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Contrasted Responses to Root Hypoxia in Tomato Fruit at Two Stages of Development

机译:番茄果实在两个发育阶段对根系缺氧的响应

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The biochemical consequences of root hypoxia have been documented in many sink organs, but not extensively in fruit. Therefore, in the present study, the response to root hypoxia in tomato fruit (Solanum lycopersicum L.) was investigated at two developmental stages, during the cell division and the cell expansion phases. Our results showed that in dividing fruit, root hypoxia caused an exhaustion of carbon reserves and proteins. However, ammonium and major amino acids (glutamine, asparagine and γ–aminobutyric acid (GABA)) significantly accumulated. In expanding fruit, root hypoxia had no effect on soluble sugar, protein and glutamine contents, whereas starch content was significantly decreased, and asparagine and GABA contents slightly increased. Metabolite contents were well correlated with activities of the corresponding metabolising enzymes. Contrary to nitrogen metabolising enzymes (glutamine synthetase, asparagine synthetase and glutamate decraboxylase), the activities of enzymes involved in sugar metabolism (invertase, sucrose synthase, sucrose phosphate synthase and ADP glucose pyrophosphorylase) were significantly reduced by root hypoxia, in diving fruit. In expanding fruit, only a slight decrease in ADP glucose pyrophosphorylase and an increase in asparagine synthetase and glutamate decarboxylase activities were observed. Taken together, the present data revealed that the effects of root hypoxia are more pronounced in the youngest fruits as it is probably controlled by the relative sink strength of the fruit and by the global disturbance in plant functioning.
机译:根缺氧的生化后果已在许多沉没器官中得到了证明,但在果实中却没有广泛报道。因此,在本研究中,研究了番茄果实(Solanum lycopersicum L.)对根缺氧的响应,它处于两个发育阶段,即细胞分裂和细胞扩增阶段。我们的结果表明,在分割水果时,根部缺氧会导致碳储备和蛋白质耗尽。但是,铵和主要氨基酸(谷氨酰胺,天冬酰胺和γ-氨基丁酸(GABA))大量积累。在膨大的果实中,根部缺氧对可溶性糖,蛋白质和谷氨酰胺含量没有影响,而淀粉含量显着降低,而天冬酰胺和GABA含量略有增加。代谢物含量与相应代谢酶的活性密切相关。与氮代谢酶(谷氨酰胺合成酶,天冬酰胺合成酶和谷氨酸脱羧酶)相反,在潜水果实中,根部缺氧会显着降低糖代谢中涉及的酶(转化酶,蔗糖合酶,蔗糖磷酸合酶和ADP葡萄糖焦磷酸化酶)的活性。在膨大的果实中,仅观察到ADP葡萄糖焦磷酸化酶略有下降,而天冬酰胺合成酶和谷氨酸脱羧酶活性增加。综上所述,目前的数据表明,根部缺氧的影响在最年轻的果实中更为明显,因为它可能受果实的相对沉陷强度和植物功能的整体扰动控制。

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