Dual genetic level modification engineering accelerate genome evolution of Corynebacterium glutamicum

Author:

Wang Qing12,Zhang Jie12,Zhao Zhe12,Li Yichen12,You Jiajia12,Wang Yi12,Li Xiangfei12,Xu Meijuan12,Rao Zhiming12ORCID

Affiliation:

1. The Key Laboratory of Industrial Biotechnology, Ministry of Education, School of Biotechnology, Jiangnan University , Wuxi  214122 , China

2. Institute of Future Food Technology, JITRI , Yixing  214200 , China

Abstract

Abstract High spontaneous mutation rate is crucial for obtaining ideal phenotype and exploring the relationship between genes and phenotype. How to break the genetic stability of organisms and increase the mutation frequency has become a research hotspot. Here, we present a practical and controllable evolutionary tool (oMut-Cgts) based on dual genetic level modification engineering for Corynebacterium glutamicum. Firstly, the modification engineering of transcription and replication levels based on RNA polymerase α subunit and DNA helicase Cgl0854 as the ‘dock’ of cytidine deaminase (pmCDA1) significantly increased the mutation rate, proving that the localization of pmCDA1 around transient ssDNA is necessary for genome mutation. Then, the combined modification and optimization of engineering at dual genetic level achieved 1.02 × 104-fold increased mutation rate. The genome sequencing revealed that the oMut-Cgts perform uniform and efficient C:G→T:A transitions on a genome-wide scale. Furthermore, oMut-Cgts-mediated rapid evolution of C. glutamicum with stress (acid, oxidative and ethanol) tolerance proved that the tool has powerful functions in multi-dimensional biological engineering (rapid phenotype evolution, gene function mining and protein evolution). The strategies for rapid genome evolution provided in this study are expected to be applicable to a variety of applications in all prokaryotic cells.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

National First-class Discipline Program of Light Industry Technology and Engineering

Fundamental Research Funds for the Central Universities

111 Project

Publisher

Oxford University Press (OUP)

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