Sensitivity of Grapevine Phenology to Water Availability, Temperature and CO2 Concentration
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Eike Luedeling | Zhanwu Dai | Serge Delrot | Višnja Vučetić | E. Gomès | S. Delrot | F. Morales | E. Luedeling | Z. Dai | C. van Leeuwen | J. Irigoyen | J. Martínez-Lüscher | I. Pascual | V. Vučetič | Fermín Morales | Eric Gomès | Cornelis van Leeuwen | Johann Martínez-Lüscher | Tefide Kizildeniz | Inmaculada Pascual | Juan J. Irigoyen | T. Kızıldeniz | Johann Martínez-Lüscher | Johann Martínez-Lüscher
[1] P. Balda,et al. Reducing the Sugar and pH of the Grape (Vitis vinifera L. cvs. ‘Grenache’ and ‘Tempranillo’) Through a Single Shoot Trimming , 2016 .
[2] B. Cook,et al. Climate change decouples drought from early wine grape harvests in France , 2016 .
[3] J. Considine,et al. On the language and physiology of dormancy and quiescence in plants. , 2016, Journal of experimental botany.
[4] Shouxin Li,et al. Responses of Vitis vinifera ‘Pinot gris’ Grapevines to Exogenous Abscisic Acid (ABA): I. Yield, Fruit Quality, Dormancy, and Freezing Tolerance , 2016, Journal of Plant Growth Regulation.
[5] C. Lovisolo,et al. Grapevine adaptations to water stress: new perspectives about soil/plant interactions , 2016, Theoretical and Experimental Plant Physiology.
[6] G. Valle,et al. Grapevine Rootstocks Differentially Affect the Rate of Ripening and Modulate Auxin-Related Genes in Cabernet Sauvignon Berries , 2016, Front. Plant Sci..
[7] E. Gomès,et al. Ultraviolet‐B alleviates the uncoupling effect of elevated CO2 and increased temperature on grape berry (Vitis vinifera cv. Tempranillo) anthocyanin and sugar accumulation , 2016 .
[8] F. Morales,et al. Effects of climate change including elevated CO2 concentration, temperature and water deficit on growth, water status, and yield quality of grapevine (Vitis vinifera L.) cultivars , 2015 .
[9] E. Gomès,et al. Climate change conditions (elevated CO2 and temperature) and UV-B radiation affect grapevine (Vitis vinifera cv. Tempranillo) leaf carbon assimilation, altering fruit ripening rates. , 2015, Plant science : an international journal of experimental plant biology.
[10] V. Sadras,et al. Impact of elevated temperature and water deficit on the chemical and sensory profiles of Barossa Shiraz grapes and wines , 2015 .
[11] C. Leeuwen,et al. Manipulating the leaf area to fruit mass ratio alters the synchrony of total soluble solids accumulation and titratable acidity of grape berries , 2015 .
[12] P. Balda,et al. Delaying berry ripening through manipulating leaf area to fruit ratio , 2015 .
[13] P. Balda,et al. Leaf area reduction by trimming, a growing technique to restore the anthocyanins : sugars ratio decoupled by the warming climate , 2015 .
[14] E. Gomès,et al. Characterization of the adaptive response of grapevine (cv. Tempranillo) to UV-B radiation under water deficit conditions. , 2015, Plant science : an international journal of experimental plant biology.
[15] E. Luedeling,et al. Responses of spring phenology in temperate zone trees to climate warming: A case study of apricot flowering in China , 2015 .
[16] V. Sadras,et al. Review: critical appraisal of methods to investigate the effect of temperature on grapevine berry composition , 2015 .
[17] C. Leeuwen,et al. Leaf area to fruit mass ratio determines the time of veraison in Sauvignon Blanc and Pinot Noir grapevines , 2014 .
[18] F. Morales,et al. Methodological advances: using greenhouses to simulate climate change scenarios. , 2014, Plant science : an international journal of experimental plant biology.
[19] Alessandra Ferrandino,et al. Abiotic stress effects on grapevine ( Vitis vinifera L.): Focus on abscisic acid-mediated consequences on secondary metabolism and berry quality , 2014 .
[20] D. Kok. A Review on Grape Growing in Tropical Regions , 2014 .
[21] D. Greer,et al. The impact of high temperatures on Vitis vinifera cv. Semillon grapevine performance and berry ripening , 2013, Front. Plant Sci..
[22] Shao-Hua Li,et al. Berry ripening: recently heard through the grapevine. , 2013, Journal of experimental botany.
[23] S. Delrot,et al. The Basic Leucine Zipper Transcription Factor ABSCISIC ACID RESPONSE ELEMENT-BINDING FACTOR2 Is an Important Transcriptional Regulator of Abscisic Acid-Dependent Grape Berry Ripening Processes1[W][OPEN] , 2013, Plant Physiology.
[24] A. Destrac-Irvine,et al. Impact of soil texture and water availability on the hydraulic control of plant and grape-berry development , 2013, Plant and Soil.
[25] S. Delrot,et al. Why climate change will not dramatically decrease viticultural suitability in main wine-producing areas by 2050 , 2013, Proceedings of the National Academy of Sciences.
[26] V. Sadras,et al. Nonlinear effects of elevated temperature on grapevine phenology , 2013 .
[27] M. Génard,et al. What controls fleshy fruit acidity? A review of malate and citrate accumulation in fruit cells. , 2013, Journal of experimental botany.
[28] Eike Luedeling,et al. Identification of chilling and heat requirements of cherry trees—a statistical approach , 2012, International Journal of Biometeorology.
[29] Eike Luedeling,et al. Climate change impacts on winter chill for temperate fruit and nut production: A review , 2012 .
[30] Eike Luedeling,et al. Partial Least Squares Regression for analyzing walnut phenology in California , 2012 .
[31] V. Sadras,et al. Elevated temperature decouples anthocyanins and sugars in berries of Shiraz and Cabernet Franc , 2012 .
[32] Jonas Bhend,et al. Earlier wine-grape ripening driven by climatic warming and drying and management practices , 2012 .
[33] M. Matthews,et al. Impact of diurnal temperature variation on grape berry development, proanthocyanidin accumulation, and the expression of flavonoid pathway genes , 2012, Journal of experimental botany.
[34] J. Tardáguila,et al. An open-database of Grape Harvest dates for climate research: data description and quality assessment , 2011 .
[35] D. Ruiz,et al. Dormancy in temperate fruit trees in a global warming context: A review , 2011 .
[36] K. Calvin,et al. The RCP greenhouse gas concentrations and their extensions from 1765 to 2300 , 2011 .
[37] C. van Leeuwen,et al. General phenological model to characterise the timing of flowering and veraison of Vitis vinifera L. , 2011 .
[38] Paul R. Petrie,et al. Climate shifts in south‐eastern Australia: early maturity of Chardonnay, Shiraz and Cabernet Sauvignon is associated with early onset rather than faster ripening , 2011 .
[39] L. A. F. Vilela,et al. Phenology of "Niagara Rosada" grapevines grafted on different rootstocks grown on Cerrado (Brazilian savanna) of Goiás State, Brazil , 2011 .
[40] E. Luedeling,et al. A global analysis of the comparability of winter chill models for fruit and nut trees , 2010, International journal of biometeorology.
[41] F. Morales,et al. Effects of climate change scenarios on Tempranillo grapevine (Vitis vinifera L.) ripening: response to a combination of elevated CO2 and temperature, and moderate drought , 2010, Plant and Soil.
[42] Eric Duchêne,et al. The challenge of adapting grapevine varieties to climate change. , 2010 .
[43] M. M. Chaves,et al. Grapevine under deficit irrigation: hints from physiological and molecular data. , 2010, Annals of botany.
[44] C. Ford,et al. Regulation of Malate Metabolism in Grape Berry and Other Developing Fruits , 2009 .
[45] Eike Luedeling,et al. Validation of winter chill models using historic records of walnut phenology , 2009 .
[46] 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 .
[47] A. Rogers,et al. Elevated CO2 effects on plant carbon, nitrogen, and water relations: six important lessons from FACE. , 2009, Journal of experimental botany.
[48] 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.
[49] Nadine Brisson,et al. Performance of several models for predicting budburst date of grapevine (Vitis vinifera L.) , 2009, International journal of biometeorology.
[50] P. Jones,et al. A European daily high-resolution gridded data set of surface temperature and precipitation for 1950-2006 , 2008 .
[51] V. Sadras,et al. Advancement of grapevine maturity in Australia between 1993 and 2006: putative causes, magnitude of trends and viticultural consequences , 2008 .
[52] S. Idso,et al. Seventeen years of carbon dioxide enrichment of sour orange trees: final results , 2007 .
[53] Leanne Webb,et al. Modelled impact of future climate change on the phenology of winegrapes in Australia , 2007 .
[54] V. Sadras,et al. Quantifying phenotypic plasticity of berry traits using an allometric-type approach: a case study on anthocyanins and sugars in berries of Cabernet Sauvignon , 2007 .
[55] C. van Leeuwen,et al. The concept of terroir in viticulture , 2006 .
[56] M. A. White,et al. Climate Change and Global Wine Quality , 2005 .
[57] J. Almorox,et al. Statistical validation of daylength definitions for estimation of global solar radiation in Toledo, Spain , 2005 .
[58] Pascal Yiou,et al. Historical phenology: Grape ripening as a past climate indicator , 2004, Nature.
[59] M. Sánchez-Díaz,et al. ABA during reproductive development in non‐irrigated grapevines (Vitis vinifera L. cv. Tempranillo) , 2003 .
[60] P. Guedes de Pinho,et al. Carotenoid compounds in grapes and their relationship to plant water status. , 2003, Journal of agricultural and food chemistry.
[61] S. Wold,et al. PLS-regression: a basic tool of chemometrics , 2001 .
[62] M. Lieffering,et al. Free-air CO2 enrichment (FACE) using pure CO2 injection: system description , 2001 .
[63] M. Bindi,et al. Free Air CO2 Enrichment (FACE) of grapevine (Vitis vinifera L.) : II. Growth and quality of grape and wine in response to elevated CO2 concentrations , 2001 .
[64] N. Dokoozlian. Chilling Temperature and Duration Interact on the Budbreak of `Perlette' Grapevine Cuttings , 1999 .
[65] H. Bleiholder,et al. Growth Stages of the Grapevine: Phenological growth stages of the grapevine (Vitis vinifera L. ssp. vinifera)—Codes and descriptions according to the extended BBCH scale† , 1995 .
[66] W. Davies,et al. How Do Chemical Signals Work in Plants that Grow in Drying Soil? , 1994, Plant physiology.
[67] T. Mcnelley,et al. Temperature dependence of , 1993, Metallurgical and Materials Transactions A.
[68] Alain Bouquet,et al. Biology of the Grapevine , 1992 .
[69] S. Idso,et al. Downward Regulation of Photosynthesis and Growth at High CO(2) Levels : No Evidence for Either Phenomenon in Three-Year Study of Sour Orange Trees. , 1991, Plant physiology.
[70] A. Erez,et al. The temperature dependence of dormancy breaking in plants: Mathematical analysis of a two-step model involving a cooperative transition* , 1987 .
[71] J. L. Anderson,et al. Validation of Chill Unit and Flower Bud Phenology Models for 'Montmorency' Sour Cherry , 1986 .
[72] W. Kliewer,et al. The influence of temperature on malic Acid metabolism in grape berries: I. Enzyme responses. , 1975, Plant physiology.
[73] Gregory V. Jones. Climate Change : Observations , Projections , and General Implications for Viticulture and Wine Production , 2007 .
[74] Gregory V. Jones. Climate and Terroir : Impacts of Climate Variability and Change on Wine , 2006 .
[75] Cornelis van Leeuwen,et al. Influence of Climate, Soil, and Cultivar on Terroir , 2004, American Journal of Enology and Viticulture.
[76] H. Rawson,et al. Yield Responses of Two Wheat Genotypes to Carbon Dioxide and Temperature in Field Studies using Temperature Gradient Tunnels , 1995 .
[77] L. Rowland,et al. Identification of chilling-responsive proteins from floral buds of blueberry , 1994 .
[78] D. Linvill. Calculating Chilling Hours and Chill Units from Daily Maximum and Minimum Temperature Observations , 1990 .
[79] B. Kowalski,et al. Partial least-squares regression: a tutorial , 1986 .
[80] M. G. Mullins. Test-plants for Investigations of the Physiology of Fruiting in Vitis vinifera L. , 1966, Nature.