Engineering Anti‐CRISPR Proteins to Create CRISPR‐Cas Protein Switches for Activatable Genome Editing and Viral Protease Detection

Author:

Kang Wenyuan12,Xiao Fei1,Zhu Xi3,Ling Xinyu4,Xie Shiyi1,Li Ruimiao1,Yu Peihang1,Cao Linxin1,Lei Chunyang1,Qiu Ye3,Liu Tao4,Nie Zhou1ORCID

Affiliation:

1. State Key Laboratory of Chemo/Biosensing and Chemometrics, College of Chemistry and Chemical Engineering, Hunan Provincial Key Laboratory of Biomacromolecular Chemical Biology Hunan University Changsha 410082 P. R. China

2. Key Laboratory of Tropical Medicinal Resource Chemistry of Ministry of Education & Key Laboratory of Tropical Medicinal Plant Chemistry of Hainan Province, College of Chemistry and Chemical Engineering Hainan Normal University Haikou 571158 P. R. China

3. Hunan Provincial Key Laboratory of Medical Virology, Institute of Pathogen Biology and Immunology, College of Biology Hunan University Changsha 410082 P. R. China

4. State Key Laboratory of Natural and Biomimetic Drugs, School of Pharmaceutical Sciences Peking University 38 Xueyuan Road, Haidian District Beijing 100191 P. R. China

Abstract

AbstractProteins capable of switching between distinct active states in response to biochemical cues are ideal for sensing and controlling biological processes. Activatable CRISPR‐Cas systems are significant in precise genetic manipulation and sensitive molecular diagnostics, yet directly controlling Cas protein function remains challenging. Herein, we explore anti‐CRISPR (Acr) proteins as modules to create synthetic Cas protein switches (CasPSs) based on computational chemistry‐directed rational protein interface engineering. Guided by molecular fingerprint analysis, electrostatic potential mapping, and binding free energy calculations, we rationally engineer the molecular interaction interface between Cas12a and its cognate Acr proteins (AcrVA4 and AcrVA5) to generate a series of orthogonal protease‐responsive CasPSs. These CasPSs enable the conversion of specific proteolytic events into activation of Cas12a function with high switching ratios (up to 34.3‐fold). These advancements enable specific proteolysis‐inducible genome editing in mammalian cells and sensitive detection of viral protease activities during virus infection. This work provides a promising strategy for developing CRISPR‐Cas tools for controllable gene manipulation and regulation and clinical diagnostics.

Funder

National Natural Science Foundation of China

National Key Research and Development Program of China

Publisher

Wiley

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