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  • 1601. Bureau of Meteorology 2023, El Niño Southern Oscillation (ENSO), <http://www.bom.gov.au/climate/about/?bookmark=enso>.
  • 1602. Sherwood, S.C., Roca, R., Weckwerth, T.M. and Andronova, N.G. 2010, Tropospheric water vapor, convection, and climate, Reviews of Geophysics 48(2): RG2001.
  • 1603. Fischer, E.M. and Knutti, R. 2015, Anthropogenic contribution to global occurrence of heavy-precipitation and high-temperature extremes, Nature Climate Change 5(6): 560-564.
  • 1604. Hughes, T.P., Anderson, K.D., Connolly, S.R., Heron, S.F., Kerry, J.T., et al. 2018, Spatial and temporal patterns of mass bleaching of corals in the Anthropocene, Science 359(6371): 80-83.
  • 1605. Downie, A.T., Cramp, R.L. and Franklin, C.E. 2024, The interactive impacts of a constant reef stressor, ultraviolet radiation, with environmental stressors on coral physiology, Science of the Total Environment 907: 168066.
  • 1606. Elledge, A. and Thornton, C. 2017, Effect of changing land use from virgin brigalow (Acacia harpophylla) woodland to a crop or pasture system on sediment, nitrogen and phosphorus in runoff over 25 years in subtropical Australia, Agriculture, Ecosystems & Environment 239: 119-131.
  • 1607. Department of Planning and Environment 2023, Bushfire-affected waterways, <https://www.environment.nsw.gov.au/topics/water/estuaries/estuaries-research/bushfire-affected-waterways>.
  • 1608. Laubenstein, T., Smith, T.F., Hobday, A.J., Pecl, G.T., Evans, K., et al. 2023, Threats to Australia's oceans and coasts: A systematic review, Ocean & Coastal Management 231: 106331.
  • 1609. IPCC 2021, Summary for Policymakers, in Climate Change 2021: The Physical Science Basis. Contribution of Working Group I to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change, eds V. Masson-Delmotte, P. Zhai, A. Pirani, S.L. Connors, C. Péan, et al., Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, pp. 3−32.
  • 1610. Lovelock, C.E., Ellison, J.C., Johnson, J.E. and Marshall, P.A. 2007, Climate change and the Great Barrier Reef: A vulnerability assessment, Great Barrier Reef Marine Park Authority, Townsville.
  • 1611. Hoegh-Guldberg, O., Jacob, D., Taylor, M., Bindi, M., Brown, S., et al. 2018, Impacts of 1.5ºC global warming on natural and human systems, in Global warming of 1.5°C. An IPCC special report on the impacts of global warming of 1.5°C above pre-industrial levels and related global greenhouse gas emission pathways, in the context of dtrengthening the global response to the threat of climate change, sustainable development, and efforts to eradicate poverty, eds V. Masson-Delmotte, P. Zhai, H.O. Pörtner, D. Roberts, J. Skea, et al., World Meteorological Organization, Geneva, pp. 175-311.
  • 1612. Eddy, T.D., Lam, V.W.Y., Reygondeau, G., Cisneros-Montemayor, A.M., Greer, K., et al. 2021, Global decline in capacity of coral reefs to provide ecosystem services, One Earth 4(9): 1278-1285.
  • 1613. Ferrario, F., Beck, M.W., Storlazzi, C.D., Micheli, F., Shepard, C.C., et al. 2014, The effectiveness of coral reefs for coastal hazard risk reduction and adaptation, Nature Communications 5(1): 3794.
  • 1614. Carlson, R.R., Evans, L.J., Foo, S.A., Grady, B.W., Li, J., et al. 2021, Synergistic benefits of conserving land-sea ecosystems, Global Ecology and Conservation 28: e01684.
  • 1615. Jokiel, P.L. and Coles, S.L. 1990, Response of Hawaiian and other Indo-Pacific reef corals to elevated temperature, Coral Reefs 8: 155-162.
  • 1616. Stuart-Smith, R.D., Brown, C.J., Ceccarelli, D.M. and Edgar, G.J. 2018, Ecosystem restructuring along the Great Barrier Reef following mass coral bleaching, Nature 560(7716): 92-96.
  • 1617. Richardson, L.E., Graham, N.A.J., Pratchett, M.S., Eurich, J.G. and Hoey, A.S. 2018, Mass coral bleaching causes biotic homogenization of reef fish assemblages, Global Change Biology 24(7): 3117-3129.
  • 1618. Holbrook, N.J., Claar, D.C., Hobday, A.J., McInnes, K.L., Oliver, E.C., Gupta, A.S., Widlansky, M.J. and Zhang, X. 2020, ENSO‐driven ocean extremes and their ecosystem impacts, in El Niño Southern Oscillation in a changing climate, eds M.J. McPhaden, A.Santosi and W. Cai, American Geophysical Union, Washington, pp. 409-428.
  • 1619. Chaudhary, C., Alfaro-Lucas, J.M., Simões, M.V.P., Brandt, A. and Saeedi, H. 2023, Potential geographic shifts in the coral reef ecosystem under climate change, Progress in Oceanography 213: 103001.
  • 1620. Kim, S.W., Sampayo, E.M., Sommer, B., Sims, C.A., Gómez‐Cabrera, M.D.C., et al. 2019, Refugia under threat: Mass bleaching of coral assemblages in high‐latitude eastern Australia, Global Change Biology 25(11): 3918-3931.
  • 1621. Bay, L.K. and Howells, E.J. 2021, Mapping the future for coral reefs, eLife 10: e72978.
  • 1622. Anthony, K., Bowen, J., Mead, D. and Hardisty, P.E. 2019, Reef Restoration and Adaptation Program: Intervention Analysis and Recommendations. A report provided to the Australian Government by the Reef Restoration and Adaptation Program.
  • 1623. Logan, C.A., Dunne, J.P., Ryan, J.S., Baskett, M.L. and Donner, S.D. 2021, Quantifying global potential for coral evolutionary response to climate change, Nature Climate Change 11(6): 537-542.
  • 1624. Mead, D., Bay, L.K., Anthony, K., Hussey, K., Taylor, B., et al. 2019, Reef Restoration and Adaptation Program: Research and Development Program. A report provided to the Australian Government by the Reef Restoration and Adaptation Program.
  • 1625. Kleypas, J.A., McManus, J.W. and Meñez, L.A. 1999, Environmental limits to coral reef development: where do we draw the line? American Zoologist 39(1): 146-159.
  • 1626. Bell, J.J., Davy, S.K., Jones, T., Taylor, M.W. and Webster, N.S. 2013, Could some coral reefs become sponge reefs as our climate changes? Global Change Biology 19(9): 2613-2624.
  • 1627. Ramsby, B.D., Hoogenboom, M.O., Smith, H.A., Whalan, S. and Webster, N.S. 2018, The bioeroding sponge Cliona orientalis will not tolerate future projected ocean warming, Scientific Reports 8(1): 8302.
  • 1628. Perkins, N.R., Monk, J., Soler, G., Gallagher, P. and Barrett, N.S. 2022, Bleaching in sponges on temperate mesophotic reefs observed following marine heatwave events, Climate Change Ecology 3: 100046.
  • 1629. Abdul Wahab, M.A., De Nys, R., Webster, N. and Whalan, S. 2014, Phenology of sexual reproduction in the common coral reef sponge, Carteriospongia foliascens, Coral Reefs 33: 381-394.
  • 1630. Massaro, A.J., Weisz, J.B., Hill, M.S. and Webster, N.S. 2012, Behavioral and morphological changes caused by thermal stress in the Great Barrier Reef sponge Rhopaloeides odorabile, Journal of Experimental Marine Biology and Ecology 416: 55-60.
  • 1631. Ryan, M.G. 1991, Effects of climate change on plant respiration, Ecological Applications 1(2): 157–167.
  • 1632. Campbell, S.J., McKenzie, L.J. and Kerville, S.P. 2006, Photosynthetic responses of seven tropical seagrasses to elevated seawater temperature, Journal of Experimental Marine Biology and Ecology 330(2): 455-468.
  • 1633. Collier, C.J., Uthicke, S. and Waycott, M. 2011, Thermal tolerance of two seagrass species at contrasting light levels: implications for future distribution in the Great Barrier Reef, Limnology and Oceanography 56(6): 2200-2210.
  • 1634. Arias-Ortiz, A., Serrano, O., Masqué, P., Lavery, P.S., Mueller, U., et al. 2018, A marine heatwave drives massive losses from the world’s largest seagrass carbon stocks, Nature Climate Change 8(4): 338-344.
  • 1635. Collier, C.J. and Waycott, M. 2014, Temperature extremes reduce seagrass growth and induce mortality, Marine Pollution Bulletin 83(2): 483-490.
  • 1636. Pendleton, L., Donato, D.C., Murray, B.C., Crooks, S., Jenkins, W.A., et al. 2012, Estimating global “blue carbon” emissions from conversion and degradation of vegetated coastal ecosystems, PloS One 7(9): e43542.
  • 1637. Vermeij, G.J. 1978, Biogeography and adaptation: patterns of marine life, Harvard University Press, Cambridge, UK.
  • 1638. Pörtner, H.O. and Farrell, A.P. 2008, Physiology and climate change, Science 322(5902): 690-692.
  • 1639. McLeod, I.M., McCormick, M.I., Munday, P.L., Clark, T.D., Wenger, A.S., et al. 2015, Latitudinal variation in larval development of coral reef fishes: implications of a warming ocean, Marine Ecology Progress Series 521: 129-141.
  • 1640. Takahashi, M., McCormick, M.I., Munday, P.L. and Jones, G.P. 2012, Influence of seasonal and latitudinal temperature variation on early life-history traits of a coral reef fish, Marine and Freshwater Research 63(10): 856-864.
  • 1641.  Munday, P.L., Kingsford, M.J., O’Callaghan, M. and Donelson, J.M. 2008, Elevated temperature restricts growth potential of the coral reef fish Acanthochromis polyacanthus, Coral Reefs 27: 927-931.
  • 1642. Nilsson, G.E., Crawley, N., Lunde, I.G. and Munday, P.L. 2009, Elevated temperature reduces the respiratory scope of coral reef fishes, Global Change Biology 15(6): 1405-1412.
  • 1643. Madin, J.S., Baird, A.H., Bridge, T.C.L., Connolly, S.R., Zawada, K.J.A., et al. 2018, Cumulative effects of cyclones and bleaching on coral cover and species richness at Lizard Island, Marine Ecology Progress Series 604: 263-268.
  • 1644. Richards, Z.T., Juszkiewicz, D.J., Hoggett, A. 2021, Spatio-temporal persistence of scleractinian coral species at Lizard Island, Great Barrier Reef, Coral Reefs 40(4): 1369-1378.
  • 1645. Johansen, J.L., Messmer, V., Coker, D.J., Hoey, A.S. and Pratchett, M.S. 2014, Increasing ocean temperatures reduce activity patterns of a large commercially important coral reef fish, Global Change Biology 20(4): 1067-1074.
  • 1646. Pratchett, M.S., Cameron, D.S., Donelson, J., Evans, L., Frisch, A.J., et al. 2017, Effects of climate change on coral grouper (Plectropomus spp.) and possible adaptation options, Reviews in Fish Biology and Fisheries 27(2): 297-316.
  • 1647. Messmer, V., Pratchett, M.S., Hoey, A.S., Tobin, A.J., Coker, D.J., et al. 2017, Global warming may disproportionately affect larger adults in a predatory coral reef fish, Global Change Biology 23(6): 2230-2240.
  • 1648. Millington, R.C., Rogers, A., Cox, P., Bozec, Y. and Mumby, P.J. 2022, Combined direct and indirect impacts of warming on the productivity of coral reef fishes, Ecosphere 13(7): e4108.
  • 1649. Elma, E., Gullström, M., Yahya, S.A., Jouffray, J., East, H.K., et al. 2023, Post-bleaching alterations in coral reef communities, Marine Pollution Bulletin 186: 114479.
  • 1650. Wismer, S., Tebbett, S.B., Streit, R.P. and Bellwood, D.R. 2019, Spatial mismatch in fish and coral loss following 2016 mass coral bleaching, Science of the Total Environment 650: 1487-1498.