Bowen Hou, Xinyi Liu, Jiawen Fan, Wanjie Wang, Chuanzhao Jin, Guanglei Li, Yu Zhang, Wenxia Yu, Lei Huang, Xinyun Li, Xingxu Huang, Kui Li
Type V CRISPR-Cas12 systems evolved from transposon-encoded TnpB proteins, with type V-U4 nucleases (Cas12n) as evolutionary intermediates linking TnpB to larger type V effectors. Despite their compact size, most Cas12n orthologs, including Corynebacterium glutamicum Cas12n (CgCas12n), exhibit low genome-editing activity in mammalian cells. Here, we engineered CgCas12n using an arginine enrichment strategy, generating a variant with approximately 60-fold enhanced editing efficiency. Concurrently, we optimized the sgRNA scaffold to reduce its size without compromising activity. These improvements were combined to establish an enhanced CgCas12n system (eCgCas12n) that enables efficient mammalian genome editing. We further adapted this system for base editing by constructing a cytosine base editor (eCgCas12n-CBE) that mediates efficient C-to-T conversion. As proof of concept, eCgCas12n-CBE introduced a premature stop codon into the Dmd gene, reducing dystrophin expression and impairing myogenic differentiation. AAV9-mediated delivery of eCgCas12n-CBE into mouse skeletal muscle demonstrated its in vivo editing capability. Collectively, this work establishes a robust engineering strategy to enhance compact Cas12n nucleases and provides an efficient genome- and base-editing platform for functional genetic studies.