Literature DB >> 27670818

Disclosing the Molecular Basis of the Postharvest Life of Berry in Different Grapevine Genotypes.

Sara Zenoni1,2, Marianna Fasoli1,2, Flavia Guzzo1,2, Silvia Dal Santo1,2, Alessandra Amato1,2, Andrea Anesi1,2, Mauro Commisso1,2, Markus Herderich1,2, Stefania Ceoldo1,2, Linda Avesani1,2, Mario Pezzotti1,2, Giovanni Battista Tornielli3,4.   

Abstract

The molecular events that characterize postripening grapevine berries have rarely been investigated and are poorly defined. In particular, a detailed definition of changes occurring during the postharvest dehydration, a process undertaken to make some particularly special wine styles, would be of great interest for both winemakers and plant biologists. We report an exhaustive survey of transcriptomic and metabolomic responses in berries representing six grapevine genotypes subjected to postharvest dehydration under identical controlled conditions. The modulation of phenylpropanoid metabolism clearly distinguished the behavior of genotypes, with stilbene accumulation as the major metabolic event, although the transient accumulation/depletion of anthocyanins and flavonols was the prevalent variation in genotypes that do not accumulate stilbenes. The modulation of genes related to phenylpropanoid/stilbene metabolism highlighted the distinct metabolomic plasticity of genotypes, allowing for the identification of candidate structural and regulatory genes. In addition to genotype-specific responses, a core set of genes was consistently modulated in all genotypes, representing the common features of berries undergoing dehydration and/or commencing senescence. This included genes controlling ethylene and auxin metabolism as well as genes involved in oxidative and osmotic stress, defense responses, anaerobic respiration, and cell wall and carbohydrate metabolism. Several transcription factors were identified that may control these shared processes in the postharvest berry. Changes representing both common and genotype-specific responses to postharvest conditions shed light on the cellular processes taking place in harvested berries stored under dehydrating conditions for several months.
© 2016 American Society of Plant Biologists. All Rights Reserved.

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Year:  2016        PMID: 27670818      PMCID: PMC5100763          DOI: 10.1104/pp.16.00865

Source DB:  PubMed          Journal:  Plant Physiol        ISSN: 0032-0889            Impact factor:   8.340


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