期刊论文详细信息
BMC Plant Biology
Circadian oscillatory transcriptional programs in grapevine ripening fruits
Research Article
Luis Carlos Moro-González1  Montserrat Torres-Viñals2  Virginia Rodríguez3  Carolina Royo4  Silvia Hernáiz4  Pablo Carbonell-Bejerano4  José Miguel Martínez-Zapater4 
[1] Bodegas Matarromera, Ctra. San Bernardo s/n, 47359, Valbuena de Duero, Valladolid, Spain;Bodegas Torres S. A., Miquel Torres Carbó 6, 08720, Vilafranca del Penedès, Barcelona, Spain;Departamento de Genética Molecular de Plantas, Centro Nacional de Biotecnología (CNB), Consejo Superior de Investigaciones Científicas, Darwin 3, 28049, Madrid, Spain;Instituto de Ciencias de la Vid y del Vino (ICVV), Consejo Superior de Investigaciones Científicas-Universidad de La Rioja-Gobierno de La Rioja, Madre de Dios 51, 26006, Logroño, Spain;
关键词: Circadian;    Fruit ripening;    Gene expression;    Grapevine;    Light;    Microarray;    Phenylpropanoid;    Temperature;    Terpene;    Vitis vinifera;   
DOI  :  10.1186/1471-2229-14-78
 received in 2013-12-28, accepted in 2014-03-20,  发布年份 2014
来源: Springer
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【 摘 要 】

BackgroundTemperature and solar radiation influence Vitis vinifera L. berry ripening. Both environmental conditions fluctuate cyclically on a daily period basis and the strength of this fluctuation affects grape ripening too. Additionally, a molecular circadian clock regulates daily cyclic expression in a large proportion of the plant transcriptome modulating multiple developmental processes in diverse plant organs and developmental phases. Circadian cycling of fruit transcriptomes has not been characterized in detail despite their putative relevance in the final composition of the fruit. Thus, in this study, gene expression throughout 24 h periods in pre-ripe berries of Tempranillo and Verdejo grapevine cultivars was followed to determine whether different ripening transcriptional programs are activated during certain times of day in different grape tissues and genotypes.ResultsMicroarray analyses identified oscillatory transcriptional profiles following circadian variations in the photocycle and the thermocycle. A higher number of expression oscillating transcripts were detected in samples carrying exocarp tissue including biotic stress-responsive transcripts activated around dawn. Thermotolerance-like responses and regulation of circadian clock-related genes were observed in all studied samples. Indeed, homologs of core clock genes were identified in the grapevine genome and, among them, VvREVEILLE1 (VvRVE1), showed a consistent circadian expression rhythm in every grape berry tissue analysed. Light signalling components and terpenoid biosynthetic transcripts were specifically induced during the daytime in Verdejo, a cultivar bearing white-skinned and aromatic berries, whereas transcripts involved in phenylpropanoid biosynthesis were more prominently regulated in Tempranillo, a cultivar bearing black-skinned berries.ConclusionsThe transcriptome of ripening fruits varies in response to daily environmental changes, which might partially be under the control of circadian clock components. Certain cultivar and berry tissue features could rely on specific circadian oscillatory expression profiles. These findings may help to a better understanding of the progress of berry ripening in short term time scales.

【 授权许可】

CC BY   
© Carbonell-Bejerano et al.; licensee BioMed Central Ltd. 2014

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