The spectrum of biomolecular states and motions.

Hfsp Journal Pub Date : 2008-12-01 Epub Date: 2008-11-14 DOI:10.2976/1.3003931
Joseph A Hegler, Patrick Weinkam, Peter G Wolynes
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Abstract

The universe of conformational substates of a protein molecule is huge. The complete energy landscape of proteins is, therefore, complex when studied at low temperature. Many experiments under physiological conditions commonly reveal a simpler spectrum of states. These states are individually ensembles of low temperature substates. That is, room temperature experiments probe the low free energy part of the spectrum of excitations. This paper describes how the complete landscape and the spectrum of these thermally excited motions can be related to each other. On funneled landscapes, partially folded ensembles of states are the most important excited states. Their properties and their free energy spectrum can often be predicted by native topology based models. Frustration, i.e., the conflict between inconsistent stabilizing interactions that have evolved for other purposes than optimizing folding, offers another mechanism for forming low free energy excitations. Frustration can be localized and quantified using energy landscape theory. Symmetry provides an obvious route to low free energy states in oligomeric systems, where simply repositioning parts of the molecule in ways quasi-equivalent to their relation in the native structure gives nearly degenerate energies.

生物分子状态和运动的光谱。
蛋白质分子的构象亚态是一个巨大的宇宙。因此,在低温条件下研究蛋白质的完整能谱是非常复杂的。在生理条件下进行的许多实验通常会揭示出较为简单的状态谱。这些状态都是低温亚态的单独组合。也就是说,室温实验探测的是激发光谱的低自由能部分。本文介绍了如何将这些热激发运动的完整景观和频谱相互联系起来。在漏斗地貌上,部分折叠的状态集合是最重要的激发态。它们的特性和自由能谱通常可以通过基于拓扑结构的原生模型来预测。挫折,即不一致的稳定相互作用之间的冲突,这种相互作用的演化除了优化折叠之外,还有其他目的,为形成低自由能激发态提供了另一种机制。可以利用能量景观理论对挫折进行定位和量化。对称性为低聚系统中的低自由能状态提供了一条明显的途径,在低聚系统中,只需将分子的一部分以与其在原生结构中的关系近似等价的方式重新定位,就能得到近乎退化的能量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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Hfsp Journal
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