Alternating between even and odd ploidy levels switches on and off the recombination control, even near the centromeres

生物 减数分裂 倍性 油菜 多倍体 芸苔属 重组 遗传学 着丝粒 基因组 同源重组 基因 突变体 染色体 植物
作者
Franz Boideau,Virginie Huteau,Loeiz Maillet,Anael Brunet,Olivier Coriton,Gwenaëlle Deniot,Gwenn Trotoux,Maryse Lodé-Taburel,Frédérique Eber,Marie Gilet,Cécile Baron,Julien Boutte,Gautier Richard,Jean‐Marc Aury,Caroline Belser,Karine Labadie,Jérôme Morice,Cyril Falentin,Olivier Martin,Matthieu Falque,Anne‐Marie Chèvre,Mathieu Rousseau‐Gueutin
出处
期刊:The Plant Cell [Oxford University Press]
标识
DOI:10.1093/plcell/koae208
摘要

Meiotic recombination is a key biological process in plant evolution and breeding, as it generates genetic diversity in each generation through the formation of crossovers (COs). However, due to their importance in genome stability, COs are highly regulated in frequency and distribution. We previously demonstrated that this strict regulation of COs can be modified, both in terms of CO frequency and distribution, in allotriploid Brassica hybrids (2n = 3x = 29; AAC) resulting from a cross between Brassica napus (2n = 4x = 38; AACC) and Brassica rapa (2n = 2x = 20; AA). Using the recently updated B. napus genome now including pericentromeres, we demonstrated that COs occur in these cold regions in allotriploids, as close as 375 kb from the centromere. Reverse transcription quantitative PCR (RT-qPCR) of various meiotic genes indicated that Class I COs are likely involved in the increased recombination frequency observed in allotriploids. We also demonstrated that this modified recombination landscape can be maintained via successive generations of allotriploidy (odd ploidy level). This deregulated meiotic behavior reverts to strict regulation in allotetraploid (even ploidy level) progeny in the second generation. Overall, we provide an easy way to manipulate tight recombination control in a polyploid crop.
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