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在转座子编码的 I 型-F CRISPR-Cas 系统中,Cas8 与不同 PAM 序列结合时构象变化的机制见解。

Mechanistic Insight Into the Conformational Changes of Cas8 Upon Binding to Different PAM Sequences in the Transposon-Encoded Type I-F CRISPR-Cas System.

机构信息

Department of Pharmaceutics, College of Pharmacy, King Khalid University, Abha, Saudi Arabia.

Department of Pharmaceutical Sciences, Philadelphia College of Pharmacy, Saint Joseph University, Philadelphia, PA, USA.

出版信息

Proteins. 2024 Dec;92(12):1428-1448. doi: 10.1002/prot.26730. Epub 2024 Aug 22.

DOI:10.1002/prot.26730
PMID:39171866
Abstract

The INTEGRATE system is a gene-editing approach that offers advantages over the widely used CRISPR-Cas9 system. It does not introduce double strand breaks in the target DNA but rather integrates the desired DNA sequence directly into it. The first step in the integration process is PAM recognition, which is critical to understanding and optimizing the system. Experimental testing revealed varying integration efficiencies of different PAM mutants, and computational simulations were carried out to gain mechanistic insight into the conformational changes of Cas8 during PAM recognition. Our results showed that the interaction between Arg246 and guanine at position (-1) of the target strand is critical for PAM recognition. We found that unfavorable interactions in the 5'-AC-3' PAM mutant disrupted this interaction and may be responsible for its 0% integration efficiency. Additionally, we discovered that PAM sequences not only initiate the integration process but also regulate it through an allosteric mechanism that connects the N-terminal domain and the helical bundle of Cas8. This allosteric regulation was present in all PAMs tested, even those with lower integration efficiencies, such as 5'-TC-3' and 5'-AC-3'. We identified the Cas8 residues that are involved in this regulation. Our findings provide valuable insights into PAM recognition mechanisms in the INTEGRATE system and can help improve the gene-editing technology.

摘要

INTEGRATE 系统是一种基因编辑方法,相较于广泛使用的 CRISPR-Cas9 系统具有优势。它不会在靶 DNA 中引入双链断裂,而是将所需的 DNA 序列直接整合到其中。整合过程的第一步是 PAM 识别,这对于理解和优化系统至关重要。实验测试显示不同的 PAM 突变体具有不同的整合效率,并且进行了计算模拟以深入了解 Cas8 在 PAM 识别过程中的构象变化。我们的研究结果表明,Cas8 与靶链(-1)位上的鸟嘌呤之间的 Arg246 相互作用对于 PAM 识别至关重要。我们发现,5'-AC-3' PAM 突变体中不利的相互作用破坏了这种相互作用,可能是其 0%整合效率的原因。此外,我们发现 PAM 序列不仅启动了整合过程,而且还通过连接 Cas8 的 N 端结构域和螺旋束的变构机制来调节它。这种变构调节存在于所有测试的 PAM 中,即使是整合效率较低的 PAM 序列,如 5'-TC-3' 和 5'-AC-3' 也是如此。我们确定了参与这种调节的 Cas8 残基。我们的研究结果为 INTEGRATE 系统中 PAM 识别机制提供了有价值的见解,并有助于改进基因编辑技术。

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