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降低 pegRNA 内固有自抑制相互作用可提高 Prime 编辑效率。

Reducing the inherent auto-inhibitory interaction within the pegRNA enhances prime editing efficiency.

机构信息

Department of Molecular, Cell and Cancer Biology, University of Massachusetts Chan Medical School, Worcester, MA, USA.

Department of Molecular Medicine, University of Massachusetts Chan Medical School, Worcester, MA, USA.

出版信息

Nucleic Acids Res. 2023 Jul 21;51(13):6966-6980. doi: 10.1093/nar/gkad456.

Abstract

Prime editing systems have enabled the incorporation of precise edits within a genome without introducing double strand breaks. Previous studies defined an optimal primer binding site (PBS) length for the pegRNA of ∼13 nucleotides depending on the sequence composition. However, optimal PBS length characterization has been based on prime editing outcomes using plasmid or lentiviral expression systems. In this study, we demonstrate that for prime editor (PE) ribonucleoprotein complexes, the auto-inhibitory interaction between the PBS and the spacer sequence affects pegRNA binding efficiency and target recognition. Destabilizing this auto-inhibitory interaction by reducing the complementarity between the PBS-spacer region enhances prime editing efficiency in multiple prime editing formats. In the case of end-protected pegRNAs, a shorter PBS length with a PBS-target strand melting temperature near 37°C is optimal in mammalian cells. Additionally, a transient cold shock treatment of the cells post PE-pegRNA delivery further increases prime editing outcomes for pegRNAs with optimized PBS lengths. Finally, we show that prime editor ribonucleoprotein complexes programmed with pegRNAs designed using these refined parameters efficiently correct disease-related genetic mutations in patient-derived fibroblasts and efficiently install precise edits in primary human T cells and zebrafish.

摘要

碱基编辑系统能够在不引入双链断裂的情况下,在基因组内进行精确的编辑。先前的研究根据序列组成,将 pegRNA 的最优引物结合位点(PBS)长度定义为约 13 个核苷酸。然而,最优 PBS 长度的特征描述是基于质粒或慢病毒表达系统的碱基编辑结果。在这项研究中,我们证明对于碱基编辑(PE)核糖核蛋白复合物,PBS 和间隔序列之间的自动抑制相互作用会影响 pegRNA 的结合效率和靶标识别。通过减少 PBS-间隔区之间的互补性来破坏这种自动抑制相互作用,可以增强多种碱基编辑格式中的碱基编辑效率。对于端保护 pegRNA,在哺乳动物细胞中,PBS 长度较短且 PBS-靶链熔解温度接近 37°C 时是最佳的。此外,在 PE-pegRNA 递送后对细胞进行短暂的冷休克处理,进一步提高了优化后的 PBS 长度 pegRNA 的碱基编辑效果。最后,我们表明,使用这些经过优化的参数设计的 pegRNA 编程的碱基编辑核糖核蛋白复合物能够有效地纠正患者来源成纤维细胞中与疾病相关的遗传突变,并在原代人 T 细胞和斑马鱼中有效地进行精确编辑。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f783/10359601/e798d42d3084/gkad456figgra1.jpg

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