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Potts Hamiltonian models of protein co-variation free energy landscapes and evolutionary fitness

机译:蛋白质协变自由能态和进化适应性的波特汉密尔顿模型

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摘要

Potts Hamiltonian models of protein sequence co-variation are statistical models constructed from the pair correlations observed in a multiple sequence alignment (MSA) of a protein family. These models are powerful because they capture higher order correlations induced by mutations evolving under constraints and help quantify the connections between protein sequence, structure, and function maintained through evolution. We review recent work with Potts models to predict protein structure and sequence-dependent conformational free energy landscapes, to survey protein fitness landscapes and to explore the effects of epistasis on fitness. We also comment on the numerical methods used to infer these models for each application.
机译:蛋白质序列共变的Potts Hamiltonian模型是从蛋白质家族的多序列比对(MSA)中观察到的对相关性构建的统计模型。这些模型之所以功能强大,是因为它们捕获了由约束条件下进化而来的突变诱导的更高阶相关性,并有助于量化蛋白质序列,结构和通过进化维持的功能之间的联系。我们审查与Potts模型的最新研究,以预测蛋白质结构和依赖序列的构象自由能态势,调查蛋白质适应性态势并探讨上位性对适应性的影响。我们还评论了用于为每个应用程序推断这些模型的数值方法。

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