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Evolutionary Dynamics on Protein Bi-stability Landscapes can Potentially Resolve Adaptive Conflicts

机译:蛋白质双稳定性景观的进化动力学可以潜在地解决自适应冲突

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摘要

Experimental studies have shown that some proteins exist in two alternative native-state conformations. It has been proposed that such bi-stable proteins can potentially function as evolutionary bridges at the interface between two neutral networks of protein sequences that fold uniquely into the two different native conformations. Under adaptive conflict scenarios, bi-stable proteins may be of particular advantage if they simultaneously provide two beneficial biological functions. However, computational models that simulate protein structure evolution do not yet recognize the importance of bi-stability. Here we use a biophysical model to analyze sequence space to identify bi-stable or multi-stable proteins with two or more equally stable native-state structures. The inclusion of such proteins enhances phenotype connectivity between neutral networks in sequence space. Consideration of the sequence space neighborhood of bridge proteins revealed that bi-stability decreases gradually with each mutation that takes the sequence further away from an exactly bi-stable protein. With relaxed selection pressures, we found that bi-stable proteins in our model are highly successful under simulated adaptive conflict. Inspired by these model predictions, we developed a method to identify real proteins in the PDB with bridge-like properties, and have verified a clear bi-stability gradient for a series of mutants studied by Alexander et al. (Proc Nat Acad Sci USA 2009, 106:21149–21154) that connect two sequences that fold uniquely into two different native structures via a bridge-like intermediate mutant sequence. Based on these findings, new testable predictions for future studies on protein bi-stability and evolution are discussed.
机译:实验研究表明,某些蛋白质以两种不同的天然状态构象存在。已经提出,这样的双稳态蛋白可以潜在地在蛋白质序列的两个中性网络之间的界面处充当进化桥,所述蛋白质序列独特地折叠成两个不同的天然构象。在适应性冲突情况下,如果双稳态蛋白同时提供两种有益的生物学功能,它们可能会特别具有优势。但是,模拟蛋白质结构进化的计算模型尚未意识到双向稳定性的重要性。在这里,我们使用生物物理模型来分析序列空间,以识别具有两个或更多个同等稳定的自然状态结构的双稳态或多稳态蛋白质。包含此类蛋白质可增强序列空间中性网络之间的表型连通性。考虑到桥蛋白的序列空间邻近性,揭示出双稳定性随着每个突变而逐渐降低,每个突变使该序列进一步远离精确的双稳态蛋白。在轻松的选择压力下,我们发现模型中的双稳态蛋白在模拟的适应性冲突下非常成功。受这些模型预测的启发,我们开发了一种在PDB中鉴定具有桥样特性的真实蛋白质的方法,并为Alexander等人研究的一系列突变体验证了清晰的双稳定性梯度。 (Proc Nat Acad Sci USA 2009,106:21149–21154),它们通过桥状中间突变体序列连接两个唯一折叠成两个不同天然结构的序列。基于这些发现,讨论了有关蛋白质双稳定性和进化的未来研究的新的可检验的预测。

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