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Overexpression of Ricinus communis L. malate synthase enhances seed tolerance to abiotic stress during germination

机译:Ricinus Communis L.雄性合成酶的过度表达增强了萌发期间对非生物胁迫的种子耐受性

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Ricinus communis L. seeds can germinate at high temperatures, but further development of the seedlings is negatively affected. This mainly caused by impairment of energy-generating pathways when seeds are germinated at 35 degrees C. Ricinus communis malate synthase (RcMLS) is a key responsive gene in lipid mobilization and gluconeogenesis and as such might have a role in sustaining successful seed germination and seedling growth. Herein, we raised the question whether RcMLS might be involved in the biochemical and molecular mechanisms required for R.communis seed germination under unfavourable environmental conditions. For that, we used a robust approach that encompassed bioinformatics analysis, transgenic Arabidopsis thaliana (L.) Heynh seeds overexpressing RcMLS, along with phenotypical characterization of seed germination under abiotic stress. The phylogenetic tree revealed important evolutionary relationship amongst MIS sequences from R. commmis and from other crop species/model plants. Overexpression of RcMLS enhanced A. thaliana seed germination under high temperature and salt stress. For example, wild-type A. thaliana Columbia seeds (Col-0) showed 37 % of maximum germination at 35 degrees C, whereas A. thaliana seeds overexpressing RcMLS showed up to 71%. When salt stress was applied (75 inM NaCl), maximum germination of Col-0 seeds reached 37%, whereas for A. thaliana seeds overexpressing RcMLS it reached up to 93%. Nuclear Magnetic Resonance (NMR) and Gas Chromatography coupled to Time-Of-Flight Mass Spectrometry (GC-TOF-MS) metabolomics analysis showed a robust metabolic signature of A. thaliana seeds overexpressing RcMLS in response to abiotic stress. They accumulated high levels of Met, Be, fructose, glucose, and sucrose. Therefore, we suggested that overexpression of RcMLS has modulated the glyoxylate cycle and gluconeogenesis pathway in order to maintain cellular homeostasis under unfavorable environmental conditions. Our results provide important leads into the contribution of RcMLS to the underlying mechanism of R.communis seed germination under adverse environmental conditions. This might be helpful for breeding programs to develop more resistant R.communis cultivars which are more likely to sustain growth and high yield under the severe conditions found in and and semi-arid areas worldwide.
机译:Ricinus Communis L.种子可以在高温下发芽,但幼苗的进一步发展受到负面影响。这主要是由于在35摄氏度萌发时产生的能量产生途径的损害引起的。蓖麻毒素雄性合成酶(RCM10)是脂质动员和葡糖生成的关键响应基因,因此可能在维持成功的种子萌发和幼苗方面发挥作用生长。在此,我们提出了RCMLs可能涉及在不利环境条件下R.COMMUN萌发所需的生物化学和分子机制。为此,我们使用了一种稳健的方法,包括生物信息学分析,转基因拟南芥(L.)Heynh种子过表达RCML,以及非生物胁迫下种子萌发的表型表征。系统发育树揭示了来自R. Commmis和其他作物种类/模型植物的MIS序列之间的重要进化关系。 RCML的过度表达增强了高温和盐胁迫下的拟南芥种子萌发。例如,野生型A.植物培养皿种子(COL-0)显示35℃的最大萌发的37%,而过表达RCML的拟蕉种子显示出高达71%。当施加盐胁迫时(75 inM NaCl),Col-0种子的最大萌发达到37%,而A.拟南芥种子过表达RCMLS达到93%。核磁共振(NMR)和耦合到飞行时间质谱(GC-TOF-MS)代谢组科分析的气相色谱分析显示了A.拟拟合RCMLS的浓度代谢特征,以应对非生物应激。它们积累了高水平的梅,果糖,葡萄糖和蔗糖。因此,我们建议RCMLS的过度表达已经调节甘油酯循环和葡糖生成途径,以便在不利的环境条件下维持细胞稳态。我们的结果提供了重要的导致RCMLS在不良环境条件下R.COMMunis种子萌发的潜在机制的贡献。这可能有助于培育方案,以发展更具抗性的R.Comis品种,这些品种更有可能在全球和半干旱地区发现的严重条件下维持增长和高产。

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