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从分子水平上提取生命物理学:单分子数据分析综述。

Extracting physics of life at the molecular level: A review of single-molecule data analyses.

机构信息

Department of Physics, Colorado School of Mines, Golden, CO 80401, United States.

Department of Physics, Colorado School of Mines, Golden, CO 80401, United States.

出版信息

Phys Life Rev. 2015 Jun;13:107-37. doi: 10.1016/j.plrev.2015.01.017. Epub 2015 Jan 14.

Abstract

Studying individual biomolecules at the single-molecule level has proved very insightful recently. Single-molecule experiments allow us to probe both the equilibrium and nonequilibrium properties as well as make quantitative connections with ensemble experiments and equilibrium thermodynamics. However, it is important to be careful about the analysis of single-molecule data because of the noise present and the lack of theoretical framework for processes far away from equilibrium. Biomolecular motion, whether it is free in solution, on a substrate, or under force, involves thermal fluctuations in varying degrees, which makes the motion noisy. In addition, the noise from the experimental setup makes it even more complex. The details of biologically relevant interactions, conformational dynamics, and activities are hidden in the noisy single-molecule data. As such, extracting biological insights from noisy data is still an active area of research. In this review, we will focus on analyzing both fluorescence-based and force-based single-molecule experiments and gaining biological insights at the single-molecule level. Inherently nonequilibrium nature of biological processes will be highlighted. Simulated trajectories of biomolecular diffusion will be used to compare and validate various analysis techniques.

摘要

最近,在单分子水平上研究单个生物分子被证明具有非常深刻的意义。单分子实验使我们能够探测平衡态和非平衡态特性,并与整体实验和平衡热力学进行定量关联。然而,由于存在噪声以及远离平衡过程缺乏理论框架,因此在分析单分子数据时需要格外小心。生物分子的运动,无论是在溶液中自由运动、在基底上运动还是在力的作用下运动,都涉及到不同程度的热波动,这使得运动变得嘈杂。此外,实验装置的噪声使得情况更加复杂。与生物相关的相互作用、构象动力学和活性的细节隐藏在嘈杂的单分子数据中。因此,从嘈杂的数据中提取生物学见解仍然是一个活跃的研究领域。在这篇综述中,我们将重点分析基于荧光和力的单分子实验,并在单分子水平上获得生物学见解。生物过程的固有非平衡性质将被强调。生物分子扩散的模拟轨迹将被用来比较和验证各种分析技术。

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