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Overexpression of the PeaT1 Elicitor Gene from Alternaria tenuissima Improves Drought Tolerance in Rice Plants via Interaction with a Myo-Inositol Oxygenase

机译:牛瘟链霉菌PeaT1诱导子基因的过表达通过与肌醇加氧酶的相互作用提高水稻植物的耐旱性

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摘要

Abiotic stresses, especially drought, seriously threaten cereal crops yields and quality. In this study, we observed that the rice plants of overexpression the Alternariatenuissima PeaT1 gene showed enhanced drought stress tolerance and increased the survival rate following a drought treatment. In PeaT1-overexpressing (PeaT1OE) plants, abscisic acid and chlorophyll content significantly increased, while the malondialdehyde (MDA) content decreased compared with the wild-type plants. Additionally, we confirmed that the transcript levels of drought-responsive genes, including OsAM1, OsLP2, and OsDST, were prominently lower in the PeaT1OE plants. In contrast, expression levels of genes encoding positive drought stress regulators including OsSKIPa, OsCPK9, OsNAC9, OSEREBP1, and OsTPKb were upregulated in PeaT1OE plants. Furthermore, combing the yeast two-hybrid assay, we found that PeaT1 could interact with amyo-inositol oxygenase (OsMIOX), which was verified by pull-down assay. Interestingly, OsMIOX was highly expressed in PeaT1OE plants during the drought treatment. Additionally, the OsMIOX-GFP fusion protein co-localized with the endoplasmic reticulum (ER) marker in tobacco protoplasts, suggesting OsMIOX performs its function in ER. Therefore, our results are useful for elucidating the molecular mechanism underlying the improvement of drought tolerance by PeaT1.
机译:非生物胁迫,特别是干旱,严重威胁谷物作物的产量和质量。在这项研究中,我们观察到过表达Alternariatenuissima PeaT1基因的水稻植株表现出增强的干旱胁迫耐受性,并提高了干旱处理后的存活率。与野生型植物相比,在过表达PeaT1的植物中,脱落酸和叶绿素含量显着增加,而丙二醛(MDA)含量下降。此外,我们证实在PeaT1OE植物中,干旱响应基因(包括OsAM1,OsLP2和OsDST)的转录水平显着降低。相反,在PeaT1OE植物中,编码正干旱胁迫调节因子(包括OsSKIPa,OsCPK9,OsNAC9,OSEREBP1和OsTPKb)的基因的表达水平上调。此外,结合酵母双杂交测定,我们发现PeaT1可以与肌醇-肌醇加氧酶(OsMIOX)相互作用,这已通过下拉测定法进行了验证。有趣的是,在干旱处理期间,OsMIOX在PeaT1OE植物中高表达。此外,OsMIOX-GFP融合蛋白与烟草原生质体中的内质网(ER)标记共定位,表明OsMIOX在ER中发挥其功能。因此,我们的结果对于阐明PeaT1改善耐旱性的分子机制是有用的。

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