Karlsruhe Institute of Technology, Botanical Institute, Fritz-Haber-Weg 4, Karlsruhe, 76133, Germany.
Plant J. 2021 May;106(4):965-977. doi: 10.1111/tpj.15211. Epub 2021 Mar 25.
The RTR (RecQ/Top3/Rmi1) complex has been elucidated as essential for ensuring genome stability in eukaryotes. Fundamental for the dissolution of Holliday junction (HJ)-like recombination intermediates, the factors have been shown to play further, partly distinct roles in DNA repair and homologous recombination. Across all kingdoms, disruption of this complex results in characteristic phenotypes including hyper-recombination and sensitivity to genotoxins. The type IA topoisomerase TOP3α has been shown as essential for viability in various animals. In contrast, in the model plant species Arabidopsis, the top3α mutant is viable. rmi1 mutants are deficient in the repair of DNA damage. Moreover, as opposed to other eukaryotes, TOP3α and RMI1 were found to be indispensable for proper meiotic progression, with mutants showing severe meiotic defects and sterility. We now established mutants of both TOP3α and RMI1 in tomato using CRISPR/Cas technology. Surprisingly, we found phenotypes that differed dramatically from those of Arabidopsis: the top3α mutants proved to be embryo-lethal, implying an essential role of the topoisomerase in tomato. In contrast, no defect in somatic DNA repair or meiosis was detectable for rmi1 mutants in tomato. This points to a differentiation of function of RTR complex partners between plant species. Our results indicate that there are relevant differences in the roles of basic factors involved in DNA repair and meiosis within dicotyledons, and thus should be taken as a note of caution when generalizing knowledge regarding basic biological processes obtained in the model plant Arabidopsis for the entire plant kingdom.
RTR(RecQ/Top3/Rmi1)复合物已被阐明为真核生物确保基因组稳定性所必需。该复合物对于解开类似于 Holliday 连接(HJ)的重组中间体至关重要,事实证明,该复合物在 DNA 修复和同源重组中发挥着进一步的、部分不同的作用。在所有生物界中,该复合物的破坏会导致特征性表型,包括超重组和对遗传毒素的敏感性。I 型拓扑异构酶 TOP3α 已被证明在各种动物中对生存是必需的。相比之下,在模式植物拟南芥中,top3α 突变体是可行的。rmi1 突变体在 DNA 损伤修复方面存在缺陷。此外,与其他真核生物不同,TOP3α 和 RMI1 对于减数分裂的正常进行是不可或缺的,突变体表现出严重的减数分裂缺陷和不育。我们现在使用 CRISPR/Cas 技术在番茄中建立了 TOP3α 和 RMI1 的突变体。令人惊讶的是,我们发现的表型与拟南芥的表型有很大的不同:top3α 突变体被证明是胚胎致死的,这表明拓扑异构酶在番茄中起着至关重要的作用。相比之下,在番茄中,rmi1 突变体在体细胞 DNA 修复或减数分裂方面没有缺陷。这表明 RTR 复合物伙伴之间的功能分化在植物物种之间存在差异。我们的结果表明,在涉及 DNA 修复和减数分裂的基本因子的作用方面,双子叶植物之间存在相关的差异,因此,在将从模式植物拟南芥获得的关于基本生物学过程的知识推广到整个植物界时,应该谨慎对待。