分子动力学模拟膜孔形成和稳定性的自由能。

IF 5.6 2区 化学 Q1 CHEMISTRY, MEDICINAL
Timothée Rivel, Denys Biriukov, Ivo Kabelka, Robert Vácha
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引用次数: 0

摘要

了解毛孔形成的分子机制对于阐明基本的生物学过程和制定治疗策略至关重要,例如设计药物输送系统和抗菌药物。虽然实验方法可以提供有价值的信息,但它们往往缺乏充分捕捉孔隙形成动态阶段所需的时间和空间分辨率。在这项研究中,我们提出了两个新的集体变量(CVs),旨在通过分子动力学(MD)模拟来表征膜孔行为,特别是其能量学。第一个CV──称为Full-Path──有效地追踪孔隙形成的成核阶段和膨胀阶段。第二个CV──Rapid──专门用于准确评估大孔隙极限下的孔隙膨胀,为评估各种条件下的膜线张力提供了快速可靠的方法。我们的结果清楚地表明,从我们的cv线张力预测是非常一致的。此外,这些预测在质量上与现有的实验数据一致。具体来说,它们反映了含有1-棕榈酰-2-油酰-sn-甘油-3-磷酸丝氨酸(POPS)脂质的1-棕榈酰-2-油酰-sn-甘油-3-磷酸甘油(POPG)的POPC膜的线张力比纯POPC膜高,随着1-棕榈酰-2-油酰-sn-甘油-3-磷酸甘油(POPG)含量的增加,POPC囊泡的线张力降低,随着离子浓度的增加,线张力升高。值得注意的是,只有全原子CHARMM36和prosECCo75力场才能准确地捕捉到这些实验趋势。相比之下,全原子滑移力场,以及粗粒度Martini 2.2、Martini 2.2极化和Martini 3模型,显示出与实验不同程度的一致。我们开发的CVs可以适用于各种MD模拟引擎,用于研究孔隙形成,在膜生物物理学方面具有潜在的意义。它们也适用于涉及外部代理的模拟,为现有方法提供了一种有效的替代方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Free Energy of Membrane Pore Formation and Stability from Molecular Dynamics Simulations.

Understanding the molecular mechanisms of pore formation is crucial for elucidating fundamental biological processes and developing therapeutic strategies, such as the design of drug delivery systems and antimicrobial agents. Although experimental methods can provide valuable information, they often lack the temporal and spatial resolution necessary to fully capture the dynamic stages of pore formation. In this study, we present two novel collective variables (CVs) designed to characterize membrane pore behavior, particularly its energetics, through molecular dynamics (MD) simulations. The first CV─termed Full-Path─effectively tracks both the nucleation and expansion phases of pore formation. The second CV─called Rapid─is tailored to accurately assess pore expansion in the limit of large pores, providing quick and reliable method for evaluating membrane line tension under various conditions. Our results clearly demonstrate that the line tension predictions from both our CVs are in excellent agreement. Moreover, these predictions align qualitatively with available experimental data. Specifically, they reflect higher line tension of 1-palmitoyl-2-oleoyl-sn-glycero-3-phosphocholine (POPC) membranes containing 1-palmitoyl-2-oleoyl-sn-glycero-3-phospho-l-serine (POPS) lipids compared to pure POPC, the decrease in line tension of POPC vesicles as the 1-palmitoyl-2-oleoyl-sn-glycero-3-phosphoglycerol (POPG) content increases, and higher line tension when ionic concentration is increased. Notably, these experimental trends are accurately captured only by the all-atom CHARMM36 and prosECCo75 force fields. In contrast, the all-atom Slipids force field, along with the coarse-grained Martini 2.2, Martini 2.2 polarizable, and Martini 3 models, show varying degrees of agreement with experiments. Our developed CVs can be adapted to various MD simulation engines for studying pore formation, with potential implications in membrane biophysics. They are also applicable to simulations involving external agents, offering an efficient alternative to existing methodologies.

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来源期刊
CiteScore
9.80
自引率
10.70%
发文量
529
审稿时长
1.4 months
期刊介绍: The Journal of Chemical Information and Modeling publishes papers reporting new methodology and/or important applications in the fields of chemical informatics and molecular modeling. Specific topics include the representation and computer-based searching of chemical databases, molecular modeling, computer-aided molecular design of new materials, catalysts, or ligands, development of new computational methods or efficient algorithms for chemical software, and biopharmaceutical chemistry including analyses of biological activity and other issues related to drug discovery. Astute chemists, computer scientists, and information specialists look to this monthly’s insightful research studies, programming innovations, and software reviews to keep current with advances in this integral, multidisciplinary field. As a subscriber you’ll stay abreast of database search systems, use of graph theory in chemical problems, substructure search systems, pattern recognition and clustering, analysis of chemical and physical data, molecular modeling, graphics and natural language interfaces, bibliometric and citation analysis, and synthesis design and reactions databases.
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