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利用可编程碱基转换构建并应用用于进化的高效双碱基编辑平台。

Construction and application of an efficient dual-base editing platform for evolution employing programmable base conversion.

作者信息

Hao Wenliang, Cui Wenjing, Suo Feiya, Han Laichuang, Cheng Zhongyi, Zhou Zhemin

机构信息

The Key Laboratory of Industrial Biotechnology (Ministry of Education), School of Biotechnology, Jiangnan University 1800 Lihu Avenue Wuxi 214122 Jiangsu China

出版信息

Chem Sci. 2022 Dec 1;13(48):14395-14409. doi: 10.1039/d2sc05824c. eCollection 2022 Dec 14.

Abstract

The functionally evolved bacterial chassis is of great importance to manufacture a group of assorted high value-added chemicals, from small molecules to biologically active macromolecules. However, the current evolution frameworks are less efficienct in generating genomic diversification because of insufficient tunability, rendering limited evolution spacing for chassis. Here, an engineered genomic diversification platform (CRISPR-ABE8e-CDA-nCas9) leveraging a programmable dual-deaminases base editor was fabricated for rapidly evolving bacterial chassis. The dual-base editor was constructed by reprogramming the CRISPR array, nCas9, and cytidine and adenosine deaminase, enabling single or multiple base conversion at the genomic scale by simultaneous C-to-T and A-to-G conversion . Employing titration of the Cas-deaminase fusion protein, the platform enabled editing any pre-defined genomic loci with tunable conversion efficiency and editable window, generating a repertoire of mutants with highly diversified genomic sequences. Leveraging the genomic diversification platform, we successfully evolved the nisin-resistant capability of through directed evolution of the subunit of lantibiotic ATP-binding cassette. Therefore, our work provides a portable and programmable genomic diversification platform, which is promising to expedite the fabrication of high-performance and robust bacterial chassis used in the development of biomanufacturing and biopharmaceuticals.

摘要

功能进化的细菌底盘对于制造从小分子到生物活性大分子的一系列各类高附加值化学品至关重要。然而,由于可调性不足,当前的进化框架在产生基因组多样性方面效率较低,导致底盘的进化间距有限。在此,构建了一个利用可编程双脱氨酶碱基编辑器的工程化基因组多样化平台(CRISPR-ABE8e-CDA-nCas9),用于快速进化细菌底盘。通过对CRISPR阵列、nCas9以及胞嘧啶和腺苷脱氨酶进行重新编程构建了双碱基编辑器,通过同时进行C到T和A到G的转换,在基因组规模上实现单碱基或多碱基转换。通过滴定Cas-脱氨酶融合蛋白,该平台能够以可调的转换效率和可编辑窗口编辑任何预定义的基因组位点,产生具有高度多样化基因组序列的突变体库。利用该基因组多样化平台,我们通过对羊毛硫抗生素ATP结合盒亚基的定向进化,成功进化出了乳酸链球菌素抗性能力。因此,我们的工作提供了一个便携式且可编程的基因组多样化平台,有望加速用于生物制造和生物制药开发的高性能且稳健的细菌底盘的构建。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bb87/9749471/afd6c4f8bc49/d2sc05824c-f1.jpg

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