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AtERF019 的过表达会延缓植物生长和衰老,并提高拟南芥的耐旱性。

Overexpression of AtERF019 delays plant growth and senescence, and improves drought tolerance in Arabidopsis.

机构信息

Instituto de Biología Molecular y Celular de Rosario (IBR-CONICET-UNR), Ocampo y Esmeralda, Predio CCT, Rosario, Argentina.

出版信息

J Exp Bot. 2017 Jan 1;68(3):673-685. doi: 10.1093/jxb/erw429.

Abstract

The transcription factor superfamily, APETALA2/ethylene response factor, is involved in plant growth and development, as well as in environmental stress responses. Here, an uncharacterized gene of this family, AtERF019, was studied in Arabidopsis thaliana under abiotic stress situations. Arabidopsis plants overexpressing AtERF019 showed a delay in flowering time of 7 days and a delay in senescence of 2 weeks when comparison with wild type plants. These plants also showed increased tolerance to water deficiency that could be explained by a lower transpiration rate, owing to their smaller stomata aperture and lower cuticle and cell wall permeability. Furthermore, using a bottom-up proteomic approach, proteins produced in response to stress, namely branched-chain-amino-acid aminotransferase 3 (BCAT3) and the zinc finger transcription factor oxidative stress 2, were only identified in plants overexpressing AtERF019. Additionally, a BCAT3 mutant was more sensitive to water-deficit stress than wild type plants. Predicted gene targets of AtERF019 were oxidative stress 2 and genes related to cell wall metabolism. These data suggest that AtERF019 could play a primary role in plant growth and development that causes an increased tolerance to water deprivation, so strengthening their chances of reproductive success.

摘要

转录因子超家族 APETALA2/ethylene 响应因子参与植物的生长发育以及环境胁迫响应。在这里,研究了拟南芥中该家族的一个未表征基因 AtERF019 在非生物胁迫情况下的情况。与野生型植物相比,过表达 AtERF019 的拟南芥植物的开花时间延迟了 7 天,衰老时间延迟了 2 周。这些植物还表现出对水分缺乏的耐受性增加,这可以通过较低的蒸腾速率来解释,因为它们的气孔孔径较小,角质层和细胞壁渗透性较低。此外,使用自下而上的蛋白质组学方法,仅在过表达 AtERF019 的植物中鉴定到应激产生的蛋白质,即支链氨基酸转氨酶 3 (BCAT3)和锌指转录因子氧化应激 2。此外,BCAT3 突变体对水分胁迫的敏感性比野生型植物更高。AtERF019 的预测基因靶标是氧化应激 2 和与细胞壁代谢相关的基因。这些数据表明,AtERF019 可能在植物生长发育中发挥主要作用,导致对水分剥夺的耐受性增加,从而增强其繁殖成功的机会。

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