Volume 1, Issue 2
Review
Open Access

An overview of climate change impacts on European viticulture

H. Fraga

Corresponding Author

Centre for the Research and Technology of Agro‐Environmental and Biological Sciences, University of Trás‐os‐Montes e Alto Douro, P.O. Box 1013, 5001‐801 Vila Real, Portugal

Correspondence

Hélder Fraga, Centre for the Research and Technology of Agro‐Environmental and Biological Sciences, University of Trás‐os‐Montes e Alto Douro, P.O. Box 1013, 5001‐801 Vila Real, Portugal. Tel: +351‐259‐350‐389; Fax: +351‐259‐350‐480; E‐mail: hfraga@utad.pt

Search for more papers by this author
A. C. Malheiro

Centre for the Research and Technology of Agro‐Environmental and Biological Sciences, University of Trás‐os‐Montes e Alto Douro, P.O. Box 1013, 5001‐801 Vila Real, Portugal

Search for more papers by this author
J. Moutinho‐Pereira

Centre for the Research and Technology of Agro‐Environmental and Biological Sciences, University of Trás‐os‐Montes e Alto Douro, P.O. Box 1013, 5001‐801 Vila Real, Portugal

Search for more papers by this author
J. A. Santos

Centre for the Research and Technology of Agro‐Environmental and Biological Sciences, University of Trás‐os‐Montes e Alto Douro, P.O. Box 1013, 5001‐801 Vila Real, Portugal

Search for more papers by this author
First published: 17 February 2013
Citations: 93

Abstract

The importance of viticulture and of the winemaking socioeconomic sector in Europe is largely acknowledged. The most famous winemaking regions in Europe commonly present very specific environmental characteristics, where climate often plays a central role. Furthermore, given the strong influence of the atmospheric factors on this crop, climate change can significantly affect yield and wine quality under future conditions. Trends recorded in the recent past on many viticultural regions in Europe hint at an already pronounced increase in the growing‐season mean temperatures. Furthermore, climate‐change projections give evidence for significant changes in both the growing‐season temperatures and precipitations in the next decades. Although grapevines have several survival strategies, the mounting evidence for significant climate change in the upcoming decades urges adaptation and mitigation measures to be taken by the whole winemaking sector. Short‐term adaptation measures can be considered as a first protection strategy and should be focused at specific threats, mostly changes in crop‐management practices (e.g., irrigation, sunscreens for leaf protection). At long term, however, a wide range of adaptation measures should be considered (e.g., varietal and land allocation changes). An overview of the current scientific knowledge, mostly concerning the European viticulture, the potential climate change impacts, and feasible adaptation measures is provided herein.

Number of times cited according to CrossRef: 93

  • Site selection and climate, Wine Science, 10.1016/B978-0-12-816118-0.00005-2, (331-374), (2020).
  • Transcriptomic and biochemical investigations support the role of rootstock-scion interaction in grapevine berry quality, BMC Genomics, 10.1186/s12864-020-06795-5, 21, 1, (2020).
  • Adaptation de la viticulture argentine à la variabilité climatique : une approche par simulation dans la région de MendozaAdaptation of Argentina viticulture to climate variability: simulation approach in the Mendoza area, Norois, 10.4000/norois.9668, 254, (91-108), (2020).
  • Using UAV‐based remote sensing to assess grapevine canopy damage due to fire smoke, Journal of the Science of Food and Agriculture, 10.1002/jsfa.10494, 100, 12, (4531-4539), (2020).
  • Exogenous allantoin improves anthocyanin accumulation in grape berry skin at early stage of ripening, Journal of Plant Physiology, 10.1016/j.jplph.2020.153253, (153253), (2020).
  • Taxonomy of Southeast Asian-Australasian grapevine leaf rust fungus and its close relatives, Mycological Progress, 10.1007/s11557-020-01607-2, 19, 9, (905), (2020).
  • Reproductive performance of the European grapevine moth Lobesia botrana (Tortricidae) is adversely affected by warming scenario, Journal of Pest Science, 10.1007/s10340-020-01201-1, (2020).
  • Addressing Climate Change Impacts on Agriculture: Adaptation Measures For Six Crops in Cyprus, Atmosphere, 10.3390/atmos11050483, 11, 5, (483), (2020).
  • Berry Quality of Grapevine under Water Stress as Affected by Rootstock–Scion Interactions through Gene Expression Regulation, Agronomy, 10.3390/agronomy10050680, 10, 5, (680), (2020).
  • Temperature Variability at Local Scale in the Bordeaux Area. Relations With Environmental Factors and Impact on Vine Phenology, Frontiers in Plant Science, 10.3389/fpls.2020.00515, 11, (2020).
  • A Review of the Potential Climate Change Impacts and Adaptation Options for European Viticulture, Applied Sciences, 10.3390/app10093092, 10, 9, (3092), (2020).
  • Responses of Grape Quality Characteristics of Some Table Grape Varieties (V. vinifera L.) Grown in Northwestern Turkey to Heat Summation Index and Latitude-temperature IndexEinfluss des Wärme-Summations-Index und des Breitengrad-Temperatur-Index auf Qualitätsmerkmale einiger in der Nordwesttürkei angebauter Tafeltraubensorten (V. vinifera L.), Erwerbs-Obstbau, 10.1007/s10341-020-00487-w, (2020).
  • Modeling Land Suitability for Vitis vinifera in Michigan Using Advanced Geospatial Data and Methods, Atmosphere, 10.3390/atmos11040339, 11, 4, (339), (2020).
  • The Productive, Economic, and Social Efficiency of Vineyards Using Combined Drought-Tolerant Rootstocks and Efficient Low Water Volume Deficit Irrigation Techniques under Mediterranean Semiarid Conditions, Sustainability, 10.3390/su12051930, 12, 5, (1930), (2020).
  • Milli Koleksiyon Şaraplık Üzüm Çeşitlerinde Budama Şekli ve Abiyotik Etmenlerin Fizyolojik Aktiviteler Üzerine Etkileri, Ege Üniversitesi Ziraat Fakültesi Dergisi, 10.20289/zfdergi.602806, (171-180), (2020).
  • (Z)-3-Hexenyl Butyrate Induces Stomata Closure and Ripening in Vitis vinifera, Agronomy, 10.3390/agronomy10081122, 10, 8, (1122), (2020).
  • Ecotoxicological evaluation of fungicides used in viticulture in non-target organisms, Environmental Science and Pollution Research, 10.1007/s11356-020-10245-w, (2020).
  • Risk management strategies and residual risk perception in the wine industry: A spatial analysis in Northeast Italy, Land Use Policy, 10.1016/j.landusepol.2019.01.022, 83, (47-62), (2019).
  • Vineyards and Viticulture, Small-Format Aerial Photography and UAS Imagery, 10.1016/B978-0-12-812942-5.00017-3, (307-314), (2019).
  • Climate-Smart Champagne, Climate-Smart Food, 10.1007/978-3-030-18206-9, (177-189), (2019).
  • How Rain Affects Profitability in the Wine Sector, SSRN Electronic Journal, 10.2139/ssrn.3322707, (2019).
  • Physiological and transcriptional variations inducing complex adaptive mechanisms in grapevine by salt stress, Environmental and Experimental Botany, 10.1016/j.envexpbot.2019.03.022, 162, (455-467), (2019).
  • Effects of Ascophyllum nodosum extract on Vitis vinifera: Consequences on plant physiology, grape quality and secondary metabolism, Plant Physiology and Biochemistry, 10.1016/j.plaphy.2019.03.002, (2019).
  • The impact of climate change on grapevine phenology and the influence of altitude: A regional study, Agricultural and Forest Meteorology, 10.1016/j.agrformet.2019.02.030, 271, (73-82), (2019).
  • Modeling Environmental Impacts on Viticultural Ecosystems, Environmental Information Systems, 10.4018/978-1-5225-7033-2, (1403-1422), (2019).
  • GHG Emissions and Mitigation in Romanian Vineyards, Greenhouse Gas Emissions, 10.1007/978-981-13-3272-2_4, (33-56), (2019).
  • Interactive effects of the rootstock and the deficit irrigation technique on wine composition, nutraceutical potential, aromatic profile, and sensory attributes under semiarid and water limiting conditions, Agricultural Water Management, 10.1016/j.agwat.2019.105733, 225, (105733), (2019).
  • Rainfall Derivatives and Risk Management in the Wine Sector, SSRN Electronic Journal, 10.2139/ssrn.3323931, (2019).
  • Assessment of deterioration in skin color of table grape berries due to climate change and effects of two adaptation measures, Journal of Agricultural Meteorology, 10.2480/agrmet.D-18-00032, (2019).
  • Vineyards in transition: A global assessment of the adaptation needs of grape producing regions under climate change, Science of The Total Environment, 10.1016/j.scitotenv.2018.12.079, 657, (839-852), (2019).
  • Observed Northward Migration of Agro‐Climate Zones in Europe Will Further Accelerate Under Climate Change, Earth's Future, 10.1029/2019EF001178, 7, 9, (1088-1101), (2019).
  • References, Small-Format Aerial Photography and UAS Imagery, 10.1016/B978-0-12-812942-5.09996-1, (353-372), (2019).
  • Implications of a Climate-Changed Atmosphere on Cool-Climate Viticulture, Journal of Applied Meteorology and Climatology, 10.1175/JAMC-D-18-0183.1, 58, 5, (1141-1153), (2019).
  • An Update on the Impact of Climate Change in Viticulture and Potential Adaptations, Agronomy, 10.3390/agronomy9090514, 9, 9, (514), (2019).
  • Climate change risks and adaptation: new indicators for Mediterranean viticulture, Mitigation and Adaptation Strategies for Global Change, 10.1007/s11027-019-09899-w, (2019).
  • Renewable Energy Prosumers in Mediterranean Viticulture Social–Ecological Systems, Sustainability, 10.3390/su11236781, 11, 23, (6781), (2019).
  • Assessing Impacts of Climate Change on Phenology and Quality Traits of Vitis vinifera L.: The Contribution of Local Knowledge, Plants, 10.3390/plants8050121, 8, 5, (121), (2019).
  • Modelling of Wine Production Using Land Surface Temperature and FAPAR—The Case of the Douro Wine Region, Remote Sensing, 10.3390/rs11060604, 11, 6, (604), (2019).
  • Relationships between Cabernet Sauvignon phenology and climate in two Spanish viticultural regions: observations and predicted future changes, The Journal of Agricultural Science, 10.1017/S0021859618001119, (1-11), (2019).
  • Comparison of transcriptional expression patterns of phenols and carotenoids in ‘Kyoho’ grapes under a two-crop-a-year cultivation system, PLOS ONE, 10.1371/journal.pone.0210322, 14, 1, (e0210322), (2019).
  • Climate Changes and Food Quality: The Potential of Microbial Activities as Mitigating Strategies in the Wine Sector, Fermentation, 10.3390/fermentation5040085, 5, 4, (85), (2019).
  • Grapevine abiotic stress assessment and search for sustainable adaptation strategies in Mediterranean-like climates. A review, Agronomy for Sustainable Development, 10.1007/s13593-018-0544-0, 38, 6, (2018).
  • The Response of Soilless Grown ‘Michele Palieri’ (Vitis vinifera L.) Grapevine Cultivar to Deficit Irrigation Under the Effects of Different RootstocksDie Reaktion auf Trockenstress bei der erdelos kultivierten Traubensorte ‘Michele Palieri’ (Vitis vinifera L.) auf verschiedenen Unterlagen, Erwerbs-Obstbau, 10.1007/s10341-018-0378-6, 60, S1, (21-27), (2018).
  • Effect of drying on tartaric acid and malic acid in Shiraz and Merlot berries, Australian Journal of Grape and Wine Research, 10.1111/ajgw.12344, 24, 4, (421-429), (2018).
  • Water Balance Indices for Tropical Wine Grapes, Grapes and Wines - Advances in Production, Processing, Analysis and Valorization, 10.5772/68059, (2018).
  • Impact of the Light Microclimate on Photosynthetic Activity of Grape Berry (Vitis vinifera): Insights for Radiation Absorption Mitigations’ Measures, Theory and Practice of Climate Adaptation, 10.1007/978-3-319-72874-2_24, (419-441), (2018).
  • Pest management under climate change: The importance of understanding tritrophic relations, Science of The Total Environment, 10.1016/j.scitotenv.2017.11.027, 616-617, (397-407), (2018).
  • Selecting rootstocks to improve vine performance and vineyard sustainability in deficit irrigated Monastrell grapevines under semiarid conditions, Agricultural Water Management, 10.1016/j.agwat.2018.07.012, 209, (73-93), (2018).
  • A dynamic viticultural zoning to explore the resilience of terroir concept under climate change, Science of The Total Environment, 10.1016/j.scitotenv.2017.12.035, 624, (294-308), (2018).
  • A suitability model for viticulture in England and Wales: opportunities for investment, sector growth and increased climate resilience, Journal of Land Use Science, 10.1080/1747423X.2018.1537312, 13, 4, (414-438), (2018).
  • Managing Water Sustainability: Virtual Water Flows and Economic Water Productivity Assessment of the Wine Trade between Italy and the Balkans, Sustainability, 10.3390/su10020543, 10, 2, (543), (2018).
  • Future climatic suitability of the Emilia-Romagna (Italy) region for grape production, Regional Environmental Change, 10.1007/s10113-018-1431-6, (2018).
  • Influence of cover cropping on water uptake dynamics in an irrigated Mediterranean vineyard, Irrigation and Drainage, 10.1002/ird.2115, 66, 3, (387-395), (2017).
  • Climatic shifts in high quality wine production areas, Emilia Romagna, Italy, 1961-2015, Climate Research, 10.3354/cr01468, 73, 3, (195-206), (2017).
  • High-resolution UAV-based thermal imaging to estimate the instantaneous and seasonal variability of plant water status within a vineyard, Agricultural Water Management, 10.1016/j.agwat.2016.08.026, 183, (49-59), (2017).
  • Evaluation of crop water stress index on Royal table grape variety under partial root drying and conventional deficit irrigation regimes in the Mediterranean Region, Scientia Horticulturae, 10.1016/j.scienta.2017.06.032, 224, (384-394), (2017).
  • Modeling Environmental Impacts on Viticultural Ecosystems, International Journal of Agricultural and Environmental Information Systems, 10.4018/IJAEIS.2017070101, 8, 3, (1-20), (2017).
  • An Analysis of Regional Climate Simulations for Western Australia’s Wine Regions—Model Evaluation and Future Climate Projections, Journal of Applied Meteorology and Climatology, 10.1175/JAMC-D-16-0333.1, 56, 7, (2113-2138), (2017).
  • The Medieval Climate Anomaly as a factor in the history of Sijilmasa, southeastern Morocco, The Journal of North African Studies, 10.1080/13629387.2016.1239079, 22, 1, (132-152), (2016).
  • A 3-Year Adaptation Study of Three Distinct Grapevine Cultivars under Midwestern Field Conditions, International Journal of Fruit Science, 10.1080/15538362.2016.1204974, 17, 1, (1-19), (2016).
  • Assessing local climate vulnerability and winegrowers’ adaptive processes in the context of climate change, Mitigation and Adaptation Strategies for Global Change, 10.1007/s11027-015-9698-0, 22, 5, (777-803), (2016).
  • Global Climate Change and Wine Safety, Wine Safety, Consumer Preference, and Human Health, 10.1007/978-3-319-24514-0, (97-116), (2016).
  • Drought and water management in Mediterranean vineyards, Grapevine in a Changing Environment, 10.1002/9781118735985, (38-67), (2016).
  • Metabolic rearrangements in grapevine response to salt stress, Grapevine in a Changing Environment, 10.1002/9781118735985, (279-298), (2016).
  • Grapevines in a changing environment, Grapevine in a Changing Environment, 10.1002/9781118735985, (1-17), (2016).
  • The Impact of Climate Change on the Viticultural Suitability of Maipo Valley, Chile, The Professional Geographer, 10.1080/00330124.2015.1124788, 68, 4, (561-573), (2016).
  • undefined, 2016 ELEKTRO, 10.1109/ELEKTRO.2016.7512035, (57-61), (2016).
  • Soil water monitoring in a vineyard and assessment of unsaturated hydraulic parameters as thresholds for irrigation management, Agricultural Water Management, 10.1016/j.agwat.2015.10.030, 164, (235-242), (2016).
  • Effect of climate on the quality and berry coloration of red globe grape variety with cold storage ability in Eğirdir/Isparta, BIO Web of Conferences, 10.1051/bioconf/20160701007, 7, (01007), (2016).
  • Economic and Social Impacts of Climate Change on Wine Production, Reference Module in Food Science, 10.1016/B978-0-08-100596-5.03062-6, (2016).
  • Large-scale water balance indicators for different pruning dates of tropical wine grape, Pesquisa Agropecuária Brasileira, 10.1590/S0100-204X2016000700008, 51, 7, (849-857), (2016).
  • Rapidly changing climatic conditions for wine grape growing in the Okanagan Valley region of British Columbia, Canada, Science of The Total Environment, 10.1016/j.scitotenv.2016.02.200, 556, (169-178), (2016).
  • The Impact of Climate Change on Viticulture and Wine Quality, Journal of Wine Economics, 10.1017/jwe.2015.21, 11, 1, (150-167), (2016).
  • Climate change impacts and adaptive strategies: lessons from the grapevine, Global Change Biology, 10.1111/gcb.13406, 22, 11, (3814-3828), (2016).
  • Impact of recent climate change and weather variability on the viability of UK viticulture – combining weather and climate records with producers' perspectives, Australian Journal of Grape and Wine Research, 10.1111/ajgw.12215, 22, 2, (324-335), (2016).
  • Grape Ripening Is Regulated by Deficit Irrigation/Elevated Temperatures According to Cluster Position in the Canopy, Frontiers in Plant Science, 10.3389/fpls.2016.01640, 7, (2016).
  • Kaolin Foliar Application Has a Stimulatory Effect on Phenylpropanoid and Flavonoid Pathways in Grape Berries, Frontiers in Plant Science, 10.3389/fpls.2016.01150, 7, (2016).
  • Present and future climate conditions for winegrowing in Spain, Regional Environmental Change, 10.1007/s10113-015-0883-1, 16, 3, (617-627), (2015).
  • Identification of stable QTLs for vegetative and reproductive traits in the microvine (Vitis vinifera L.) using the 18 K Infinium chip, BMC Plant Biology, 10.1186/s12870-015-0588-0, 15, 1, (2015).
  • How will climate change influence grapevine cv. Tempranillo photosynthesis under different soil textures?, Photosynthesis Research, 10.1007/s11120-015-0120-2, 124, 2, (199-215), (2015).
  • Taxonomic identity of a Phakopsora fungus causing the grapevine leaf rust disease in Southeast Asia and Australasia, Mycoscience, 10.1016/j.myc.2014.06.003, 56, 2, (198-204), (2015).
  • A New Mathematical Modelling Approach for Viticulture and Winemaking Using Fuzzy Cognitive Maps, IFAC-PapersOnLine, 10.1016/j.ifacol.2015.12.049, 48, 24, (15-20), (2015).
  • Impact of temperature and sunlight on the skin coloration of the ‘Kyoho’ table grape, Scientia Horticulturae, 10.1016/j.scienta.2015.06.042, 193, (77-83), (2015).
  • A spatial micro-econometric approach to estimating climate change impacts on wine firm performance: A case study from Moldavia region, Romania, Agricultural Systems, 10.1016/j.agsy.2015.09.008, 141, (48-57), (2015).
  • Modelling olive trees and grapevines in a changing climate, Environmental Modelling & Software, 10.1016/j.envsoft.2014.12.016, 72, (387-401), (2015).
  • Climate Change and Grapevines: A Simulation Study for the Mediterranean Basin, Journal of Wine Economics, 10.1017/jwe.2014.30, 11, 1, (88-104), (2014).
  • Variability of water use efficiency in grapevines, Environmental and Experimental Botany, 10.1016/j.envexpbot.2013.09.003, 103, (148-157), (2014).
  • The impact of climate change on the global wine industry: Challenges & solutions, Wine Economics and Policy, 10.1016/j.wep.2014.08.001, 3, 2, (81-89), (2014).
  • Climate factors driving wine production in the Portuguese Minho region, Agricultural and Forest Meteorology, 10.1016/j.agrformet.2013.11.003, 185, (26-36), (2014).
  • Changes in vineyard establishment and canopy management urged by earlier climate-related grape ripening: A review, Scientia Horticulturae, 10.1016/j.scienta.2014.07.039, 178, (43-54), (2014).
  • Physiological and biochemical responses of Semillon and Muscat Blanc à Petits Grains winegrapes grown under Mediterranean climate, Scientia Horticulturae, 10.1016/j.scienta.2014.06.007, 175, (128-138), (2014).
  • An overview of the recent approaches for terroir functional modelling, footprinting and zoning, SOIL Discussions, 10.5194/soild-1-827-2014, 1, 1, (827-906), (2014).
  • Very high resolution bioclimatic zoning of Portuguese wine regions: present and future scenarios, Regional Environmental Change, 10.1007/s10113-013-0490-y, 14, 1, (295-306), (2013).

The full text of this article hosted at iucr.org is unavailable due to technical difficulties.