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真菌核编码和内含子编码成熟酶的相互关联作用:在线粒体内含子剪接的交叉点上

Interconnected roles of fungal nuclear- and intron-encoded maturases: at the crossroads of mitochondrial intron splicing.

作者信息

Mukhopadhyay Jigeesha, Hausner Georg

机构信息

Department of Microbiology, University of Manitoba, Winnipeg, MB R3T 2N2, Canada.

出版信息

Biochem Cell Biol. 2024 Oct 1;102(5):351-372. doi: 10.1139/bcb-2024-0046. Epub 2024 Jun 4.

DOI:10.1139/bcb-2024-0046
PMID:38833723
Abstract

Group I and II introns are large catalytic RNAs (ribozymes) that are frequently encountered in fungal mitochondrial genomes. The discovery of respiratory mutants linked to intron splicing defects demonstrated that for the efficient removal of organellar introns there appears to be a requirement of protein splicing factors. These splicing factors can be intron-encoded proteins with maturase activities that usually promote the splicing of the introns that encode them (-acting) and/or nuclear-encoded factors that can promote the splicing of a range of different introns (-acting). Compared to plants organellar introns, fungal mitochondrial intron splicing is still poorly explored, especially in terms of the synergy of nuclear factors with intron-encoded maturases that has direct impact on splicing through their association with intron RNA. In addition, nuclear-encoded accessory factors might drive the splicing impetus through translational activation, mitoribosome assembly, and phosphorylation-mediated RNA turnover. This review explores protein-assisted splicing of introns by nuclear and mitochondrial-encoded maturases as a means of mitonuclear interplay that could respond to environmental and developmental factors promoting phenotypic adaptation and potentially speciation. It also highlights key evolutionary events that have led to changes in structure and ATP-dependence to accommodate the dual functionality of nuclear and organellar splicing factors.

摘要

I 组和 II 组内含子是大型催化 RNA(核酶),常见于真菌线粒体基因组中。与内含子剪接缺陷相关的呼吸突变体的发现表明,为了有效去除细胞器内含子,似乎需要蛋白质剪接因子。这些剪接因子可以是具有成熟酶活性的内含子编码蛋白,通常促进编码它们的内含子的剪接(顺式作用)和/或可以促进一系列不同内含子剪接的核编码因子(反式作用)。与植物细胞器内含子相比,真菌线粒体内含子的剪接仍未得到充分研究,特别是在核因子与内含子编码的成熟酶的协同作用方面,这种协同作用通过它们与内含子 RNA 的结合直接影响剪接。此外,核编码的辅助因子可能通过翻译激活、线粒体核糖体组装和磷酸化介导的 RNA 周转来驱动剪接动力。本综述探讨了由核编码和线粒体编码的成熟酶对内含子进行蛋白质辅助剪接,作为一种核线粒体相互作用的方式,这种相互作用可能响应促进表型适应和潜在物种形成的环境和发育因素。它还强调了导致结构和 ATP 依赖性变化的关键进化事件,以适应核和细胞器剪接因子的双重功能。

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