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A novel membrane?¢????bound E3 ubiquitin ligase enhances the thermal resistance in plants

机译:一种新型的膜结合E3泛素连接酶增强了植物的耐热性

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High temperature stress disturbs cellular homoeostasis and results in a severe retardation in crop growth and development. Thus, it is important to reveal the mechanism of plants coping with heat stress. In this study, a novel gene that we identified from Brassica napus , referred to as BnTR1 , was found to play a key role in heat stress response in planta . BnTR1 is a membrane?¢????bound RINGv (C 4 HC 3 ) protein that displays E3 ligase activity in vitro . We demonstrated that modest expression of BnTR1 is sufficient to minimize adverse environmental influence and confers thermal resistance on development without any detrimental effects in B.????napus and Oryza sativa . Our investigation into the action mechanism indicates that BnTR1 is likely to be involved in mediating Ca 2+ dynamics by regulating the activity of calcium channels, which further alters the transcripts of heat shock factors and heat shock proteins contributing to plant thermotolerance. Hence, our study identified BnTR1 as a novel key factor underlying a conserved mechanism conferring thermal resistance in plants.
机译:高温胁迫会干扰细胞的稳态,并导致农作物生长发育的严重延迟。因此,重要的是揭示植物应对热胁迫的机制。在这项研究中,我们从甘蓝型油菜中鉴定出了一个新基因,称为BnTR1,它在植物热应激反应中起关键作用。 BnTR1是一种结合膜的RINGv(C 4 HC 3)蛋白,在体外显示E3连接酶活性。我们证明BnTR1的适度表达足以使不利的环境影响最小化,并赋予耐热性对发育没有B.???napus和Oryza sativa的有害影响。我们对作用机理的研究表明,BnTR1可能通过调节钙通道的活性来参与介导Ca 2+动力学,这进一步改变了热休克因子和热休克蛋白的转录本,从而有助于植物的耐热性。因此,我们的研究确定了BnTR1是保守机制赋予植物耐热性的新关键因素。

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