Iron‐Confined CRISPR/Cas9‐Ribonucleoprotein Delivery System for Redox‐Responsive Gene Editing

Author:

Qiu Lingling1,Sun Minmin1,Chen Lei2,Jiang Jing2,Fu Zhendong3,Wang Ying4,Bi Yulin1,Guo Qixin1,Bai Hao1,Chen Shihao1,Gao Lizeng2ORCID,Chang Guobin1

Affiliation:

1. College of Animal Science and Technology Yangzhou University Yangzhou 225009 China

2. CAS Engineering Laboratory for Nanozyme Institute of Biophysics Chinese Academy of Sciences Beijing 100101 China

3. Key Laboratory for Molecular Enzymology and Engineering of Ministry of Education School of Life Sciences Jilin University Changchun 130012 China

4. Beijing Advanced Innovation Centre for Biomedical Engineering Key Laboratory for Biomechanics and Mechanobiology of Ministry of Education School of Engineering Medicine Beihang University Beijing China

Abstract

AbstractClustered regularly interspaced short palindromic repeat (CRISPR)‐associated protein 9 (Cas9) is a promising gene editing tool to treat diseases at the genetic level. Nonetheless, the challenge of the safe and efficient delivery of CRISPR/Cas9 to host cells constrains its clinical applicability. In the current study, a facile, redox‐responsive CRISPR/Cas9‐Ribonucleoprotein (RNP) delivery system by combining iron‐coordinated aggregation with liposomes (Fe‐RNP@L) is reported. The Fe‐RNP is formed by the coordination of Fe3+ with amino and carboxyl groups of Cas9, which modifies the lipophilicity and surface charge of RNP and alters cellular uptake from primary endocytosis to endocytosis and cholesterol‐dependent membrane fusion. RNP can be rapidly and reversibly released from Fe‐RNP in response to glutathione without loss of structural integrity and enzymatic activity. In addition, iron coordination also improves the stability of RNP and substantially mitigates cytotoxicity. This construct enabled highly efficient cytoplasmic/nuclear delivery (≈90%) and gene‐editing efficiency (≈70%) even at low concentrations. The high payload content, high editing efficiency, good stability, low immunogenicity, and ease of production and storage, highlight its potential for diverse genome editing and clinical applications.

Funder

National Natural Science Foundation of China

National Key Research and Development Program of China

Jiangsu Provincial Key Research and Development Program

Earmarked Fund for China Agriculture Research System

Publisher

Wiley

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