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A rational engineering strategy for structural dynamics modulation enables target specificity enhancement of the Cas9 nuclease

Authors
 Keewon Sung  ;  Youngri Jung  ;  Nahye Kim  ;  Yong-Woo Kim  ;  Hyongbum Henry Kim  ;  Seong Keun Kim  ;  Sangsu Bae 
Citation
 NUCLEIC ACIDS RESEARCH, Vol.53(12) : gkaf535, 2025-06 
Journal Title
NUCLEIC ACIDS RESEARCH
ISSN
 0305-1048 
Issue Date
2025-06
MeSH
CRISPR-Associated Protein 9* / chemistry ; CRISPR-Associated Protein 9* / genetics ; CRISPR-Associated Protein 9* / metabolism ; CRISPR-Cas Systems* ; DNA / chemistry ; DNA / metabolism ; Endonucleases* / chemistry ; Endonucleases* / genetics ; Endonucleases* / metabolism ; Gene Editing ; Humans ; Models, Molecular ; Mutation ; Protein Engineering* / methods ; Substrate Specificity
Abstract
Structural dynamics of an enzyme plays a crucial role in enzymatic activity and substrate specificity, yet rational engineering of the dynamics for improved enzymatic properties remains a challenge. Here, we present a new biochemical strategy of intermediate state stabilization that modulates the multistep dynamic mechanisms of enzyme reactions to improve substrate specificity. We employ this strategy to enhance CRISPR-Cas9 nuclease specificity. By incorporating positively charged residues into the noncatalytic REC2 domain of Cas9, we stabilize the REC2-DNA interaction that forms exclusively in a catalytically inactive intermediate conformation of the Cas9 complex. This enables off-target trapping in the inactive conformation and thus reduces off-target cleavage in human cells. Furthermore, we combine the REC2 modification with mutations in previous rational variants, leading to the development of a combinational variant named Correct-Cas9, which connotes "combined with rationally engineered REC-Two" Cas9. Assessed by high-throughput analysis at thousands of target sequences, Correct-Cas9 exhibits increased target specificity compared to its parental variants, demonstrating a synergy between our strategy and previous rational approaches. Our method of intermediate state stabilization, either alone or combined with conventional approaches, could be applied to various nucleic acid-processing enzymes that undergo conformational changes upon target binding, to enhance their target specificity effectively.
Files in This Item:
T202506167.pdf Download
DOI
10.1093/nar/gkaf535
Appears in Collections:
1. College of Medicine (의과대학) > Dept. of Pharmacology (약리학교실) > 1. Journal Papers
Yonsei Authors
Kim, Hyongbum(김형범) ORCID logo https://orcid.org/0000-0002-4693-738X
URI
https://ir.ymlib.yonsei.ac.kr/handle/22282913/207686
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