Water deficit before veraison is crucial in regulating berry VOCs concentration in Sangiovese grapevines
暂无分享,去创建一个
[1] C. D'onofrio,et al. Berry flavonoids are differently modulated by timing and intensities of water deficit in Vitis vinifera L. cv. Sangiovese , 2022, Frontiers in Plant Science.
[2] Guangxia Chen,et al. An R2R3-MYB transcription factor VyMYB24, isolated from wild grape Vitis yanshanesis J. X. Chen., regulates the plant development and confers the tolerance to drought , 2022, Frontiers in Plant Science.
[3] Xiaoping Zhou,et al. Transcriptome and Metabolomics Integrated Analysis Reveals Terpene Synthesis Genes Controlling Linalool Synthesis in Grape Berries. , 2022, Journal of agricultural and food chemistry.
[4] R. Gucci,et al. Deficit irrigation differently affects aroma composition in berries of Vitis vinifera L. (cvs Sangiovese and Merlot) grafted on two rootstocks , 2022, Australian Journal of Grape and Wine Research.
[5] C. D'onofrio,et al. The effect of regulated deficit irrigation on growth, yield, and berry quality of grapevines (cv. Sangiovese) grafted on rootstocks with different resistance to water deficit , 2022, Irrigation Science.
[6] Li Li,et al. Plant carotenoids: recent advances and future perspectives , 2022, Molecular Horticulture.
[7] J. Navarro,et al. Towards a sustainable viticulture: The combination of deficit irrigation strategies and agroecological practices in Mediterranean vineyards. A review and update , 2022, Agricultural Water Management.
[8] J. T. Matus,et al. The Grape Gene Reference Catalogue as a Standard Resource for Gene Selection and Genetic Improvement , 2022, Frontiers in Plant Science.
[9] D. Intrigliolo,et al. Influence of water regime on grape aromatic composition of Muscat of Alexandria in a semiarid climate , 2021 .
[10] C. D'onofrio,et al. Physiological changes induced by either pre- or post-veraison deficit irrigation in 'Merlot' vines grafted on two different rootstocks , 2021 .
[11] D. Intrigliolo,et al. Effects of the irrigation regimes on grapevine cv. Bobal in a Mediterranean climate: II. Wine, skins, seeds, and grape aromatic composition , 2021 .
[12] A. Oberholster,et al. Shifts in the phenolic composition and aromatic profiles of Cabernet Sauvignon (Vitis vinifera L.) wines are driven by different irrigation amounts in a hot climate. , 2021, Food chemistry.
[13] Q. Pan,et al. Combined Metabolite and Transcriptome Profiling Reveals the Norisoprenoid Responses in Grape Berries to Abscisic Acid and Synthetic Auxin , 2021, International journal of molecular sciences.
[14] Niels J. Nieuwenhuizen,et al. Transcriptomics Integrated with Free and Bound Terpenoid Aroma Profiling during "Shine Muscat" (Vitis labrusca × V. vinifera) Grape Berry Development Reveals Coordinate Regulation of MEP Pathway and Terpene Synthase Gene Expression. , 2021, Journal of agricultural and food chemistry.
[15] J. Hui,et al. Terpenes and Terpenoids in Plants: Interactions with Environment and Insects , 2020, International journal of molecular sciences.
[16] Yanlun Ju,et al. Dynamic changes in monoterpene accumulation and biosynthesis during grape ripening in three Vitis vinifera L. cultivars. , 2020, Food research international.
[17] J. C. Herrera,et al. The physiology of drought stress in grapevine: towards an integrative definition of drought tolerance , 2020, Journal of experimental botany.
[18] S. Ebeler,et al. Changes in glycosylation patterns of monoterpenes during grape berry maturation in six cultivars of Vitis vinifera. , 2019, Food chemistry.
[19] S. Delrot,et al. A sense of place: transcriptomics identifies environmental signatures in Cabernet Sauvignon berry skins in the late stages of ripening , 2019, BMC Plant Biology.
[20] D. Cantu,et al. The genetic basis of grape and wine aroma , 2019, Horticulture Research.
[21] S. Castellarin,et al. Evolution over the growing season of volatile organic compounds in Viognier (Vitis vinifera L.) grapes under three irrigation regimes. , 2019, Food research international.
[22] E. Falqué,et al. Effects of Two Different Irrigation Systems on the Amino Acid Concentrations, Volatile Composition and Sensory Profiles of Godello Musts and Wines , 2019, Foods.
[23] F. Loreto,et al. Exploiting Plant Volatile Organic Compounds (VOCs) in Agriculture to Improve Sustainable Defense Strategies and Productivity of Crops , 2019, Front. Plant Sci..
[24] Yanlun Ju,et al. Anthocyanin accumulation and biosynthesis are modulated by regulated deficit irrigation in Cabernet Sauvignon (Vitis Vinifera L.) grapes and wines. , 2019, Plant physiology and biochemistry : PPB.
[25] M. Vilanova,et al. Influence of water regime on yield components, must composition and wine volatile compounds of Vitis vinifera cv. Verdejo , 2018, Australian Journal of Grape and Wine Research.
[26] C. D'onofrio,et al. Effect of methyl jasmonate on the aroma of Sangiovese grapes and wines. , 2018, Food chemistry.
[27] Á. Peña-Neira,et al. Water stress and ripeness effects on the volatile composition of Cabernet Sauvignon wines. , 2018, Journal of the science of food and agriculture.
[28] J. M. Mirás-Avalos,et al. Effects of irrigation over three years on the amino acid composition of Treixadura (Vitis vinifera L.) musts and wines, and on the aromatic composition and sensory profiles of its wines. , 2018, Food chemistry.
[29] Q. Pan,et al. Monoterpenyl Glycosyltransferases Differentially Contribute to Production of Monoterpenyl Glycosides in Two Aromatic Vitis vinifera Varieties , 2017, Front. Plant Sci..
[30] J. C. Herrera,et al. Multi-Omics and Integrated Network Analyses Reveal New Insights into the Systems Relationships between Metabolites, Structural Genes, and Transcriptional Regulators in Developing Grape Berries (Vitis vinifera L.) Exposed to Water Deficit , 2017, Front. Plant Sci..
[31] C. D'onofrio,et al. Study of the terpene profile at harvest and during berry development of Vitis vinifera L. aromatic varieties Aleatico, Brachetto, Malvasia di Candia aromatica and Moscato bianco. , 2017, Journal of the science of food and agriculture.
[32] M. S. Grando,et al. Drawing Links from Transcriptome to Metabolites: The Evolution of Aroma in the Ripening Berry of Moscato Bianco (Vitis vinifera L.) , 2017, Front. Plant Sci..
[33] D. Wong,et al. Combined physiological, transcriptome, and cis-regulatory element analyses indicate that key aspects of ripening, metabolism, and transcriptional program in grapes (Vitis vinifera L.) are differentially modulated accordingly to fruit size , 2016, BMC Genomics.
[34] B. Bucchetti,et al. Transcriptome and metabolite profiling reveals that prolonged drought modulates the phenylpropanoid and terpenoid pathway in white grapes (Vitis vinifera L.) , 2016, BMC Plant Biology.
[35] G. Zhong,et al. Using the combined analysis of transcripts and metabolites to propose key genes for differential terpene accumulation across two regions , 2015, BMC Plant Biology.
[36] Alberto Palliotti,et al. Physiological parameters and protective energy dissipation mechanisms expressed in the leaves of two Vitis vinifera L. genotypes under multiple summer stresses. , 2015, Journal of plant physiology.
[37] L. Casassa,et al. Regulated Deficit Irrigation Alters Anthocyanins, Tannins and Sensory Properties of Cabernet Sauvignon Grapes and Wines , 2015, Molecules.
[38] J. Simal-Gándara. Sweet, reinforced and fortified wines: grape biochemistry, technology and vinification , 2015 .
[39] N. Dudareva,et al. A familiar ring to it: biosynthesis of plant benzoic acids. , 2014, Molecular plant.
[40] W. Schwab,et al. Activity-Based Profiling of a Physiologic Aglycone Library Reveals Sugar Acceptor Promiscuity of Family 1 UDP-Glucosyltransferases from Grape1[W] , 2014, Plant Physiology.
[41] H. Heymann,et al. Origins of Grape and Wine Aroma. Part 1. Chemical Components and Viticultural Impacts , 2014, American Journal of Enology and Viticulture.
[42] G. Scalabrelli,et al. Analysis of the expression of terpene synthase genes in relation to aroma content in two aromatic Vitis vinifera varieties. , 2013, Functional plant biology : FPB.
[43] C. D'onofrio. Changes in volatile compounds. , 2013 .
[44] M. Qian,et al. Influence of deficit irrigation and kaolin particle film on grape composition and volatile compounds in Merlot grape (Vitis vinifera L.). , 2012, Food chemistry.
[45] Diane M. Martin,et al. Functional Annotation, Genome Organization and Phylogeny of the Grapevine (Vitis vinifera) Terpene Synthase Gene Family Based on Genome Assembly, FLcDNA Cloning, and Enzyme Assays , 2010, BMC Plant Biology.
[46] C. Kalua,et al. Comparison of major volatile compounds from Riesling and Cabernet Sauvignon grapes (Vitis vinifera L.) from fruitset to harvest , 2010 .
[47] Benjamin Bois,et al. Vine water status is a key factor in grape ripening and vintage quality for red Bordeaux wine. How can it be assessed for vineyard management purposes , 2009 .
[48] M. Qian,et al. Volatile composition of Merlot wine from different vine water status. , 2009, Journal of agricultural and food chemistry.
[49] S. Kallithraka,et al. Irrigation and rootstock effects on the phenolic concentration and aroma potential of Vitis vinifera L. cv. cabernet sauvignon grapes. , 2009, Journal of agricultural and food chemistry.
[50] Jérôme Grimplet,et al. Water deficit alters differentially metabolic pathways affecting important flavor and quality traits in grape berries of Cabernet Sauvignon and Chardonnay , 2009, BMC Genomics.
[51] J. Guinard,et al. Sensory attributes of Cabernet Sauvignon wines made from vines with different water status , 2005 .
[52] D. Dubourdieu,et al. Influence of water and nitrogen deficit on fruit ripening and aroma potential of Vitis vinifera L cv Sauvignon blanc in field conditions , 2005 .
[53] S. Bureau,et al. Biogeneration of C13-norisoprenoid compounds: experiments supportive for an apo-carotenoid pathway in grapevines , 2002 .
[54] J. Flexas,et al. Effect of moderate irrigation on aroma potential and other markers of grape quality , 1999 .
[55] B. G. Coombe,et al. Growth Stages of the Grapevine: Adoption of a system for identifying grapevine growth stages , 1995 .
[56] B. Myers. Water stress integral-a link between short-term stress and long-term growth. , 1988, Tree physiology.