核酸
计算机科学
DNA
化学
计算生物学
生物
转录激活物样效应核酸酶
钥匙(锁)
生物系统
核酸酶
锌指核酸酶
作者
Petr Skopintsev,Isabel Esain-Garcia,Evan C. DeTurk,Peter H. Yoon,Z. S. Zhou,Trevor Weiss,Maris Kamalu,Ajit Chamraj,Kenneth J. Loi,Conner J. Langeberg,Ron Boger,Hunter Nisonoff,Hannah Karp,Lin-Xing Chen,Honglue Shi,Kamakshi Vohra,Jillian F. Banfield,J.H.D. Cate,Steven E. Jacobsen,Jennifer A. Doudna
出处
期刊:Science
[American Association for the Advancement of Science]
日期:2026-07-16
卷期号:393 (6808): 313-318
标识
DOI:10.1126/science.aed6123
摘要
The design of RNA-guided nucleases with properties not limited by evolution can expand programmable genome-editing capabilities. However, generating diverse multidomain proteins with robust enzymatic properties remains challenging. Here, we use a protein design strategy that couples a structure-guided inverse-folding model with evolution-informed residue constraints to generate active, divergent variants of TnpB, a minimal CRISPR-Cas12-like nuclease, termed SynTnpBs. High-throughput screening of artificial intelligence-generated variants yielded editors that retained or exceeded wild-type activity in bacterial, plant, and human cells. Cryo-electron microscopy-based structure determination of the most divergent variant revealed stabilizing contacts in the RNA-DNA interfaces across conformations, demonstrating the design potential of this approach. Together, these results establish a strategy for creating non-natural RNA-guided nucleases and conformationally active nucleic acid binders, enlarging the designable protein space.
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