专业化限制了酵母糖转运体的进化途径。

IF 11 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Johnathan G Crandall, Xiaofan Zhou, Antonis Rokas, Chris Todd Hittinger
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引用次数: 0

摘要

蛋白质水平上的功能创新是进化创新的一个关键来源。在不同的蛋白质中,对功能创新的限制很可能是高度特定的,这是由它们独特的历史以及由它们的结构和生物化学所产生的全球外显程度所决定的。序列-功能关系中的这些上下文细微差别对基本理解进化过程和具有理想特性的工程蛋白质都有影响。在这里,我们研究了一个古老的、保守的、与生物技术相关的蛋白质家族中的一个模式成员的新功能的分子基础。这些主要促进剂超家族糖搬运工是一组功能多样的蛋白质,被认为具有高度可塑性和可进化性。通过剖析酵母菌α-葡萄糖苷转运体的最新进化创新,我们发现转运新底物的能力需要许多蛋白质区域和转运通道近端许多特定残基之间的高阶相互作用。为了协调这个家族的功能多样性和这种模式蛋白的进化限制,我们为 332 种酵母菌生成了新的、最先进的基因组注释,跨越了大约 4 亿年的进化过程。通过整合这些物种的系统发育和表型分析,我们发现模式酵母α-葡萄糖苷转运体很可能是从一个多功能祖先进化而来,并逐渐亚功能化。加性和表性取代的积累很可能巩固了这种亚功能,这使得同时获得多个相互作用的取代成为唯一合理的新颖性途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Specialization Restricts the Evolutionary Paths Available to Yeast Sugar Transporters.

Functional innovation at the protein level is a key source of evolutionary novelties. The constraints on functional innovations are likely to be highly specific in different proteins, which are shaped by their unique histories and the extent of global epistasis that arises from their structures and biochemistries. These contextual nuances in the sequence-function relationship have implications both for a basic understanding of the evolutionary process and for engineering proteins with desirable properties. Here, we have investigated the molecular basis of novel function in a model member of an ancient, conserved, and biotechnologically relevant protein family. These Major Facilitator Superfamily sugar porters are a functionally diverse group of proteins that are thought to be highly plastic and evolvable. By dissecting a recent evolutionary innovation in an α-glucoside transporter from the yeast Saccharomyces eubayanus, we show that the ability to transport a novel substrate requires high-order interactions between many protein regions and numerous specific residues proximal to the transport channel. To reconcile the functional diversity of this family with the constrained evolution of this model protein, we generated new, state-of-the-art genome annotations for 332 Saccharomycotina yeast species spanning ∼400 My of evolution. By integrating phylogenetic and phenotypic analyses across these species, we show that the model yeast α-glucoside transporters likely evolved from a multifunctional ancestor and became subfunctionalized. The accumulation of additive and epistatic substitutions likely entrenched this subfunction, which made the simultaneous acquisition of multiple interacting substitutions the only reasonably accessible path to novelty.

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来源期刊
Molecular biology and evolution
Molecular biology and evolution 生物-进化生物学
CiteScore
19.70
自引率
3.70%
发文量
257
审稿时长
1 months
期刊介绍: Molecular Biology and Evolution Journal Overview: Publishes research at the interface of molecular (including genomics) and evolutionary biology Considers manuscripts containing patterns, processes, and predictions at all levels of organization: population, taxonomic, functional, and phenotypic Interested in fundamental discoveries, new and improved methods, resources, technologies, and theories advancing evolutionary research Publishes balanced reviews of recent developments in genome evolution and forward-looking perspectives suggesting future directions in molecular evolution applications.
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