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用于蛋白质模拟的可转移力场评估证明了对无序状态和二级结构倾向的描述有所改进,并暗示多蛋白系统是优化的下一个挑战。

Assessment of transferable forcefields for protein simulations attests improved description of disordered states and secondary structure propensities, and hints at multi-protein systems as the next challenge for optimization.

作者信息

Abriata Luciano A, Dal Peraro Matteo

机构信息

Institute of Bioengineering, School of Life Sciences, École Polytechnique Fédérale de Lausanne, CH-1015 Lausanne, Switzerland.

Protein Production and Structure Core Facility, School of Life Sciences, École Polytechnique Fédérale de Lausanne, CH-1015 Lausanne, Switzerland.

出版信息

Comput Struct Biotechnol J. 2021 Apr 25;19:2626-2636. doi: 10.1016/j.csbj.2021.04.050. eCollection 2021.

Abstract

Continuous assessment of transferable forcefields for molecular simulations is essential to identify their weaknesses and direct improvement efforts. The latest efforts focused on better describing disordered proteins while retaining proper description of folded domains, important because forcefields of the previous generations produce overly compact disordered states. Such improvements should additionally alleviate the related problem of over-stabilized protein-protein interactions, which has been largely overlooked. Here we evaluated three state-of-the-art forcefields, current flagships of their respective developers, optimized for ordered and disordered proteins: CHARMM36m with its recommended corrected TIP3P* water, ff19SB with the recommended OPC water, and the 2019 a99SBdisp forcefield by D. E. Shaw Research with its modified TIP4P water; plus ff14SB with TIP3P as an example of the former generation of forcefields. Our evaluation entailed simulations of (i) multiple copies of a protein that is highly soluble yet undergoes weak dimerization, (ii) a disordered peptide with low, well-characterized alpha helical propensity, and (iii) a peptide known to form insoluble β-aggregates. Our results recapitulate ff14SB-TIP3P over-stabilizing aggregates and secondary structures and place a99SBdisp-TIP4PD at the other end predicting overly weak intermolecular interactions despite reasonably predicting secondary structure propensities. In-between, CHARMM36m-TIP3P* still over-stabilizes aggregates but predicts residue-wise alpha helical propensities in solution slightly better than ff19SB-OPC, while ff19SB-OPC poses the best prediction of weak dimerization of the soluble protein still predicting aggregation of the β-peptides. This independent assessment shows that the claimed forcefield improvements are real, but also that a right balance between noncovalent attraction and repulsion has not yet been reached. We thus propose developers to consider systems like those tested here in their forcefield tuning protocols. Last, the good performance of CHARMM36m-TIP3P* further shows that tuning 3-point water models might still be an alternative to the more costly 4-point models like OPC and TIP4PD.

摘要

持续评估用于分子模拟的可转移力场对于识别其弱点并指导改进工作至关重要。最新的努力集中在更好地描述无序蛋白质,同时保持对折叠结构域的恰当描述,这很重要,因为前几代力场会产生过度紧凑的无序状态。这样的改进还应缓解蛋白质 - 蛋白质相互作用过度稳定这一相关问题,而该问题在很大程度上被忽视了。在此,我们评估了三种最先进的力场,它们分别是各自开发者的当前旗舰产品,针对有序和无序蛋白质进行了优化:带有推荐的校正TIP3P水模型的CHARMM36m、带有推荐的OPC水模型的ff19SB,以及D. E. Shaw Research公司的2019年a99SBdisp力场及其修改后的TIP4P水模型;另外还评估了带有TIP3P水模型的ff14SB,作为前一代力场的示例。我们的评估包括对以下几种情况的模拟:(i) 一种高度可溶但会发生弱二聚化的蛋白质的多个副本;(ii) 一种具有低且特征明确的α螺旋倾向的无序肽;(iii) 一种已知会形成不溶性β聚集体的肽。我们的结果重现了ff14SB - TIP3P过度稳定聚集体和二级结构的情况,而a99SBdisp - TIP4PD则处于另一端,尽管能合理预测二级结构倾向,但预测分子间相互作用过弱。介于两者之间的是,CHARMM36m - TIP3P仍然过度稳定聚集体,但在溶液中预测残基水平的α螺旋倾向比ff19SB - OPC稍好,而ff19SB - OPC对可溶性蛋白质的弱二聚化预测最佳,同时仍能预测β肽的聚集。这种独立评估表明,所宣称的力场改进是真实的,但同时也表明在非共价吸引和排斥之间尚未达到正确的平衡。因此,我们建议开发者在其力场调整方案中考虑像这里测试的这类系统。最后,CHARMM36m - TIP3P*的良好性能进一步表明,调整三点水模型可能仍然是比OPC和TIP4PD等成本更高的四点模型的一种替代方案。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d708/8120800/863fc0fc1896/ga1.jpg

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