Aragüés, R. et al. Soil salinity related to physical soil characteristics and irrigation management in four Mediterranean irrigation districts. Agric. Water Manag. 98, 959–966 (2011).
Google Scholar
Cherif, S. et al. Drivers of change. In Climate and Environmental Change in the Mediterranean Basin – Current Situation and Risks for the Future. First Mediterranean Assessment Report (eds Cramer, W., Guiot, J. & Marini, K.) 59–180 (Union for the Mediterranean, Plan Bleu, UNEP/MAP, 2020).
MedECC. Climate and Environmental Change in the Mediterranean Basin – Current Situation and Risks for the Future. First Mediterranean Assessment Report (eds Cramer, W., Guiot, J. & Marini, K.) 632 (Union for the Mediterranean, Plan Bleu, UNEP/MAP, 2020).
Ali, E. et al. Cross-Chapter Paper 4: Mediterranean Region. In Climate Change 2022: Impacts, Adaptation and Vulnerability. Contribution of Working Group II to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change (eds Pörtner, H.-O. et al.) 2232–2272 (Cambridge University Press, 2022).
Giorgi, F. Climate change hot-spots. Geophys. Res. Lett. 33, L08707 (2006).
Google Scholar
Tramblay, Y. et al. Challenges for drought assessment in the Mediterranean region under future climate scenarios. Earth Sci. Rev. 210, 103348 (2020).
Google Scholar
Essa, Y. H., Hirschi, M., Thiery, W., El-Kenawy, A. M. & Yang, C. Drought characteristics in Mediterranean under future climate change. npj Clim. Atmos. Sci. 6, 133 (2023).
Google Scholar
Stathi, E., Kastridis, A. & Myronidis, D. Analysis of hydrometeorological trends and drought severity in water-demanding Mediterranean islands under climate change conditions. Climate 11, 106 (2023).
Google Scholar
Christidis, N. & Stott, P. A. Anthropogenic climate change and the record-high temperature of May 2020 in Western Europe. Bull. Am. Meteorol. Soc. 103, S33–S37 (2022).
Google Scholar
Jézequel, A., Faranda, D., Drobinski, P. & Lionello P. Extreme event attribution in the Mediterranean. Int. J. Climatol. https://doi.org/10.1002/joc.8799 (2025).
IPCC. Summary for Policymakers. In Climate Change The Physical Science Basis. Contribution of Working Group I to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change (eds Masson-Delmotte, V. et al.) 3–32 (Cambridge University Press, 2021).
Mrabet, R. et al. In Climate and Environmental Change in the Mediterranean Basin – Current Situation and Risks for the Future. First Mediterranean Assessment Report (eds Cramer, W., Guiot, J. & Marini, K.) 237–264 (Union for the Mediterranean, Plan Bleu, UNEP/MAP, 2020).
Drobinski, P. et al. Energy transition in the Mediterranean. In Climate and Environmental Change in the Mediterranean Basin – Current Situation and Risks for the Future. First Mediterranean Assessment Report (eds Cramer, W., Guiot, J. & Marini, K.) 265–322 (Union for the Mediterranean, Plan Bleu, UNEP/MAP, 2020).
MedECC. Interlinking climate change with the Water-Energy-Food-Ecosystems (WEFE) nexus in the Mediterranean Basin (eds Drobinski, P. et al.) MedECC Reports, 264 (MedECC Secretariat, 2024).
Cramer, W. et al. Climate change and interconnected risks to sustainable development in the Mediterranean. Nat. Clim. Chang. 8, 972–980 (2018).
Google Scholar
Ammari, T. G. et al. Soil salinity changes in the Jordan valley potentially threaten sustainable irrigated agriculture. Pedosphere 23, 376–384 (2013).
Google Scholar
CESE. Nexus eau-énergie-alimentation-écosystèmes: Optimiser les ressources naturelles, maximiser les synergies et réduire les risques intersectoriels au Maroc. Avis du Conseil Economique, Social et Environnemental, auto-saisine 79/2024 (in French – Water-Energy-Food-Ecosystems Nexus: Optimizing Natural Resources, Maximizing Synergies, and Reducing Cross-Sectoral Risks in Morocco. Opinion of the Economic, Social and Environmental Council, Self-Referral 79/2024). https://www.cese.ma/media/2025/02/ASA-C1-79-f.pdf (2024).
Testa, R., Tudisca, S., Schifani, G., Di Trapani, A. M. & Migliore, G. Tropical fruits as an opportunity for sustainable development in rural areas: The case of mango in small-sized Sicilian farms. Sustainability 10, 1436 (2018).
Google Scholar
Berbel, J., Expósito, A., Gutiérrez-Martín, C. & Mateos, L. Effects of the irrigation modernization in Spain 2002–2015. Water Resour. Manag. 33, 1835–1849 (2019).
Google Scholar
Berbel, J. & Mateos, L. Does investment in irrigation technology necessarily generate rebound effects? A simulation analysis based on an agro-economic model. Agric. Syst. 128, 25–34 (2014).
Google Scholar
Harmanny, K. S. & Malek, Ž (2019). Adaptations in irrigated agriculture in the Mediterranean region: An overview and spatial analysis of implemented strategies. Reg. Environ. Change 19, 1401–1416 (2019).
Google Scholar
Daher, B., Hamie, S., Pappas, K. & Roth, J. Examining Lebanson’s resilience through a water-energy-food nexus lens. Front. Sustain. Food Syst. 6, 748343 (2022).
Google Scholar
UN. UN Water Conference. Summary of Proceedings by the President of the General Assembly. https://sdgs.un.org/sites/default/files/2023-05/FINAL%20EDITED%20-%20PGA77%20Summary%20for%20Water%20Conference%202023.pdf (2023).
Fader, M. et al. Water. In Climate and Environmental Change in the Mediterranean Basin – Current Situation and Risks for the Future. First Mediterranean Assessment Report (eds Cramer, W., Guiot, J. & Marini, K.) 181–236 (Union for the Mediterranean, Plan Bleu, UNEP/MAP, 2020).
Baggio, G., Qadir, M. & Smakhtin, V. Freshwater availability status across countries for human and ecosystem needs. Sci. Total Environ. 792, 148230 (2021).
Google Scholar
Vinci, G. et al. The Health of the Water Planet: Challenges and Opportunities in the Mediterranean Area. An Overview. Earth 2, 894–919 (2021).
Google Scholar
Zapata-Sierra, A. J., Zapata-Castillo, L. & Manzano-Agugliaro, F. Water resources availability in southern Europe at the basin scale in response to climate change scenarios. Environ. Sci. Eur. 34, 75 (2022).
Google Scholar
FAO. Regional initiative on water scarcity for the Near East and North Africa (WSI). Regional Initiative on Water Scarcity, Food and Agriculture Organization of the United Nations, 36 pp. https://www.fao.org/fileadmin/user_upload/rne/docs/WSI-Pamphlet-en.pdf (2022).
Burak, S. & Margat, J. Water management in the Mediterranean region: concepts and policies. Water Resour. Manag. 30, 5779–5797 (2016).
Google Scholar
Dernini, S. et al. Med Diet 4.0: The Mediterranean diet with four sustainable benefits. Public Health Nutr. 20, 1322–1330 (2017).
Google Scholar
FAO & CIHEAM. Mediterranean food consumption patterns: Diet, environment, society, economy and health. https://www.fao.org/3/i4358e/i4358e.pdf (2015).
Ponti, L., Gutierrez, A. P., Boggia, A. & Neteler, M. Analysis of Grape Production in the Face of Climate Change. Climate 6, 20 (2018).
Google Scholar
Alrteimei, H. A., Ash’aari, Z. H. & Muharram, F. M. Last decade assessment of the impacts of regional climate change on crop yield variations in the Mediterranean region. Agriculture 12, 1787 (2022).
Google Scholar
Kaniewski, D. et al. Climate change threatens olive oil production in the Levant. Nat. Plants 9, 219–227 (2023).
Google Scholar
Kaniewski, D. et al. Olive production in the 21st century will be threatened by water stress and declining solar activity. Commun. Earth Environ. 6, 268 (2025).
Google Scholar
Yang, H., Wang, L. & Zehnder, A. J. B. Water scarcity and food trade in the Southern and Eastern Mediterranean countries. Food Policy 32, 585–605 (2007).
Google Scholar
Duarte, R., Pinilla, V. & Serrano, A. The globalization of Mediterranean agriculture: A long-term view of the impact on water consumption. Ecol. Econ. 183, 106964 (2021).
Google Scholar
Daher, B., Bachour, R., Yanni, S. F., Koo-Oshima, S. & Mohtar, R. H. Corrigendum : Food security under compound shocks : Can Lebanon produce its own Mediterranean food basket. Front. Sustain. Food Syst. 6, 969248 (2023).
Google Scholar
Lee, S. H., Mohtar, R. H. & Yoo, S. H. Assessment of food trade impacts on water, food, and land security in the MENA region. Hydrol. Earth Syst. Sci. 23, 557–572 (2019).
Google Scholar
Palatnik, R. R., Raviv, O., Sirot, J. & Shechter, M. Water scarcity and food security in the mediterranean region: The role of alternative water sources and controlled-environment agriculture. Water Resour. Econ. 49, 100256 (2025).
Google Scholar
Baer–Nawrocka, A. & Sadowski, A. Food security and food self–sufficiency around the world: A typology of countries. PLoS One 14, e0213448 (2019).
Google Scholar
Abu Hatab, A. & Hess, S. Feed the Mouth, the Eye Ashamed: Have food prices triggered social unrest in Egypt? The 31st International Conference of Agricultural Economists, 17–31. https://pub.epsilon.slu.se/26839/1/abu_hatab_a_et_al_220127.pdf (2021).
Arzaghi, M. & Squalli, J. The environmental impact of fossil fuel subsidy policies. Energy Econ. 126, 106980 (2023).
Google Scholar
European Commission. Fossil fuel subsidies in EU Member States: Trends and analytical challenges. Directorate-General for Economic and Financial Affairs. https://economy-finance.ec.europa.eu/publications/fossil-fuel-subsidies-eu-member-states-trends-and-analytical-challenges_en (2023).
Pariente-David, S. & Drobinski, P. Renewable energy in the Mediterranean: Pathways for multilateral cooperation. In Climate Change and Security in the Mediterranean: Understanding the Nexus, Unpacking International Policy Responses (eds Dessì, A. & Fusco, F.) 111–146 (New Med Research Network, 2022). https://www.iai.it/sites/default/files/iairs_9.pdf.
Moretti, A., Pitas, C., Christofi, G., Bué, E. & Francescato, M. G. Grid integration as a strategy of Med-TSO in the Mediterranean area in the framework of climate change and energy transition. Energies 13, 5307 (2020).
Google Scholar
Pulighe, G. et al. Ongoing and emerging issues for sustainable bioenergy production on marginal lands in the Mediterranean regions. Renew. Sustain. Energy Rev. 103, 58–70 (2019).
Google Scholar
Sargentis, G. F. et al. Agricultural land or photovoltaic parks? The water–energy–food nexus and land development perspectives in the Thessaly plain, Greece. Sustainability 13, 8935 (2021).
Google Scholar
Balzan, M. V. et al. Ecosystems. In Climate and Environmental Change in the Mediterranean Basin – Current Situation and Risks for the Future. First Mediterranean Assessment Report (eds Cramer, W., Guiot, J. & Marini, K.) 323–468 (Union for the Mediterranean, Plan Bleu, UNEP/MAP, 2020).
Aurelle, D. et al. Biodiversity, climate change, and adaptation in the Mediterranean. Ecosphere 13, e3915 (2022).
Google Scholar
del Pozo, A. et al. Climate change impacts and adaptation strategies of agriculture in Mediterranean-climate regions (MCRs). Sustainability 11, 2769 (2019).
Google Scholar
Mastrocicco, M., Gervasio, M. P., Busico, G. & Colombani, N. Natural and anthropogenic factors driving groundwater resources salinization for agriculture use in the Campania plains (Southern Italy). Sci. Total Environ. 758, 144033 (2021).
Google Scholar
Harchaoui, S. & Chatzimpiros, P. Energy, nitrogen, and farm surplus transitions in agriculture from historical data modeling. France, 1882–2013. J. Ind. Ecol. 23, 412–425 (2019).
Google Scholar
Aguilera, E. et al. Long–term trajectories of the C footprint of N fertilization in Mediterranean agriculture (Spain, 1860–2018). Environ. Res. Lett. 16, 85010 (2021).
Google Scholar
Sanz–Cobena, A. et al. Fertilization strategies for abating N pollution at the scale of a highly vulnerable and diverse semi–arid agricultural region (Murcia, Spain). Environ. Res. Lett. 18, 064030 (2023).
Google Scholar
Nøland, J. K., Auxepaules, J., Rousset, A., Perney, B. & Falletti, G. Spatial energy density of large–scale electricity generation from power sources worldwide. Sci. Rep. 12, 21280 (2022).
Google Scholar
Maimó-Far, A., Tantet, A., Homar, V. & Drobinski, P. The trade-off between socio-environmental awareness and renewable penetration targets in energy transition roadmaps. Appl. Energy 355, 122397 (2024).
Google Scholar
Lucca, E. et al. A review of water–energy–food–ecosystems nexus research in the Mediterranean: evolution, gaps and applications. Environ. Res. Lett. 18, 083001 (2023).
Google Scholar
Bazilian, M. et al. Considering the energy, water and food nexus: Towards an integrated modelling approach. Energy Policy 39, 7896–7906 (2011).
Google Scholar
Weitz, N., Strambo, C., Kemp-Benedict, E. & Nilsson, M. Closing the governance gaps in the water-energy-food nexus: Insights from integrative governance. Glob. Environ. Change 45, 165–173 (2017).
Google Scholar
Aboelnga, H. T., Khalifa, M., McNamara, I., Ribbe, L. & Sycz, J. Water–energy–food nexus literature review. A review of nexus literature and ongoing nexus initiatives for policymakers. In Nexus Regional Dialogue Programme (NRD) and German Society for International Cooperation (GIZ). Nexus Regional Dialogue Programme (NRD) and German Society for International Cooperation (GIZ). https://uploads.water-energy-food.org/legacy/wef_nexus_literature_review.pdf (2018).
Aguilera, E. et al. Agroecology for adaptation to climate change and resource depletion in the Mediterranean region. A review. Agr. Syst. 181, 102809 (2020).
Google Scholar
Almenar, J. B. et al. Nexus between nature-based solutions, ecosystem services and urban challenges. Land Use Policy 100, 104898 (2021).
Google Scholar
Malagó, A. et al. C. An analytical framework to assess SDG targets within the context of WEFE nexus in the Mediterranean region. Resour. Conserv. Recycl. 164, 105205 (2021).
Google Scholar
Karabulut, A. A., Udias, A. & Vigiak, O. Assessing the policy scenarios for the ecosystem water food energy (EWFE) nexus in the Mediterranean region. Ecosyst. Serv. 35, 231–240 (2019).
Google Scholar
Hoff, H. et al. A nexus approach for the MENA Region—From concept to knowledge to action. Front. Environ. Sci. 7, 48 (2019).
Google Scholar
De Roo, A. et al. The water-energy-food-ecosystem nexus in the Mediterranean: Current issues and future challenges. Front. Clim. 3, 782553 (2021).
Google Scholar
Saladini, F. et al. Linking the water-energy-food nexus and sustainable development indicators for the Mediterranean region. Ecol. Indic. 91, 689–697 (2018).
Google Scholar
Daccache, A., Ciurana, J. S., Rodriguez Diaz, J. A. & Knox, J. W. Water and energy footprint of irrigated agriculture in the Mediterranean region. Environ. Res. Lett. 9, 124014 (2014).
Google Scholar
El Gafy, I., Gigg, N. & Reagan, W. Dynamic behaviour of the water-food-energy-nexus: Focus on crop production and consumption. Irrig. Drain. 66, 19–33 (2016).
Google Scholar
Espinosa-Tasón, J., Berbel, J. & Gutiérrez-Martín, C. Energized water: Evolution of water-energy nexus in the Spanish irrigated agriculture, 1950–2017. Agric. Water Manag. 233, 106073 (2020).
Google Scholar
Huang, W., Liu, Q. & Abu Hatab, A. Is the technical efficiency green? The environmental efficiency of agricultural production in the MENA region. J. Environ. Manag. 327, 116820 (2023).
Google Scholar
Kalavrouziotis, I. K. et al. Current status in wastewater treatment, reuse and research in some Mediterranean countries. Desalin. Water Treat. 53, 2015–2030 (2015).
Google Scholar
van Vliet, M. T. H., Wiberg, D., Leduc, S. & Riahi, K. Power-generation system vulnerability and adaptation to changes in climate and water resources. Nat. Clim. Chang. 6, 676–681 (2016).
Greg, A. et al. Agrivoltaics provide mutual benefits across the food–energy–water nexus in drylands. Nat. Sustain. 2, 848–855 (2019).
Google Scholar
Lim, J., Abillama, N. & D’Adamo, C. Climate resilience is key to energy transitions in the Middle East and North Africa. IEA commentary. https://www.iea.org/commentaries/climate-resilience-is-key-to-energy-transitions-in-the-middle-east-and-north-africa (2023).
Papadopoulou, C. A., Papadopoulou, M. P. & Laspidou, C. Implementing water-energy-land- food-climate nexus approach to achieve the sustainable development goals in Greece: Indicators and policy recommendations. Sustainability 14, 4100 (2022).
Google Scholar
Capone, R., El Bilali, H., Debs, P., Cardone, G. & Driouech, N. Mediterranean food consumption patterns sustainability: setting up a common ground for future research and action. Am. J. Food Sci. Nutr. 1, 37–52 (2014).
Google Scholar
García, S. et al. Carbon dioxide (CO2) emissions and adherence to Mediterranean diet in an adult population: the Mediterranean diet index as a pollution level index. Environ. Health 22, 1 (2023).
Google Scholar
Sánchez-García, E. et al. Co-design of sectoral climate services based on seasonal prediction information in the Mediterranean. Clim. Serv. 28, 100337 (2022).
Google Scholar
Koutroulis, A. G., Grillakis, M. G., Daliakopoulos, I. N., Tsanis, I. K. & Jacob, D. Cross sectoral impacts on water availability at +2°C and +3°C for east Mediterranean island states: The case of Crete. J. Hydrol. 532, 16–28 (2016).
Google Scholar
Terrado, M., Sabater, S. & Acuña, V. Identifying regions vulnerable to habitat degradation under future irrigation scenarios. Environ. Res. Lett. 11, 114025 (2016).
Google Scholar
Dell’Aquila, A. et al. Monitoring climate related risk and opportunities for the wine sector: the MED-GOLD pilot service. Clim. Serv. 30, 100346 (2023).
Google Scholar
Vanham, D., Guenther, S., Ros-Baró, M. & Bach-Faig, A. Which diet has the lower water footprint in Mediterranean countries?. Resour. Conserv. Recycling 171, 105631 (2021).
Google Scholar
Bôto, J. M., Rocha, A., Miguéis, V., Meireles, M. & Neto, B. Sustainability dimensions of the Mediterranean diet: A systematic review of the indicators used and its results. Adv. Nutr. 13, 2015–2038 (2022).
Google Scholar
Galli, A. et al. Mediterranean countries’ food consumption and sourcing patterns: An Ecological Footprint viewpoint. Sci. Total Environ. 578, 383–391 (2017).
Google Scholar
Belgacem, W., Mattas, K., Arampatzis, G. & Baourakis, G. Changing dietary behavior for better biodiversity preservation: A preliminary study. Nutrients 13, 2076 (2021).
Google Scholar
Berry, E. M. Sustainable food systems and the Mediterranean diet. Nutrients 11, 2229 (2019).
Google Scholar
Preedy, V. R. & Watson, R. R. (eds). The Mediterranean Diet – An Evidence-based Approach (Academic Press, 2020). https://doi.org/10.1016/C2018-0-03968-7.
Molle, F. & Sanchis-Ibor, C. Irrigation policies in the Mediterranean: Trends and challenges. In Irrigation in the Mediterranean. Global Issues in Water Policy. (eds Molle, F., Sanchis-Ibor, C. & Avellà-Reus, L.) vol. 22 (Springer, 2019). https://doi.org/10.1007/978-3-030-03698-0_10.
Martin-Rios, C., Rogenhofer, J. & Sandoval Alvarado, M. The true cost of food waste: Tackling the managerial challenges of the food supply chain. Trends Food Sci. Technol. 131, 190–195 (2023).
Google Scholar
Elbana, T. A., Bakr, N. & Elbana, M. Reuse of treated wastewater in Egypt: Challenges and opportunities. In Unconventional Water Resources and Agriculture in Egypt. In The Handbook of Environmental Chemistry. The Handbook of Environmental Chemistry (ed Negm, A.) 75 (Springer, 2017). https://doi.org/10.1007/698_2017_46.
Aguilera, E. et al. Agroecology for adaptation to climate change and resource depletion in the Mediterranean region. A Rev. Agric. Syst. 181, 102809 (2020).
Google Scholar
Abdel Monem, M. et al. Towards Climate-smart Agriculture in Egypt – Scaling up Sustainable Practices for Enhancing Agrifood System Resilience and Adaptive Capacity. pp. 92 (FAO, 2022).
Kalavrouziotis, I. K. et al. Current status in wastewater treatment, reuse andresearch in some mediterranean countries. Desalin. Water Treat. 53, 2015–2030 (2015).
Google Scholar
Laspidou, C. S., Mellios, N. K., Spyropoulou, A. E., Kofinas, D. T. & Papadopoulou, M. P. Systems thinking on the resource nexus: Modeling and visualisation tools to identify critical interlinkages for resilient and sustainable societies and institutions. Sci. Total Environ. 717, 137264 (2020).
Google Scholar
Lawford, R. G. A design for a data and information service to address the knowledge needs of the Water-Energy-Food (WEF) Nexus and strategies to facilitate its implementation. Front. Environ. Sci. 7, 56 (2019).
Google Scholar
Markantonis, V. et al. Can the implementation of the water-energy-food nexus support economic growth in the Mediterranean region? The current status and the way forward. Front. Environ. Sci. 7, 84 (2019).
Google Scholar
Rapella, L. et al. Simulating generic agrivoltaic systems with ORCHIDEE: Model development and multi-case study insights. Agric. Meteorol. 371, 110589 (2025).
Google Scholar
Khan, Z., Linares, P. & García-González, J. Adaptation to climate-induced regional water constraints in the Spanish energy sector: An integrated assessment. Energy Policy 97, 123–135 (2016).
Google Scholar
Fader, M., Shi, S., von Bloh, W., Bondeau, A. & Cramer, W. Mediterranean irrigation under climate change: more efficient irrigation needed to compensate for increases in irrigation water requirements. Hydrol. Earth Syst. Sci. 20, 953–973 (2016).
Google Scholar
Kebede, A. S., Nicholls, R. J., Clarke, D., Savin, C. & Harrison, P. A. Integrated assessment of the food-water-land-ecosystems nexus in Europe: Implications for sustainability. Sci. Total Environ. 768, 144461 (2021).
Google Scholar
Nath, P. K. & Behera, B. A critical review of impact of and adaptation to climate change in developed and developing economies. Environ. Dev. Sustain. 13, 141–162 (2011).
Google Scholar
Adamovic, M. et al. Position Paper on Water, Energy, Food and Ecosystem (WEFE) Nexus and Sustainable development Goals (SDGs) (Publications Office of the European Union, 2019).
Newbigin, M. I. The Mediterranean climatic type: Its world distribution and the human response. South Afr. Geographical J. 12, 14–22 (1929).
Google Scholar
Aschmann, H. Distribution and peculiarity of Mediterranean ecosystems. In Mediterranean Type Ecosystems. Ecological Studies (eds Di Castri, F. & Mooney, H. A.) Vol. 7. (Springer, 1973). https://doi.org/10.1007/978-3-642-65520-3_2.
Seager, R. et al. Climate variability and change of Mediterranean-type climates. J. Clim. 32, 2887–2915 (2019).
Google Scholar

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