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单分子 FRET 揭示 CasX(Cas12e)在介导 DNA 切割中的构象动力学。

Conformational dynamics of CasX (Cas12e) in mediating DNA cleavage revealed by single-molecule FRET.

机构信息

State Key Laboratory of Membrane Biology, Beijing Frontier Research Center for Biological Structure, School of Life Sciences, Tsinghua University, Beijing 100084, China.

Tsinghua-Peking Center for Life Sciences, Tsinghua University, Beijing 100084, China.

出版信息

Nucleic Acids Res. 2024 Aug 27;52(15):9014-9027. doi: 10.1093/nar/gkae604.

Abstract

CasX (also known as Cas12e), a Class 2 CRISPR-Cas system, shows promise in genome editing due to its smaller size compared to the widely used Cas9 and Cas12a. Although the structures of CasX-sgRNA-DNA ternary complexes have been resolved and uncover a distinctive NTSB domain, the dynamic behaviors of CasX are not well characterized. In this study, we employed single-molecule and biochemical assays to investigate the conformational dynamics of two CasX homologs, DpbCasX and PlmCasX, from DNA binding to target cleavage and fragment release. Our results indicate that CasX cleaves the non-target strand and the target strand sequentially with relative irreversible dynamics. The two CasX homologs exhibited different cleavage patterns and specificities. The dynamic characterization of CasX also reveals a PAM-proximal seed region, providing guidance for CasX-based effector design. Further studies elucidate the mechanistic basis for why modification of sgRNA and the NTSB domain can affect its activity. Interestingly, CasX has less effective target search efficiency than Cas9 and Cas12a, potentially accounting for its lower genome editing efficiency. This observation opens a new avenue for future protein engineering.

摘要

CasX(也称为 Cas12e)是一种 2 类 CRISPR-Cas 系统,由于其与广泛使用的 Cas9 和 Cas12a 相比体积更小,因此在基因组编辑方面具有很大的潜力。尽管 CasX-sgRNA-DNA 三元复合物的结构已经被解析,并揭示了一个独特的 NTSB 结构域,但 CasX 的动态行为还没有很好地描述。在这项研究中,我们使用单分子和生化测定方法研究了来自 DNA 结合到目标切割和片段释放的两个 CasX 同源物 DpbCasX 和 PlmCasX 的构象动力学。我们的结果表明,CasX 以相对不可逆的动力学顺序切割非目标链和目标链。这两种 CasX 同源物表现出不同的切割模式和特异性。CasX 的动态表征还揭示了一个 PAM 近端的种子区域,为 CasX 基效应物的设计提供了指导。进一步的研究阐明了为什么 sgRNA 和 NTSB 结构域的修饰会影响其活性的机制基础。有趣的是,CasX 的目标搜索效率比 Cas9 和 Cas12a 低,这可能是其基因组编辑效率较低的原因。这一观察结果为未来的蛋白质工程开辟了新的途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9696/11347132/0c0b16e50b9f/gkae604figgra1.jpg

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