DNA
基因组
化学
细胞生物学
劈理(地质)
核酸内切酶
生物
生物物理学
计算生物学
劈开
遗传学
机制(生物学)
基因
DNA连接酶
DNA测序
人类基因组
A-DNA
分子生物学
作者
Zehan Zhou,Iren Saffarian-Deemyad,Honglue Shi,Trevor Weiss,Muhammad Moez ur-Rehman,Kamakshi Vohra,Petr Skopintsev,Peter H. Yoon,Marena Trinidad,Conner J. Langeberg,Maris Kamalu,Jasmine Amerasekera,Erin E. Doherty,Kevin D.P. Aris,Noor Al-Sayyad,Brittney W. Thornton,Rachel F. Weissman,Kevin Wasko,Isabel Esain-Garcia,Evan C. DeTurk
标识
DOI:10.64898/2026.01.09.698545
摘要
Abstract TnpB is a compact RNA-guided endonuclease and evolutionary ancestor of CRISPR-Cas12 that offers a promising platform for genome engineering. However, the genome-editing activity of TnpBs remains limited and its underlying determinants are poorly understood. Here, we used biochemical and single-molecule assays to examine the DNA-unwinding mechanism of Youngiibacter multivorans TnpB (Ymu1 TnpB). DNA unwinding proceeds through formation of a partially unwound intermediate state to a fully unwound open state. The open state forms inefficiently and collapses readily in the absence of negative supercoiling. An optimized variant, Ymu1-WFR, stabilizes formation of both the intermediate and open states, resulting in enhanced DNA cleavage in vitro and increased genome editing in vivo . These findings identify the physical basis for the observed minimal activities of natural TnpBs, revealing how stabilizing specific unwinding states enables efficient DNA targeting.
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