Eutrophication, Water Quality, and Ecosystem Services of Two Selected Urban Wetlands of Lalitpur District, Central Nepal

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DOI:

https://doi.org/10.3126/jist.v30i1.65700

Keywords:

Eutrophication, land use land cover, water quality, urbanization, wetlands

Abstract

Eutrophication is a major cause of wetlands degradation worldwide. In Nepal, urban wetlands play a crucial role in delivering ecosystem services essential for maintaining biodiversity and supporting local livelihoods. Therefore, conservation, sustainable management, and wise use of wetlands are imperative. This study evaluates water quality, eutrophication status, and the ecosystem service of two urban wetlands- Nagdaha and Ankhidaha situated within the Kathmandu Valley, Nepal. Standard methodologies were followed to assess water quality parameters, while key informant interviews were conducted to evaluate ecosystem services. Temporal changes in Land use land cover (LUCC) for the years 2000, 2010, and 2020 were analyzed using Landsat-7 satellite imagery. The water quality index values of Nagdaha (50.15) and Ankhidaha (552.47) indicate poor water quality. Statistical analyses revealed a strong correlation between nitrate and dissolved oxygen levels in both wetlands- Nagdaha (t = 35.68, p<0.001) and Ankhidaha (t= 9.42, p<0.001). Dissolved oxygen levels in Ankhidaha for the years 2018, 2019, and 2021 were found to pose a substantial threat to aquatic life. The findings indicate that eutrophication is compromising wetlands quality, subsequently diminishing the provision of ecosystem services. Land use land cover analysis highlights rapid urbanization, leading to a decline in vegetated areas and a consequent deterioration in water quality. Nine ecosystem services were identified as relevant to both local and broader communities, with recreation and ecotourism, biodiversity conservation, and educational opportunities emerging as the most prioritized. These insights provide valuable guidance for urban wetlands management and ecological restoration efforts.

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References

Abbasi, T., & Abbasi, S.A. (2012). Water quality indices. Elsevier, Amsterdam, Netherland.

APHA-AWWA-WEF. (2017). Standard methods for the examination of water and wastewater (21st ed.). American Public Health Association (APHA), American Water Works Association (AWWA), & Water Environment Federation (WEF), Washington D.C., USA: APHA Press.

Andersen, J.H., Schlüter, L., & Ærtebjerg, G. (2006). Coastal eutrophication: recent developments in definitions and implications for monitoring strategies. Journal of Plankton Research, 28(7), 621-628.

Ansari, A.A., Singh, G.S., Lanza, G.R., & Rast, W. (Eds.). (2010). Eutrophication: causes, consequences and control (Vol. 1). Springer Science & Business Media.

Berner, R.A. (1985). Sulphate reduction, organic matter decomposition, and pyrite formation. Philosophical Transactions of the Royal Society of London. Series A, Mathematical and Physical Sciences, 315(1531), 25-38.

Bhuju, D.R., Sharma, S., Jha, P.K., & Gaire, N.P. (2012). The scientific discourse of Wetlands in Nepal. Nepal Journal of Science and Technology, 13(2), 147-158.

Bishwakarma, K., Pant, R.R., Pal, K.B., Ghimire, A., Thapa, L.B., Saud, P., & Panthi, K.P. (2019). Water quality and land use/cover changes in the Phewa Watershed, Gandaki Province, Nepal. Nepal Journal of Environmental Science, 7, 31-39.

Brown, R.M., McClelland, N.I., Deininger, R.A., & O’Connor, M.F. (1972). A water quality index—crashing the psychological barrier. In W.A. Thomas (Ed.), Indicators of Environmental Quality; Proceedings of a symposium held during the AAAS (pp. 173- 182) Pennsylvania, US.

Castro, A.J., Martín-López, B., García-Llorente, M., Aguilera, P.A., López, E., & Cabello, J. (2011). Social preferences regarding the delivery of ecosystem services in a semiarid Mediterranean region. Journal of Arid Environments, 75(11), 1201-1208.

CBS. (2019) Environment statistics of Nepal. Central Bureau of Statistic, Nepal

CPCB. (1983). Water quality criteria. Ministry of Environment, Forest and Climate Change, Central Pollution Control Board, Government of India.

De Castro Pardo, M., Martínez, P.F., Martínez, J.M.G., & Martín, J.M.M. (2020). Modelling Natural Capital: A Proposal for a Mixed Multi-criteria Approach to Assign Management Priorities to Ecosystem Services. Contemporary Economics, 14(1), 22-38.

Desta, H. (2021). Local perceptions of ecosystem services and human-induced degradation of lake Ziway in the Rift Valley region of Ethiopia. Ecological Indicators, 127, 107786.

Dojlido, J.R., & Best G.A. (1993). Chemistry of water and water pollution. Ellis Horwood, England.

Hai, X.U., Lin-Zhang, Y.A.N.G., Geng-Mao, Z.H.A.O., Jia-Guo, J.I.A.O., Shi-Xue, Y.I.N., & Zhao-Pu, L.I.U. (2009). Anthropogenic impact on surface water quality in Taihu Lake region, China. Pedosphere, 19(6), 765-778.

Hallouin, T., Bruen, M., Christie, M., Bullock, C., & Kelly-Quinn, M. (2018). Challenges in using hydrology and water quality models for assessing freshwater ecosystem services: a review. Geosciences, 8(2), 45.

Hartter, J. (2010). Resource use and ecosystem services in a forest park landscape. Society and Natural Resources, 23(3), 207-223.

Hicks, C.C., Cinner, J.E., Stoeckl, N., & McClanahan, T.R. (2015). Linking ecosystem services and human‐values theory. Conservation Biology, 29(5), 1471-1480.

Iftekhar, M.S., & Takama, T. (2008). Perceptions of biodiversity, environmental services, and conservation of planted mangroves: a case study on Nijhum Dwip Island, Bangladesh. Wetlands Ecology and Management, 16(2), 119-137.

Iniesta-Arandia, I., García-Llorente, M., Aguilera, P.A., Montes, C., & Martín-López, B. (2014). Socio-cultural valuation of ecosystem services: uncovering the links between values, drivers of change, and human well-being. Ecological Economics, 108, 36-48.

Ishtiaque, A., Shrestha, M., & Chhetri, N. (2017). Rapid urban growth in the Kathmandu Valley, Nepal: Monitoring land use land cover dynamics of a Himalayan city with Landsat imageries. Environments, 4(4), 72.

Le, C., Zha, Y., Li, Y., Sun, D., Lu, H., & Yin, B. (2010). Eutrophication of Wetland waters in China: cost, causes, and control. Environmental Management, 45(4), 662-668.

Magar, R., & Khatry, S.B. (2017). Vollenweider model for temporal eutrophication characteristics of Nagdaha Lake, Nepal. Asian Journal of Water, Environment and Pollution, 14(1), 29-39.

Martín-López, B., Iniesta-Arandia, I., García-Llorente, M., Palomo, I., Casado-Arzuaga, I., Amo, D.G.D., & Montes, C. (2012). Uncovering ecosystem service bundles through social preferences. PLoS One, 7(6), e38970.

Pant, R.R., Pal, K.B., Adhikari, N.L., Adhikari, S., & Mishra, A.D. (2019). Water quality assessment of Begnas and Rupa Lakes, Lesser Himalaya Pokhara, Nepal. Journal of the Institute of Engineering, 15(2), 113-122.

Paudyal, K., Baral, H., & Keenan, R.J. (2018). Assessing social values of ecosystem services in the Phewa Lake Watershed, Nepal. Forest Policy and Economics, 90, 67-81.

Pietrzyk-Kaszyńska, A., Olszańska, A., Rechciński, M., Tusznio, J., & Grodzińska-Jurczak, M. (2022). Divergent or convergent? Prioritization and spatial representation of ecosystem services as perceived by conservation professionals and local leaders. Land Use Policy, 119, 106193.

Rewati, N. (2012). Evaluation of the limnological status of Beeshazari Wetland, a Ramsar Site in central Nepal. Journal of Water Resource and Protection, 4(5), 256-263.

Rhodes, A.L., Newton, R.M., & Pufall, A. (2001). Influences of land use on water quality of a diverse New England watershed. Environmental Science & Technology, 35(18), 3640-3645.

Sawyer, C.N. (1947). Fertilization of wetlands lakes by agricultural and urban drainage. Journal of the New England Water Works Association, 61(2), 109-127.

Scheren, P.A.G.M., Zanting, H.A., & Lemmens, A.M.C. (2000). Estimation of water pollution sources in Lake Victoria, East Africa: application and elaboration of the rapid assessment methodology. Journal of Environmental Management, 58(4), 235-248.

Shankar, R. (2010). Nagdaha: A visit to the snake lake. ECS Nepal. Retrieved on 2025/1/10 from https://ecs.com.np/features/nagdaha-a-visit-to-the-snake-lake

Shrestha, S., Dahal, A., Joshi, A.B., Thapa, V.K., & Shrestha, M.B. (2023). Assemblage of waterbirds in wetlands of Kathmandu Valley. Danphe, 31(2-3), 2-8.

Srivastava, N., Harit, G., & Srivastava, R. (2009). A study of physicochemical characteristics of Wetlands around Jaipur, India. Journal of Environmental Biology, 30(5), 889.

SEPA. (1997). Environmental quality standards for surface water (GB 3838-1997). State Environmental Protection Administration, People's Republic of China.

Tett, P., Gowen, R., Mills, D., Fernandes, T., Gilpin, L., Huxham, M., & Malcolm, S. (2007). Defining and detecting undesirable disturbance in the context of marine eutrophication. Marine Pollution Bulletin, 55(1-6), 282-297.

Thapa, S., Wang, L., Koirala, A., Shrestha, S., Bhattarai, S., & Aye, W.N. (2020). Valuation of ecosystem services from an important wetland of Nepal: A Study from Begnas watershed system. Wetlands, 40(5), 1071-1083.

Tyagi, S., Sharma, B., Singh, P., & Dobhal, R. (2013). Water quality assessment in terms of water quality index. American Journal of Water Resources, 1(3), 34-38.

USGS. (2022). U.S. Geological survey for remote sensing. Landsat-7 image courtesy of the U.S. geological survey. Retrieved on 2022/2/13 from https://earthexplorer.usgs.gov/

Vollenweider, R.A. (1968). Scientific fundamentals of the eutrophication of lakes and flowing waters, with particular reference to nitrogen and phosphorus as factors in eutrophication. Paris (France), 192.

WHO. (2017). Guidelines for drinking-water quality (4th ed.). World Health Organization, Geneva, Switzerland.

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Published

2025-06-13

How to Cite

Mishra, K., Shah, D. N., Alam, M. A., Chaudhari, S. K., & Tachamo-Shah, R. D. (2025). Eutrophication, Water Quality, and Ecosystem Services of Two Selected Urban Wetlands of Lalitpur District, Central Nepal . Journal of Institute of Science and Technology, 30(1), 169–177. https://doi.org/10.3126/jist.v30i1.65700

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Research Articles