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Rapid accumulation of mutations during seed-to-seed propagation of mismatch-repair-defective Arabidopsis

机译:错配修复缺陷型拟南芥种子到种子繁殖过程中突变的快速积累

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摘要

During the many cell divisions that precede formation of plant gametes, their apical-meristem and floral antecedents are continually exposed to endogenous and environmental mutagenic threats. Although some deleterious recessive mutations may be eliminated during growth of haploid gametophytes and functionally haploid early embryos (“haplosufficiency quality-checking”), the multiplicity of plant genome-maintenance systems suggests aggressive quality control during prior diploid growth. To test in Arabidopsis a hypothesis that prior mismatch repair (MMR) is paramount in defense of plant genetic fidelity, we propagated in parallel 36 MMR-defective (Atmsh2-1) and 36 wild-type lines. The Atmsh2-1 lines rapidly accumulated a wide variety of mutations: fifth-generation (G5) plants showed abnormalities in morphology and development, fertility, germination efficiency, seed/silique development, and seed set. Only two Atmsh2-1, but all 36 wild-type lines, appeared normal at G5. Analyses of insertion/deletion mutation at six repeat-sequence (microsatellite) loci showed each Atmsh2-1 line to have evolved its own “fingerprint,” the results of as many as 10 microsatellite mutations in a single line. Thus, MMR during diploid growth is essential for plant genomic integrity.
机译:在植物配子形成之前的许多细胞分裂过程中,它们的顶端分生组织和花前体不断暴露于内源性和环境诱变的威胁。尽管在单倍体配子体和功能性单倍体早期胚的生长过程中可能消除了一些有害的隐性突变(“单倍体不足质量检查”),但植物基因组维持系统的多样性表明,在先前的二倍体生长过程中要进行积极的质量控制。为了在拟南芥中测试一个假设,即先前的错配修复(MMR)对于捍卫植物遗传保真度至关重要,我们在36株MMR缺陷型(Atmsh2-1)和36株野生型品系中进行了平行繁殖。 Atmsh2-1品系迅速积累了各种各样的突变:第五代(G5)植物在形态和发育,繁殖力,发芽效率,种子/长角果发育和结实方面表现出异常。在G5上,只有两条Atmsh2-1,但所有36条野生型品系均正常。对六个重复序列(微卫星)基因座处的插入/缺失突变进行的分析显示,每个Atmsh2-1品系都有自己的“指纹”,单个品系中多达10个微卫星突变的结果。因此,二倍体生长期间的MMR对于植物基因组完整性是必不可少的。

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