模拟生物分子凝聚物的基准残留分辨率蛋白质粗粒度模型。

IF 3.8 2区 生物学 Q1 BIOCHEMICAL RESEARCH METHODS PLoS Computational Biology Pub Date : 2025-01-13 eCollection Date: 2025-01-01 DOI:10.1371/journal.pcbi.1012737
Alejandro Feito, Ignacio Sanchez-Burgos, Ignacio Tejero, Eduardo Sanz, Antonio Rey, Rosana Collepardo-Guevara, Andrés R Tejedor, Jorge R Espinosa
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引用次数: 0

摘要

细胞内蛋白质和核酸的液-液相分离(LLPS)是细胞划分其成分并执行基本生物学功能的基本机制。分子模拟在提供驱动这种现象的物理化学过程的微观见解方面起着至关重要的作用。在这项研究中,我们系统地比较了六种最先进的序列依赖的残留物分辨率模型,以评估它们在再现由hnRNPA1蛋白(A1-LCD)的低复杂性结构域(LCD)的七种变体形成的凝聚物的相行为和材料特性方面的性能。hnRNPA1蛋白(A1-LCD)是一种与应力颗粒的病理性液体到固体转变有关的蛋白质。具体来说,我们评估了HPS、HPS-阳离子-π、HPS- urry、CALVADOS2、Mpipi和Mpipi-充电模型对A1-LCD变体的凝析液饱和浓度、临界溶液温度和凝析液粘度的预测。我们的分析表明,在所测试的模型中,Mpipi、Mpipi- rechargei和CALVADOS2可以准确描述所测试的多种A1-LCD变体的临界溶液温度和饱和浓度。对于A1-LCD及其变体凝析物的材料性能预测,mpipi - recharge是最可靠的模型。总体而言,本研究为研究凝析油的热力学稳定性和材料性质建立了一系列残渣分辨率粗粒度模型,并在其性能与这些模型所考虑的分子间相互作用等级之间建立了直接联系。
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Benchmarking residue-resolution protein coarse-grained models for simulations of biomolecular condensates.

Intracellular liquid-liquid phase separation (LLPS) of proteins and nucleic acids is a fundamental mechanism by which cells compartmentalize their components and perform essential biological functions. Molecular simulations play a crucial role in providing microscopic insights into the physicochemical processes driving this phenomenon. In this study, we systematically compare six state-of-the-art sequence-dependent residue-resolution models to evaluate their performance in reproducing the phase behaviour and material properties of condensates formed by seven variants of the low-complexity domain (LCD) of the hnRNPA1 protein (A1-LCD)-a protein implicated in the pathological liquid-to-solid transition of stress granules. Specifically, we assess the HPS, HPS-cation-π, HPS-Urry, CALVADOS2, Mpipi, and Mpipi-Recharged models in their predictions of the condensate saturation concentration, critical solution temperature, and condensate viscosity of the A1-LCD variants. Our analyses demonstrate that, among the tested models, Mpipi, Mpipi-Recharged, and CALVADOS2 provide accurate descriptions of the critical solution temperatures and saturation concentrations for the multiple A1-LCD variants tested. Regarding the prediction of material properties for condensates of A1-LCD and its variants, Mpipi-Recharged stands out as the most reliable model. Overall, this study benchmarks a range of residue-resolution coarse-grained models for the study of the thermodynamic stability and material properties of condensates and establishes a direct link between their performance and the ranking of intermolecular interactions these models consider.

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来源期刊
PLoS Computational Biology
PLoS Computational Biology BIOCHEMICAL RESEARCH METHODS-MATHEMATICAL & COMPUTATIONAL BIOLOGY
CiteScore
7.10
自引率
4.70%
发文量
820
审稿时长
2.5 months
期刊介绍: PLOS Computational Biology features works of exceptional significance that further our understanding of living systems at all scales—from molecules and cells, to patient populations and ecosystems—through the application of computational methods. Readers include life and computational scientists, who can take the important findings presented here to the next level of discovery. Research articles must be declared as belonging to a relevant section. More information about the sections can be found in the submission guidelines. Research articles should model aspects of biological systems, demonstrate both methodological and scientific novelty, and provide profound new biological insights. Generally, reliability and significance of biological discovery through computation should be validated and enriched by experimental studies. Inclusion of experimental validation is not required for publication, but should be referenced where possible. Inclusion of experimental validation of a modest biological discovery through computation does not render a manuscript suitable for PLOS Computational Biology. Research articles specifically designated as Methods papers should describe outstanding methods of exceptional importance that have been shown, or have the promise to provide new biological insights. The method must already be widely adopted, or have the promise of wide adoption by a broad community of users. Enhancements to existing published methods will only be considered if those enhancements bring exceptional new capabilities.
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