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通过超突变实现氨酰-tRNA合成酶的定向进化。

Directed evolution of aminoacyl-tRNA synthetases through hypermutation.

作者信息

Furuhata Yuichi, Rix Gordon, Van Deventer James A, Liu Chang C

出版信息

bioRxiv. 2024 Sep 27:2024.09.27.615507. doi: 10.1101/2024.09.27.615507.

Abstract

Genetic code expansion (GCE) has become a critical tool in biology by enabling the site-specific incorporation of non-canonical amino acids (ncAAs) into proteins. Central to GCE is the development of orthogonal aminoacyl-tRNA synthetase (aaRS)/tRNA pairs wherein engineered aaRSs recognize chosen ncAAs and charge them onto tRNAs that decode blank codons ( ., the amber stop codon). Many orthogonal aaRS/tRNA pairs covering a wide range of ncAAs have been generated by directed evolution, yet the evolution of new aaRS/tRNA pairs by standard strategies remains a labor-intensive process that often produces aaRS/tRNA pairs with suboptimal ncAA incorporation efficiencies. In this study, we present a strategy for evolving aaRSs that leverages OrthoRep to drive their continuous hypermutation in yeast. We demonstrate our strategy in 8 independent aaRS evolution campaigns starting from 4 different aaRS/tRNA parents targeting 7 distinct ncAAs. We observed the rapid evolution of multiple novel aaRSs capable of incorporating an overall range of 13 ncAAs tested into proteins in response to the amber codon. Some evolved systems reached efficiencies for amber codon-specified ncAA-dependent translation comparable to translation with natural amino acids specified by sense codons in yeast. Additionally, we discovered a surprising aaRS that evolved to self-regulate its own expression for greater dependency on ncAAs for translation. These findings demonstrate the potential of OrthoRep-driven aaRS evolution platforms in supporting the continued growth of GCE technologies.

摘要

遗传密码扩展(GCE)通过实现非标准氨基酸(ncAA)在蛋白质中的位点特异性掺入,已成为生物学中的一项关键工具。GCE的核心是正交氨酰-tRNA合成酶(aaRS)/tRNA对的开发,其中工程化的aaRS识别选定的ncAA并将其加载到解码无义密码子(例如琥珀色终止密码子)的tRNA上。通过定向进化已产生了许多覆盖广泛ncAA的正交aaRS/tRNA对,但通过标准策略进化新的aaRS/tRNA对仍然是一个劳动密集型过程,且常常产生ncAA掺入效率次优的aaRS/tRNA对。在本研究中,我们提出了一种利用OrthoRep在酵母中驱动aaRS持续超突变来进化aaRS的策略。我们在8个独立的aaRS进化实验中展示了我们的策略,这些实验从针对7种不同ncAA的4种不同aaRS/tRNA亲本开始。我们观察到多个能够将总共13种测试的ncAA掺入响应琥珀密码子的蛋白质中的新型aaRS的快速进化。一些进化后的系统达到了琥珀密码子指定的ncAA依赖性翻译的效率,可与酵母中有义密码子指定的天然氨基酸翻译相媲美。此外,我们发现了一种令人惊讶的aaRS,它进化为自我调节自身表达,以在翻译中更依赖ncAA。这些发现证明了OrthoRep驱动的aaRS进化平台在支持GCE技术持续发展方面的潜力。

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