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Biophysical Models of Protein Evolution: Understanding the Patterns of Evolutionary Sequence Divergence
Annual Review of Biophysics ( IF 12.4 ) Pub Date : 2017-05-22 00:00:00 , DOI: 10.1146/annurev-biophys-070816-033819
Julian Echave 1, 2 , Claus O Wilke 3
Affiliation  

For decades, rates of protein evolution have been interpreted in terms of the vague concept of functional importance. Slowly evolving proteins or sites within proteins were assumed to be more functionally important and thus subject to stronger selection pressure. More recently, biophysical models of protein evolution, which combine evolutionary theory with protein biophysics, have completely revolutionized our view of the forces that shape sequence divergence. Slowly evolving proteins have been found to evolve slowly because of selection against toxic misfolding and misinteractions, linking their rate of evolution primarily to their abundance. Similarly, most slowly evolving sites in proteins are not directly involved in function, but mutating these sites has a large impact on protein structure and stability. In this article, we review the studies in the emerging field of biophysical protein evolution that have shaped our current understanding of sequence divergence patterns. We also propose future research directions to develop this nascent field.

中文翻译:


蛋白质进化的生物物理模型:了解进化序列分歧的模式

几十年来,蛋白质进化的速度一直被解释为功能重要性的模糊概念。缓慢进化的蛋白质或蛋白质内的位点被认为在功能上更重要,因此受到更强的选择压力。最近,蛋白质进化的生物物理模型将进化理论与蛋白质生物物理学相结合,彻底改变了我们对形成序列分歧的力量的看法。缓慢进化的蛋白质被发现进化缓慢,因为选择了有毒的错误折叠和错误相互作用,将它们的进化速度主要与它们的丰度联系起来。同样,蛋白质中大多数缓慢进化的位点并不直接参与功能,但突变这些位点对蛋白质结构和稳定性有很大影响。在本文中,我们回顾了新兴的生物物理蛋白质进化领域的研究,这些研究塑造了我们目前对序列分歧模式的理解。我们还提出了发展这一新兴领域的未来研究方向。

更新日期:2017-05-22
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