线粒体基因编辑工具的发展及其在未来农业作物改良中的可能作用

Jinghua Yang, Xiaodong Yang, Tongbing Su, Zhongyuan Hu, Mingfang Zhang
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引用次数: 2

摘要

我们生活在基因组编辑的时代。目前,植物核DNA的靶向编辑自10年前首次建立以来,在基础生物学研究和作物改良中非常流行。然而,在植物线粒体基因组上取得同样的成就一直被认为是不可能的。近年来,利用线粒体靶向转录激活因子样效应核酸酶(mitoTALENs)编辑植物有丝分裂基因组的先驱研究已经在水稻、油菜籽和拟南芥中开展。线粒体在植物的发育和抗逆性中起着重要的作用,特别是在杂交生产中广泛应用的细胞质雄性不育中。线粒体基因组编辑的成功使研究线粒体基因组的基础成为可能。此外,以序列特异性方式编辑线粒体RNA(主要是通过核编码的五肽重复(PPR)蛋白)可以同时改变可翻译线粒体mRNA的产生。此外,直接编辑植物线粒体基因组动力学和重组所需的核编码线粒体靶向因子可能有助于植物线粒体的遗传操作。本文对植物线粒体基因组编辑的研究现状进行了综述。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

The Development of Mitochondrial Gene Editing Tools and Their Possible Roles in Crop Improvement for Future Agriculture

The Development of Mitochondrial Gene Editing Tools and Their Possible Roles in Crop Improvement for Future Agriculture

We are living in the era of genome editing. Nowadays, targeted editing of the plant nuclear DNA is prevalent in basic biological research and crop improvement since its first establishment a decade ago. However, achieving the same accomplishment for the plant mitochondrial genome has long been deemed impossible. Recently, the pioneer studies on editing plant mitogenome have been done using the mitochondria-targeted transcription activator-like effector nucleases (mitoTALENs) in rice, rapeseed, and Arabidopsis. It is well documented that mitochondria play essential roles in plant development and stress tolerance, particularly, in cytoplasmic male sterility widely used in production of hybrids. The success of mitochondrial genome editing enables studying the fundamentals of mitochondrial genome. Furthermore, mitochondrial RNA editing (mostly by nuclear-encoded pentatricopeptide repeat (PPR) proteins) in a sequence-specific manner can simultaneously change the production of translatable mitochondrial mRNA. Moreover, direct editing of the nuclear-encoding mitochondria-targeted factors required for plant mitochondrial genome dynamics and recombination may facilitate genetic manipulation of plant mitochondria. Here, the present state of knowledge on editing the plant mitochondrial genome is reviewed.

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