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Research Article | Open Access

Distributional and behavioral responses of the wintering Oriental Storks to drought in China's largest freshwater lake

Fucheng YangMingqin Shao()Jianying Wang
College of Life Science, Jiangxi Normal University, Nanchang, 330022, China
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Abstract

Extreme droughts are increasing in frequency and severity globally as a result of climate change. Developing understanding of species' responses to drought is crucial for their conservation, especially in regions experiencing increased aridity. Although numerous studies have investigated birds' responses to drought, the emphasis has primarily been on landbirds. Drought can significantly alter the wetland environments that waterbirds inhabit, but the response of waterbirds to drought remains understudied. In this study, we surveyed the distribution and behavior of Oriental Storks (Ciconia boyciana) in Poyang Lake, which is the largest freshwater lake in China. Results indicate that drought-induced catchment areas at the lowest water level limited the total population size of Oriental Storks in the sub-lakes. Sub-lakes with large catchment areas at the lowest water level demonstrated a capacity to support a larger population of wintering Oriental Storks. Over time, Oriental Storks exhibited a gradual concentration in Changhu Lake, characterized by larger catchments, after resource depletion in sub-lakes with smaller catchments. Additionally, the duration of Oriental Storks' vigilance and moving behaviors decreased significantly compared with that observed before the drought. After the drought, Oriental Storks increased their foraging efforts, as evidenced by increased presence in deeper water and reaching their heads and necks into deeper water to forage, higher search rates, but lower foraging rates. In accordance with area-restricted search theory, reductions in habitat quality resulting from drought, including extensive fish die-offs, forced Oriental Storks to increase their foraging efforts. Sustaining a specific water area in sub-lakes during droughts can preserve resource availability, which is crucial for the conservation of Oriental Storks. Implementing measures such as water level control and micro-modification of lake bottoms in sub-lakes might mitigate the impact of drought on the piscivorous Oriental Storks.

References

 

Akresh, M.E., King, D.I., Marra, P.P., 2019. Examining carry-over effects of winter habitat on breeding phenology and reproductive success in prairie warblers Setophaga discolor. J. Avian Biol. 50, e02025 https://doi.org/10.1111/jav.02025.

 

Amoros, C., Bornette, G., 2002. Connectivity and biocomplexity in waterbodies of riverine floodplains. Freshw. Biol. 47, 761–776. https://doi.org/10.1046/j.1365-2427.2002.00905.x.

 

Bailey, L.D., van de Pol, M., 2016. Tackling extremes: challenges for ecological and evolutionary research on extreme climatic events. J. Anim. Ecol. 85, 85–96. https://doi.org/10.1111/1365-2656.12451.

 

Bateman, B., Pidgeon, A., Radeloff, V., Allstadt, A., Akcakaya, H.R., Thogmartin, W., et al., 2015. The importance of range edges for an irruptive species during extreme weather events. Landsc. Ecol. 30, 1095–1110. https://doi.org/10.1007/s10980-015-0212-6.

 

Beauchamp, G., 2009. How does food density influence vigilance in birds and mammals? Anim. Behav. 78, 223–231. https://doi.org/10.1016/j.anbehav.2009.04.029.

 
BirdLife International, 2018. Species Factsheet: Ciconia Boyciana. http://datazone.birdlife.org/species/factsheet/oriental-stork-ciconia-boyciana. (Accessed 13 October 2023).
 

Boersma, J., Enbody, E., Karubian, J., Watts, H., Schwabl, H., 2022. Drought disrupts year-round breeding readiness in a tropical songbird. Avian Conserv. Ecol. 17, 44. https://doi.org/10.5751/ACE-2343-170244.

 

Bourne, A., Cunningham, S., Spottiswoode, C., Ridley, A., 2020. Compensatory breeding in years following drought in a desert-dwelling cooperative breeder. Front. Ecol. Evol. 8, 190. https://doi.org/10.3389/fevo.2020.00190.

 

Breshears, D., Myers, O., Meyer, C., Barnes, F., Zou, C., Allen, C., et al., 2009. Tree die-off in response to global change-type drought: mortality insights from a decade of plant water potential measurements. Front. Ecol. Environ. 7, 185–189. https://doi.org/10.1890/080016.

 

Byrne, L., 2007. Habitat structure: a fundamental concept and framework for urban soil ecology. Urban Ecosyst. 10, 255–274. https://doi.org/10.1007/s11252-007-0027-6.

 

Cady, S., O'Connell, T., Loss, S., Jaffe, N., Davis, C., 2019. Species-specific and temporal scale-dependent responses of birds to drought. Global Change Biol. 25, 2691–2702. https://doi.org/10.1111/gcb.14668.

 

Cao X.M., Wang P.L., Jia Y.L., Li X.F., Ling C.H., Wan Z.W., et al., 2020. The climate change recorded by high-resolution delta and lake sedimentary in the Poyang Lake area since Mid-18th century. J. Jiangxi Norm. Univ. Nat. Sci. 44, 313–321. https://doi.org/10.16357/j.cnki.issn1000-5862.2020.03.16 (In Chinese).

 

Cheng, L., 1994. Diet analysis of the oriental white stork in the middle reaches of Heilongjiang river. Chin. J. Wildl. 78, 29–32. https://doi.org/10.19711/j.cnki.issn2310-1490.1994.02.007 (In Chinese).

 

Cheng, L., Zhou, L.Z., Yu, C., Wei, Z.H., Li, C.H., 2023. Flexible nest site selection of the endangered Oriental Storks (Ciconia boyciana): trade-off from adaptive strategies. Avian Res. 14, 100088 https://doi.org/10.1016/j.avrs.2023.100088.

 

Cohen, J.M., Fink, D., Zuckerberg, B., 2021. Extreme winter weather disrupts bird occurrence and abundance patterns at geographic scales. Ecography 44, 1143–1155. https://doi.org/10.1111/ecog.05495.

 

Colón, M.R., Long, A.M., Morrison, M.L., 2017. Responses of an endangered songbird to an extreme drought event. Southeast. Nat. 16, 195–214. https://doi.org/10.1656/058.016.0207.

 

Conradie, S.R., Woodborne, S.M., Cunningham, S.J., McKechnie, A.E., 2019. Chronic, sublethal effects of high temperatures will cause severe declines in southern African arid-zone birds during the 21st century. Proc. Natl. Acad. Sci. USA 116, 14065–14070. https://doi.org/10.1073/pnas.1821312116.

 

Cruz-McDonnell, K., Wolf, B., 2015. Rapid warming and drought negatively impact population size and reproductive dynamics of an avian predator in the arid southwest. Global Change Biol. 22, 237–253. https://doi.org/10.1111/gcb.13092.

 

de la Fuente, A., Navarro, A., Williams, S., 2023. The climatic drivers of long-term population changes in rainforest montane birds. Global Change Biol. 29, 2132–2140. https://doi.org/10.1111/gcb.16608.

 

Fu, H.P., Yuan, S., Man, D.H., Chai, X.X., Yang, S.W., Bao, D.H., et al., 2018. The burrow behavior and influenced factors of a prairie subterranean zokor (Myospalax psilurus). Ecol. Evol. 8, 12773–12779. https://doi.org/10.1002/ece3.4705.

 

Garcia, R.A., Cabeza, M., Rahbek, C., Araújo, M.B., 2014. Multiple dimensions of climate change and their implications for biodiversity. Science 344, 1247579. https://doi.org/10.1126/science.1247579.

 

Greven, M., Neal, S., Green, S., Dichio, B., Clothier, B., 2009. The effects of drought on the water use, fruit development and oil yield from young olive trees. Agric. Water Manag. 96, 1525–1531. https://doi.org/10.1016/j.agwat.2009.06.002.

 

Gu, Y.X., Brown, J., Verdin, J., Wardlow, B., 2007. A five-year analysis of MODIS NDVI and NDWI for grassland drought assessment over the central Great Plains of the United States. Geophys. Res. Lett. 34, 6. https://doi.org/10.1029/2006GL029127.

 

Harris, R., Beaumont, L., Vance, T., Tozer, C., Remenyi, T., Perkins-Kirkpatrick, S., et al., 2018. Biological responses to the press and pulse of climate trends and extreme events. Nat. Clim. Change 8, 579–587. https://doi.org/10.1038/s41558-018-0187-9.

 

Hu, Z.P., 2023. Serious drought in Poyang Lake in 2022 and countermeasures for drought prevention and disaster reduction. China Flood Drought Manag. 33, 1–6+39. https://doi.org/10.16867/j.issn.1673-9264.2022491 (In Chinese).

 
IBM SPSS Statistics, 2013. SPSS for Windows Release 22.0. IBM Corporation, Armonk. https://www.ibm.com/analytics/spss-statistics-software.
 

Li, B., Yang, G.S., Wan, R.R., 2023. Reassessment of the declines in the largest freshwater lake in China (Poyang Lake): uneven trends, risks and underlying causes. J. Environ. Manag. 342, 118157 https://doi.org/10.1016/j.jenvman.2023.118157.

 

Li, X.H., Ye, X.C., Li, Z., Zhang, D., 2023. Hydrological drought in two largest river-connecting lakes in the middle reaches of the Yangtze River, China. Nord. Hydrol. 54, 82–98. https://doi.org/10.2166/nh.2023.110.

 

Lucon-Xiccato, T., Bisazza, A., 2014. Discrimination reversal learning reveals greater female Behavioural flexibility in guppies. Biol. Lett. 10, 20140206 https://doi.org/10.1098/rsbl.2014.0206.

 

Maxwell, S.L., Butt, N., Maron, M., McAlpine, C.A., Chapman, S., Ullmann, A., et al., 2019. Conservation implications of ecological responses to extreme weather and climate events. Divers. Distrib. 25, 613–625. https://doi.org/10.1111/ddi.12878.

 

Morrison, S.A., Bolger, D.T., 2002. Variation in a sparrow's reproductive success with rainfall: food and predator-mediated processes. Oecologia 133, 315–324. https://doi.org/10.1007/s00442-002-1040-3.

 

Nolet, B., Mooij, W., 2002. Search paths of swans foraging on spatially autocorrelated tubers. J. Anim. Ecol. 71, 451–462. https://doi.org/10.1046/j.1365-2656.2002.00610.x.

 
R Core Team, 2023. R: a language and environment for statistical computing. https://www.R-project.org.
 

Rathcke, B.J., Lacey, E., 1985. Phenological patterns of terrestrial plants. Annu. Rev. Ecol. Systemat. 16, 179–214. https://doi.org/10.1146/annurev.es.16.110185.001143.

 

Regan, C.E., Sheldon, B.C., 2023. Phenotypic plasticity increases exposure to extreme climatic events that reduce individual fitness. Global Change Biol. 29, 2968–2980. https://doi.org/10.1111/gcb.16663.

 

Selwood, K., Clarke, R., Cunningham, S., Lada, H., McGeoch, M., Mac Nally, R., 2015a. A bust but no boom: responses of floodplain bird assemblages during and after prolonged drought. J. Anim. Ecol. 84, 1700–1710. https://doi.org/10.1111/1365-2656.12424.

 

Selwood, K., Thomson, J., Clarke, R., McGeoch, M., Mac Nally, R., 2015b. Resistance and resilience of terrestrial birds in drying climates: do floodplains provide drought refugia? Global Ecol. Biogeogr. 24, 838–848. https://doi.org/10.1111/geb.12305.

 

Song, Y.Y., Zhang, Q., Jiang, S.Y., Guo, Y.Y., 2021. Groundwater depth and its relation with typical vegetation distribution in the Poyang Lake wetland, China. Chin. J. Appl. Ecol. 32, 123–133. https://doi.org/10.13287/j.1001-9332.202101.018 (In Chinese).

 

Spears, L., MacMahon, J., 2012. An experimental study of spiders in a shrub-steppe ecosystem: the effects of prey availability and shrub architecture. J. Arachnol. 40, 218–227. https://doi.org/10.2307/41758963.

 

Sugden, L.G., Beyersbergen, G.W., 1986. Effect of density and concealment on American Crow predation of simulated duck nests. J. Wildl. Manag. 50, 9–14. https://doi.org/10.2307/3801480.

 

Vasseur, D., Delong, J., Gilbert, B., Greig, H., Harley, C., Mccann, K., et al., 2014. Increased temperature variation poses a greater risk to species than climate warming. Proc. Biol. Sci. 281, 20132612 https://doi.org/10.1098/rspb.2013.2612.

 

Wang, H., Chen, W.B., He, L., Li, H.F., 2022. Responses of aquatic vegetation coverage to interannual variations of water level in different hydrologically connected sub-lakes of Poyang Lake, China. Chin. J. Appl. Ecol. 33, 191–200. https://doi.org/10.13287/j.1001-9332.202201.013.

 

Xia, S.X., Yu, D.K., Cui, P., Duan, H.L., Teng, J.K., Yu, X., 2021. Suitable-habitat dynamics for wintering geese in China's largest freshwater lake. Glob. Ecol. Conserv. 27, e01528 https://doi.org/10.1016/j.gecco.2021.e01528.

 

Yang, F.C., Lei, X.Y., Zeng, J.H., Shao, M.Q., Zhi, Y.J., 2023. Foraging behavior and population dynamics of Ciconia boyciana in two areas of Poyang Lake during the wintering period. Sci. Silvae Sin. 59, 128–135. https://doi.org/10.11707/j.1001-7488.LYKX20220223 (In Chinese).

 

You, Q.H., Wang, S., Sun, C.S., Jian, M.F., Cong, M.Y., Liu, L.L., et al., 2021. Bioassessment of water quality in Poyang Lake wetland using benthic macroinvertebrate-based Margalef index. Chin. J. Appl. Environ. Biol. 27, 1570–1576. https://doi.org/10.19675/j.cnki.1006-687x.2020.12048 (In Chinese).

 

Yu, D.K., Xu, Z.W., Gong, L.Q., Zhan, H.Y., Qi, H.Y., Luo, H., et al., 2023. Diversity of shorebirds in Poyang Lake area during wintering, migrating and breeding periods. Wetl. Sci. 21, 671–680. https://doi.org/10.13248/j.cnki.wetlandsci.2023.05.005 (In Chinese).

 

Zeng, J.H., Yang, F.C., Shao, M.Q., Zhi, Y.J., He, W.Y., Dai, N.H., et al., 2021. Diversity and annual dynamics of wintering water birds in the East Poyang Lake National wetland park. Chin. J. Appl. Environ. Biol. 27, 848–854. https://doi.org/10.19675/j.cnki.1006-687x.2020.11049 (In Chinese).

 

Zhou, L.Z., Xue, W.W., Zhu, S.Y., Shan, K., Chen, J.L., 2013. Foraging habitat use of Oriental White Stork (Ciconia boyciana) recently breeding in China. Zool. Sci. 30, 559–564. https://doi.org/10.2108/zsj.30.559.

Avian Research
Article number: 100176
Cite this article:
Yang F, Shao M, Wang J. Distributional and behavioral responses of the wintering Oriental Storks to drought in China's largest freshwater lake. Avian Research, 2024, 15(2): 100176. https://doi.org/10.1016/j.avrs.2024.100176
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