Li Di, Cao Yaqi, Xie Long, He Chenfei, Jiao Danrong, Ma Mengxue, Zuo Zhenrui, Zuo Erwei, Yang Xiaogan
Guangxi Key Laboratory of Animal Breeding, Disease Control and Prevention, College of Animal Science & Technology, Guangxi University, Nanning 530004, China.
Shenzhen Branch, Guangdong Laboratory for Lingnan Modern Agriculture, Key Laboratory of Synthetic Biology, Ministry of Agriculture and Rural Affairs, Agricultural Genomics Institute at Shenzhen, Chinese Academy of Agricultural Sciences, Shenzhen 518000, China.
Curr Issues Mol Biol. 2024 Apr 27;46(5):4021-4034. doi: 10.3390/cimb46050248.
The demand for high-precision CRISPR/Cas9 systems in biomedicine is experiencing a notable upsurge. The editing system fdCas9 employs a dual-sgRNA strategy to enhance editing accuracy. However, the application of fdCas9 is constrained by the stringent requirement for two protospacer adjacent motifs (PAMs) of Cas9. Here, we devised an optimized editor, fRYdCas9, by merging FokI with the nearly PAM-less RYdCas9 variant, and two fRYdCas9 systems formed a dimer in a proper spacer length to accomplish DNA cleavage. In comparison to fdCas9, fRYdCas9 demonstrates a substantial increase in the number of editable genomic sites, approximately 330-fold, while maintaining a comparable level of editing efficiency. Through meticulous experimental validation, we determined that the optimal spacer length between two FokI guided by RYdCas9 is 16 base pairs. Moreover, fRYdCas9 exhibits a near PAM-less feature, along with no on-target motif preference via the library screening. Meanwhile, fRYdCas9 effectively addresses the potential risks of off-targets, as analyzed through whole genome sequencing (WGS). Mouse embryonic editing shows fRYdCas9 has robust editing capabilities. This study introduces a potentially beneficial alternative for accurate gene editing in therapeutic applications and fundamental research.
生物医学领域对高精度CRISPR/Cas9系统的需求正在显著上升。编辑系统fdCas9采用双sgRNA策略来提高编辑准确性。然而,fdCas9的应用受到Cas9对两个原间隔相邻基序(PAM)的严格要求的限制。在此,我们通过将FokI与几乎无PAM的RYdCas9变体融合,设计了一种优化编辑器fRYdCas9,两个fRYdCas9系统在合适的间隔长度下形成二聚体以完成DNA切割。与fdCas9相比,fRYdCas9的可编辑基因组位点数量大幅增加,约为330倍,同时保持了相当的编辑效率水平。通过细致的实验验证,我们确定由RYdCas9引导的两个FokI之间的最佳间隔长度为16个碱基对。此外,fRYdCas9表现出近乎无PAM的特性,通过文库筛选没有靶向基序偏好。同时,通过全基因组测序(WGS)分析,fRYdCas9有效解决了脱靶的潜在风险。小鼠胚胎编辑显示fRYdCas9具有强大的编辑能力。这项研究为治疗应用和基础研究中的精确基因编辑引入了一种潜在有益的替代方案。