Disruption of recombination machinery alters the mutational landscape in plant organellar genomes.

IF 2.2 3区 生物学 Q3 GENETICS & HEREDITY G3: Genes|Genomes|Genetics Pub Date : 2025-04-17 DOI:10.1093/g3journal/jkaf029
Gus Waneka, Amanda K Broz, Forrest Wold-McGimsey, Yi Zou, Zhiqiang Wu, Daniel B Sloan
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Abstract

Land plant organellar genomes have extremely low rates of point mutation yet also experience high rates of recombination and genome instability. Characterizing the molecular machinery responsible for these patterns is critical for understanding the evolution of these genomes. While much progress has been made toward understanding recombination activity in land plant organellar genomes, the relationship between recombination pathways and point mutation rates remains uncertain. The organellar-targeted mutS homolog MSH1 has previously been shown to suppress point mutations as well as non-allelic recombination between short repeats in Arabidopsis thaliana. We therefore implemented high-fidelity Duplex Sequencing to test if other genes that function in recombination and maintenance of genome stability also affect point mutation rates. We found small to moderate increases in the frequency of single nucleotide variants (SNVs) and indels in mitochondrial and/or plastid genomes of A. thaliana mutant lines lacking radA, recA1, or recA3. In contrast, osb2 and why2 mutants did not exhibit an increase in point mutations compared to wild-type (WT) controls. In addition, we analyzed the distribution of SNVs in previously generated Duplex Sequencing data from A. thaliana organellar genomes and found unexpected strand asymmetries and large effects of flanking nucleotides on mutation rates in WT plants and msh1 mutants. Finally, using long-read Oxford Nanopore sequencing, we characterized structural variants in organellar genomes of the mutant lines and show that different short repeat sequences become recombinationally active in different mutant backgrounds. Together, these complementary sequencing approaches shed light on how recombination may impact the extraordinarily low point mutation rates in plant organellar genomes.

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重组机制的破坏改变了植物细胞器基因组的突变景观。
陆地植物细胞器基因组具有极低的点突变率,但也经历了高的重组率和基因组不稳定性。表征这些模式的分子机制对于理解这些基因组的进化至关重要。虽然在了解陆地植物细胞器基因组的重组活性方面取得了很大进展,但重组途径与点突变率之间的关系仍然不确定。细胞器靶向mutS同源物MSH1先前已被证明可以抑制拟南芥短重复序列之间的点突变和非等位基因重组。因此,我们实施了高保真双工测序,以测试在重组和维持基因组稳定性中起作用的其他基因是否也影响点突变率。我们发现,在缺乏radA、recA1或recA3的拟南芥突变系的线粒体和/或质体基因组中,单核苷酸变异(snv)和索引的频率有小到中度的增加。相比之下,osb2和why2突变体与野生型(WT)对照相比,点突变没有增加。此外,我们分析了先前从拟南芥细胞器基因组中生成的双工测序数据中snv的分布,发现了意想不到的链不对称和侧翼核苷酸对WT植物和msh1突变体突变率的巨大影响。最后,利用长读Oxford Nanopore测序技术,我们表征了突变系细胞器基因组的结构变异,并表明不同的短重复序列在不同的突变背景下具有重组活性。总之,这些互补的测序方法揭示了重组如何影响植物细胞器基因组中异常低的点突变率。
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来源期刊
G3: Genes|Genomes|Genetics
G3: Genes|Genomes|Genetics GENETICS & HEREDITY-
CiteScore
5.10
自引率
3.80%
发文量
305
审稿时长
3-8 weeks
期刊介绍: G3: Genes, Genomes, Genetics provides a forum for the publication of high‐quality foundational research, particularly research that generates useful genetic and genomic information such as genome maps, single gene studies, genome‐wide association and QTL studies, as well as genome reports, mutant screens, and advances in methods and technology. The Editorial Board of G3 believes that rapid dissemination of these data is the necessary foundation for analysis that leads to mechanistic insights. G3, published by the Genetics Society of America, meets the critical and growing need of the genetics community for rapid review and publication of important results in all areas of genetics. G3 offers the opportunity to publish the puzzling finding or to present unpublished results that may not have been submitted for review and publication due to a perceived lack of a potential high-impact finding. G3 has earned the DOAJ Seal, which is a mark of certification for open access journals, awarded by DOAJ to journals that achieve a high level of openness, adhere to Best Practice and high publishing standards.
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