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使用 GROMACS 开发大分子模拟粗粒度结构的方案。

Protocol for the development of coarse-grained structures for macromolecular simulation using GROMACS.

机构信息

Department of Biotechnology, R V College of Engineering, Bengaluru, Karnataka, India.

Managing Director, Biotechnology Industry Research Assistance Council (BIRAC), New Delhi, India.

出版信息

PLoS One. 2023 Aug 3;18(8):e0288264. doi: 10.1371/journal.pone.0288264. eCollection 2023.

Abstract

Coarse-grained simulations have emerged as a valuable tool in the study of large and complex biomolecular systems. These simulations, which use simplified models to represent complex biomolecules, reduce the computational cost of simulations and enable the study of larger systems for longer periods of time than traditional atomistic simulations. GROMACS is a widely used software package for performing coarse-grained simulations of biomolecules, and several force fields have been developed specifically for this purpose. In this protocol paper, we explore the advantages of using coarse-grained simulations in the study of biomolecular systems, focusing specifically on simulations performed using GROMACS. We discuss the force fields required for these simulations and the types of research questions that can be addressed using coarse-grained simulations. We also highlight the potential benefits of coarse-grained simulations for the development of new force fields and simulation methodologies. We then discuss the expected results from coarse-grained simulations using GROMACS and the various techniques that can be used to analyze these results. We explore the use of trajectory analysis tools, as well as thermodynamic and structural analysis techniques, to gain insight into the behavior of biomolecular systems.

摘要

粗粒化模拟已成为研究大型复杂生物分子系统的一种有价值的工具。这些模拟使用简化的模型来表示复杂的生物分子,从而降低了模拟的计算成本,并使研究更大的系统能够持续更长的时间,这是传统的原子模拟所无法做到的。GROMACS 是一种广泛用于执行生物分子粗粒化模拟的软件包,已经开发了几种专门用于此目的的力场。在本协议论文中,我们探讨了在生物分子系统研究中使用粗粒化模拟的优势,特别关注使用 GROMACS 进行的模拟。我们讨论了这些模拟所需的力场以及可以使用粗粒化模拟解决的研究问题类型。我们还强调了粗粒化模拟在开发新的力场和模拟方法方面的潜在优势。然后,我们讨论了使用 GROMACS 进行粗粒化模拟的预期结果,以及可以用于分析这些结果的各种技术。我们探讨了轨迹分析工具的使用,以及热力学和结构分析技术,以深入了解生物分子系统的行为。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ab99/10399882/c409d4634ba9/pone.0288264.g001.jpg

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