Yan Yu, Wang Peng, Lu Yi, Bai Yujing, Wei Yunxie, Liu Guoyin, Shi Haitao
Hainan Key Laboratory for Sustainable Utilization of Tropical Bioresources, College of Tropical Crops, Hainan University, Haikou, Hainan Province, 570228, China.
Plant J. 2021 Aug;107(3):847-860. doi: 10.1111/tpj.15350. Epub 2021 Jun 17.
Cassava, an important food and energy crop, is relatively more resistant to drought stress than other crops. However, the molecular mechanism underlying this resistance remains elusive. Herein, we report that silencing a drought stress-responsive transcription factor MeRAV5 significantly reduced drought stress resistance, with higher levels of hydrogen peroxide (H O ) and less lignin during drought stress. Yeast two-hybrid, pull down and bimolecular fluorescence complementation (BiFC) showed that MeRAV5 physically interacted with peroxidase (MePOD) and lignin-related cinnamyl alcohol dehydrogenase 15 (MeCAD15) in vitro and in vivo. MeRAV5 promoted the activities of both MePOD and MeCAD15 to affect H O and endogenous lignin accumulation respectively, which are important in drought stress resistance in cassava. When either MeCAD15 or MeRAV5 was silenced, or both were co-silenced, cassava showed lower lignin content and drought-sensitive phenotype, whereas exogenous lignin alkali treatment increased drought stress resistance and alleviated the drought-sensitive phenotype of these silenced cassava plants. This study documents that the modulation of H O and lignin by MeRAV5 is essential for drought stress resistance in cassava.
木薯是一种重要的粮食和能源作物,与其他作物相比,它对干旱胁迫的耐受性相对更强。然而,这种耐受性背后的分子机制仍不清楚。在此,我们报告称,沉默一个干旱胁迫响应转录因子MeRAV5会显著降低干旱胁迫耐受性,在干旱胁迫期间过氧化氢(H₂O₂)水平升高,木质素含量降低。酵母双杂交、下拉实验和双分子荧光互补(BiFC)表明,MeRAV5在体外和体内均与过氧化物酶(MePOD)和木质素相关的肉桂醇脱氢酶15(MeCAD15)发生物理相互作用。MeRAV5分别促进MePOD和MeCAD15的活性,从而影响H₂O₂和内源木质素的积累,这对木薯的干旱胁迫耐受性至关重要。当MeCAD15或MeRAV5被沉默,或两者同时被沉默时,木薯的木质素含量降低,表现出干旱敏感表型,而外源木质素碱处理则提高了干旱胁迫耐受性,并缓解了这些沉默木薯植株的干旱敏感表型。这项研究证明,MeRAV5对H₂O₂和木质素的调控对木薯的干旱胁迫耐受性至关重要。