计算机科学
粒度
比例(比率)
蛋白质折叠
领域(数学)
数据科学
参数化(大气建模)
计算生物学
化学
物理
生物
数学
程序设计语言
量子力学
生物化学
纯数学
辐射传输
作者
Luís Borges-Araújo,Ilias Patmanidis,Akhil K. Singh,Lucianna Helene Santos,Adam K. Sieradzan,Stefano Vanni,Cezary Czaplewski,Sergio Pantano,Wataru Shinoda,Luca Monticelli,Adam Liwo,Siewert J. Marrink,Paulo C. T. Souza
标识
DOI:10.1021/acs.jctc.3c00733
摘要
The molecular details involved in the folding, dynamics, organization, and interaction of proteins with other molecules are often difficult to assess by experimental techniques. Consequently, computational models play an ever-increasing role in the field. However, biological processes involving large-scale protein assemblies or long time scale dynamics are still computationally expensive to study in atomistic detail. For these applications, employing coarse-grained (CG) modeling approaches has become a key strategy. In this Review, we provide an overview of what we call pragmatic CG protein models, which are strategies combining, at least in part, a physics-based implementation and a top-down experimental approach to their parametrization. In particular, we focus on CG models in which most protein residues are represented by at least two beads, allowing these models to retain some degree of chemical specificity. A description of the main modern pragmatic protein CG models is provided, including a review of the most recent applications and an outlook on future perspectives in the field.
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