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晶体状态下淀粉样形成肽的模拟。

Simulations of Amyloid-Forming Peptides in the Crystal State.

机构信息

Department of Cell and Molecular Biology, Uppsala University, Box 596, SE, 75124, Uppsala, Sweden.

出版信息

Protein J. 2023 Jun;42(3):192-204. doi: 10.1007/s10930-023-10119-3. Epub 2023 May 5.

Abstract

There still is little treatment available for amyloid diseases, despite their significant impact on individuals and the social and economic implications for society. One reason for this is that the physical nature of amyloid formation is not understood sufficiently well. Therefore, fundamental research at the molecular level remains necessary to support the development of therapeutics. A few structures of short peptides from amyloid-forming proteins have been determined. These can in principle be used as scaffolds for designing aggregation inhibitors. Attempts to this end have often used the tools of computational chemistry, in particular molecular simulation. However, few simulation studies of these peptides in the crystal state have been presented so far. Hence, to validate the capability of common force fields (AMBER19SB, CHARMM36m, and OPLS-AA/M) to yield insight into the dynamics and structural stability of amyloid peptide aggregates, we have performed molecular dynamics simulations of twelve different peptide crystals at two different temperatures. From the simulations, we evaluate the hydrogen bonding patterns, the isotropic B-factors, the change in energy, the Ramachandran plots, and the unit cell parameters and compare the results with the crystal structures. Most crystals are stable in the simulations but for all force fields there is at least one that deviates from the experimental crystal, suggesting more work is needed on these models.

摘要

尽管淀粉样变性疾病对个人和社会的经济影响重大,但目前针对这些疾病的治疗方法仍然有限。造成这种情况的一个原因是,人们对淀粉样形成的物理性质还没有足够的了解。因此,在分子水平上进行基础研究仍然是支持治疗方法开发的必要条件。已经确定了一些来自淀粉样蛋白形成蛋白的短肽的结构。这些肽原则上可以用作设计聚集抑制剂的支架。为此目的而进行的尝试通常使用计算化学工具,特别是分子模拟。然而,到目前为止,很少有关于这些肽在晶体状态下的模拟研究。因此,为了验证常见力场(AMBER19SB、CHARMM36m 和 OPLS-AA/M)能够深入了解淀粉样肽聚集物的动力学和结构稳定性的能力,我们在两个不同温度下对 12 种不同的肽晶体进行了分子动力学模拟。通过模拟,我们评估了氢键模式、各向同性 B 因子、能量变化、Ramachandran 图谱以及晶胞参数,并将结果与晶体结构进行了比较。大多数晶体在模拟中是稳定的,但对于所有力场,至少有一种晶体与实验晶体存在偏差,这表明这些模型还需要进一步研究。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/03af/10264543/4aa0c87ce7f7/10930_2023_10119_Fig1_HTML.jpg

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