Base editing therapy forges ahead

Wen Jiang, Rui Yang
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Abstract

CRISPR/Cas-based gene editing is an innovative biotechnology that has revolutionized genetic engineering in recent years. The process involves induction of a double-strand break (DSB) at the desired DNA site and subsequent cellular repair. Two primary mechanisms drive DSB repair: non-homologous end joining and homologous recombination-mediated repair. Non-homologous end joining, the primary mode of DSB repair, is a simple high-efficiency process that is susceptible to errors, and unpredictable nucleotide insertion or deletion mutations. In contrast, point mutations account for more than 50% of human genetic disorders and are the most frequent type of genetic variation in nature. Base editing is a precise gene editing approach in which a single DNA base is substituted without introduction of DSBs or use of a repair template. This technique has promising therapeutic potential in gene therapy, owing to its high efficiency and controllable editing results. Since the invention of the first base editing tools, the technique has rapidly developed and undergone clinical trials. This review summarizes progress in gene therapy through base editing, including DNA and RNA base editing, with particular emphasis on recent clinical trial and preclinical research advancements, current limitations and remaining challenges, and prospects for further research and applications.
碱基编辑疗法向前发展
基于CRISPR/ cas的基因编辑是近年来基因工程发生革命性变化的创新生物技术。该过程包括在所需DNA位点诱导双链断裂(DSB)和随后的细胞修复。两种主要机制驱动DSB修复:非同源末端连接和同源重组介导的修复。非同源末端连接是DSB修复的主要方式,是一种简单高效的过程,容易发生错误和不可预测的核苷酸插入或缺失突变。相比之下,点突变占人类遗传疾病的50%以上,是自然界中最常见的遗传变异类型。碱基编辑是一种精确的基因编辑方法,在不引入dsb或使用修复模板的情况下取代单个DNA碱基。该技术具有效率高、编辑结果可控等特点,在基因治疗领域具有广阔的应用前景。自第一批碱基编辑工具发明以来,该技术迅速发展并进行了临床试验。本文综述了碱基编辑技术在基因治疗方面的研究进展,包括DNA和RNA碱基编辑,重点介绍了最近的临床试验和临床前研究进展、当前的局限性和面临的挑战,以及进一步研究和应用的前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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