重组与植物细胞器基因组稳定性的维持。

Recombination and the maintenance of plant organelle genome stability.

机构信息

Department of Biochemistry, Université de Montréal, PO Box 6128, Station Centre-ville, Montréal, QC H3C 3J7, Canada.

出版信息

New Phytol. 2010 Apr;186(2):299-317. doi: 10.1111/j.1469-8137.2010.03195.x. Epub 2010 Feb 17.

Abstract

Like their nuclear counterpart, the plastid and mitochondrial genomes of plants have to be faithfully replicated and repaired to ensure the normal functioning of the plant. Inability to maintain organelle genome stability results in plastid and/or mitochondrial defects, which can lead to potentially detrimental phenotypes. Fortunately, plant organelles have developed multiple strategies to maintain the integrity of their genetic material. Of particular importance among these processes is the extensive use of DNA recombination. In fact, recombination has been implicated in both the replication and the repair of organelle genomes. Revealingly, deregulation of recombination in organelles results in genomic instability, often accompanied by adverse consequences for plant fitness. The recent identification of four families of proteins that prevent aberrant recombination of organelle DNA sheds much needed mechanistic light on this important process. What comes out of these investigations is a partial portrait of the recombination surveillance machinery in which plants have co-opted some proteins of prokaryotic origin but have also evolved whole new factors to keep their organelle genomes intact. These new features presumably optimized the protection of plastid and mitochondrial genomes against the particular genotoxic stresses they face.

摘要

与细胞核一样,植物的质体和线粒体基因组必须被忠实复制和修复,以确保植物的正常功能。细胞器基因组稳定性的丧失会导致质体和/或线粒体缺陷,从而可能导致潜在的有害表型。幸运的是,植物细胞器已经开发出多种策略来维持其遗传物质的完整性。在这些过程中,特别重要的是广泛使用 DNA 重组。事实上,重组已被牵涉到细胞器基因组的复制和修复中。有趣的是,细胞器中重组的失调会导致基因组不稳定,通常伴随着对植物适应性的不利后果。最近发现了阻止细胞器 DNA 异常重组的四类蛋白质,这为这一重要过程提供了急需的机制见解。这些研究揭示了重组监测机制的一个局部图景,其中植物已经采用了一些原核起源的蛋白质,但也进化出了全新的因素来保持其细胞器基因组的完整。这些新的特征可能优化了对质体和线粒体基因组的保护,使其免受它们所面临的特定遗传毒性应激的影响。

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