首页> 外文期刊>Plant Molecular Biology >Overexpression of heat stress-responsive TaMBF1c, a wheat (Triticum aestivum L.) Multiprotein Bridging Factor, confers heat tolerance in both yeast and rice
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Overexpression of heat stress-responsive TaMBF1c, a wheat (Triticum aestivum L.) Multiprotein Bridging Factor, confers heat tolerance in both yeast and rice

机译:小麦(Triticum aestivum L.)多蛋白桥联因子热应激反应性TaMBF1c的过量表达赋予酵母和水稻耐热性

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摘要

Previously, we found an ethylene-responsive transcriptional co-activator, which was significantly induced by heat stress (HS) in both thermo-sensitive and thermo-tolerant wheat. The corresponding ORF was isolated from wheat, and named TaMBF1c (Multiprotein Bridging Factor1c). The deduced amino acid sequence revealed the presence of conserved MBF1 and helix-turn-helix domains at the N- and C-terminus, respectively, which were highly similar to rice ERTCA (Ethylene Response Transcriptional Co-Activator) and Arabidopsis MBF1c. The promoter region of TaMBF1c contained three heat shock elements (HSEs) and other stress-responsive elements. There was no detectable mRNA of TaMBF1c under control conditions, but the transcript was rapidly and significantly induced by heat stress not only at the seedling stage, but also at the flowering stage. It was also slightly induced by drought and H2O2 stresses, as well as by application of the ethylene synthesis precursor ACC, but not, however, by circadian rhythm, salt, ABA or MeJA treatments. Under normal temperatures, TaMBF1c-eGFP protein showed predominant nuclear localization with some levels of cytosol localization in the bombarded onion epidermal cells, but it was mainly detected in the nucleus with almost no eGFP signals in cytosol when the bombarded onion cells were cultured under high temperature conditions. Overexpression of TaMBF1c in yeast imparted tolerance to heat stress compared to cells expressing the vector alone. Most importantly, transgenic rice plants engineered to overexpress TaMBF1c showed higher thermotolerance than control plants at both seedling and reproductive stages. In addition, transcript levels of six Heat Shock Protein and two Trehalose Phosphate Synthase genes were higher in TaMBF1c transgenic lines than in wild-type rice upon heat treatment. Collectively, the present data suggest that TaMBF1c plays a pivotal role in plant thermotolerance and holds promising possibilities for improving heat tolerance in crops.
机译:以前,我们发现了乙烯响应转录共激活因子,在热敏感和耐热小麦中,热胁迫(HS)都会明显诱导该乙烯激活转录共激活因子。从小麦中分离出相应的ORF,并将其命名为TaMBF1c(多蛋白桥连因子1c)。推导的氨基酸序列揭示了分别在N-和C-末端存在保守的MBF1和螺旋-转-螺旋结构域,这与水稻ERTCA(乙烯响应转录共激活剂)和拟南芥MBF1c非常相似。 TaMBF1c的启动子区域包含三个热激元件(HSE)和其他应力响应元件。在对照条件下,没有检测到TaMBF1c的mRNA,但转录本不仅在幼苗期而且在开花期都受到热胁迫的快速而显着的诱导。它也因干旱和H2O2胁迫以及乙烯合成前体ACC的使用而略有诱导,但是,昼夜节律,盐,ABA或MeJA处理却没有。在常温下,TaMBF1c-eGFP蛋白在被轰击的洋葱表皮细胞中显示出主要的核定位和一定水平的胞质定位,但是当在高温下培养被轰击的洋葱细胞时,它主要在细胞核中被检测到,胞质中几乎没有eGFP信号。条件。与仅表达载体的细胞相比,TaMBF1c在酵母中的过表达赋予了对热应激的耐受性。最重要的是,经过工程改造过表达TaMBF1c的转基因水稻植物在苗期和生殖期均显示出比对照植物更高的耐热性。此外,热处理后,TaMBF1c转基因品系中六个热休克蛋白和两个海藻糖磷酸合酶基因的转录水平高于野生型水稻。总体而言,目前的数据表明,TaMBF1c在植物耐热性中起着关键作用,并为改善作物的耐热性具有广阔的前景。

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