首页> 外文期刊>Journal of Experimental Botany >Reduction of inositol (1,4,5)-trisphosphate affects the overall phosphoinositol pathway and leads to modifications in light signalling and secondary metabolism in tomato plants.
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Reduction of inositol (1,4,5)-trisphosphate affects the overall phosphoinositol pathway and leads to modifications in light signalling and secondary metabolism in tomato plants.

机译:肌醇(1,4,5)-三磷酸的还原会影响整体磷酸肌醇途径,并导致番茄植物的光信号传导和次级代谢发生改变。

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摘要

The phosphoinositol pathway is one of the major eukaryotic signalling pathways. The metabolite of the phosphoinositol pathway, inositol-(1,4,5) trisphosphate (InsP3), is a regulator of plant responses to a wide variety of stresses, including light, drought, cold, and salinity. It was found that the expression of InsP 5-ptase, the enzyme that hydrolyses InsP3, also dramatically affects the levels of inositol phosphate metabolites and the secondary metabolites in transgenic tomato plants. Tomato plants expressing InsP 5-ptase exhibited a reduction in the levels of several important inositol phosphates, including InsP1, InsP2, InsP3, and InsP4. Reduced levels of inositol phosphates accompanied an increase in the accumulation of phenylpropanoids (rutin, chlorogenic acid) and ascorbic acid (vitamin C) in the transgenic fruits of tomato plants. The enhanced accumulation of these metabolites in transgenic tomato plants was in direct correspondence with the observed up-regulation of the genes that express the key enzymes of ascorbic acid metabolism (myo-inositol oxygenase, MIOX;L-galactono- gamma-lactone dehydrogenase, GLDH) and phenylpropanoid metabolism (chalcone synthase, CHS1; cinnamoyl-CoA shikimate/quinate transferase, HCT). To understand the molecular links between the activation of different branches of plant metabolism and InsP3 reduction in tomato fruits, the expression of transcription factors known to be involved in light signalling was analysed by real-time RT-PCR. The expression of LeHY5, SIMYB12, and LeELIP was found to be higher in fruits expressing InsP 5-ptase. These results suggest possible interconnections between phosphoinositol metabolism, light signalling, and secondary metabolism in plants. Our study also revealed the biotechnological potential for the genetic improvement of crop plants by the manipulation of the phosphoinositol pathway. copyright 2011 The Author(s).
机译:磷酸肌醇途径是主要的真核信号传导途径之一。磷酸肌醇途径的代谢产物肌醇-(1,4,5)三磷酸(InsP 3 )是调节植物对各种胁迫(包括光,干旱,寒冷和干旱)的反应的调节剂。盐度。研究发现,水解InsP 3 的酶 InsP 5-ptase 的表达也显着影响转基因番茄植株中肌醇磷酸代谢物和次生代谢物的水平。 。表达 InsP 5-ptase 的番茄植株显示几种重要的肌醇磷酸酯水平降低,包括InsP 1 ,InsP 2 ,InsP 3 和InsP 4 。降低的肌醇磷酸水平伴随着番茄植株转基因果实中苯丙烷类化合物(芦丁,绿原酸)和抗坏血酸(维生素C)的积累增加。这些代谢产物在转基因番茄植株中积累的增强与观察到的表达抗坏血酸代谢关键酶(myo-肌醇加氧酶MIOX)的基因表达上调直接相关。 L-半乳糖-γ-内酯脱氢酶, GLDH )和苯丙烷代谢(查耳酮合酶, CHS1; 肉桂酰基-CoA iki酸酯/奎宁酸酯转移酶, HCT) )。为了了解番茄果实中植物新陈代谢的不同分支的激活与InsP 3 还原之间的分子联系,通过实时RT-PCR分析了已知与光信号有关的转录因子的表达。 。发现 LeHY5,SIMYB12 和 LeELIP 的表达在表达 InsP 5-ptase 的水果中较高。这些结果表明植物中磷酸肌醇代谢,光信号传导和次级代谢之间可能存在相互联系。我们的研究还揭示了通过操纵磷酸肌醇途径来遗传改良农作物的生物技术潜力。版权2011作者。

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