Differential contributions of double‐strand break repair pathways to DNA rearrangements following the irradiation of Arabidopsis seeds and seedlings with ion beams

生物 DNA DNA修复 拟南芥 索引 突变 同源重组 DNA损伤 遗传学 突变体 辐照 染色体易位 聚合酶 离子束 基因 离子 细胞生物学 化学 基因型 物理 单核苷酸多态性 有机化学 核物理学
作者
Satoshi Kitamura,Katsuya Satoh,Yoshihiro Hase,Ryouhei Yoshihara,Yutaka Oono,Naoya Shikazono
出处
期刊:Plant Journal [Wiley]
标识
DOI:10.1111/tpj.16955
摘要

DNA rearrangements, including inversions, translocations, and large insertions/deletions (indels), are crucial for crop evolution, domestication, and improvement. The rearrangements are frequently induced by ion beams via the mis-repair of DNA double-strand breaks (DSBs). Unfortunately, how ion beam-induced DSBs are repaired has not been comprehensively analyzed and the mechanisms underlying DNA rearrangements remain unclear. In this study, clonal sectors originating from single mutated cells in carbon ion-irradiated plants were used for whole-genome sequencing analyses after Arabidopsis seeds and seedlings were irradiated. Comparative analyses of the induced mutations (e.g., size and frequency of indels and microhomology at the junctions of the rearrangements) in the irradiated materials suggested that the broken/rejoined DSB ends were more extensively processed in seedlings than in seeds. A mutation to canonical non-homologous end-joining (c-NHEJ), which is a DSB repair pathway with minimal processing of DSB ends, increased the sensitivity to ion beams more in the seeds than in the seedlings, which was consistent with the junction analysis results, indicative of the minor contribution of c-NHEJ to the carbon ion-induced DSB repair in seedlings. Considering the characteristics of the large templated insertions in irradiated seedlings, ion-beam-induced DSBs in seedlings are likely repaired primarily by a polymerase theta-mediated pathway. Polymerase theta-deficient seedlings were more sensitive to ion beams than the c-NHEJ-deficient seedlings, consistent with this hypothesis. This study revealed the key characteristics of ion beam-induced DSBs and the associated repair mechanisms related to the physiological status of the irradiated materials, with implications for elucidating the occurrence and induction of rearrangements.

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