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The drying of Lake Urmia and its consequences for waterbird assemblages

Published online by Cambridge University Press:  10 May 2024

Mitra Shariati*
Affiliation:
Department of Natural Resources, Isfahan University of Technology, Isfahan, Iran
Mahmoud-Reza Hemami
Affiliation:
Department of Natural Resources, Isfahan University of Technology, Isfahan, Iran
*
Corresponding author: Mitra Shariati; Email: mitra.sh.na@gmail.com

Summary

The hypersaline Lake Urmia, located in Iran, has undergone a significant reduction in size and is currently facing the risk of desiccation. The decrease in water levels, coupled with elevated salinity levels, has initiated ecological degradation, leading to a substantial decline in the region’s waterbird population. This study employs breakpoint analysis to determine the year when the drought event affecting the lake commenced. Additionally, canonical correspondence analysis (CCA) is utilised to elucidate the interaction between environmental parameters and the waterbird assemblages in Lake Urmia over the period 1970–2018. Our investigation identifies the year 2000 as the initiation of the water crisis in Lake Urmia, synchronously coinciding with the decline in the waterbird populations. This finding highlights a significant connection between the majority of waterbird species and the axes of CCA, intricately linked with water availability within Lake Urmia. This revelation underscores the pivotal role of fluctuations in water levels in shaping the dynamics of the lake’s waterbird assemblages. Furthermore, our observations emphasise the importance of even minor improvements in hydrological conditions of the lake, resulting in substantial positive impacts on waterbird populations.

Type
Research Article
Copyright
© The Author(s), 2024. Published by Cambridge University Press on behalf of BirdLife International

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References

Barnes, B.D. and Wurtsbaugh, W.A. (2015). The effects of salinity on plankton and benthic communities in the Great Salt Lake, Utah, USA: a microcosm experiment. Canadian Journal of Fisheries and Aquatic Sciences 25, 123134.Google Scholar
Barry, D. and Hartigan, J.A. (1993). A Bayesian analysis for change point problems. Journal of the American Statistical Association 88, 309319.10.1080/01621459.1993.10594323CrossRefGoogle Scholar
Belovsky, G E., Stephens, D., Perschon, C., Birdsey, P., Paul, D., Naftz, D. et al. (2011). The Great Salt Lake Ecosystem (Utah, USA): long term data and a structural equation approach. Ecosphere 21, 161175.Google Scholar
Bird Life International (2023). Lake Urmia IBA, Iran Islamic Republic of. Available at http://datazone.birdlife.org/site/factsheet/lake-uromiyeh-iba-iran-islamic-republic-of/details.Google Scholar
Botond, K.J. (2022). Can the Greater Flamingo (Phoenicopterus roseus) be considered a breeding species in the Danube Delta Biosphere Reserve (Romania)? Scientific Annals of the Danube Delta Institute 27, 5570.Google Scholar
Brennan, E.K. (2006). Local and Landscape Level Variables Influencing Migratory Bird Abundance, Diversity, Behavior, and Community Structure in Rainwater Basin Wetlands. Doctor of Philosophy dissertation, Texas Tech University, Lubbock.Google Scholar
Chaudhari, S., Felfelani, F., Shin, S. and Pokhrel, Y. (2018). Climate and anthropogenic contributions to the desiccation of the second largest saline lake in the twentieth century. Journal of Hydrology 560, 342353.10.1016/j.jhydrol.2018.03.034CrossRefGoogle Scholar
Chettibi, A., Bensaci, E., Mimeche, F. and Djamai, S. (2019). Effects of vegetation and water seasonal variation on habitat use of herons (Aves, Ardeidae) in Tonga Lake (North-East Algeria). Studia Universitatis Babeş-Bolyai Biologia 64, 2540.10.24193/subbbiol.2019.2.03CrossRefGoogle Scholar
Cole, M.L., Leslie, D.M. Jr and Fisher, W.L. (2002). Habitat use by shorebirds at a stopover site in the southern Great Plains. The Southwestern Naturalist 47, 372378.10.2307/3672495CrossRefGoogle Scholar
Collazo, J.A., O’Harra, D.A. and Kelly, C.A. (2002). Accessible habitat for shorebirds: Factors influencing its availability and conservation implications. Waterbirds 25, 1324.Google Scholar
Colwell, M.A. and Taft, O.W. (2000). Waterbird communities in managed wetlands of varying water depth. Waterbirds 23, 4555.Google Scholar
Conover, M.R. and Bell, M.E. (2020). Importance of Great Salt Lake to pelagic birds: eared grebes, phalaropes, gulls, ducks, and white pelicans. In Baxter, B. and Butler, J. (eds), Great Salt Lake Biology: A Terminal Lake in a Time of Change. Cham: Springer, pp. 239262.CrossRefGoogle Scholar
Delju, A.H., Ceylan, A., Piguet, E. and Rebetez, M. (2013). Observed climate variability and change in Urmia Lake Basin, Iran. Theoretical and Applied Climatology 111, 285296.CrossRefGoogle Scholar
Donnelly, J.P., King, S.L., Silverman, N.L., Collins, D.P., Carrera-Gonzalez, E.M., Lafón-Terrazas, A. et al. (2020). Climate and human water use diminish wetland networks supporting continental waterbird migration. Global Change Biology 26, 20422059.CrossRefGoogle ScholarPubMed
Downard, R. and Endter-Wada, J. (2013). Keeping wetlands wet in the western United States: Adaptations to drought in agriculture dominated human-natural systems. Journal of Environmental Management 131, 394406.10.1016/j.jenvman.2013.10.008CrossRefGoogle ScholarPubMed
Erdman, C. and Emerson, J.W. (2007). bcp: An R package for performing a Bayesian analysis of change point problems. Journal of Statistical Software 23, 113.CrossRefGoogle Scholar
Faramarzi, N. (2012). Agricultural Water Use in Lake Urmia Basin, Iran: An Approach to Adaptive Policies and Transition to Sustainable Irrigation Water Use. Master’s thesis, Uppsala University.Google Scholar
Fazel, N., Berndtsson, R., Uvo, C.B., Madani, K. and Kløve, B. (2018). Regionalization of precipitation characteristics in Iran’s Lake Urmia basin. Theoretical and Applied Climatology 132, 363373.CrossRefGoogle Scholar
Feng, S., Hu, Q., Huang, W., Ho, C.H., Li, R. and Tang, Z. (2014). Projected climate regime shift under future global warming from multi-model, multi-scenario CMIP5 simulations. Global and Planetary Change 112, 4152.CrossRefGoogle Scholar
Florín, M. (2013). Saline lakes. In Howarth, R.W. (ed.), Biomes and Ecosystems, vol 1. Amenia, NY: Salem Press, pp. 8186.Google Scholar
Garmo, Ø.A., Kaste, Ø., Arle, J., Austnes, K., de Wi, H., Fölster, J. et al. (2020). Trends and Patterns in Surface Water Chemistry in Europe and North America Between 1990 and 2016, with Particular Focus on Changes in Land Use as a Confounding Factor for Recovery. NIVA Report 7479-2020. Oslo: Norwegian Institute for Water Research.Google Scholar
Gwynn, J.W. (1998). Great Salt Lake, Utah: chemical and physical variations of the brine and effects of the SPRR causeway, 1966–1996. In Gwynn, J.W. (ed.), Great Salt Lake, An Overview of Change. Salt Lake City: Utah Department of Natural Resources.Google Scholar
Haig, S.M., Mehlman, D.W. and Oring, L.W. (1998). Avian movements and wetland connectivity in landscape conservation. Conservation Biology 12, 749758.10.1111/j.1523-1739.1998.97102.xCrossRefGoogle Scholar
Haig, S.M., Murphy, S.P., Matthews, J.H., Arismendi, I. and Safeeq, M. (2019). Climate-altered wetlands challenge waterbird use and migratory connectivity in arid landscapes. Science Reports 9, 4666.CrossRefGoogle ScholarPubMed
Hussain, S.A., Han, F.Q., Han, W., Rodrígue, A., Ha, J.L., Han, J. et al. (2019). Climate change impact on the evolution of the saline lakes of the Soan-Sakaser Valley (Central Salt Range; Pakistan): Evidences from hydrochemistry and water (δD, δ18O) and chlorine (δ37Cl) stable isotopes. Water 11, 912.CrossRefGoogle Scholar
Jitariu, V., Dorosencu, A., Ichim, P. and Ion, C. (2022). Severe drought monitoring by remote sensing methods and its impact on wetlands birds assemblages in Nuntași and Tuzla Lakes (Danube Delta Biosphere Reserve). Land 11, 672.CrossRefGoogle Scholar
Johnston, J.E., Razafy, M., Lugo, H., Olmedo, L. and Farzan, S.F. (2019). The disappearing Salton Sea: A critical reflection on the emerging environmental threat of disappearing saline lakes and potential impacts on children’s health. The Science of the Total Environment 663, 804817.CrossRefGoogle Scholar
Khaing, H. and Sein, M.M. (2019). Species composition and the effects of water level fluctuation on waterbird population at inmagyi wetland in myinmu township, Sagaing region. Journal of the Myanmar Academy of Arts and Science 17, 283300.Google Scholar
Kirono, D.G. and Kent, D.M. (2011). Assessment of rainfall and potential evaporation from global climate models and its implications for Australian regional drought projection. International Journal of Climatology 31, 12951308.CrossRefGoogle Scholar
Kshitij Divyansh, L.S. and Raj, A. (2019). A Maxent modelling with a geospatial approach for the Habitat suitability of Flamingos in an Evanescing Ramsar site (Sambhar Lake, India) over the changing climatic scenarios. bioRxiv, 737056.Google Scholar
Kulshreshtha, S. and Sharma, B. (2008). Declining avifaunal diversity of Sambhar Lake is an important bio-indicator of the ill health of the lake. In Proceedings of the International Congress for Conservation Biology and 22nd Annual Meeting, Chattanooga.Google Scholar
Legendre, P. and Legendre, L. (1998). Canonical correspondence analysis. In Numerical Ecology, 2nd Edn. Amsterdam: Elsevier Science.Google Scholar
Lemly, A.D., Kingsford, R.T. and Thompson, J.R. (2000). Irrigated agriculture and wildlife conservation: conflict on a global scale. Environmental Management 25, 485512.CrossRefGoogle ScholarPubMed
Lotfi, A. (2012). Conservation of Iranian Wetlands Project. A Concise Baseline Report: Lake Uromiyeh. Tehran: IRI Department of Environment/United Nations Development Programme.Google Scholar
Meng, Q. (2019). Climate change and extreme weather drive the declines of saline lakes: A showcase of the Great Salt Lake. Climate 7, 19.CrossRefGoogle Scholar
Nouidjem, Y., Mimeche, F., Bensaci, E., Merouani, S., Arar, A. and Saheb, M. (2019). Check list of waterbirds at Wadi Djedi in Ziban Oasis-Algeria. Arxius de Miscel·lània Zoològica 17, 3443.Google Scholar
Nouidjem, Y., Saheb, M., Bensaci, E., Bouzegag, A., Guergueb, E.Y. and Houhamdi, M. (2015). Habitat use and distribution of the Ruddy Shelduck Tadorna ferruginea in the wetland complex of Oued Righ (Algerian Sahara). Zoology and Ecology 25, 2633.Google Scholar
Pereira, L.S., Oweis, T. and Zairi, A. (2002). Irrigation water management under water scarcity. Agricultural Water Management 57, 175206.CrossRefGoogle Scholar
Rakhimberdiev, E., Duijns, S., Karagicheva, J., Camphuysen, C.J., Castricum, V., Dekinga, A. et al. (2018). Fuelling conditions at staging sites can mitigate Arctic warming effects in a migratory bird. Nature Communications 9, 110.Google Scholar
Ramsar (1970). Ramsar Sites Information Service. Available at http://go.nature.com/2frAOR9 (accessed 4 August 2020).Google Scholar
Ramsar Site Information Service (1997). Information Sheet on Ramsar Wetlands. Available at https://rsis.ramsar.org/RISapp/files/RISrep/TR660RIS.pdf.Google Scholar
Reske, S. and Yun, M. (2000). The Effect Of Great Lakes Water Level Fluctuation On Northern Michigan Wetland Bird Populations. Working Paper. Biological Station, University of Michigan, Ann Arbor.Google Scholar
Roberts, A.J. (2013). Avian diets in a saline ecosystem: Great Salt Lake, Utah, USA. Human–Wildlife Interactions 7, 15.Google Scholar
Rocha, A.R., Silva, R., Villegas, A., Sanchez-Guzman, J.M., Ramos, J.A. and Masero, J.A. (2016). Physiological, morphological and behavioural responses of self-feeding precocial chicks copying with contrasting levels of water salinity during development. PLOS ONE 11, e0165364.CrossRefGoogle ScholarPubMed
Romano, M., Barberis, I., Pagano, F. and Maidagan, J. (2005). Seasonal and interannual variation in waterbird abundance and species composition in the Melincué saline lake, Argentina. European Journal of Wildlife Research 51, 113.CrossRefGoogle Scholar
Saemian, P., Elmi, O., Vishwakarma, B.D., Tourian, M.J. and Sneeuw, N. (2020). Analyzing the lake Urmia restoration progress using ground-based and spaceborne observations. Science of the Total Environment 739, 139857.CrossRefGoogle ScholarPubMed
Savage, C. (1964) Lake Rezaiyeh: a specialised summer habitat for Shelduck and Flamingos. Wildfowl 15, 108113.Google Scholar
Scott, D.A. (2001). The birds of Lake Orumiyeh and adjacent wetlands, Islamic Republic of Iran. Ornithology Unit of the Department of the Environment in the 1970s. Available at http://www.wetlands.org/reports/ris/2IR003_Annex.pdf.Google Scholar
Senner, N.R., Moore, J.N., Seager, S.T., Dougill, S., Kreuz, K. and Senner, S.E. (2018). A salt lake under stress: Relationships among birds, water levels, and invertebrates at a Great Basin saline lake. Biological Conservation 220, 320329.CrossRefGoogle Scholar
Sima, S., Rosenberg, D.E., Wurtsbaugh, W.A., Null, S.E. and Kettenring, K.M. (2021). Managing Lake Urmia, Iran for diverse restoration objectives: Moving beyond a uniform target lake level. Journal of Hydrology: Regional Studies 35, 100812.Google Scholar
Tavernia, B.G., Meehan, T., Neill, J. and Luf, J. (2021). Twenty-one year trends for shorebirds, waterfowl, and other waterbirds at Great Salt Lake, Utah. Waterbirds 45; 167182.Google Scholar
Tenan, M.S., Tweedell, A.J. and Haynes, C.A. (2017). Analysis of statistical and standard algorithms for detecting muscle onset with surface electromyography. PLOS ONE 12, e0177312.CrossRefGoogle ScholarPubMed
Tompson, A.F. (2016). Born from a flood: The Salton Sea and its story of survival. Journal of Earth Science 27, 8997.CrossRefGoogle Scholar
UNEP (2012). The Drying of Iran’s Lake Urmia and its Environmental Consequences. Available at: https://na.unep.net/geas/getUNEPPageWithArticleIDScript.php?article_id=79.Google Scholar
Valiallahi, J., Soltani, A. and Ahmadi Eghbal, M. (2019). Evaluating climate change and anthropogenic effects on inducing salt storms & aerosol hazards risk in Urmia Lake. Anthropogenic Pollution Journal 3, 2532.Google Scholar
Van de Kam, J., Ens, B., Piersma, T. and Zwarts, L. (2004). Shorebirds: An Illustrated Behavioural Ecology. Utrecht: KNNV Publishing.CrossRefGoogle Scholar
Williams, W.D. (1996). What future for saline lakes? Environmental Science and Policy 38, 1239.Google Scholar
Williams, W.D. (2002). Environmental threats to salt lakes and the likely status of inland saline ecosystems in 2025. Environmental Conservation 29, 154167.CrossRefGoogle Scholar
Wilsey, C.B., Taylor, L., Michel, N. and Stockdale, K. (2017). Water and Birds in the Arid West: Habitats in Decline. New York: National Audubon Society.Google Scholar
Wine, M.L., Null, S.E., DeRose, R.J. and Wurtsbaugh, W.A. (2019). Climatization – negligent attribution of Great Salt Lake desiccation: A comment on Meng (2019). Climate 7, 67.CrossRefGoogle Scholar
Wurtsbaugh, W.A., Miller, C., Null, S.E., DeRose, R.J., Wilcock, P., Hahnenberger, M. et al. (2017). Decline of the world’s saline lakes. Nature Geoscience 10, 816821.10.1038/ngeo3052CrossRefGoogle Scholar
Zeinoddini, M., Tofighi, M.A. and Vafaee, F. (2009). Evaluation of dike-type causeway impacts on the flow and salinity regimes in Urmia Lake, Iran. Journal of Great Lakes Research 35, 1322.10.1016/j.jglr.2008.08.001CrossRefGoogle Scholar