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

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 in vivo genomic diversification bec...

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Autores principales: Hao, Wenliang, Cui, Wenjing, Suo, Feiya, Han, Laichuang, Cheng, Zhongyi, Zhou, Zhemin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9749471/
https://www.ncbi.nlm.nih.gov/pubmed/36545152
http://dx.doi.org/10.1039/d2sc05824c
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author Hao, Wenliang
Cui, Wenjing
Suo, Feiya
Han, Laichuang
Cheng, Zhongyi
Zhou, Zhemin
author_facet Hao, Wenliang
Cui, Wenjing
Suo, Feiya
Han, Laichuang
Cheng, Zhongyi
Zhou, Zhemin
author_sort Hao, Wenliang
collection PubMed
description 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 in vivo 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 in vivo. 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 Bacillus subtilis 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.
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spelling pubmed-97494712022-12-20 Construction and application of an efficient dual-base editing platform for Bacillus subtilis evolution employing programmable base conversion Hao, Wenliang Cui, Wenjing Suo, Feiya Han, Laichuang Cheng, Zhongyi Zhou, Zhemin Chem Sci Chemistry 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 in vivo 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 in vivo. 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 Bacillus subtilis 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. The Royal Society of Chemistry 2022-12-01 /pmc/articles/PMC9749471/ /pubmed/36545152 http://dx.doi.org/10.1039/d2sc05824c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Hao, Wenliang
Cui, Wenjing
Suo, Feiya
Han, Laichuang
Cheng, Zhongyi
Zhou, Zhemin
Construction and application of an efficient dual-base editing platform for Bacillus subtilis evolution employing programmable base conversion
title Construction and application of an efficient dual-base editing platform for Bacillus subtilis evolution employing programmable base conversion
title_full Construction and application of an efficient dual-base editing platform for Bacillus subtilis evolution employing programmable base conversion
title_fullStr Construction and application of an efficient dual-base editing platform for Bacillus subtilis evolution employing programmable base conversion
title_full_unstemmed Construction and application of an efficient dual-base editing platform for Bacillus subtilis evolution employing programmable base conversion
title_short Construction and application of an efficient dual-base editing platform for Bacillus subtilis evolution employing programmable base conversion
title_sort construction and application of an efficient dual-base editing platform for bacillus subtilis evolution employing programmable base conversion
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9749471/
https://www.ncbi.nlm.nih.gov/pubmed/36545152
http://dx.doi.org/10.1039/d2sc05824c
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