le Roux Marlon L, Kunert Karl J, van der Vyver Christell, Cullis Christopher A, Botha Anna-Maria
Department of Genetics, Stellenbosch University, Stellenbosch, South Africa.
Department of Plant and Soil Sciences, Forestry and Agricultural Biotechnology Institute, University of Pretoria, Pretoria, South Africa.
Front Plant Sci. 2019 Mar 8;10:266. doi: 10.3389/fpls.2019.00266. eCollection 2019.
Post-translation modification of proteins plays a critical role in cellular signaling processes. In recent years, the SUMO (Small Ubiquitin-Like Modifier) class of molecules has emerged as an influential mechanism for target protein management. SUMO proteases play a vital role in regulating pathway flux and are therefore ideal targets for manipulating stress-responses. In the present study, the expression of an cysteine protease (OVERLY TOLERANT TO SALT-1, ) in wheat ( L.) has led to improved plant growth under water stress conditions. Transformed wheat (pUBI-) displayed enhanced growth and delayed senescence under water deficit when compared with untransformed Gamtoos-R genotype or plants carrying an empty vector. Transformed pUBI- plants also maintained a high relative moisture content (RMC), had a higher photosynthesis rate, and also had a higher total chlorophyll content when compared to untransformed plants or plants carrying an empty vector. SUMOylation of total protein also increased in untransformed plants but not in the At transformed plants. Our results suggest that SUMO-proteases may influence an array of mechanisms in wheat to the advantage of the crop to be more tolerant to water stress caused by drought. This is the first report to elucidate SUMOylation effects in the hexaploid crop wheat ( L.).
蛋白质的翻译后修饰在细胞信号传导过程中起着关键作用。近年来,类泛素小分子修饰物(SUMO)已成为一种影响靶蛋白管理的重要机制。SUMO蛋白酶在调节通路通量方面起着至关重要的作用,因此是操纵应激反应的理想靶点。在本研究中,小麦(Triticum aestivum L.)中一种半胱氨酸蛋白酶(对盐过度耐受-1,OST1)的表达使植物在水分胁迫条件下生长得到改善。与未转化的Gamtoos-R基因型或携带空载体的植株相比,转化后的小麦(pUBI-OST1)在水分亏缺条件下生长增强且衰老延迟。与未转化植株或携带空载体的植株相比,转化后的pUBI-OST1植株还保持较高的相对含水量(RMC)、较高的光合速率以及较高的总叶绿素含量。未转化植株中总蛋白的SUMO化修饰增加,但在拟南芥转化植株中未增加。我们的结果表明,SUMO蛋白酶可能影响小麦中的一系列机制,有利于作物对干旱引起的水分胁迫具有更强的耐受性。这是第一份阐明六倍体作物小麦(Triticum aestivum L.)中SUMO化修饰作用的报告。