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Cultivar Diversity of Grape Skin Polyphenol Composition and Changes in Response to Drought Investigated by LC-MS Based Metabolomics

机译:基于LC-MS的代谢组学研究葡萄皮多酚组成的品种多样性和对干旱的响应变化

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Phenolic compounds represent a large family of plant secondary metabolites, essential for the quality of grape and wine and playing a major role in plant defense against biotic and abiotic stresses. Phenolic composition is genetically driven and greatly affected by environmental factors, including water stress. A major challenge for breeding of grapevine cultivars adapted to climate change and with high potential for wine-making is to dissect the complex plant metabolic response involved in adaptation mechanisms. A targeted metabolomics approach based on ultra high-performance liquid chromatography coupled to triple quadrupole mass spectrometry (UHPLC-QqQ-MS) analysis in the Multiple Reaction Monitoring (MRM) mode has been developed for high throughput profiling of the phenolic composition of grape skins. This method enables rapid, selective, and sensitive quantification of 96 phenolic compounds (anthocyanins, phenolic acids, stilbenoids, flavonols, dihydroflavonols, flavan-3-ol monomers, and oligomers…), and of the constitutive units of proanthocyanidins (i.e., condensed tannins), giving access to detailed polyphenol composition. It was applied on the skins of mature grape berries from a core-collection of 279 Vitis vinifera cultivars grown with or without watering to assess the genetic variation for polyphenol composition and its modulation by irrigation, in two successive vintages (2014–2015). Distribution of berry weights and δ~(13)C values showed that non irrigated vines were subjected to a marked water stress in 2014 and to a very limited one in 2015. Metabolomics analysis of the polyphenol composition and chemometrics analysis of this data demonstrated an influence of water stress on the biosynthesis of different polyphenol classes and cultivar differences in metabolic response to water deficit. Correlation networks gave insight on the relationships between the different polyphenol metabolites and related biosynthetic pathways. They also established patterns of polyphenol response to drought, with different molecular families affected either positively or negatively in the different cultivars, with potential impact on grape and wine quality.
机译:酚类化合物代表植物次级代谢产物的一个大家族,对葡萄和葡萄酒的品质至关重要,并且在植物防御生物和非生物胁迫方面起着重要作用。酚类成分是遗传驱动的,并受环境因素(包括水分胁迫)的很大影响。适应气候变化和具有高酿酒潜力的葡萄品种育种的主要挑战是剖析适应机制中涉及的复杂植物代谢反应。已开发出一种基于超高效液相色谱和多反应监测(MRM)模式下的三重四极杆质谱(UHPLC-QqQ-MS)分析的靶向代谢组学方法,可对葡萄皮的酚类成分进行高通量分析。这种方法可以快速,选择性和灵敏地定量96种酚类化合物(花青素,酚酸,二苯乙烯类化合物,黄酮醇,二氢黄酮醇,flavan-3-ol单体和低聚物…)以及原花色素的组成单元(即缩合单宁) ),以获取详细的多酚成分。在两个连续的年份(2014-2015年)中,将其应用于279个葡萄品种(带或不带浇水)的核心品种的成熟葡萄浆果的皮上,以评估多酚组成的遗传变异及其通过灌溉的调节。浆果重量和δ〜(13)C值的分布表明,未灌溉的葡萄树在2014年受到明显的水分胁迫,而在2015年受到非常有限的水分胁迫。多酚组成的代谢组学分析和该数据的化学计量分析表明了影响胁迫对不同多酚类生物合成的影响以及不同品种对缺水代谢反应的差异。相关网络提供了有关不同多酚代谢物与相关生物合成途径之间关系的见解。他们还建立了多酚对干旱的响应模式,在不同的品种中,不同的分子家族受到正面或负面的影响,并对葡萄和葡萄酒的品质产生潜在的影响。

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