A hierarchy of coupling free energies underlie the thermodynamic and functional architecture of protein structures

IF 2.7 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Athi N. Naganathan, Adithi Kannan
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引用次数: 10

Abstract

Protein sequences and structures evolve by satisfying varied physical and biochemical constraints. This multi-level selection is enabled not just by the patterning of amino acids on the sequence, but also via coupling between residues in the native structure. Here, we employ an energetically detailed statistical mechanical model with millions of microstates to extract such long-range structural correlations, i.e. thermodynamic coupling free energies, from a diverse family of protein structures. We find that despite the intricate and anisotropic distribution of coupling patterns, the majority of residues (>70%) are only marginally coupled contributing to functional motions and catalysis. Physical origins of ‘sectors’, determinants of native ensemble heterogeneity in extant, ancient and designed proteins, and the basis for allostery emerge naturally from coupling free energies. The statistical framework highlights how evolutionary selection and optimization occur at the level of global interaction network for a given protein fold impacting folding, function, and allosteric outputs.

Abstract Image

耦合自由能的层次是蛋白质结构的热力学和功能结构的基础
蛋白质序列和结构通过满足各种物理和生化限制而进化。这种多层次选择不仅通过序列上氨基酸的模式,而且通过天然结构中残基之间的偶联实现。在这里,我们采用具有数百万微观状态的能量详细统计力学模型来从不同的蛋白质结构家族中提取这种远程结构相关性,即热力学耦合自由能。我们发现,尽管耦合模式的分布复杂且各向异性,但大多数残基(>70%)只是轻微耦合,有助于功能运动和催化。“扇区”的物理起源,现存的、古老的和设计的蛋白质中天然系综异质性的决定因素,以及变构的基础自然地从耦合自由能中出现。统计框架强调了进化选择和优化如何发生在给定蛋白质折叠的全球相互作用网络水平上,影响折叠、功能和变构输出。
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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来源期刊
CiteScore
4.60
自引率
0.00%
发文量
33
审稿时长
104 days
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