Tools for editing the mammalian mitochondrial genome.

IF 4.3 3区 材料科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC ACS Applied Electronic Materials Pub Date : 2024-05-22 DOI:10.1093/hmg/ddae037
Carlos T Moraes
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Abstract

The manipulation of animal mitochondrial genomes has long been a challenge due to the lack of an effective transformation method. With the discovery of specific gene editing enzymes, designed to target pathogenic mitochondrial DNA mutations (often heteroplasmic), the selective removal or modification of mutant variants has become a reality. Because mitochondria cannot efficiently import RNAs, CRISPR has not been the first choice for editing mitochondrial genes. However, the last few years witnessed an explosion in novel and optimized non-CRISPR approaches to promote double-strand breaks or base-edit of mtDNA in vivo. Engineered forms of specific nucleases and cytidine/adenine deaminases form the basis for these techniques. I will review the newest developments that constitute the current toolbox for animal mtDNA gene editing in vivo, bringing these approaches not only to the exploration of mitochondrial function, but also closer to clinical use.

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编辑哺乳动物线粒体基因组的工具。
由于缺乏有效的转化方法,操纵动物线粒体基因组一直是一项挑战。随着针对致病线粒体 DNA 变异(通常是异质的)的特定基因编辑酶的发现,选择性去除或修改突变变体已成为现实。由于线粒体不能有效导入 RNA,CRISPR 并非编辑线粒体基因的首选。然而,在过去几年中,用于促进双链断裂或体内 mtDNA 碱基编辑的新型和优化的非 CRISPR 方法激增。特异性核酸酶和胞苷/腺嘌呤脱氨酶的工程形式构成了这些技术的基础。我将回顾构成目前体内动物 mtDNA 基因编辑工具箱的最新发展,这些方法不仅有助于探索线粒体功能,而且更接近临床应用。
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CiteScore
7.20
自引率
4.30%
发文量
567
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