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磷酸化无序蛋白的分子动力学模拟:力场比较。

Molecular Dynamics Simulations of Phosphorylated Intrinsically Disordered Proteins: A Force Field Comparison.

机构信息

Division of Theoretical Chemistry, Lund University, P.O. Box 124, SE-221 00 Lund, Sweden.

LINXS-Lund Institute of Advanced Neutron and X-ray Science, Scheelevägen 19, SE-223 70 Lund, Sweden.

出版信息

Int J Mol Sci. 2021 Sep 21;22(18):10174. doi: 10.3390/ijms221810174.

Abstract

Phosphorylation is a common post-translational modification among intrinsically disordered proteins and regions, which helps regulate function by changing the protein conformations, dynamics, and interactions with binding partners. To fully comprehend the effects of phosphorylation, computer simulations are a helpful tool, although they are dependent on the accuracy of the force field used. Here, we compared the conformational ensembles produced by Amber ff99SB-ILDN+TIP4P-D and CHARMM36m, for four phosphorylated disordered peptides ranging in length from 14-43 residues. CHARMM36m consistently produced more compact conformations with a higher content of bends, mainly due to more stable salt bridges. Based on comparisons with experimental size estimates for the shortest and longest peptide, CHARMM36m appeared to overestimate the compactness. The difference between the force fields was largest for the peptide showing the greatest separation between positively charged and phosphorylated residues, in line with the importance of charge distribution. For this peptide, the conformational ensemble did not change significantly upon increasing the ionic strength from 0 mM to 150 mM, despite a reduction of the salt-bridging probability in the CHARMM36m simulations, implying that salt concentration has negligible effects in this study.

摘要

磷酸化是无序蛋白质和区域中常见的一种翻译后修饰,它通过改变蛋白质构象、动力学以及与结合伴侣的相互作用来帮助调节功能。为了充分理解磷酸化的影响,计算机模拟是一种有用的工具,但它依赖于所使用力场的准确性。在这里,我们比较了 Amber ff99SB-ILDN+TIP4P-D 和 CHARMM36m 对四个长度在 14-43 个残基之间的磷酸化无序肽产生的构象集合。CHARMM36m 始终产生更紧凑的构象,具有更高含量的弯曲,主要是由于更稳定的盐桥。基于与最短和最长肽的实验尺寸估计值的比较,CHARMM36m 似乎高估了紧凑性。力场之间的差异对于带正电荷和磷酸化残基之间分离最大的肽最大,这与电荷分布的重要性一致。对于这种肽,尽管 CHARMM36m 模拟中的盐桥形成概率降低,但离子强度从 0mM 增加到 150mM 时构象集合并没有发生显著变化,这意味着在这项研究中盐浓度的影响可以忽略不计。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/54f3/8470740/0aa221df12b9/ijms-22-10174-g001.jpg

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