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首页> 外文期刊>Gene: An International Journal Focusing on Gene Cloning and Gene Structure and Function >Expression analysis of rice A20/AN1-type zinc finger genes and characterization of ZFP177 that contributes to temperature stress tolerance.
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Expression analysis of rice A20/AN1-type zinc finger genes and characterization of ZFP177 that contributes to temperature stress tolerance.

机译:水稻A20 / AN1型锌指基因的表达分析和ZFP177的鉴定有助于温度胁迫耐受性。

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摘要

The A20/AN1-type zinc finger protein family is conserved in animals and plants. Using human AWP1 protein as a query, we identified twelve A20/AN1-type zinc finger proteins in japonica rice. Most of these genes were constitutively expressed in leaves, roots, culms and spikes. Through microarray analysis, it was found that four genes (ZFP177, ZFP181, ZFP176, ZFP173), two genes (ZFP181 and ZFP176) and one gene (ZFP157) were significantly induced by cold, drought and H(2)O(2) treatments, respectively. Further expression analysis showed that ZFP177 was responsive to both cold and heat stresses, but down-regulated by salt. The subcellular localization assay indicated that ZFP177 was localized in cytoplasm in tobacco leaf and root cells. Yeast-one hybrid assay showed that ZFP177 lacked trans-activation potential in yeast cells. Overexpression of ZFP177 in tobacco conferred tolerance of transgenic plants to both low and high temperature stresses, but increased sensitivity to salt and drought stresses. Further we found expression levels of some stress-related genes were inhibited in ZFP177 transgenic plants. These results suggested that ZFP177 might play crucial but differential roles in plant responses to various abiotic stresses.
机译:A20 / AN1型锌指蛋白家族在动物和植物中都是保守的。使用人类AWP1蛋白作为查询,我们鉴定了粳稻中的十二种A20 / AN1型锌指蛋白。这些基因大多数在叶,根,茎和穗中组成性表达。通过微阵列分析,发现冷,干旱和H(2)O(2)处理显着诱导了四个基因(ZFP177,ZFP181,ZFP176,ZFP173),两个基因(ZFP181和ZFP176)和一个基因(ZFP157)显着诱导, 分别。进一步的表达分析表明,ZFP177对冷和热胁迫均响应,但被盐下调。亚细胞定位测定表明ZFP177位于烟草叶和根细胞的细胞质中。酵母一杂交试验表明ZFP177在酵母细胞中缺乏反式激活潜能。 ZFP177在烟草中的过表达赋予转基因植物对低温和高温胁迫的耐受性,但增加了对盐和干旱胁迫的敏感性。此外,我们发现在ZFP177转基因植物中某些胁迫相关基因的表达水平受到抑制。这些结果表明,ZFP177可能在植物对各种非生物胁迫的响应中起着至关重要的但不同的作用。

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