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生物分子模拟:分子生物学的计算显微镜。

Biomolecular simulation: a computational microscope for molecular biology.

机构信息

D. E. Shaw Research, New York, New York 10036, USA.

出版信息

Annu Rev Biophys. 2012;41:429-52. doi: 10.1146/annurev-biophys-042910-155245.

Abstract

Molecular dynamics simulations capture the behavior of biological macromolecules in full atomic detail, but their computational demands, combined with the challenge of appropriately modeling the relevant physics, have historically restricted their length and accuracy. Dramatic recent improvements in achievable simulation speed and the underlying physical models have enabled atomic-level simulations on timescales as long as milliseconds that capture key biochemical processes such as protein folding, drug binding, membrane transport, and the conformational changes critical to protein function. Such simulation may serve as a computational microscope, revealing biomolecular mechanisms at spatial and temporal scales that are difficult to observe experimentally. We describe the rapidly evolving state of the art for atomic-level biomolecular simulation, illustrate the types of biological discoveries that can now be made through simulation, and discuss challenges motivating continued innovation in this field.

摘要

分子动力学模拟可以全面捕捉生物大分子的原子细节行为,但由于计算需求以及如何恰当地模拟相关物理性质的挑战,其模拟长度和准确性一直受到限制。最近,在模拟速度和基础物理模型方面取得了显著的进展,使我们能够在长达毫秒的时间尺度上进行原子级模拟,从而捕捉到关键的生化过程,如蛋白质折叠、药物结合、膜转运以及对蛋白质功能至关重要的构象变化。这样的模拟可以作为计算显微镜,揭示在空间和时间尺度上难以用实验观察到的生物分子机制。我们描述了原子水平生物分子模拟的快速发展现状,举例说明了现在可以通过模拟进行的生物学发现,并讨论了推动该领域持续创新的挑战。

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