Wang Linli, Wang Yanlu, Chen Jian, Zhu Yaning, Qin Hao, Liu Jie, Ai Yue, Lai Jinsheng, Lian Zhengxing, Han Hongbing
State Key Laboratory of Animal Biotech Breeding, China Agricultural University, Beijing 100193, China.
Beijing Key Laboratory of Animal Genetic Improvement, College of Animal Science and Technology, China Agricultural University, Beijing 100193, China.
Nucleic Acids Res. 2025 Aug 27;53(16). doi: 10.1093/nar/gkaf806.
Developing efficient and simplified tools for multiplexed genome editing remains challenging due to limitations in precursor CRISPR RNA (pre-crRNA) processing and reliance on additional RNA-based regulatory components. Cas12i.3, a small RNA-guided nuclease, reportedly lacks pre-crRNA processing ability, restricting its multiplexing capability. Here, we engineered Cas12i.3 by optimizing CRISPR RNA (crRNA) design, codon usage, and exonuclease fusion, generating initial optimized Cas12i (IOCas12i) system. Further rational design and amino acid mutations yielded the highly efficient enhanced optimized Cas12i (EOCas12i) systems, EOCas12i-Combo1 and EOCas12i-Combo2, exhibiting 2.5- to 22.8-fold and 3.0- to 60.0-fold editing efficiencies relative to wild-type Cas12i.3, comparable to Streptococcus pyogenes Cas9 (SpCas9) and Lachnospiraceae bacterium Cas12a (LbCas12a). Additionally, they exhibited high specificity and produced longer insertions and deletions (indels) that may facilitate gene knockout. Notably, both variants enabled efficient multiplexed editing of up to 30 targets using compact crRNA arrays. These advancements position EOCas12i-Combo1 and EOCas12i-Combo2 as promising platforms for multiplexed genome editing applications.
由于前体CRISPR RNA(pre-crRNA)加工存在局限性且依赖其他基于RNA的调控元件,开发高效且简化的多重基因组编辑工具仍然具有挑战性。据报道,小型RNA引导核酸酶Cas12i.3缺乏pre-crRNA加工能力,限制了其多重编辑能力。在此,我们通过优化CRISPR RNA(crRNA)设计、密码子使用和核酸外切酶融合对Cas12i.3进行工程改造,构建了初始优化的Cas12i(IOCas12i)系统。进一步的合理设计和氨基酸突变产生了高效的增强优化Cas12i(EOCas12i)系统,即EOCas12i-Combo1和EOCas12i-Combo2,相对于野生型Cas12i.3,其编辑效率提高了2.5至22.8倍和3.0至60.0倍,与化脓性链球菌Cas9(SpCas9)和毛螺菌科细菌Cas12a(LbCas12a)相当。此外,它们表现出高特异性,并产生了可能有助于基因敲除的更长插入缺失(indel)。值得注意的是,这两种变体都能使用紧凑的crRNA阵列对多达30个靶点进行高效多重编辑。这些进展使EOCas12i-Combo1和EOCas12i-Combo2成为多重基因组编辑应用的有前景平台。