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首页> 外文期刊>Scientific reports. >Abnormal leaf development of rpt5a mutant under zinc deficiency reveals important role of DNA damage alleviation for normal leaf development
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Abnormal leaf development of rpt5a mutant under zinc deficiency reveals important role of DNA damage alleviation for normal leaf development

机译:缺锌下RPT5A突变体的异常叶片发育揭示了DNA损伤缓解对正常叶发育的重要作用

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Leaf development in plants, including dorsoventral (adaxial-abaxial) patterning, is tightly regulated. The involvement of several subunits of the 26S proteasome in adaxial-abaxial polarity establishment has been reported. In the present study, we revealed that in Arabidopsis thaliana, a mutation in RPT5A, a subunit of 26S proteasome, causes abnormally narrow true leaves under zinc deficiency. mRNA accumulations of DNA damage marker genes in leaves were elevated by zinc deficiency. PARP2, a single-strand break (SSB) inducible gene, was more strongly induced by zinc deficiency in rpt5a mutants compared with the wild type. A comet assay indicated that SSB is enhanced in mutants grown under the zinc deficiency condition. These results suggest that SSB accumulation is accompanied by abnormal leaf development. To test if DNA damage is a sole cause of abnormal leaf development, we treated the wild type grown under normal zinc conditions with zeocin, a DNA damage-inducing reagent, and found that narrow leaves developed, suggesting that DNA damage is sufficient to induce the development of abnormally narrow leaves. Taken together with the observation of the abnormal leaf morphology of our mutant plant under zinc deficiency, we demonstrated that the alleviation of DNA damage is important for normal leaf development.
机译:植物中的叶片发育,包括背叶(adaxial-轴)图案化,是紧密调节的。报道了26s蛋白酶体中的几个亚基的参与据报道。在本研究中,我们透露,在Arabidopsis Thaliana中,RPT5A的突变,26s蛋白酶体的亚基,导致缺锌下的真实叶片异常窄。叶片叶片中DNA损伤标记基因的mRNA累积升高。 PARP2,单链断裂(SSB)诱导基因,与野生型相比,RPT5A突变体中的锌缺乏症更强烈地诱导。彗星测定表明,在缺锌条件下生长的突变体中,SSB增强。这些结果表明,SSB积累伴随着异常叶片开发。为了测试DNA损伤是一种异常叶片发育的唯一原因,我们将野生型在正常锌条件下的野生型含有Zeocin,DNA损伤诱导试剂,发现狭窄的叶片发育,表明DNA损伤足以诱导发展异常狭窄的叶子。随着观察我们突变植物的异常叶形态在缺锌下,我们证明了DNA损伤的缓解对于正常叶片发育是重要的。

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