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球状蛋白质中的动态预应力。

Dynamic prestress in a globular protein.

机构信息

CAS-MPG Partner Institute and Key Laboratory for Computational Biology, Shanghai, China.

出版信息

PLoS Comput Biol. 2012;8(5):e1002509. doi: 10.1371/journal.pcbi.1002509. Epub 2012 May 10.

Abstract

A protein at equilibrium is commonly thought of as a fully relaxed structure, with the intra-molecular interactions showing fluctuations around their energy minimum. In contrast, here we find direct evidence for a protein as a molecular tensegrity structure, comprising a balance of tensed and compressed interactions, a concept that has been put forward for macroscopic structures. We quantified the distribution of inter-residue prestress in ubiquitin and immunoglobulin from all-atom molecular dynamics simulations. The network of highly fluctuating yet significant inter-residue forces in proteins is a consequence of the intrinsic frustration of a protein when sampling its rugged energy landscape. In beta sheets, this balance of forces is found to compress the intra-strand hydrogen bonds. We estimate that the observed magnitude of this pre-compression is enough to induce significant changes in the hydrogen bond lifetimes; thus, prestress, which can be as high as a few 100 pN, can be considered a key factor in determining the unfolding kinetics and pathway of proteins under force. Strong pre-tension in certain salt bridges on the other hand is connected to the thermodynamic stability of ubiquitin. Effective force profiles between some side-chains reveal the signature of multiple, distinct conformational states, and such static disorder could be one factor explaining the growing body of experiments revealing non-exponential unfolding kinetics of proteins. The design of prestress distributions in engineering proteins promises to be a new tool for tailoring the mechanical properties of made-to-order nanomaterials.

摘要

平衡状态下的蛋白质通常被认为是一种完全松弛的结构,分子内相互作用在其能量最低点周围表现出波动。相比之下,在这里我们直接证明了蛋白质是一种分子 tensegrity 结构,由拉紧和压缩相互作用的平衡组成,这一概念已被提出用于宏观结构。我们通过全原子分子动力学模拟定量了泛素和免疫球蛋白中残基间预应力的分布。蛋白质中高度波动但具有显著相互作用的网络是蛋白质在其崎岖的能量景观中采样时固有挫折的结果。在β片层中,这种力的平衡被发现压缩了链内氢键。我们估计,观察到的这种预压缩的幅度足以引起氢键寿命的显著变化;因此,预应力可达几百皮牛顿,可被视为决定蛋白质在力下的展开动力学和途径的关键因素。另一方面,某些盐桥中的强预张力与泛素的热力学稳定性有关。某些侧链之间的有效力分布揭示了多个不同构象状态的特征,这种静态无序可能是解释越来越多实验揭示蛋白质非指数展开动力学的因素之一。在工程蛋白质中设计预应力分布有望成为定制纳米材料机械性能的新工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/51d0/3349725/30d1d750e123/pcbi.1002509.g001.jpg

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