们发现处于这种状态的DAGH板被严重破坏。 CBEF片材相对稳定并保持了片材结构。然而,该片中的F-链可能会从E-链移开,并用H-链重新形成新的β-片。该观察结果与实验发现一致,即外边缘的F和H链驱动了TTR的错误折叠。最后,从接近天然状态到错误折叠的大分子状态的过渡途径表明,构象过渡可以通过天然的β-折叠中间体或部分未折叠的中间体发生,而后者似乎是主要途径。总体而言,我们确定了TTR单体的潜在错误折叠状态,并阐明了其构象转变的错误折叠途径。这项工作可以为理解TTR聚集和ATTR淀粉样变性的发病机理提供一个有价值的理论基础。

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