Department of Biochemistry, Jacobs School of Medicine and Biomedical Sciences, State University of New York at Buffalo, Buffalo, NY 14203, USA.
Department of Biomedical Informatics, Jacobs School of Medicine and Biomedical Sciences, State University of New York at Buffalo, Buffalo, NY 14203, USA.
Nucleic Acids Res. 2023 Mar 21;51(5):2333-2344. doi: 10.1093/nar/gkad021.
The clustered regularly interspaced short palindromic repeats (CRISPR) Cas system is a powerful tool that has the potential to become a therapeutic gene editor in the near future. Cas9 is the best studied CRISPR system and has been shown to have problems that restrict its use in therapeutic applications. Chromatin structure is a known impactor of Cas9 targeting and there is a gap in knowledge on Cas9's efficacy when targeting such locations. To quantify at a single base pair resolution how chromatin inhibits on-target gene editing relative to off-target editing of exposed mismatching targets, we developed the gene editor mismatch nucleosome inhibition assay (GEMiNI-seq). GEMiNI-seq utilizes a library of nucleosome sequences to examine all target locations throughout nucleosomes in a single assay. The results from GEMiNI-seq revealed that the location of the protospacer-adjacent motif (PAM) sequence on the nucleosome edge drives the ability for Cas9 to access its target sequence. In addition, Cas9 had a higher affinity for exposed mismatched targets than on-target sequences within a nucleosome. Overall, our results show how chromatin structure impacts the fidelity of Cas9 to potential targets and highlight how targeting sequences with exposed PAMs could limit off-target gene editing, with such considerations improving Cas9 efficacy and resolving current limitations.
成簇规律间隔短回文重复序列 (CRISPR) Cas 系统是一种强大的工具,它有可能在不久的将来成为一种治疗性基因编辑工具。Cas9 是研究最深入的 CRISPR 系统,已被证明存在一些问题,限制了其在治疗应用中的使用。染色质结构是 Cas9 靶向的已知影响因素,而在针对这种位置时 Cas9 的功效方面存在知识空白。为了定量分析染色质相对于暴露错配靶标在靶基因编辑的抑制作用,我们开发了基因编辑错配核小体抑制测定法(GEMiNI-seq)。GEMiNI-seq 利用核小体序列文库来在单个测定中检查核小体中所有目标位置。GEMiNI-seq 的结果表明,核小体边缘上的前导间隔基序 (PAM) 序列的位置决定了 Cas9 能够访问其靶序列的能力。此外,Cas9 对暴露的错配靶标的亲和力高于核小体中的靶序列。总体而言,我们的结果表明染色质结构如何影响 Cas9 对潜在靶标的保真度,并强调了如何通过靶向具有暴露 PAMs 的序列来限制脱靶基因编辑,这些考虑因素可以提高 Cas9 的功效并解决当前的限制。