Inhibitory mechanism of CRISPR-Cas9 by AcrIIC4

Author:

Li Xuzichao1,Liao Fumeng1,Gao Jiaqi1,Song Guangyong1,Zhang Chendi2,Ji Nan1,Wang Xiaoshen1,Wen Jing1,He Jia1,Wei Yong3,Zhang Heng1,Li Zhuang2ORCID,Yu Guimei1ORCID,Yin Hang14

Affiliation:

1. State Key Laboratory of Experimental Hematology, Key Laboratory of Immune Microenvironment and Disease (Ministry of Education), The Province and Ministry Co-sponsored Collaborative Innovation Center for Medical Epigenetics, Haihe Laboratory of Cell Ecosystem, Department of Biochemistry and Molecular Biology, School of Basic Medical Sciences, Tianjin Medical University ,  Tianjin  300070, China

2. State Key Laboratory of Biocatalysis and Enzyme Engineering, School of Life Sciences, Hubei University ,  Wuhan  430062, China

3. The Cancer Hospital of the University of Chinese Academy of Sciences (Zhejiang Cancer Hospital), Institute of Basic Medicine and Cancer (IBMC), Chinese Academy of Sciences ,  Hangzhou , China

4. Department of Pharmacology, School of Basic Medical Sciences, Tianjin Medical University , Tianjin  300070, China

Abstract

Abstract CRISPR-Cas systems act as the adaptive immune systems of bacteria and archaea, targeting and destroying invading foreign mobile genetic elements (MGEs) such as phages. MGEs have also evolved anti-CRISPR (Acr) proteins to inactivate the CRISPR-Cas systems. Recently, AcrIIC4, identified from Haemophilus parainfluenzae phage, has been reported to inhibit the endonuclease activity of Cas9 from Neisseria meningitidis (NmeCas9), but the inhibition mechanism is not clear. Here, we biochemically and structurally investigated the anti-CRISPR activity of AcrIIC4. AcrIIC4 folds into a helix bundle composed of three helices, which associates with the REC lobe of NmeCas9 and sgRNA. The REC2 domain of NmeCas9 is locked by AcrIIC4, perturbing the conformational dynamics required for the target DNA binding and cleavage. Furthermore, mutation of the key residues in the AcrIIC4-NmeCas9 and AcrIIC4-sgRNA interfaces largely abolishes the inhibitory effects of AcrIIC4. Our study offers new insights into the mechanism of AcrIIC4-mediated suppression of NmeCas9 and provides guidelines for the design of regulatory tools for Cas9-based gene editing applications.

Funder

National Key R&D Program of China

National Natural Science Foundation of China

Scientific Research Program of Tianjin Municipal Education Commission

Hubei Provincial Natural Science Foundation

Scientific Research Program of Hubei Provincial Department of Education

Publisher

Oxford University Press (OUP)

Subject

Genetics

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