Holliday Junction Resolvase MOC1 Maintains Plastid and Mitochondrial Genome Integrity in Algae and Bryophytes.

IF 5.3 2区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
ACS Applied Nano Materials Pub Date : 2020-12-01 Epub Date: 2020-09-25 DOI:10.1104/pp.20.00763
Yusuke Kobayashi, Masaki Odahara, Yasuhiko Sekine, Takashi Hamaji, Sumire Fujiwara, Yoshiki Nishimura, Shin-Ya Miyagishima
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引用次数: 0

Abstract

When DNA double-strand breaks occur, four-stranded DNA structures called Holliday junctions (HJs) form during homologous recombination. Because HJs connect homologous DNA by a covalent link, resolution of HJ is crucial to terminate homologous recombination and segregate the pair of DNA molecules faithfully. We recently identified Monokaryotic Chloroplast1 (MOC1) as a plastid DNA HJ resolvase in algae and plants. Although Cruciform cutting endonuclease1 (CCE1) was identified as a mitochondrial DNA HJ resolvase in yeasts, homologs or other mitochondrial HJ resolvases have not been identified in other eukaryotes. Here, we demonstrate that MOC1 depletion in the green alga Chlamydomonas reinhardtii and the moss Physcomitrella patens induced ectopic recombination between short dispersed repeats in ptDNA. In addition, MOC1 depletion disorganized thylakoid membranes in plastids. In some land plant lineages, such as the moss P. patens, a liverwort and a fern, MOC1 dually targeted to plastids and mitochondria. Moreover, mitochondrial targeting of MOC1 was also predicted in charophyte algae and some land plant species. Besides causing instability of plastid DNA, MOC1 depletion in P. patens induced short dispersed repeat-mediated ectopic recombination in mitochondrial DNA and disorganized cristae in mitochondria. Similar phenotypes in plastids and mitochondria were previously observed in mutants of plastid-targeted (RECA2) and mitochondrion-targeted (RECA1) recombinases, respectively. These results suggest that MOC1 functions in the double-strand break repair in which a recombinase generates HJs and MOC1 resolves HJs in mitochondria of some lineages of algae and plants as well as in plastids in algae and plants.

Holliday Junction Resolvase MOC1 维持藻类和红叶植物中质体和线粒体基因组的完整性。
当 DNA 双链断裂时,同源重组过程中会形成称为霍利迪连接(HJ)的四链 DNA 结构。由于 HJ 通过共价键连接同源 DNA,因此 HJ 的解析对于终止同源重组和忠实分离一对 DNA 分子至关重要。我们最近发现单核细胞叶绿体1(MOC1)是藻类和植物中的一种质体DNA HJ分解酶。虽然楔形切割内切酶1(CCE1)在酵母中被鉴定为线粒体DNA HJ分解酶,但在其他真核生物中尚未发现同源物或其他线粒体HJ分解酶。在这里,我们证明了在绿色藻类莱茵衣藻(Chlamydomonas reinhardtii)和藓类青苔(Physcomitrella patens)中消耗 MOC1 会诱导 ptDNA 短分散重复序列之间的异位重组。此外,MOC1 的耗竭会使质体中的类木质膜变得杂乱无章。在一些陆生植物品系中,如青苔、肝草和蕨类植物,MOC1 同时靶向质体和线粒体。此外,在叶绿藻和一些陆生植物物种中,MOC1 也被预测为线粒体靶向。除了导致质体 DNA 的不稳定性外,MOC1 在 P. patens 中的耗竭还诱导了线粒体 DNA 短分散重复介导的异位重组和线粒体嵴的紊乱。之前在质粒靶向重组酶(RECA2)和线粒体靶向重组酶(RECA1)的突变体中分别观察到了质粒和线粒体中类似的表型。这些结果表明,MOC1 在双链断裂修复过程中发挥作用,在这一过程中,重组酶在藻类和植物的某些品系的线粒体以及藻类和植物的质粒中产生 HJ,而 MOC1 在线粒体中解决 HJ。
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来源期刊
CiteScore
8.30
自引率
3.40%
发文量
1601
期刊介绍: ACS Applied Nano Materials is an interdisciplinary journal publishing original research covering all aspects of engineering, chemistry, physics and biology relevant to applications of nanomaterials. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrate knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important applications of nanomaterials.
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