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进化的氨基酸-多胺-有机阳离子转运体中底物适应性突变的适应景观。

Fitness landscape of substrate-adaptive mutations in evolved amino acid-polyamine-organocation transporters.

机构信息

Department of Biochemistry, University of Groningen, Groningen, Netherlands.

出版信息

Elife. 2024 Jun 25;13:RP93971. doi: 10.7554/eLife.93971.

Abstract

The emergence of new protein functions is crucial for the evolution of organisms. This process has been extensively researched for soluble enzymes, but it is largely unexplored for membrane transporters, even though the ability to acquire new nutrients from a changing environment requires evolvability of transport functions. Here, we demonstrate the importance of environmental pressure in obtaining a new activity or altering a promiscuous activity in members of the amino acid-polyamine-organocation (APC)-type yeast amino acid transporters family. We identify APC members that have broader substrate spectra than previously described. Using in vivo experimental evolution, we evolve two of these transporter genes, and , toward new substrate specificities. Single mutations on these transporters are found to be sufficient for expanding the substrate range of the proteins, while retaining the capacity to transport all original substrates. Nonetheless, each adaptive mutation comes with a distinct effect on the fitness for each of the original substrates, illustrating a trade-off between the ancestral and evolved functions. Collectively, our findings reveal how substrate-adaptive mutations in membrane transporters contribute to fitness and provide insights into how organisms can use transporter evolution to explore new ecological niches.

摘要

新蛋白质功能的出现对生物的进化至关重要。这个过程在可溶性酶中已经得到了广泛的研究,但在膜转运蛋白中却基本上没有被探索过,尽管从不断变化的环境中获取新营养物质的能力需要运输功能的可进化性。在这里,我们证明了环境压力在获得新活性或改变氨基酸-多胺-有机阳离子(APC)型酵母氨基酸转运蛋白家族成员的混杂活性方面的重要性。我们确定了 APC 成员,它们的底物谱比以前描述的更广泛。我们利用体内实验进化,使两种这些转运体基因, 和 ,朝着新的底物特异性进化。在这些转运体上的单个突变足以扩大蛋白质的底物范围,同时保留运输所有原始底物的能力。然而,每个适应性突变对每个原始底物的适应性都有独特的影响,说明了祖先功能和进化功能之间的权衡。总的来说,我们的发现揭示了膜转运蛋白中的底物适应性突变如何有助于适应性,并提供了关于生物体如何利用转运体进化探索新生态位的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/faf2/11198987/1453194c9b78/elife-93971-fig1.jpg

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