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利用基因靶向和引导编辑在植物中进行精准基因组编辑:现有策略与新兴策略

Precision genome editing in plants using gene targeting and prime editing: existing and emerging strategies.

作者信息

Hassan Md Mahmudul, Yuan Guoliang, Liu Yang, Alam Mobashwer, Eckert Carrie A, Tuskan Gerald A, Golz John F, Yang Xiaohan

机构信息

Biosciences Division, Oak Ridge National Laboratory, Oak Ridge, Tennessee, 37831, USA.

The Center for Bioenergy Innovation, Oak Ridge National Laboratory, Oak Ridge, Tennessee, 37831, USA.

出版信息

Biotechnol J. 2022 Oct;17(10):e2100673. doi: 10.1002/biot.202100673. Epub 2022 Jul 11.

Abstract

Precise modification of plant genomes, such as seamless insertion, deletion, or replacement of DNA sequences at a predefined site, is a challenging task. Gene targeting (GT) and prime editing are currently the best approaches for this purpose. However, these techniques are inefficient in plants, which limits their applications for crop breeding programs. Recently, substantial developments have been made to improve the efficiency of these techniques in plants. Several strategies, such as RNA donor templating, chemically modified donor DNA template, and tandem-repeat homology-directed repair, are aimed at improving GT. Additionally, improved prime editing gRNA design, use of engineered reverse transcriptase enzymes, and splitting prime editing components have improved the efficacy of prime editing in plants. These emerging strategies and existing technologies are reviewed along with various perspectives on their future improvement and the development of robust precision genome editing technologies for plants.

摘要

精确修饰植物基因组,例如在预定义位点无缝插入、删除或替换DNA序列,是一项具有挑战性的任务。基因靶向(GT)和碱基编辑目前是实现这一目的的最佳方法。然而,这些技术在植物中的效率较低,这限制了它们在作物育种计划中的应用。最近,为提高这些技术在植物中的效率已取得了重大进展。几种策略,如RNA供体模板化、化学修饰的供体DNA模板和串联重复同源性定向修复,旨在提高基因靶向。此外,改进的碱基编辑向导RNA设计、工程化逆转录酶的使用以及拆分碱基编辑组件提高了碱基编辑在植物中的效果。本文综述了这些新兴策略和现有技术,并从不同角度探讨了它们未来的改进方向以及为植物开发强大的精确基因组编辑技术。

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