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Marine and Freshwater Research Marine and Freshwater Research Society
Advances in the aquatic sciences
RESEARCH ARTICLE (Open Access)

Impacts of river regulation and fragmentation on platypuses in the northern Murray–Darling Basin

Jasmine Khurana A , Gilad Bino https://orcid.org/0000-0002-9265-4057 A * and Tahneal Hawke https://orcid.org/0000-0001-9225-5163 A B
+ Author Affiliations
- Author Affiliations

A Centre for Ecosystem Science, School of Biological, Earth and Environmental Sciences, University of New South Wales, Sydney, NSW 2052, Australia.

B Taronga Institute of Science and Learning, Taronga Conservation Society Australia Dubbo, NSW, 2830, Australia.

* Correspondence to: gilad.bino@unsw.edu.au

Handling Editor: Paul Frazier

Marine and Freshwater Research 75, MF24037 https://doi.org/10.1071/MF24037
Submitted: 21 February 2024  Accepted: 12 June 2024  Published: 27 June 2024

© 2024 The Author(s) (or their employer(s)). Published by CSIRO Publishing. This is an open access article distributed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License (CC BY-NC-ND)

Abstract

Context

River regulation affect freshwater species by disrupting the natural flow regime and connectivity.

Aims

Investigate the impact of river regulation on platypus populations on four regulated rivers within the northern Murray–Darling Basin.

Methods

Assessment of hydrology, live trapping downstream of large dams, multi-species environmental DNA surveys in upstream and downstream sections.

Key results

There were significant changes in flow seasonality and cold-water pollution as a result of river regulation. Upstream sections experienced prolonged periods of ceased flow, most recently during an extreme drought between 2017 and 2020. eDNA surveys detected platypuses downstream of all dams but failed to find evidence of them upstream in two rivers, indicating possible local extinctions. Capture of four platypuses in the Severn River and four, in very poor condition, in the Peel River, and none in the Gwydir River or Pike Creek–Dumaresq River. Significant differences in macroinvertebrate communities, implying possible impacts on platypus diet.

Conclusions

River regulation and habitat fragmentation affect platypus populations, namely disappearance from upstream sections, low downstream capture rates and the poor body condition.

Implications

Urgent need for catchment-scale river management strategies that preserve ecological functions and connectivity and improve resilience to protect and sustain platypus populations, indicating directions for future research and conservation efforts.

Keywords: Australia, biodiversity, eDNA, freshwater, macroinvertebrates, mammal, monotreme, river regulation.

References

Abell R, Thieme ML, Revenga C, Bryer M, Kottelat M, Bogutskaya N, Coad B, Mandrak N, Balderas SC, Bussing W, Stiassny MLJ, Skelton P, Allen GR, Unmack P, Naseka A, Ng R, Sindorf N, Robertson J, Armijo E, Higgins JV, Heibel TJ, Wikramanayake E, Olson D, López HL, Reis RE, Lundberg JG, Pérez MHS, Petry P (2008) Freshwater ecoregions of the world: a new map of biogeographic units for freshwater biodiversity conservation. BioScience 58(5), 403-414.
| Crossref | Google Scholar |

Acreman MC, Dunbar MJ (2004) Defining environmental river flow requirements – a review. Hydrology and Earth System Sciences 8(5), 861-876.
| Crossref | Google Scholar |

Acreman M, Arthington AH, Colloff MJ, Couch C, Crossman ND, Dyer F, Overton I, Pollino CA, Stewardson MJ, Young W (2014) Environmental flows for natural, hybrid, and novel riverine ecosystems in a changing world. Frontiers in Ecology and the Environment 12(8), 466-473.
| Crossref | Google Scholar |

Ahearn DS, Sheibley RW, Dahlgren RA, Anderson M, Johnson J, Tate KW (2005) Land use and land cover influence on water quality in the last free-flowing river draining the western Sierra Nevada, California. Journal of Hydrology 313(3–4), 234-247.
| Crossref | Google Scholar |

Allan JD, Abell R, Hogan Z, Revenga C, Taylor BW, Welcomme RL, Winemiller K (2005) Overfishing of inland waters. BioScience 55(12), 1041-1051.
| Crossref | Google Scholar |

Arai R, Nukazawa K, Kazama S, Takemon Y (2015) Variation in benthic invertebrate abundance along thermal gradients within headwater streams of a temperate basin in Japan. Hydrobiologia 762(1), 55-63.
| Crossref | Google Scholar |

Arthington AH, Bunn SE, Poff NL, Naiman RJ (2006) The challenge of providing environmental flow rules to sustain river ecosystems. Ecological Applications 16(4), 1311-1318.
| Crossref | Google Scholar | PubMed |

Arthington AH, Naiman RJ, McClain ME, Nilsson C (2010) Preserving the biodiversity and ecological services of rivers: new challenges and research opportunities. Freshwater Biology 55, 1-16.
| Crossref | Google Scholar |

Astles KL, Winstanley RK, Harris JH, Gehrke PC (2003) Regulated Rivers and Fisheries Restoration Project – experimental study of the effects of cold water pollution on native fish. NSW Fisheries Final Report Series 44. (NSW Fisheries Office of Conservation: Sydney, NSW, Australia) Available at https://citeseerx.ist.psu.edu/document?repid=rep1&type=pdf&doi=0f8ce9d1d05c8ff3f7d0363b299a02386ba0d67e

Bino G, Kingsford RT, Grant T, Taylor MD, Vogelnest L (2018) Use of implanted acoustic tags to assess platypus movement behaviour across spatial and temporal scales. Scientific Reports 8(1), 5117.
| Crossref | Google Scholar | PubMed |

Bino G, Kingsford RT, Archer M, Connolly JH, Day J, Dias K, Goldney D, Gongora J, Grant T, Griffiths J, Hawke T, Klamt M, Lunney D, Mijangos L, Munks S, Serena M, Sherwin W, Temple-Smith P, Thomas J, Williams G, Whittington C (2019) The platypus: evolutionary history, biology, and an uncertain future. Journal of Mammalogy 100(2), 308-327.
| Crossref | Google Scholar | PubMed |

Bino G, Kingsford RT, Wintle BA (2020) A stitch in time – synergistic impacts to platypus metapopulation extinction risk. Biological Conservation 242, 108399.
| Crossref | Google Scholar |

Bonacina L, Fasano F, Mezzanotte V, Fornaroli R (2023) Effects of water temperature on freshwater macroinvertebrates: a systematic review. Biological Reviews 98(1), 191-221.
| Crossref | Google Scholar | PubMed |

Boulton AJ, Peterson CG, Grimm NB, Fisher SG (1992) Stability of an aquatic macroinvertebrate community in a multiyear hydrologic disturbance regime. Ecology 73(6), 2192-2207.
| Crossref | Google Scholar |

Burrell H (1927) ‘The platypus.’ (Angus and Robertson: Sydney, NSW, Australia)

Chinnadurai SK, Strahl-Heldreth D, Fiorello CV, Harms CA (2016) Best-practice guidelines for field-based surgery and anesthesia of free-ranging wildlife. I. Anesthesia and analgesia. Journal of Wildlife Diseases 52(2), S14-S27.
| Crossref | Google Scholar |

Chisholm AH (1922) Nature notes. In The Daily Mail, Saturday 15 April 1922, p. 9. Available at http://nla.gov.au/nla.news-page23227948

Dahm CN, Baker MA, Moore DI, Thibault JR (2003) Coupled biogeochemical and hydrological responses of streams and rivers to drought. Freshwater Biology 48(7), 1219-1231.
| Crossref | Google Scholar |

Davidson NC (2014) How much wetland has the world lost? Long-term and recent trends in global wetland area. Marine and Freshwater Research 65(10), 934-941.
| Crossref | Google Scholar |

Davis J, Pavlova A, Thompson R, Sunnucks P (2013) Evolutionary refugia and ecological refuges: key concepts for conserving Australian arid zone freshwater biodiversity under climate change. Global Change Biology 19(7), 1970-1984.
| Crossref | Google Scholar | PubMed |

Department of Climate Change, Energy, the Environment and Water (2012) Australia’s bioregions (IBRA). (DCCEEW) Available at https://www.dcceew.gov.au/environment/land/nrs/science/ibra [Verified May 2024]

Dunn OJ (1964) Multiple comparisons using rank sums. Technometrics 6(3), 241-252.
| Crossref | Google Scholar |

Faragher RA, Grant TR, Carrick FN (1979) Food of the platypus (Ornithorhynchus anatinus) with notes on the food of brown trout (Salmo trutta) in the Shoalhaven River, NSW. Australian Journal of Ecology 4(2), 171-179.
| Crossref | Google Scholar |

Gardner A (2006) Environmental water allocations in Australia. Environmental and Planning Law Journal 23(3), 208-235 https://search.informit.org/doi/10.3316/agispt.20062392.
| Google Scholar |

Glazier DS (2012) Temperature affects food-chain length and macroinvertebrate species richness in spring ecosystems. Freshwater Science 31(2), 575-585.
| Crossref | Google Scholar |

Grant TR, Dawson TJ (1978) Temperature regulation in the platypus, Ornithorhynchus anatinus, production and loss of metabolic heat in air and water. Physiological Zoology 51, 315-332.
| Crossref | Google Scholar |

Grill G, Lehner B, Thieme M, Geenen B, Tickner D, Antonelli F, Babu S, Borrelli P, Cheng L, Crochetiere H, Macedo HE, Filgueiras R, Goichot M, Higgins J, Hogan Z, Lip B, McClain ME, Meng J, Mulligan M, Nilsson C, Olden JD, Opperman JJ, Petry P, Liermann CR, Sáenz L, Salinas-Rodríguez S, Schelle P, Schmitt RJP, Snider J, Tan F, Tockner K, Valdujo PH, van Soesbergen A, Zarfl C (2019) Author correction: mapping the world’s free-flowing rivers. Nature 572(7768), E9.
| Crossref | Google Scholar | PubMed |

Hawke T, Bino G, Kingsford RT (2019) A silent demise: historical insights into population changes of the iconic platypus (Ornithorhynchus anatinus). Global Ecology and Conservation 20, e00720.
| Crossref | Google Scholar |

Hawke T, Bino G, Kingsford RT (2020) A national assessment of the conservation status of the platypus. Report prepared for the Australian Conservation Foundation. University of NSW, Sydney, NSW, Australia.

Hawke T, Bino G, Kingsford RT (2021) Damming insights: variable impacts and implications of river regulation on platypus populations. Aquatic Conservation 31(3), 504-519.
| Crossref | Google Scholar |

Hawke T, Bino G, Shackleton ME, Ross AK, Kingsford RT (2022) Using DNA metabarcoding as a novel approach for analysis of platypus diet. Scientific Reports 12(1), 2247.
| Crossref | Google Scholar |

He F, Zarfl C, Bremerich V, Henshaw A, Darwall W, Tockner K, Jähnig SC (2017) Disappearing giants: a review of threats to freshwater megafauna. WIREs Water 4(3), e1208.
| Crossref | Google Scholar |

Heidari A, Esmaeel Nezhad A, Tavakoli A, Rezaei N, Gandoman FH, Miveh MR, Ahmadi A, Malekpour M (2020) A comprehensive review of renewable energy resources for electricity generation in Australia. Frontiers in Energy 14, 510-529.
| Crossref | Google Scholar |

Horne A, Webb J, Stewardson M, Richter B, Acreman M (Eds) (2017) ‘Water for the environment: from policy and science to implementation and management.’ (Academic Press) doi:10.1016/C2015-0-00163-0

Hulbert AJ, Grant TR (1983) Thyroid hormone levels in an egg-laying mammal, the platypus Ornithorhynchus anatinus. General and Comparative Endocrinology 51(3), 401-405.
| Crossref | Google Scholar | PubMed |

Humphries P, Serafini LG, King AJ (2002) River regulation and fish larvae: variation through space and time. Freshwater Biology 47(7), 1307-1331.
| Crossref | Google Scholar |

Jenkins KM, Boulton AJ (2003) Connectivity in a dryland river: short-term aquatic microinvertebrate recruitment following floodplain inundation. Ecology 84(10), 2708-2723.
| Crossref | Google Scholar |

Junk WJ, Piedade MTF, Lourival R, Wittmann F, Kandus P, Lacerda LD, Bozelli RL, Esteves FA, Nunes da Cunha C, Maltchik L, Schöngart J, Schaeffer-Novelli Y, Agostinho AA (2014) Brazilian wetlands: their definition, delineation, and classification for research, sustainable management, and protection. Aquatic Conservation: Marine and Freshwater Ecosystems 24, 5-22.
| Crossref | Google Scholar |

Kingsford RT, Basset A, Jackson L (2016) Wetlands: conservation’s poor cousins. Aquatic Conservation 26, 892-916.
| Crossref | Google Scholar |

Koch N, Munks SA, Utesch M, Davies PE, McIntosh P (2006) The platypus Ornithorhynchus anatinus in headwater streams, and effects of pre-Code forest clearfelling, in the South Esk River catchment, Tasmania, Australia. Australian Zoologist 33(4), 458-473.
| Crossref | Google Scholar |

Kruskal WH, Wallis WA (1952) Use of ranks in one-criterion variance analysis. Journal of the American Statistical Association 47(260), 583-621.
| Crossref | Google Scholar |

Lopez SG, Aspbury AS, Fritts SR, Tidwell T, Bonner TH (2023) Long-term patterns in inland fish kills associated with cold-shock and winter stress: a regional case study from Texas. Journal of Fish Biology 103(3), 472-480.
| Crossref | Google Scholar | PubMed |

Lugg A, Copeland C (2014) Review of cold water pollution in the Murray–Darling Basin and the impacts on fish communities. Ecological Management & Restoration 15(1), 71-79.
| Crossref | Google Scholar |

Magalhaes MF, Beja P, Schlosser IJ, Collares-Pereira MJ (2007) Effects of multi-year droughts on fish assemblages of seasonally drying Mediterranean streams. Freshwater Biology 52(8), 1494-1510.
| Crossref | Google Scholar |

Magierowski RH, Davies PE, Read SM, Horrigan N (2012) Impacts of land use on the structure of river macroinvertebrate communities across Tasmania, Australia: spatial scales and thresholds. Marine and Freshwater Research 63(9), 762-776.
| Crossref | Google Scholar |

Magoulick DD, Kobza RM (2003) The role of refugia for fishes during drought: a review and synthesis. Freshwater Biology 48(7), 1186-1198.
| Crossref | Google Scholar |

Manger PR, Collins R, Pettigrew JD (1998) The development of the electroreceptors of the platypus (Ornithorhynchus anatinus). Philosophical Transactions of the Royal Society of London – B. Biological Sciences 353(1372), 1171-1186.
| Crossref | Google Scholar | PubMed |

Mann HB, Whitney DR (1947) On a test of whether one of two random variables is stochastically larger than the other. The Annals of Mathematical Statistics 18(1), 50-60.
| Crossref | Google Scholar |

Matthews WJ, Marsh-Matthews E (2003) Effects of drought on fish across axes of space, time and ecological complexity. Freshwater Biology 48(7), 1232-1253.
| Crossref | Google Scholar |

Michie LE, Thiem JD, Boys CA, Mitrovic SM (2020) The effects of cold shock on freshwater fish larvae and early-stage juveniles: implications for river management. Conservation Physiology 8(1), coaa092.
| Crossref | Google Scholar |

Mijangos JL, Bino G, Hawke T, Kolomyjec SH, Kingsford RT, Sidhu H, Grant T, Day J, Dias KN, Gongora J, Sherwin WB (2022) Fragmentation by major dams and implications for the future viability of platypus populations. Communications Biology 5, 1127.
| Crossref | Google Scholar |

Miller S, Tait P, Saunders C (2015) Estimating indigenous cultural values of freshwater: a choice experiment approach to Māori values in New Zealand. Ecological Economics 118, 207-214.
| Crossref | Google Scholar |

Minella JPG, Merten GH, Barros CAP, Ramon R, Schlesner A, Clarke RT, Moro M, Dalbianco L (2018) Long-term sediment yield from a small catchment in southern Brazil affected by land use and soil management changes. Hydrological Processes 32(2), 200-211.
| Crossref | Google Scholar |

Nielsen DL, Merrin LE, Pollino CA, Karim F, Stratford D, O’Sullivan J (2020) Climate change and dam development: effects on wetland connectivity and ecological habitat in tropical wetlands. Ecohydrology 13(6), e2228.
| Crossref | Google Scholar |

Noble M, Duncan P, Perry D, Prosper K, Rose D, Schnierer S, Tipa G, Williams E, Woods R, Pittock J (2016) Culturally significant fisheries: keystones for management of freshwater social-ecological systems. Ecology and Society 21(2), 22.
| Crossref | Google Scholar |

Parisi MA, Cramp RL, Gordos MA, Franklin CE (2020) Can the impacts of cold-water pollution on fish be mitigated by thermal plasticity? Conservation Physiology 8(1), coaa005.
| Crossref | Google Scholar |

Parisi MA, Franklin CE, Cramp RL (2022) Can slowing the rate of water temperature decline be utilized to reduce the impacts of cold water pollution from dam releases on fish physiology and performance? Journal of Fish Biology 100(4), 979-987.
| Crossref | Google Scholar | PubMed |

Poff NLR, Matthews JH (2013) Environmental flows in the Anthropocence: past progress and future prospects. Current Opinion in Environmental Sustainability 5(6), 667-675.
| Crossref | Google Scholar |

Poff NL, Allan JD, Bain MB, Karr JR, Prestegaard KL, Richter BD, Sparks RE, Stromberg JC (1997) The natural flow regime: a paradigm for river conservation and restoration. BioScience 47(11), 769-784.
| Crossref | Google Scholar |

Puckridge JT, Sheldon F, Walker KF, Boulton AJ (1998) Flow variability and the ecology of large rivers. Marine and Freshwater Research 49(1), 55-72.
| Crossref | Google Scholar |

Reid AJ, Carlson AK, Creed IF, Eliason EJ, Gell PA, Johnson PTJ, Kidd KA, MacCormack TJ, Olden JD, Ormerod SJ, Smol JP, Taylor WW, Tockner K, Vermaire JC, Dudgeon D, Cooke SJ (2019) Emerging threats and persistent conservation challenges for freshwater biodiversity. Biological Reviews of the Cambridge Philosophical Society 94(3), 849-873.
| Crossref | Google Scholar | PubMed |

Rood SB, Samuelson GM, Braatne JH, Gourley CR, Hughes FMR, Mahoney JM (2005) Managing river flows to restore floodplain forests. Frontiers in Ecology and the Environment 3(4), 193-201.
| Crossref | Google Scholar |

Serena M, Grant TR (2017) Effect of flow on platypus (Ornithorhynchus anatinus) reproduction and related population processes in the upper Shoalhaven River. Australian Journal of Zoology 65(2), 130-139.
| Crossref | Google Scholar |

Stewart J, Bino G, Hawke T, Kingsford RT (2021) Seasonal and geographic variation in packed cell volume and selected serum chemistry of platypuses. Scientific Reports 11, 15932.
| Crossref | Google Scholar |

Strayer DL, Dudgeon D (2010) Freshwater biodiversity conservation: recent progress and future challenges. Journal of the North American Benthological Society 29(1), 344-358.
| Crossref | Google Scholar |

van Asselen S, Verburg PH, Vermaat JE, Janse JH (2013) Drivers of wetland conversion: a global meta-analysis. PLoS ONE 8(11), e81292.
| Crossref | Google Scholar |

Vannote RL, Sweeney BW (1980) Geographic analysis of thermal equilibria: a conceptual model for evaluating the effect of natural and modified thermal regimes on aquatic insect communities. The American Naturalist 115(5), 667-695.
| Crossref | Google Scholar |

Voelz NJ, Poff NLR, Ward JV (1994) Differential effects of a brief thermal disturbance on caddisflies (Trichoptera) in a regulated river. The American Midland Naturalist 132(1), 173-182.
| Crossref | Google Scholar |

Wang Y, Naumann U, Wright ST, Warton DI (2012) mvabund – an R package for model-based analysis of multivariate abundance data. Methods in Ecology and Evolution 3(3), 471-474.
| Crossref | Google Scholar |

Whittington RJ, Grant TR (1983) Haematology and blood chemistry of the free-living platypus, Ornithorhynchus anatinus (Shaw) (Monotremata: Ornithorhynchidae). Australian Journal of Zoology 31(4), 475-482.
| Crossref | Google Scholar |

Wilcoxon F (1945) Individual comparisons by ranking methods. Biometrics Bulletin 1(6), 80-83.
| Crossref | Google Scholar |