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Overexpression of the trehalase gene AtTRE1 leads to increased drought stress tolerance in Arabidopsis and is involved in abscisic acid-induced stomatal closure

机译:海藻糖酶基因atTRE1的过表达导致拟南芥干旱胁迫耐受性增加,并参与脱落酸诱导的气孔关闭

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摘要

Introduction of microbial trehalose biosynthesis enzymes has been reported to enhance abiotic stress resistance in plants but also resulted in undesirable traits. Here, we present an approach for engineering drought stress tolerance by modifying the endogenous trehalase activity in Arabidopsis (Arabidopsis thaliana). AtTRE1 encodes the Arabidopsis trehalase, the only enzyme known in this species to specifically hydrolyze trehalose into glucose. AtTRE1-overexpressing and Attre1 mutant lines were constructed and tested for their performance in drought stress assays. AtTRE1-overexpressing plants had decreased trehalose levels and recovered better after drought stress, whereas Attre1 mutants had elevated trehalose contents and exhibited a drought-susceptible phenotype. Leaf detachment assays showed that Attre1 mutants lose water faster than wild-type plants, whereas AtTRE1-overexpressing plants have a better water-retaining capacity. In vitro studies revealed that abscisic acid-mediated closure of stomata is impaired in Attre1 lines, whereas the AtTRE1 overexpressors are more sensitive toward abscisic acid-dependent stomatal closure. This observation is further supported by the altered leaf temperatures seen in trehalase-modified plantlets during in vivo drought stress studies. Our results show that overexpression of plant trehalase improves drought stress tolerance in Arabidopsis and that trehalase plays a role in the regulation of stomatal closure in the plant drought stress response.
机译:据报道,引入微生物海藻糖生物合成酶可增强植物对非生物胁迫的抗性,但也导致不良的性状。在这里,我们提出了一种通过修改拟南芥(Arabidopsis thaliana)中的内源海藻糖酶活性来进行工程干旱胁迫耐受性的方法。 AtTRE1编码拟南芥海藻糖酶,这是该物种中已知的唯一一种将海藻糖特异性水解为葡萄糖的酶。构建了AtTRE1过表达和Attre1突变株,并在干旱胁迫试验中测试了它们的性能。过表达AtTRE1的植物降低了海藻糖水平,干旱胁迫后恢复得更好,而Attre1突变体的海藻糖含量升高并且表现出对干旱敏感的表型。叶片脱离试验表明,Attre1突变体的失水速度比野生型植物快,而过表达AtTRE1的植物具有更好的保水能力。体外研究表明,脱落酸介导的气孔闭合在Attre1系中受损,而AtTRE1过表达子对脱落酸依赖性气孔闭合更敏感。在体内干旱胁迫研究期间,在海藻糖修饰的苗中观察到的叶片温度变化进一步支持了该观察结果。我们的结果表明,植物海藻糖酶的过表达提高了拟南芥的干旱胁迫耐受性,并且海藻糖酶在植物干旱胁迫响应中对气孔关闭的调节中发挥了作用。

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