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首页> 外文期刊>BMC Plant Biology >Temperature desynchronizes sugar and organic acid metabolism in ripening grapevine fruits and remodels their transcriptome
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Temperature desynchronizes sugar and organic acid metabolism in ripening grapevine fruits and remodels their transcriptome

机译:温度会使葡萄果实成熟时的糖和有机酸代谢失调,并重塑其转录组

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Background Fruit composition at harvest is strongly dependent on the temperature during the grapevine developmental cycle. This raises serious concerns regarding the sustainability of viticulture and the socio-economic repercussions of global warming for many regions where the most heat-tolerant varieties are already cultivated. Despite recent progress, the direct and indirect effects of temperature on fruit development are far from being understood. Experimental limitations such as fluctuating environmental conditions, intra-cluster heterogeneity and the annual reproductive cycle introduce unquantifiable biases for gene expression and physiological studies with grapevine. In the present study, DRCF grapevine mutants (microvine) were grown under several temperature regimes in duly-controlled environmental conditions. A singly berry selection increased the accuracy of fruit phenotyping and subsequent gene expression analyses. The physiological and transcriptomic responses of five key stages sampled simultaneously at day and nighttime were studied by RNA-seq analysis. Results A total of 674 millions reads were sequenced from all experiments. Analysis of differential expression yielded in a total of 10 788 transcripts modulated by temperature. An acceleration of green berry development under higher temperature was correlated with the induction of several candidate genes linked to cell expansion. High temperatures impaired tannin synthesis and degree of galloylation at the transcriptomic levels. The timing of malate breakdown was delayed to mid-ripening in transgressively cool conditions, revealing unsuspected plasticity of berry primary metabolism. Specific ATPases and malate transporters displayed development and temperature-dependent expression patterns, besides less marked but significant regulation of other genes in the malate pathway. Conclusion The present study represents, to our knowledge the first abiotic stress study performed on a fleshy fruits model using RNA-seq for transcriptomic analysis. It confirms that a careful stage selection and a rigorous control of environmental conditions are needed to address the long-term plasticity of berry development with respect to temperature. Original results revealed temperature-dependent regulation of key metabolic processes in the elaboration of berry composition. Malate breakdown no longer appears as an integral part of the veraison program, but as possibly triggered by an imbalance in cytoplasmic sugar, when efficient vacuolar storage is set on with ripening, in usual temperature conditions. Furthermore, variations in heat shock responsive genes that will be very valuable for further research on temperature adaptation of plants have been evidenced.
机译:背景技术收获时的水果成分在很大程度上取决于葡萄的发育周期。这就引起了人们对葡萄栽培的可持续性以及许多已经种植了最耐高温品种的许多地区全球变暖的社会经济影响的严重关注。尽管有最近的进展,但温度对水果发育的直接和间接影响尚不清楚。诸如环境条件的波动,集群内部异质性和年度繁殖周期等实验限制为葡萄的基因表达和生理研究带来了无法量化的偏差。在本研究中,DRCF葡萄突变体(微藤)在适当控制的环境条件下在几种温度下生长。单独选择浆果可以提高水果表型分析和后续基因表达分析的准确性。通过RNA-seq分析研究了在白天和晚上同时采样的五个关键阶段的生理和转录组反应。结果从所有实验中总共测序了6.74亿个读数。差异表达的分析产生了总共10 788个受温度调节的转录本。高温下绿莓发育的加速与诱导几种与细胞膨胀有关的候选基因有关。高温会损害单宁的合成和转录组水平上的没食子酸酯化程度。苹果酸分解的时间在侵袭性凉爽的条件下被延迟到中熟,揭示了浆果主要代谢的可塑性。特定的ATP酶和苹果酸转运蛋白显示出发育和温度依赖性的表达模式,此外苹果酸途径中其他基因的调控不那么明显,但有明显的调节作用。结论据我们所知,本研究代表了对使用RNA-seq进行转录组分析的肉质水果模型进行的第一个非生物胁迫研究。它确认需要仔细的阶段选择和严格的环境条件控制,以解决浆果发育相对于温度的长期可塑性。原始结果揭示了浆果成分加工过程中关键代谢过程的温度依赖性调节。苹果酸的分解不再是验证程序不可或缺的一部分,而可能是由于在常规温度条件下成熟时进行有效的液泡贮藏而导致的细胞质糖不平衡引发的。此外,已经证明了热激响应基因的变异对于进一步研究植物的温度适应性将是非常有价值的。

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