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High-fidelity KKH variant of Staphylococcus aureus Cas9 nucleases with improved base mismatch discrimination

  • Chaya T. L. Yuen
  • , Dawn G. L. Thean
  • , Becky K. C. Chan
  • , Peng Zhou
  • , Cynthia C S Kwok
  • , Hoi Yee Chu
  • , Maggie S. H. Cheung
  • , Bei Wang
  • , Yee Man Chan
  • , Silvia Y. L. Mak
  • , Anskar Y. Leung
  • , Gigi C. G. Choi
  • , Zongli Zheng
  • , Alan S. L. Wong*
  • *Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

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Abstract

The Cas9 nuclease from Staphylococcus aureus (SaCas9) holds great potential for use in gene therapy, and variants with increased fidelity have been engineered. However, we find that existing variants have not reached the greatest accuracy to discriminate base mismatches and exhibited much reduced activity when their mutations were grafted onto the KKH mutant of SaCas9 for editing an expanded set of DNA targets. We performed structure-guided combinatorial mutagenesis to re-engineer KKH-SaCas9 with enhanced accuracy. We uncover that introducing a Y239H mutation on KKH-SaCas9's REC domain substantially reduces off-target edits while retaining high on-target activity when added to a set of mutations on REC and RuvC domains that lessen its interactions with the target DNA strand. The Y239H mutation is modelled to have removed an interaction from the REC domain with the guide RNA backbone in the guide RNA-DNA heteroduplex structure. We further confirmed the greatly improved genome-wide editing accuracy and single-base mismatch discrimination of our engineered variants, named KKH-SaCas9-SAV1 and SAV2, in human cells. In addition to generating broadly useful KKH-SaCas9 variants with unprecedented accuracy, our findings demonstrate the feasibility for multi-domain combinatorial mutagenesis on SaCas9's DNA- and guide RNA- interacting residues to optimize its editing fidelity.
Original languageEnglish
Pages (from-to)1650-1660
JournalNucleic Acids Research
Volume50
Issue number3
Online published21 Jan 2022
DOIs
Publication statusPublished - 22 Feb 2022

Funding

"Centre for Oncology and Immunology under the Health@InnoHK Program launched by the Innovation and Technology Commission, the Government of Hong Kong Special Administrative Region of the People’s Republic of China; Hong Kong Research Grants Council [TRS-T12-702/20-N]; National Natural Science Foundation of China Excellent Young Scientists Fund [32022089]; A.S.L.W. is a Ming Wai Lau Centre for Reparative Medicine (MWLC) Associate Member; Ming Wai Lau Centre for Reparative Medicine Associate Member Programme (in part). Funding for open access charge: Centre for Oncology and Immunology under the Health@InnoHK Program launched by the Innovation and Technology Commission, the Government of Hong Kong Special Administrative Region of the People’s Republic of China; Hong Kong Research Grants Council [TRS-T12-702/20-N]; National Natural Science Foundation of China Excellent Young Scientists Fund [32022089];"

Publisher's Copyright Statement

  • This full text is made available under CC-BY-NC 4.0. https://creativecommons.org/licenses/by-nc/4.0/

RGC Funding Information

  • RGC-funded

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