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Climate Change and Water Resource Degradation: Understanding Relationships

DOI: 10.4236/jwarp.2026.182007, PP. 102-131

Keywords: Aquatic Ecosystems, Drought, Flooding, Water Quality, Water Quantity

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Abstract:

Climate change significantly degrades global water resources by altering their hydrological characteristics. The greenhouse gas (GHG) effect intensifies extreme weather events like flooding and drought, driven by excessive precipitation and rising temperatures. These events degrade water quality and quantity in reservoirs. Prolonged droughts reduce streamflow, lower groundwater levels, and increase surface water pollution. For example, the Colorado River’s streamflow has decreased by 19% since 2000, and Lake Kasumigaura in Japan has experienced warming of 1.8?C to 3.2?C, accompanied by increased ammonia (NH3) and phosphate ( PO 4 3 ) fluxes. Rising temperatures exceeding the critical 1.5?C threshold amplify water stress, leading to food insecurity, heat stress, water conflicts, and habitat destruction. Conversely, heavy rainfall increases runoff, sedimentation, and the deposition of pathogens and nutrients like phosphorus into aquatic ecosystems. For instance, Lake Victoria’s water levels rose by 1.21 m in 2020, causing flooding, while the Odaw River experienced sewage-contaminated flooding, leading to microbiological contamination. Thermal stratification in Lake Tanganyika has further reduced oxygen levels. Flooding and drought also transform carbon sinks, such as wetlands, into sources of carbon dioxide (CO2) and methane (CH4), intensifying global warming by enhancing organic matter decomposition and destroying carbon stores like vegetation. These changes disrupt the water cycle, reducing access to clean water, impairing groundwater recharge, and threatening aquatic ecosystems. This review investigates the relationship between extreme weather events, such as droughts, wildfires, and flooding, driven by climate change, and their effects on hydrological processes in the atmosphere. We also examine changes in the water cycle, including alterations in evapotranspiration, runoff, infiltration, and precipitation. These changes directly affect water resources by restricting access to safe and clean water, disrupting groundwater recharge, and degrading daily living standards. Mitigating these impacts requires adopting climate-smart technologies, transitioning to renewable energy, conserving ecosystems, and developing climate-resilient infrastructure. These actions conserve water resources,

References

[1]  Wen, K., Gao, B. and Li, M. (2021) Quantifying the Impact of Future Climate Change on Runoff in the Amur River Basin Using a Distributed Hydrological Model and CMIP6 GCM Projections. Atmosphere, 12, Article 1560.
https://doi.org/10.3390/atmos12121560
[2]  IPCC (2023) Climate Change 2023: Synthesis Report. Contribution of Working Groups I, II and III to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change (H. Lee & J. Romero, Eds.). IPCC.
[3]  NASA (2025) Carbon Dioxide-Earth Indicator. NASA.
https://science.nasa.gov/earth/explore/earth-indicators/carbon-dioxide/
[4]  United Nations Environment Programme (2017) Climate Action: Take Urgent Action to Combat Climate Change and Its Impacts. UNEP.
https://wedocs.unep.org/handle/20.500.11822/21435
[5]  Guo, X., Liu, Y., Xie, T., Li, Y., Liu, H. and Wang, Q. (2025) Impact of Ecological Restoration on Carbon Sink Function in Coastal Wetlands: A Review. Water, 17, Article 488.
https://doi.org/10.3390/w17040488
[6]  United Nations Educational, Scientific and Cultural Organization (UNESCO) (2023) The United Nations World Water Development Report 2023: Partnerships and Cooperation for Water. UNESCO World Water Assessment Programme.
https://unesdoc.unesco.org/ark:/48223/pf0000384655
[7]  Chaplin-Kramer, R., Sharp, R.P., Weil, C., Bennett, E.M., Pascual, U., Arkema, K.K., et al. (2019) Global Modeling of Nature’s Contributions to People. Science, 366, 255-258.
https://doi.org/10.1126/science.aaw3372
[8]  Liu, W., Liu, X., Yang, H., Ciais, P. and Wada, Y. (2022) Global Water Scarcity Assessment Incorporating Green Water in Crop Production. Water Resources Research, 58, e2020WR028570.
https://doi.org/10.1029/2020wr028570
[9]  Ogunrinde, A.T., Adeyeri, O.E., Xian, X., Yu, H., Jing, Q. and Faloye, O.T. (2024) Long-Term Spatiotemporal Trends in Precipitation, Temperature, and Evapotranspiration across Arid Asia and Africa. Water, 16, Article 3161.
https://doi.org/10.3390/w16223161
[10]  van Vliet, M.T.H., Thorslund, J., Strokal, M., Hofstra, N., Flörke, M., Ehalt Macedo, H., et al. (2023) Global River Water Quality under Climate Change and Hydroclimatic Extremes. Nature Reviews Earth & Environment, 4, 687-702.
https://doi.org/10.1038/s43017-023-00472-3
[11]  UNESCO and UN-Water (2020) United Nations World Water Development Report 2020: Water and Climate Change. UNESCO.
https://www.unwater.org/publications/un-world-water-development-report-2020
[12]  Mbabazize, D., Atugonza, C. and Nyamaizi, S. (2025) Soil Degradation and Climate Change Relationships: A Review. International Journal of Environment and Climate Change, 15, 427-451.
https://doi.org/10.9734/ijecc/2025/v15i125173
[13]  Tawfik, M., Hoogesteger, J., Moussa, M. and Hellegers, P. (2023) ‘Squeezing out’ the Nile Delta’s Drainage Water to Irrigate Egypt’s Desert Land. Water, 16, Article 157.
https://doi.org/10.3390/w16010157
[14]  Fatolazadeh, F. and Goïta, K. (2025) Understanding Terrestrial Water Storage Changes Derived from the GRACE/GRACE-FO in the Inner Niger Delta in West Africa. Water, 17, Article 1121.
https://doi.org/10.3390/w17081121
[15]  Banda, K., Shilengwe, C. and Nyambe, I. (2025) Integrating Environmental and LULC Drivers of Groundwater Droughts in Groundwater-Dependent Ecosystems: A Machine Learning (XGBoost)-SEM Analysis with Ecosystem Implications. Ecological Processes, 14, Article No. 64.
https://doi.org/10.1186/s13717-025-00633-w
[16]  Sood, A., Muthuwatta, L., Silva, N.S. and McCartney, M. (2017) Understanding the Hydrological Impacts of Climate Change in the Tana River Basin, Kenya. International Water Management Institute (IWMI). 40 p.
[17]  Nsubuga, F.N.W., Namutebi, E.N. and Nsubuga-Ssenfuma, M. (2014) Water Resources of Uganda: An Assessment and Review. Journal of Water Resource and Protection, 6, 1297-1315.
https://doi.org/10.4236/jwarp.2014.614120
[18]  Atugonza, C., Mbabazize, D., Zebosi, B., Abuni, D.I. and Nyamaizi, S. (2025) Impact of Agricultural Land Use Practices on Water Quality in Lubigi Wetland. Journal of Water, 1, 1-22.
https://doi.org/10.14302/issn.2769-2264.jw-25-5578
[19]  Aruho, B. (2024) Assessment of the Quality of Water from River Rwizi-Mbarara City. Master’s Thesis, Kabale University.
http://hdl.handle.net/20.500.12493/2432
[20]  Savenije, H.H.G. (2024) The Hydrological System as a Living Organism. Proceedings of IAHS, 385, 1-4.
https://doi.org/10.5194/piahs-385-1-2024
[21]  Kleidon, A. and Renner, M. (2013) Thermodynamic Limits of Hydrologic Cycling within the Earth System: Concepts, Estimates and Implications. Hydrology and Earth System Sciences, 17, 2873-2892.
https://doi.org/10.5194/hess-17-2873-2013
[22]  Shagega, F.P., Munishi, S.E. and Kongo, V.M. (2020) Assessment of Potential Impacts of Climate Change on Water Resources in Ngerengere Catchment, Tanzania. Physics and Chemistry of the Earth, Parts A/B/C, 116, Article 102804.
https://doi.org/10.1016/j.pce.2019.11.001
[23]  Tibangayuka, N., Mulungu, D.M.M. and Izdori, F. (2025) Evaluating Future Climate-Driven Changes in Agricultural Water Resilience: Insights from CMIP6 Model Simulations for the Kagera River Sub-basin. Journal of Environmental Management, 378, Article 124745.
https://doi.org/10.1016/j.jenvman.2025.124745
[24]  Yang, D., Yang, Y. and Xia, J. (2021) Hydrological Cycle and Water Resources in a Changing World: A Review. Geography and Sustainability, 2, 115-122.
https://doi.org/10.1016/j.geosus.2021.05.003
[25]  Benestad, R.E., Lussana, C., Lutz, J., Dobler, A., Landgren, O., Haugen, J.E., et al. (2022) Global Hydro-Climatological Indicators and Changes in the Global Hydrological Cycle and Rainfall Patterns. PLOS Climate, 1, e0000029.
https://doi.org/10.1371/journal.pclm.0000029
[26]  Wang, X.C. (2022) Safe Water Reuse through a Quasi-Natural Water Cycle. Journal of Water Reuse and Desalination, 12, 366-372.
https://doi.org/10.2166/wrd.2022.039
[27]  Sohoulande Djebou, D.C. and Singh, V.P. (2016) Impact of Climate Change on Precipitation Patterns: A Comparative Approach. International Journal of Climatology, 36, 3588-3606.
https://doi.org/10.1002/joc.4578
[28]  Ohba, M. (2021) Precipitation under climate change. In: Rodrigo-Comino, J., Ed., Precipitation, Elsevier, 21-51.
https://doi.org/10.1016/b978-0-12-822699-5.00002-1
[29]  Lagerloef, G., Schmitt, R., Schanze, J. and Kao, H. (2010) The Ocean and the Global Water Cycle. Oceanography, 23, 82-93.
https://doi.org/10.5670/oceanog.2010.07
[30]  Johnson, G.C. and Lumpkin, R. (2023) Global Oceans. State of the Climate in 2022.
[31]  Isabelle, D.A. and Westerlund, M. (2022) A Review and Categorization of Artificial Intelligence-Based Opportunities in Wildlife, Ocean and Land Conservation. Sustainability, 14, Article 1979.
https://doi.org/10.3390/su14041979
[32]  Raimi, O.M., Ilesanmi, A., Alima, O. and Omini, D.E. (2021) Exploring How Human Activities Disturb the Balance of Biogeochemical Cycles: Evidence from the Carbon, Nitrogen and Hydrologic Cycles. Research on World Agricultural Economy, 2, 23-44.
https://doi.org/10.36956/rwae.v2i3.426
[33]  El-Sayed, A. and Kamel, M. (2020) Climatic Changes and Their Role in Emergence and Re-Emergence of Diseases. Environmental Science and Pollution Research, 27, 22336-22352.
https://doi.org/10.1007/s11356-020-08896-w
[34]  Bierkens, M.F.P. and Wada, Y. (2019) Non-Renewable Groundwater Use and Groundwater Depletion: A Review. Environmental Research Letters, 14, Article 063002.
https://doi.org/10.1088/1748-9326/ab1a5f
[35]  Zhou, Y., Ma, J., Zhang, Y., Li, J., Feng, L., Zhang, Y., et al. (2019) Influence of the Three Gorges Reservoir on the Shrinkage of China’s Two Largest Freshwater Lakes. Global and Planetary Change, 177, 45-55.
https://doi.org/10.1016/j.gloplacha.2019.03.014
[36]  Chen, Y., Fu, B., Zhao, Y., Wang, K., Zhao, M.M., Ma, J., et al. (2020) Sustainable Development in the Yellow River Basin: Issues and Strategies. Journal of Cleaner Production, 263, Article 121223.
https://doi.org/10.1016/j.jclepro.2020.121223
[37]  Connell, D. and Grafton, R.Q. (2011) Water Reform in the Murray‐Darling Basin. Water Resources Research, 47, W00G03.
https://doi.org/10.1029/2010wr009820
[38]  Ziv, G., Baran, E., Nam, S., Rodríguez-Iturbe, I. and Levin, S.A. (2012) Trading-Off Fish Biodiversity, Food Security, and Hydropower in the Mekong River Basin. Proceedings of the National Academy of Sciences, 109, 5609-5614.
https://doi.org/10.1073/pnas.1201423109
[39]  Uhe, P., Philip, S., Kew, S., Shah, K., Kimutai, J., Mwangi, E., et al. (2017) Attributing Drivers of the 2016 Kenyan Drought. International Journal of Climatology, 38, 554-568.
https://doi.org/10.1002/joc.5389
[40]  Ayugi, B., Tan, G., Niu, R., Dong, Z., Ojara, M., Mumo, L., et al. (2020) Evaluation of Meteorological Drought and Flood Scenarios over Kenya, East Africa. Atmosphere, 11, Article 307.
https://doi.org/10.3390/atmos11030307
[41]  Parmesan, C. and Yohe, G. (2003) A Globally Coherent Fingerprint of Climate Change Impacts across Natural Systems. Nature, 421, 37-42.
https://doi.org/10.1038/nature01286
[42]  Walther, G., Post, E., Convey, P., Menzel, A., Parmesan, C., Beebee, T.J.C., et al. (2002) Ecological Responses to Recent Climate Change. Nature, 416, 389-395.
https://doi.org/10.1038/416389a
[43]  Liu, T., Si, Z., Zhao, Y., Wang, J., Liu, Y. and Wang, L. (2025) Drought Propagation and Risk Assessment in the Naoli River Basin Based on the SWAT-PLUS Model and Copula Functions. Sustainability, 17, Article 8219.
https://doi.org/10.3390/su17188219
[44]  IPCC (2014) Climate Change 2014: Impacts, Adaptation, and Vulnerability. Part A: Global and Sectoral Aspects. Contribution of Working Group II to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change. Cambridge University Press.
https://www.ipcc.ch/report/ar5/wg2
[45]  Gordon, L.J., Steffen, W., Jönsson, B.F., Folke, C., Falkenmark, M. and Johannessen, Å. (2005) Human Modification of Global Water Vapor Flows from the Land Surface. Proceedings of the National Academy of Sciences, 102, 7612-7617.
https://doi.org/10.1073/pnas.0500208102
[46]  Piao, S., Friedlingstein, P., Ciais, P., de Noblet-Ducoudré, N., Labat, D. and Zaehle, S. (2007) Changes in Climate and Land Use Have a Larger Direct Impact than Rising CO2 on Global River Runoff Trends. Proceedings of the National Academy of Sciences, 104, 15242-15247.
https://doi.org/10.1073/pnas.0707213104
[47]  Turner, M.G., Calder, W.J., Cumming, G.S., Hughes, T.P., Jentsch, A., LaDeau, S.L., et al. (2020) Climate Change, Ecosystems and Abrupt Change: Science Priorities. Philosophical Transactions of the Royal Society B: Biological Sciences, 375, Article 20190105.
https://doi.org/10.1098/rstb.2019.0105
[48]  Abuni, D.I., Nyamaizi, S., Mbabazize, D. and Atugonza, C. (2025) Effect of Different Land Use Types on Nutrient Distribution across Soil Depth in Busega Wetland, Uganda. Open Journal of Soil Science, 15, 84-101.
https://doi.org/10.4236/ojss.2025.151005
[49]  Allan, R.P., Barlow, M., Byrne, M.P., Cherchi, A., Douville, H., Fowler, H.J., et al. (2020) Advances in Understanding Large‐Scale Responses of the Water Cycle to Climate Change. Annals of the New York Academy of Sciences, 1472, 49-75.
https://doi.org/10.1111/nyas.14337
[50]  Swain, S., Taloor, A.K., Dhal, L., Sahoo, S. and Al-Ansari, N. (2022) Impact of Climate Change on Groundwater Hydrology: A Comprehensive Review and Current Status of the Indian Hydrogeology. Applied Water Science, 12, Article No. 120.
https://doi.org/10.1007/s13201-022-01652-0
[51]  Labrousse, C., Ludwig, W., Pinel, S., Sadaoui, M., Toreti, A. and Lacquement, G. (2022) Declining Water Resources in Response to Global Warming and Changes in Atmospheric Circulation Patterns over Southern Mediterranean France. Hydrology and Earth System Sciences, 26, 6055-6071.
https://doi.org/10.5194/hess-26-6055-2022
[52]  Rusli, R.S, Bense, V.F., Mustafa, S.M.T. and Weerts. H.A. (2024) The Impact of Future Changes in Climate Variables and Groundwater Abstraction on Basin-Scale Groundwater Availability. Hydrology and Earth System Sciences, 28, 5107-5131.
https://doi.org/10.5194/hess-28-5107-2024
[53]  Abalasei, M.E., Toma, D., Dorus, M. and Teodosiu, C. (2025) The Impact of Climate Change on Water Quality: A Critical Analysis. Water, 17, Article 3108.
https://doi.org/10.3390/w17213108
[54]  Milly, P.C.D. and Dunne, K.A. (2020) Colorado River Flow Dwindles as Warming-Driven Loss of Reflective Snow Energizes Evaporation. Science, 367, 1252-1255.
https://doi.org/10.1126/science.aay9187
[55]  Ramesh, A., Kovats, S., Haslam, D., Schmidt, E. and Gilbert, C.E. (2013) The Impact of Climatic Risk Factors on the Prevalence, Distribution, and Severity of Acute and Chronic Trachoma. PLOS Neglected Tropical Diseases, 7, e2513.
https://doi.org/10.1371/journal.pntd.0002513
[56]  Tiepolo, M., Ponte, E. and Cristofori, E. (2016) Planning to Cope with Tropical and Subtropical Climate Change. Walter de Gruyter GmbH & Co KG.
[57]  Reinsch, S., Robinson, D.A., van Soest, M.A.J., Keith, A.M., Parry, S. and Tye, A.M. (2024) Temperate Soils Exposed to Drought—Key Processes, Impacts, Indicators, and Unknowns. Land, 13, Article 1759.
https://doi.org/10.3390/land13111759
[58]  Choi, Y. and Eltahir, E.A.B. (2023) Near-Term Climate Change Impacts on Food Crops Productivity in East Africa. Theoretical and Applied Climatology, 152, 843-860.
https://doi.org/10.1007/s00704-023-04408-1
[59]  Wang, X. and Liu, L. (2023) The Impacts of Climate Change on the Hydrological Cycle and Water Resource Management. Water, 15, Article 2342.
https://doi.org/10.3390/w15132342
[60]  Chivangulula, F.M., Amraoui, M. and Pereira, M.G. (2023) The Drought Regime in Southern Africa: A Systematic Review. Climate, 11, Article 147.
https://doi.org/10.3390/cli11070147
[61]  IPCC (2021) Climate Change 2021: The Physical Science Basis. Contribution of Working Group I to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change. Cambridge University Press.
[62]  Mekong River Commission (2005) Overview of the Hydrology of the Mekong Basin. MRCSecretariat.
https://archive.iwlearn.net/mrcmekong.org/download/free_download/Hydrology_report_05.pdf
[63]  Mekong River Commission (2022) Mekong Low Flow and Drought Conditions in 2019-2021: Hydrological Conditions in the Lower Mekong River Basin. MRC Secretariat.
[64]  Gong, G., Zhang, S., Li, B., Chen, Y., Chen, P., Wang, K., et al. (2024) Anomalous Water Vapor Circulation in an Extreme Drought Event of the Mid‐Reaches of the Lancang‐Mekong River Basin. Earths Future, 12, e2023EF004292.
https://doi.org/10.1029/2023ef004292
[65]  Hogan, D. and Lundquist, J.D. (2024) Recent Upper Colorado River Streamflow Declines Driven by Loss of Spring Precipitation. Geophysical Research Letters, 51, e2024GL109826.
https://doi.org/10.1029/2024gl109826
[66]  Hoerling, M.P., Eischeid, J.K., Diaz, H.F., Rajagopolan, B. and Kuhn, E. (2024) Critical Effects of Precipitation on Future Colorado River Flow. Journal of Climate, 37, 4079-4093.
https://doi.org/10.1175/jcli-d-23-0617.1
[67]  Nigatu, Z.M., You, W. and Melesse, A.M. (2024) Drought Dynamics in the Nile River Basin: Meteorological, Agricultural, and Groundwater Drought Propagation. Remote Sensing, 16, Article 919.
https://doi.org/10.3390/rs16050919
[68]  Ojara, M.A., Lou, Y., Aribo, L., Namumbya, S. and Uddin, M.J. (2019) Dry Spells and Probability of Rainfall Occurrence for Lake Kyoga Basin in Uganda, East Africa. Natural Hazards, 100, 493-514.
https://doi.org/10.1007/s11069-019-03822-x
[69]  IPCC (2007) Climate Change 2007: The Fourth Assessment Report (AR4)—Synthesis Report. IPCC, 104 p.
https://archive.ipcc.ch/pdf/assessment-report/ar4/syr/ar4_syr_full_report.pdf
[70]  World Bank Group (2021) Climate Risk Country Profile: Uganda. The World Bank Group.
https://climateknowledgeportal.worldbank.org/sites/default/files/2021-05/15464WB_Uganda%20Country%20Profile-WEB%20(1).pdf
[71]  Centre for Research on the Epidemiology of Disasters (CRED) (2020) Natural Disasters 2019: Now Is the Time to Not Give Up. CRED.
https://www.cred.be/sites/default/files/adsr_2019.pdf
[72]  Wang, L., Ma, L., Sheng, L., Zang, S. and Wang, H. (2022) A Review of Climate Change and Environmental Sustainability. Advances in Science, Technology and innovation. Springer.
[73]  Yang, W., Zhang, J., Hua, P. and Krebs, P. (2023) Global Framework for Flood Risk Management under Climate Change and Urbanization. The Innovation Geoscience, 1, Article 100009.
https://doi.org/10.59717/j.xinn-geo.2023.100009
[74]  Chang, D., Li, S. and Lai, Z. (2023) Effects of Extreme Precipitation Intensity and Duration on the Runoff and Nutrient Yields. Journal of Hydrology, 626, Article 130281.
https://doi.org/10.1016/j.jhydrol.2023.130281
[75]  Mugume, S.N., Abasabyoona, G., Engwau, J., Sempewo, J., Van de Sande, B. and Butler, D. (2023) Assessment of the Impact of the Rise in Lake Victoria Water Levels on Urban Flooding Using a Gis-Based Spatial Flood Modelling Approach. Urban Water Journal, 21, 219-233.
https://doi.org/10.1080/1573062x.2023.2284960
[76]  Musselman, K.N., Lehner, F., Ikeda, K., Clark, M.P., Prein, A.F., Liu, C., et al. (2018) Projected Increases and Shifts in Rain-On-Snow Flood Risk over Western North America. Nature Climate Change, 8, 808-812.
https://doi.org/10.1038/s41558-018-0236-4
[77]  Wasko, C., Westra, S., Nathan, R., Orr, H.G., Villarini, G., Villalobos Herrera, R., et al. (2021) Incorporating Climate Change in Flood Estimation Guidance. Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences, 379, Article 20190548.
https://doi.org/10.1098/rsta.2019.0548
[78]  Vyshnevskyi, V.I. and Donich, O.A. (2021) Climate Change in the Ukrainian Carpathians and Its Possible Impact on River Runoff. Acta Hydrologica Slovaca, 22, 3-14.
https://doi.org/10.31577/ahs-2021-0022.01.0001
[79]  Velpuri, N.M., Senay, G.B. and Asante, K.O. (2012) A Multi-Source Satellite Data Approach for Modelling Lake Turkana Water Level: Calibration and Validation Using Satellite Altimetry Data. Hydrology and Earth System Sciences, 16, 1-18.
https://doi.org/10.5194/hess-16-1-2012
[80]  Hamududu, B. and Killingtveit, Å. (2016) Hydropower Production in Future Climate Scenarios; the Case for the Zambezi River. Energies, 9, Article 502.
https://doi.org/10.3390/en9070502
[81]  Dube, K. and Nhamo, G. (2023) Evaluating Climate Change’s Impact on Hydroelectricity in the Zambezi River Basin. Heliyon, 9, e23235.
https://doi.org/10.1016/j.heliyon.2023.e23235
[82]  Taylor, R.G., Todd, M.C., Kongola, L., Maurice, L., Nahozya, E., Sanga, H., et al. (2012) Evidence of the Dependence of Groundwater Resources on Extreme Rainfall in East Africa. Nature Climate Change, 3, 374-378.
https://doi.org/10.1038/nclimate1731
[83]  Gleeson, T., Cuthbert, M., Ferguson, G. and Perrone, D. (2020) Global Groundwater Sustainability, Resources, and Systems in the Anthropocene. Annual Review of Earth and Planetary Sciences, 48, 431-463.
https://doi.org/10.1146/annurev-earth-071719-055251
[84]  Owino, C.M., Ochwo, G., Okwir, G., Selemani, J.R. and Mataba, G.R. (2025) Groundwater Recharge Assessment under Climate Change Scenarios: A Case Study of Kirya Ndongo, Uganda. Journal of Water and Climate Change, 10, Article 801.
[85]  Mollel, G.R., Mulungu, D.M.M., Nobert, J. and Alexander, A.C. (2023) Assessment of Climate Change Impacts on Hydrological Processes in the Usangu Catchment of Tanzania under CMIP6 Scenarios. Journal of Water and Climate Change, 14, 4162-4182.
https://doi.org/10.2166/wcc.2023.542
[86]  MacDonald, A.M., Bonsor, H.C., Ahmed, K.M., Burgess, W.G., Basharat, M., Calow, R.C., et al. (2016) Groundwater Quality and Depletion in the Indo-Gangetic Basin Mapped from in Situ Observations. Nature Geoscience, 9, 762-766.
https://doi.org/10.1038/ngeo2791
[87]  Cobbing, J. (2020) Groundwater and the Discourse of Shortage in Sub-Saharan Africa. Hydrogeology Journal, 28, 1143-1154.
https://doi.org/10.1007/s10040-020-02147-5
[88]  Forster, P.M., Smith, C., Walsh, T., Lamb, W.F., Lamboll, R., Cassou, C., et al. (2025) Indicators of Global Climate Change 2024: Annual Update of Key Indicators of the State of the Climate System and Human Influence. Earth System Science Data, 17, 2641-2680.
https://doi.org/10.5194/essd-17-2641-2025
[89]  NOAA Global Monitoring Laboratory (2024) Annual Greenhouse Gas Index (AGGI). Carbon Dioxide Was by Far the Largest Contributor to Effective Radiative Forcing from These Gases (2.29 Wm2, or 66 % of the Total).
https://gml.noaa.gov/aggi/aggi.html
[90]  Tanguang, G., Shichang, K., Cuo, L., Tingjun, Z., Guoshuai, Z., Yulan, Z., et al. (2015) Simulation and Analysis of Glacier Runoff and Mass Balance in the Nam Co Basin, Southern Qinghai-Xizang Plateau. Journal of Glaciology, 61, 447-460.
https://doi.org/10.3189/2015jog14j170
[91]  Ding, Y., Zhang, S., Chen, R., Han, T., Han, H., Wu, J., et al. (2020) Hydrological Basis and Discipline System of Cryohydrology: From a Perspective of Cryospheric Science. Frontiers in Earth Science, 8, Article ID: 574707.
https://doi.org/10.3389/feart.2020.574707
[92]  Engelhardt, M., Leclercq, P., Eidhammer, T., Kumar, P., Landgren, O. and Rasmussen, R. (2017) Meltwater Runoff in a Changing Climate (1951-2099) at Chhota Shigri Glacier, Western Himalaya, Northern India. Annals of Glaciology, 58, 47-58.
https://doi.org/10.1017/aog.2017.13
[93]  Taylor, R.G., Mileham, L., Tindimugaya, C., Majugu, A., Muwanga, A. and Nakileza, B. (2006) Recent Glacial Recession in the Rwenzori Mountains of East Africa Due to Rising Air Temperature. Geophysical Research Letters, 33, L10402.
https://doi.org/10.1029/2006gl025962
[94]  Hinzmann, A., Mölg, T., Braun, M., Cullen, N.J., Hardy, D.R., Kaser, G., et al. (2024) Tropical Glacier Loss in East Africa: Recent Areal Extents on Kilimanjaro, Mount Kenya, and in the Rwenzori Range from High-Resolution Remote Sensing Data. Environmental Research: Climate, 3, Article 011003.
https://doi.org/10.1088/2752-5295/ad1fd7
[95]  Katutu, R., Nyamweha, B.R., Kabaseke, C., Koojo, M.S., Sekajugo, J., Martens, K., et al. (2019) Study of Natural Disasters and of Their Impact on the Environmental Condition Rwenzori Mountain. Technogenic and Ecological Safety, 5, 31-37
[96]  Charles, K.J., Howard, G., Villalobos Prats, E., Gruber, J., Alam, S., Alamgir, A.S.M., et al. (2022) Infrastructure Alone Cannot Ensure Resilience to Weather Extremes: Impact of Rainfall and Temperature on Water Quality. Science of The Total Environment, 813, Article 151876.
https://doi.org/10.1016/j.scitotenv.2021.151876
[97]  Yang, K., Yu, Z., Luo, Y., Yang, Y., Zhao, L. and Zhou, X. (2018) Spatial and Temporal Variations in the Relationship between Lake Water Surface Temperatures and Water Quality—A Case Study of Dianchi Lake. Science of The Total Environment, 624, 859-871.
https://doi.org/10.1016/j.scitotenv.2017.12.119
[98]  Bonacina, L., Fasano, F., Mezzanotte, V. and Fornaroli, R. (2022) Effects of Water Temperature on Freshwater Macroinvertebrates: A Systematic Review. Biological Reviews, 98, 191-221.
https://doi.org/10.1111/brv.12903
[99]  Khaliq, I., Chollet Ramampiandra, E., Vorburger, C., Narwani, A. and Schuwirth, N. (2024) The Effect of Water Temperature Changes on Biological Water Quality Assessment. Ecological Indicators, 159, Article 111652.
https://doi.org/10.1016/j.ecolind.2024.111652
[100]  Chapra, S.C., Camacho, L.A. and McBride, G.B. (2021) Impact of Global Warming on Dissolved Oxygen and BOD Assimilative Capacity of the World’s Rivers: Modeling Analysis. Water, 13, Article 2408.
https://doi.org/10.3390/w13172408
[101]  Havens, K. and Jeppesen, E. (2018) Ecological Responses of Lakes to Climate Change. Water, 10, Article 917.
https://doi.org/10.3390/w10070917
[102]  Paerl, H.W., Hall, N.S. and Calandrino, E.S. (2011) Controlling Harmful Cyanobacterial Blooms in a World Experiencing Anthropogenic and Climatic-Induced Change. Science of The Total Environment, 409, 1739-1745.
https://doi.org/10.1016/j.scitotenv.2011.02.001
[103]  Shinohara, R., Tanaka, Y., Kanno, A. and Matsushige, K. (2021) Relative Impacts of Increases of Solar Radiation and Air Temperature on the Temperature of Surface Water in a Shallow, Eutrophic Lake. Hydrology Research, 52, 916-926.
https://doi.org/10.2166/nh.2021.148
[104]  Baffoe, A.A., Seidu, R., Bawua, S.A., Fobil, J. and Arko-Mensah, J. (2024) Microbiological Quality of Drinking Water from Three Flood-Prone Communities along the Odaw River in Accra, Ghana. Journal of Water and Climate Change, 15, 6013-6021.
https://doi.org/10.2166/wcc.2024.668
[105]  Jeppesen, E., Beklioğlu, M. and Zadereev, E. (2023) The Effects of Global Climate Change on Water Level and Salinity: Causes and Effects. Water, 15, Article 2853.
https://doi.org/10.3390/w15152853
[106]  The IMBIE Team (2018) Mass Balance of the Antarctic Ice Sheet from 1992 to 2017. Nature, 558, 219-222.
https://doi.org/10.1038/s41586-018-0179-y
[107]  Sweet, W.V., Hamlington, B.D., Kopp, R.E., Weaver, C.P., et al. (2022) Global and Regional Sea Level Rise Scenarios for the United States: Updated Mean Projections and Extreme Water Level Probabilities Along U.S. Coastlines. NOAA Technical Report NOS 01. National Oceanic and Atmospheric Administration, National Ocean Service, Silver Spring, 111 p.
https://oceanservice.noaa.gov/hazards/sealevelrise/noaa-nos-techrpt01-global-regional-SLR-scenarios-US.pdf
[108]  Houston, J.R. (2021) 2021 Sea Level Rise Projections by the Intergovernmental Panel on Climate Change for Coastal Design. Current Trends in Civil & Structural Engineering, 8, 1-2.
https://doi.org/10.33552/ctcse.2021.08.000680
[109]  Natural Resources Defense Council (2024) Sea Level Rise 101: The Causes, Effects, and Responses. Natural Resources Defense Council.
https://www.nrdc.org/stories/sea-level-rise-101
[110]  Lassiter, A. (2021) Rising Seas, Changing Salt Lines, and Drinking Water Salinization. Current Opinion in Environmental Sustainability, 50, 208-214.
https://doi.org/10.1016/j.cosust.2021.04.009
[111]  O’Donnell, K.L., Bernhardt, E.S., Yang, X., Emanuel, R.E., Ardón, M., Lerdau, M.T., et al. (2024) Saltwater Intrusion and Sea Level Rise Threatens U.S. Rural Coastal Landscapes and Communities. Anthropocene, 45, Article 100427.
https://doi.org/10.1016/j.ancene.2024.100427
[112]  Dasgupta, S., Huq, M., Mustafa, M.G., Sobhan, M.I. and Wheeler, D. (2017) The Impact of Aquatic Salinization on Fish Habitats and Poor Communities in a Changing Climate: Evidence from Southwest Coastal Bangladesh. Ecological Economics, 139, 128-139.
https://doi.org/10.1016/j.ecolecon.2017.04.009
[113]  Nobre, C.A., Marengo, J.A., Seluchi, M.E., Cuartas, L.A. and Alves, L.M. (2016) Some Characteristics and Impacts of the Drought and Water Crisis in Southeastern Brazil during 2014 and 2015. Journal of Water Resource and Protection, 8, 252-262.
https://doi.org/10.4236/jwarp.2016.82022
[114]  Ashrafuzzaman, M., Gomes, C. and Guerra, J. (2023) The Changing Climate Is Changing Safe Drinking Water, Impacting Health: A Case in the Southwestern Coastal Region of Bangladesh (SWCRB). Climate, 11, Article 146.
https://doi.org/10.3390/cli11070146
[115]  Semenza, J.C. and Ebi, K.L. (2019) Climate Change Impact on Migration, Travel, Travel Destinations and the Tourism Industry. Journal of Travel Medicine, 26, taz026.
https://doi.org/10.1093/jtm/taz026
[116]  Romshoo, S.A., Murtaza, K.O., Shah, W., Ramzan, T., Ameen, U. and Bhat, M.H. (2022) Anthropogenic Climate Change Drives Melting of Glaciers in the Himalaya. Environmental Science and Pollution Research, 29, 52732-52751.
https://doi.org/10.1007/s11356-022-19524-0
[117]  Ali, N., Ye, Q., Zhang, X., Ji, X., Hu, Y., Zhu, L., et al. (2022) Glacier Changes in India’s Dhauliganga Catchment over the Past Two Decades. Remote Sensing, 14, Article 5692.
https://doi.org/10.3390/rs14225692
[118]  Zhong, Z., Tian, F., Roux, S., Gazitúa, M.C., Solonenko, N.E., Li, Y., et al. (2021) Glacier Ice Archives Nearly 15,000-Year-Old Microbes and Phages. Microbiome, 9, Article No. 160.
https://doi.org/10.1186/s40168-021-01106-w
[119]  National Snow and Ice Data Center (2025) Why Ice Sheets Matter.
https://nsidc.org/learn/parts-cryosphere/ice-sheets/why-ice-sheets-matter
[120]  Gornitz, V., Oppenheimer, M., Kopp, R., Horton, R., Orton, P., Rosenzweig, C., et al. (2020) Enhancing New York City’s Resilience to Sea Level Rise and Increased Coastal Flooding. Urban Climate, 33, Article 100654.
https://doi.org/10.1016/j.uclim.2020.100654
[121]  Rignot, E., An, L., Chauche, N., Morlighem, M., Jeong, S., Wood, M., et al. (2021) Retreat of Humboldt Gletscher, North Greenland, Driven by Undercutting from a Warmer Ocean. Geophysical Research Letters, 48, e2020GL091342.
https://doi.org/10.1029/2020gl091342
[122]  Jansson, J.K. and Hofmockel, K.S. (2019) Soil Microbiomes and Climate Change. Nature Reviews Microbiology, 18, 35-46.
https://doi.org/10.1038/s41579-019-0265-7
[123]  Wu, J., Keller, D.P. and Oschlies, A. (2023) Carbon Dioxide Removal via Macroalgae Open-Ocean Mariculture and Sinking: An Earth System Modeling Study. Earth System Dynamics, 14, 185-221.
https://doi.org/10.5194/esd-14-185-2023
[124]  Wang, T., Deng, Z., Zhang, C., Zou, Y., Xie, Y., Li, F., et al. (2024) Vegetation Types and Flood Water Level Are Dominant Factors Controlling the Carbon Sequestration Potential in Dongting Lake Floodplain, China. Science of The Total Environment, 921, Article 171146.
https://doi.org/10.1016/j.scitotenv.2024.171146
[125]  Zhang, Y., Zhang, X., Fang, W., Cai, Y., Zhang, G., Liang, J., et al. (2025) Carbon Sequestration Potential of Wetlands and Regulating Strategies Response to Climate Change. Environmental Research, 269, Article 120890.
https://doi.org/10.1016/j.envres.2025.120890
[126]  World Meteorological Organization (2024) Greenhouse Gas Concentrations Surge Again to New Record in 2023.
https://public.wmo.int/news/media-centre/greenhouse-gas-concentrations-surge-again-new-record-2023
[127]  Li, C., Wang, Y., Yi, Y., Wang, X., Augusto Guimarães Santos, C. and Liu, Q. (2024) A Review of Reservoir Carbon Cycling: Key Processes, Influencing Factors and Research Methods. Ecological Indicators, 166, Article 112511.
https://doi.org/10.1016/j.ecolind.2024.112511
[128]  Temmink, R.J.M., Lamers, L.P.M., Angelini, C., Bouma, T.J., Fritz, C., van de Koppel, J., et al. (2022) Recovering Wetland Biogeomorphic Feedbacks to Restore the World’s Biotic Carbon Hotspots. Science, 376, eabn1479.
https://doi.org/10.1126/science.abn1479
[129]  Chivers, M.R., Turetsky, M.R., Waddington, J.M., Harden, J.W. and McGuire, A.D. (2009) Effects of Experimental Water Table and Temperature Manipulations on Ecosystem CO2 Fluxes in an Alaskan Rich Fen. Ecosystems, 12, 1329-1342.
https://doi.org/10.1007/s10021-009-9292-y
[130]  Evans, C.D., Page, S.E., Jones, T., Moore, S., Gauci, V., Laiho, R., et al. (2014) Contrasting Vulnerability of Drained Tropical and High‐Latitude Peatlands to Fluvial Loss of Stored Carbon. Global Biogeochemical Cycles, 28, 1215-1234.
https://doi.org/10.1002/2013gb004782
[131]  Dunn, C. and Freeman, C. (2011) Peatlands: Our Greatest Source of Carbon Credits? Carbon Management, 2, 289-301.
https://doi.org/10.4155/cmt.11.23
[132]  Villa, J.A. and Bernal, B. (2018) Carbon Sequestration in Wetlands, from Science to Practice: An Overview of the Biogeochemical Process, Measurement Methods, and Policy Framework. Ecological Engineering, 114, 115-128.
https://doi.org/10.1016/j.ecoleng.2017.06.037
[133]  Friedlingstein, P., O’Sullivan, M., Jones, M.W., Andrew, R.M., Hauck, J., Olsen, A., et al. (2020) Global Carbon Budget 2020. Earth System Science Data, 12, 3269-3340.
https://doi.org/10.5194/essd-12-3269-2020
[134]  Lei, D., Jiang, L., Wu, X., Liu, W. and Huang, R. (2022) Soil Organic Carbon and Its Controlling Factors in the Wetlands of the Yellow River Delta. Processes, 10, Article 765.
https://doi.org/10.3390/pr10040765
[135]  Baustian, M.M., Stagg, C.L., Perry, C.L., Moss, L.C. and Carruthers, T.J.B. (2021) Long‐Term Carbon Sinks in Marsh Soils of Coastal Louisiana Are at Risk to Wetland Loss. Journal of Geophysical Research: Biogeosciences, 126, e2020JG005832.
https://doi.org/10.1029/2020jg005832
[136]  Odeke C. (2019) Wetland Degradation and Carbon Sequestration Potential—A Case of Lubigi Wetland, Uganda.
https://hdl.handle.net/20.500.12504/808
[137]  United Nations (2022) The Ocean—The World’s Greatest Ally against Climate Change. UN.
https://www.un.org/en/climatechange/science/climate-issues/ocean
[138]  Dorey, N., Martin, S. and Kwiatkowski, L. (2023) Ocean Acidification Enhances Primary Productivity and Nocturnal Carbonate Dissolution in Intertidal Rock Pools. Biogeosciences, 20, 4289-4306.
https://doi.org/10.5194/bg-20-4289-2023
[139]  Turyasingura, B., Hannington, N., Kinyi, H.W., Mohammed, F.S., Ayiga, N., Bojago, E., et al. (2023) A Review of the Effects of Climate Change on Water Resources in Sub-Saharan Africa. African Journal of Climate Change and Resource Sustainability, 2, 84-101.
https://doi.org/10.37284/ajccrs.2.1.1264
[140]  Ayele, G.T. (2024) Review of Climate Change Impacts on Water Quantity and Quality in the Murray-Darling Basin, Australia. Water, 16, Article 3506.
https://doi.org/10.3390/w16233506
[141]  Alelaimat, A., Yusoff, I., Nizar, M.K., Ng, T.F. and Majali, Y.A. (2023) Groundwater Management in the Face of Climate Change: Enhancing Groundwater Storage in the Alluvium Aquifer of Wadi Araba, Jordan, through Gis-Based Managed Aquifer Recharge and Groundwater Modflow. Water Supply, 23, 5136-5153.
https://doi.org/10.2166/ws.2023.316
[142]  Amihere-Ackah, P., Monney, I., Okyere, D.C., Adjei, K.A. and Appiah-Adjei, E.K. (2025) Assessing the Potential of Managed Aquifer Recharge Using Rooftop Rainwater Harvesting with Shallow Wells in Peri-Urban Communities in Kumasi, Ghana. Discover Water, 5, Article No. 52.
https://doi.org/10.1007/s43832-025-00245-7
[143]  Abd-Elaty, I., Kuriqi, A., Ahmed, A. and Ramadan, E.M. (2024) Enhanced Groundwater Availability through Rainwater Harvesting and Managed Aquifer Recharge in Arid Regions. Applied Water Science, 14, Article No. 121.
https://doi.org/10.1007/s13201-024-02166-7
[144]  Marin, P., Tal, S., Yeres, J. and Ringskog, K. (2017) Water Management in Israel: Key Innovations and Lessons Learned for Water-Scarce Countries. World Bank.
https://documents1.worldbank.org/curated/en/657531504204943236/pdf/Water-manage-ment-in-Israel-key-innovations-and-lessons-learned-for-water-scarce-countries.pdf?utm_source=chatgpt.com
[145]  Li, Q., Wang, F., Yu, Y., Huang, Z., Li, M. and Guan, Y. (2019) Comprehensive Performance Evaluation of LID Practices for the Sponge City Construction: A Case Study in Guangxi, China. Journal of Environmental Management, 231, 10-20.
https://doi.org/10.1016/j.jenvman.2018.10.024
[146]  Tal, A. (2018) Addressing Desalination’s Carbon Footprint: The Israeli Experience. Water, 10, Article 197.
https://doi.org/10.3390/w10020197
[147]  OECD (2022) Israel’s Sustainable Water Management Plans.
https://www.oecd.org/en/publications/ipac-policies-in-practice_22632907-en/israel-s-sustainable-water-management-plans_d81db5f5-en.html
[148]  Margono, B.A., Bwangoy, J.B., Potapov, P.V. and Hansen, M.C. (2014) Mapping Wetlands in Indonesia Using Landsat and PALSAR Data-Sets and Derived Topographical Indices. Geo-Spatial Information Science, 17, 60-71.
https://doi.org/10.1080/10095020.2014.898560

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