Activation of homology-directed DNA repair plays key role in CRISPR-mediated genome correction

基因组编辑 清脆的 生物 Cas9 基因 DNA修复 遗传增强 同源定向修复 遗传学 细胞生物学 计算生物学 DNA错配修复
作者
Gourish Mondal,Caitlin J. VanLith,Clara T. Nicolas,Whitney S. Thompson,William Cao,Lori G. Hillin,Benjamin J. Haugo,Daniel R. O’ Brien,Jean‐Pierre Kocher,Robert A. Kaiser,Joseph B. Lillegard
出处
期刊:Gene Therapy [Springer Nature]
卷期号:30 (3-4): 386-397 被引量:3
标识
DOI:10.1038/s41434-022-00369-8
摘要

Gene editing for the cure of inborn errors of metabolism (IEMs) has been limited by inefficiency of adult hepatocyte targeting. Here, we demonstrate that in utero CRISPR/Cas9-mediated gene editing in a mouse model of hereditary tyrosinemia type 1 provides stable cure of the disease. Following this, we performed an extensive gene expression analysis to explore the inherent characteristics of fetal/neonatal hepatocytes that make them more susceptible to efficient gene editing than adult hepatocytes. We showed that fetal and neonatal livers are comprised of proliferative hepatocytes with abundant expression of genes involved in homology-directed repair (HDR) of DNA double-strand breaks (DSBs), key for efficient gene editing by CRISPR/Cas9. We demonstrated the same is true of hepatocytes after undergoing a regenerative stimulus (partial hepatectomy), where post-hepatectomy cells show a higher efficiency of HDR and correction. Specifically, we demonstrated that HDR-related genome correction is most effective in the replicative phase, or S-phase, of an actively proliferating cell. In conclusion, this study shows that taking advantage of or triggering cell proliferation, specifically DNA replication in S-phase, may serve as an important tool to improve efficiency of CRISPR/Cas9-mediated genome editing in the liver and provide a curative therapy for IEMs in both children and adults.
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