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A Role for Differential Glycoconjugation in the Emission of Phenylpropanoid Volatiles from Tomato Fruit Discovered Using a Metabolic Data Fusion Approach

机译:代谢数据融合方法发现差异糖共轭作用在番茄果实中苯丙类挥发物的释放中的作用

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摘要

A role for differential glycoconjugation in the emission of phenylpropanoid volatiles from ripening tomato fruit (Solanum lycopersicum) upon fruit tissue disruption has been discovered in this study. Application of a multiinstrumental analytical platform for metabolic profiling of fruits from a diverse collection of tomato cultivars revealed that emission of three discriminatory phenylpropanoid volatiles, namely methyl salicylate, guaiacol, and eugenol, took place upon disruption of fruit tissue through cleavage of the corresponding glycoconjugates, identified putatively as hexose-pentosides. However, in certain genotypes, phenylpropanoid volatile emission was arrested due to the corresponding hexose-pentoside precursors having been converted into glycoconjugate species of a higher complexity: dihexose-pentosides and malonyl-dihexose-pentosides. This glycoside conversion was established to occur in tomato fruit during the later phases of fruit ripening and has consequently led to the inability of red fruits of these genotypes to emit key phenylpropanoid volatiles upon fruit tissue disruption. This principle of volatile emission regulation can pave the way to new strategies for controlling tomato fruit flavor and taste.
机译:在这项研究中,发现了差异糖缀合物在成熟番茄果实组织破裂后排放成熟番茄果实中产生的苯丙烷类挥发物中的作用。应用多仪器分析平台对来自不同番茄品种的果实进行代谢谱分析时,发现三种歧视性苯丙烷挥发物(水杨酸甲酯,愈创木酚和丁子香酚)的排放是通过切割相应的糖缀合物破坏了水果组织而发生的,推定为己糖五糖苷。然而,在某些基因型中,由于相应的己糖-戊糖苷前体已被转化为具有更高复杂性的糖缀合物:二己糖-戊糖苷和丙二酰基-二己糖-戊糖苷,苯丙烷类挥发物的排放被阻止。这种糖苷转化被确定为在果实成熟的后期阶段发生在番茄果实中,并因此导致这些基因型的红色果实在果实组织破裂后无法释放出关键的苯丙烷类挥发物。挥发性排放物调节的这一原理可以为控制番茄果实风味和口味的新策略铺平道路。

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