Odonate diversity and community turnover along elevational gradients in the Karnali River Basin, Nepal
Abstract
gradients is essential for conservation initiatives. This study investigates the diversity and distribution patterns of Odonata along an elevational gradient (544–2987 m above sea level (asl)) in the Karnali River basin of western Nepal. Sampling was conducted across 15 sites during pre-monsoon, monsoon, and post-monsoon seasons of 2022 using the belt transect method in lentic and lotic habitats. The Shannon Diversity Index, Simpson’s Index, and beta (β) diversity (both incidence-based and abundance-based) were used to describe the odonate assemblages. A total of 90 species representing 54 genera and 12 families (five Anisoptera and seven Zygoptera) were recorded. Libellulidae and Coenagrionidae emerged as the most species-rich families among dragonflies and damselflies, respectively. Diversity indices fluctuated with elevation, with the Shannon (3.58) and Simpson (0.96) indices peaking at 646 m and declining sharply at higher altitudes. Polynomial regression revealed a significant negative correlation (r = -0.81, p < 0.001) between species richness and elevation. β-diversity analysis showed high dissimilarity and turnover among sites, with incidence-based dissimilarity (mean β_sor = 0.572) and abundance-based dissimilarity (mean dBC = 0.664) both driven primarily by species turnover. Lentic habitats showed higher β-diversity (mean β_sor = 0.607) than lotic habitats (mean dBC = 0.595). Most species exhibited narrow elevational ranges, primarily below 1600 m, while a few were widespread, including Pantala flavescens, which were recorded from lower to higher elevation ranges. These findings highlight significant spatial variation in odonate assemblages across elevations, underscoring the ecological sensitivity of montane aquatic habitats to altitudinal and potentially climatic gradients.
References
Acharya B.K. and Vijayan L. 2015. Butterfly diversity along the elevation gradient of Eastern Himalaya, India. Ecological Research, 30:909–919. https://doi.org/10.1007/s11284-015-1292-0
Anderson M.J., Crist T.O., Chase J.M., Vellend M., Inouye B.D., Freestone A.L. et al. 2011. Navigating the Multiple Meanings of β Diversity: A Roadmap for the Practicing Ecologist. Ecology Letters, 14(1):19–28. https://doi.org/10.1111/j.1461-0248.2010.01552.x
Arulprakash R. and Gunathilagaraj K. 2010. Abundance and diversity of Odonata in temporary water bodies of Coimbatore and Salem districts in Tamil Nadu. Journal of Threatened Taxa, 2:1099–1102. https://doi.org/10.11609/JoTT.o2035.1099-102
Aryal, K.R., Panthi, S., Basukala, R.K., Kharel, R., Gautam, A., Poudel, B., et al. 2023. Soil loss estimation of Karnali river basin, Nepal. Journal of Sedimentary Environments, 8(3):409–423. https://doi.org/10.1007/s43217-023-00140-y
Aynekulu E., Aerts R., Moonen P., Denich M., Gebrehiwot K., Vågen T.G. et al. 2012. Altitudinal variation and conservation priorities of vegetation along the Great Rift Valley escarpment, northern Ethiopia. Biodiversity and Conservation, 21:2691–2707. https://doi.org/10.1007/s10531-012-0328-9
Bajracharya, S.R., Maharjan, S.B., Shrestha, F., Sherpa, T.C., Wagle, N. and Shrestha, A.B. 2020. Inventory of glacial lakes and identification of potentially dangerous glacial lakes in the Koshi, Gandaki, and Karnali River Basins of Nepal, the Tibet Autonomous Region of China. Kathmandu, Nepal: International Centre for Integrated Mountain Development (ICIMOD). 54 pp.
Baselga A. 2010. Partitioning the Turnover and Nestedness Components of Beta Diversity. Global Ecology and Biogeography, 19(1):134–143. https://doi.org/10.1111/j.1466-8238.2009.00490.x
Baselga A. 2013. Separating the Two Components of Abundance- Based Dissimilarity: Balanced Changes in Abundance Vs. Abundance Gradients. Methods in Ecology and Evolution, 4(6):552–557. https://doi.org/10.1111/2041-210X.12029
Bota-Sierra, C.A, Novelo-Gutiérrez, R., Londoño, G.A., Cordero-Rivera, A. and Flórez–VC, S.H.J. 2021. The importance of tropical mountain forests for the conservation of dragonfly biodiversity: A case from the Colombian Western Andes. International Journal of Odonatology, 24:233–247. https://doi.org/10.23797/2159-6719_24_18
Clausnitzer V. 2003. Dragonfly communities in coastal habitats of Kenya: indication of biotope quality and the need of conservation measures. Biodiversity & Conservation, 12(1):333–356. https://doi.org/10.1023/A:1021920402913
Corbet P.S. 1999. Dragonflies: Behaviour and Ecology of Odonata. Colchester: Harley Books, 829 pp.
Cordoba-Aguiler A. 2008. Dragonflies and damselflies: model organisms for ecological and evolutionary research. Oxford: Oxford University Press.
Dalzochio M.S., Costa J.M. and Uchôa M.A. 2011. Diversity of Odonata (Insecta) in lotic systems from Serra da Bodoquena, Mato Grosso do Sul State, Brazil. Revis. Revista Brasileira de Entomologia,55:88–94. https://doi.org/10.1590/S0085-56262011000100014
da Silva P.G., Hernández M.I.M. and Heino J. 2018. Disentangling the correlates of species and site contributions to beta diversity in dung beetle assemblages. Diversity and Distributions, 24(11):1674–1686. https://doi.org/10.1111/ddi.12785
Despland E. 2014. Butterflies of the high-altitude Atacama Desert: habitat use and conservation. Frontiers in Genetics, 5:334. https://doi.org/10.3389/fgene.2014.00334
Dewan, S., Acharya, B.K., Vetaas, O.R. and Ghatani, S. 2021. Do sub-groups of butterflies display different elevational distribution patterns in the Eastern Himalaya, India? Frontiers of Biogeography, 13(3):e49643. https://doi.org/10.21425/F5FBG49643
Dewan S., Sander N.J. and Acharya B.K. 2022. Turnover in butterfly communities and traits along an elevational gradient in the eastern Himalaya, India. Ecosphere, 13(3):e3984. https://doi.org/10.1002/ecs2.3984
Dow R.A. 2010. Coeliccia renifera. The IUCN Red List of Threatened Species 2010: e.T167311A6327354. http://doi.org/10.2305/IUCN.UK.2010-4.RLTS.T167311A6327354.en. Accessed 19 February 2024.
Flores O, Seoane J., Hevia V. and Azcárate F.M. 2018. Spatial patterns of species richness and nestedness in ant assemblages along an elevational gradient in a Mediterranean mountain range. PLoS One, 13(12):e0204787. https://doi.org/10.1101/420059
Fontana V., Guariento E., Hilpold A., Niedrist G., Steinwandter M., Spitale D. et al. 2020. Species Richness and Beta Diversity Patterns of Multiple Taxa along an Elevational Gradient in Pastured Grasslands in the European Alps. Scientific Reports, 10(1):12516. https://doi.org/10.1038/s41598-020-69569-9
Fraser F.C. 1933. The Fauna of British India, including Ceylon and Burma. Odonata. Vol. I. Taylor and Francis Ltd., London, United Kingdom. 423 p.
Fraser F.C. 1934. The fauna of British India including Ceylon and Burma. Odonata. Vol. II. Taylor and Francis Ltd., London, United Kingdom. 442 p.
Fraser F.C. 1936. The fauna of British India including Ceylon and Burma. Odonata. Vol. III. Taylor and Francis Ltd., London, United Kingdom. 482 p.
Gaston K.J. 1994. Rarity. Chapman & Hall, London. https://doi.org/10.1007/978-94-011-0701-3
Gómez-Anaya J.A., Novelo-Gutiérrez R. and Campbell W.B. 2011. Diversity and distribution of Odonata (Insecta) larvae along an altitudinal gradient in Coalcomán mountains, Michoacán, Mexico. Revista de Biología tropical. 59(4), 1559–1577. https://doi.org/10.15517/rbt.v59i4.3420
Hammer, Ø. and Harper D.A. 2001. Past: paleontological statistics software package for education and data analysis. Palaeontologia Electronica, 4(1):1.
Harisha M.N. 2016. Evaluation of Status and Diversity of Odonates of Kondajji Lake, Kondajji Village, Harihar Taluk, Davanagere District, Karnataka, India. Journal of Entomology and Zoology Studies, 4(4):384–388.
Heiser M. and Schmitt T. 2010. Do different dispersal capacities influence the biogeography of the western Palearctic dragonflies (Odonata)? Biological Journal of the Linnean Society, 99(1):177–195. https://doi.org/10.1111/j.1095-8312.2009.01349.x
Kalkman V.J., Babu R., Bedjanič M., Conniff K., Gyeltshen T., Khan M.K. et al. 2020. Checklist of the dragonflies and damselflies (Insecta: Odonata) of Bangladesh, Bhutan, India, Nepal, Pakistan and Sri Lanka. Zootaxa, 4849(1):1–84. https://doi.org/10.11646/zootaxa.4849.1.1
Khanal B. 2013. Study on changes in butterfly fauna at different altitudinal levels in central Nepal. [Doctoral dissertation]. Mizoram University.
Khatiwada J.R., Zhao T., Chen Y., Wang B., Xie F., Cannatella D.C. et al. 2019. Amphibian community structure along elevation gradients in eastern Nepal Himalaya. BMC Ecology, 19:1–11. https://doi.org/10.1186/s12898-019-0234-z
Khatiwada, J.R., Adhikari, J.N., Rijal, D. and Sharma, L.N. 2021. Freshwater biodiversity in western Nepal: A review. Nepalese Journal of Zoology, 5(1):34–46. https://doi.org/10.3126/njz.v5i1.38290
Koparde P., Mhaske P. and Patwardhan A. 2015. Habitat correlates of Odonata species diversity in the northern Western Ghats, India. Odonatologica, 44(1):21–43.
Legendre P., Borcard D. and Peres-Neto P.R. 2005. Analyzing beta diversity: partitioning the spatial variation of community composition data. Ecological Monographs, 75(4):435–450. https://doi.org/10.1890/05-0549
Luke S.H., Dow R.A., Butler S., Vun Khen C., Aldridge D.C., Foster W.A. et al. 2017. The impacts of habitat disturbance on adult and larval dragonflies (Odonata) in rainforest streams in Sabah, Malaysian Borneo. Freshwater Biology, 62(3):491–506. https://doi.org/10.1111/fwb.12880
Mahato M. and Edds D. 1993. Altitudinal distribution of odonate larvae in Nepal’s Gandaki River. Odonatologica, 22(2):213–221.
May M.L. 1976. Thermoregulation and adaptation to temperature in dragonflies (Odonata: Anisoptera). Ecological Monographs, 46(1):1–32. https://doi.org/10.2307/1942392
Nair M.V. 2011. Dragonflies and Damselflies of Orissa and Eastern India Wildlife Organization. Forest and Environment Department, Government of Odisha. 252 p.
Pandey N., Khanal L. and Chalise M.K. 2020. Correlates of avifaunal diversity along the elevational gradient of Mardi Himal in Annapurna Conservation Area, Central Nepal. Avian Research, 11(1):1–14. https://doi.org/10.1186/s40657-020-00217-6
Paulson D., Schorr M., Abbott J., Bota-Sierra C., Deliry C., Dijkstra K.D. et al. 2024. World Odonata List. Odonata Central, University of Alabama. Available at: https://www.odonatacentral.org/app/#/wol/
Peters M.K, Hemp A., Appelhans T., Behler C., Classen A., Detsch F. et al. 2016. Predictors of elevational biodiversity gradients change from single taxa to the multi-taxa community level. Nature Communications, 7(1):13736. https://doi.org/10.1038/ncomms13736
Poulton S.M.C. 2019. Altitudinal variation in the communities of small mammals in the central Himalaya of Nepal. [Doctoral dissertation]. University of East Anglia.
Rahbek C. 1995. The elevational gradient of species richness: a uniform pattern? Ecography, 18(2):200–205. https://doi.org/10.1111/j.1600-0587.1995.tb00341.x
Rahbek C., Borregaard M.K., Colwell R.K., Dalsgaard B., Holt B.G., Morueta-Holme N. et al. 2019. Humboldt’s enigma: What causes global patterns of mountain biodiversity? Science, 365(6458):1108–1113. https://doi.org/10.1126/science.aax0149
Rana S.K., Gross K. and Price T. 2019. Drivers of Elevation Richness Peaks Evaluated for Trees in the East Himalayas. Ecology, 100(1):e02548. https://doi.org/10.1002/ecy.2548
Renner S., Périco E., Dalzochio M.S. and Sahlén G. 2018. Water body type and land cover shape the dragonfly communities (Odonata) in the Pampa biome, Rio Grande do Sul, Brazil. Journal of Insect Conservation, 22(1):113–125. https://doi.org/10.1007/s10841-017-0042-8
Seidu I., Danquah E., Nsor C.A., Kwarteng D.A. and Lancaster L.T. 2017. Odonata community structure and patterns of land use in the Atewa Range Forest Reserve, Eastern Region (Ghana). International Journal of Odonatology, 20(3-4):173–189. https://doi.org/10.1080/13887890.2017.1369179
Seidu I., Nsor C.A., Danquah E., Tehoda P. and Oppong S.K. 2019. Patterns of Odonata assemblages in lotic and lentic systems in the Ankasa Conservation Area, Ghana. International Journal of Zoology, 2019(1):1–14. https://doi.org/10.1155/2019/3094787
Sharma G. and Joshi P.C. 2007. Diversity of Odonata (Insecta) from Dholbaha Dam (Distt.Hoshiarpur) in Punjab Shivalik, India. Journal of Asia-Pacific Entomology, 10:177–180. https://doi.org/10.1016/S1226-8615(08)60350-7
Sharma M., Oli B.R. and Gautam I. 2024. Dragonflies and Damselflies (Insecta, Odonata) from the western region of Nepal with new records of four species. Journal of Insect Biodiversity and Systematics, 10(3):535–546. https://doi.org/10.61186/jibs.10.3.535
Singh D, 2022. Field Guide to the Dragonflies and Damselflies of North west India. Bishen Singh Mahendra Pal Singh, Dehradun. 527 p.
Stefani-Santos G., Ávila J.W., Clemente M.A., Henriques N.R., Souza A.S.B., Vilela D.S. et al. 2021. Odonata (Insecta) communities along an elevational gradient in the Atlantic forest of southeastern Brazil, with the description of the female of Heteragrion mantiqueirae Machado, 2006. International Journal of Odonatology, 24:178–196. https://doi.org/10.23797/2159-6719_24_14
Subedi I.P. and Budha P.B. 2020. Diversity and distribution patterns of ants along elevational gradients. Nepalese Journal of Zoology, 4(1):44–49. https://doi.org/10.3126/njz.v4i1.30672
Subramanian K.A. 2009. Dragonflies of India- A field guide. Vigyan Prasar, India. 180 p.
Wang J., Soininen J., Zhang Y., Wang B., Yang X. and Shen J. 2012. Patterns of Elevational Beta Diversity in Micro-and Macro-organisms. Global Ecology and Biogeography, 21(7):743–750. https://doi.org/10.1111/j.1466-8238.2011.00718.x
Wijesooriya M.M., Jayalath M.G., Perera S.J. and Samanmali C. 2022. The Odonate fauna (Insecta: Odonata) of Belihuloya, southern intermediate zone of Sri Lanka: A preliminary assessment and conservation implications. Journal of Asia-Pacific Biodiversity, 15(3):311–328. https://doi.org/10.1016/j.japb.2022.04.003
Yu X.D., Lü L., Luo T.H. and Zhou H.Z. 2013. Elevational gradient in species richness pattern of epigaeic beetles and underlying mechanisms at east slope of Balang Mountain in Southwestern China. PLoS One, 8(7):e69177. https://doi.org/10.1371/journal.pone.0069177
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