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2 - Human Impacts

Published online by Cambridge University Press:  13 July 2017

P. Keith Probert
Affiliation:
University of Otago, New Zealand
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Print publication year: 2017

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References

Aarkrog, A. (2003). Input of anthropogenic radionuclides into the World Ocean. Deep-Sea Research II, 50, 2597–606.Google Scholar
Acheson, J.M. 2005. Developing rules to manage fisheries: a cross-cultural perspective. In Marine Conservation Biology: The Science of Maintaining the Sea’s Biodiversity, ed. Norse, E.A. & Crowder, L.B., pp. 351–61. Washington, DC: Island Press.Google Scholar
Allsopp, M., Page, R., Johnston, P. & Santillo, D. (2009). State of the World’s Oceans. London: Springer.Google Scholar
Allsopp, M., Walters, A., Santillo, D. & Johnston, P. (2006). Plastic Debris in the World’s Oceans. Amsterdam, Netherlands: Greenpeace International.Google Scholar
Andersen, J.H., Schlüter, L. & Ærtebjerg, G. (2006). Coastal eutrophication: recent developments in definitions and implications for monitoring strategies. Journal of Plankton Research, 28, 621–8.CrossRefGoogle Scholar
Andrady, A.L. (2011). Microplastics in the marine environment. Marine Pollution Bulletin, 62, 1596–605.Google Scholar
Antizar-Ladislao, B. (2008). Environmental levels, toxicity and human exposure to tributyltin (TBT)-contaminated marine environment: a review. Environment International, 34, 292308.Google Scholar
Balcombe, J. (2000). The Use of Animals in Higher Education: Problems, Alternatives, & Recommendations. Washington, DC: The Humane Society Press.Google Scholar
Barnes, D.K.A. (2002). Invasions by marine life on plastic debris. Nature, 416, 808–9.Google Scholar
Barnes, D.K.A., Galgani, F., Thompson, R.C. & Barlaz, M. (2009). Accumulation and fragmentation of plastic debris in global environments. Philosophical Transactions of the Royal Society B, 364, 1985–98.Google Scholar
Baum, J.K. & Worm, B. (2009). Cascading top-down effects of changing oceanic predator abundances. Journal of Animal Ecology, 78, 699714.Google Scholar
Bax, N., Carlton, J.T., Mathews-Amos, A., et al. (2001). The control of biological invasions in the world’s oceans. Conservation Biology, 15, 1234–46.CrossRefGoogle Scholar
Beaugrand, G., Reid, P.C., Ibañez, F., Lindley, J.A. & Edwards, M. (2002). Reorganization of North Atlantic marine copepod biodiversity and climate. Science, 296, 1692–4.Google Scholar
Bilkovic, D.M., Havens, K.J., Stanhope, D.M. & Angstadt, K.T. (2012). Use of fully biodegradable panels to reduce derelict pot threats to marine fauna. Conservation Biology, 26, 957–66.CrossRefGoogle ScholarPubMed
Blackmore, G. & Wang, W.-X. (2003). Comparison of metal accumulation in mussels at different local and global scales. Environmental Toxicology and Chemistry, 22, 388–95.Google Scholar
Boesch, D.F., Butler, J.N., Cacchione, D.A., et al. (1987). An assessment of the long-term environmental effects of U.S. offshore oil and gas development activities: future research needs. In Long-Term Environmental Effects of Offshore Oil and Gas Development, ed. Boesch, D.F. & Rabalais, N.N., pp. 153. London: Elsevier Applied Science Publishers Ltd.Google Scholar
Bolch, C.J.S. & de Salas, M.F. (2007). A review of the molecular evidence for ballast water introduction of the toxic dinoflagellates Gymnodinium catenatum and the Alexandriumtamarensis complex’ to Australasia. Harmful Algae, 6, 465–85.Google Scholar
BP (2015). Statistical Review of World Energy 2015. London: BP. Available at www.bp.com/statisticalreview (accessed 18 January 2016).Google Scholar
Briggs, J.C. (2012). Marine species invasions in estuaries and harbors. Marine Ecology Progress Series, 449, 297302.Google Scholar
Buesseler, K.O. (2012). Fishing for answers off Fukushima. Science, 338, 480–2.CrossRefGoogle ScholarPubMed
Buesseler, K O. (2014). Fukushima and ocean radioactivity. Oceanography, 27, 92105.CrossRefGoogle Scholar
Burkhardt-Holm, P. (2010). Endocrine disruptors and water quality: a state-of-the-art review. International Journal of Water Resources Development, 26, 477–93.Google Scholar
Carlton, J.T. (1999). The scale and ecological consequences of biological invasions in the world’s oceans. In Invasive Species and Biodiversity Management, ed. Sandlund, O.T., Schei, P.J. & Viken, A., pp. 195212. Dordrecht, Netherlands: Kluwer.Google Scholar
Carlton, J.T. & Ruiz, G.M. (2005). The magnitude and consequences of bioinvasions in marine ecosystems: implications for conservation biology. In Marine Conservation Biology: The Science of Maintaining the Sea’s Biodiversity, ed. Norse, E.A. & Crowder, L.B., pp. 123–48. Washington, DC: Island Press.Google Scholar
Clark, R.B. (2001). Marine Pollution, 5th edn. Oxford, UK: Clarendon Press.Google Scholar
Cole, M., Lindeque, P., Halsband, C. & Galloway, T.S. (2011). Microplastics as contaminants in the marine environment: a review. Marine Pollution Bulletin, 62, 2588–97.Google Scholar
Cooper, D.A. & Corcoran, P.L. (2010). Effects of mechanical and chemical processes on the degradation of plastic debris on the island of Kauai, Hawaii. Marine Pollution Bulletin, 60, 650–4.CrossRefGoogle ScholarPubMed
Corlett, R.T. (2015). The Anthropocene concept in ecology and conservation. Trends in Ecology & Evolution, 30, 3641.CrossRefGoogle ScholarPubMed
Costello, M.J., Coll, M., Danovaro, R., et al. (2010). A census of marine biodiversity knowledge, resources, and future challenges. PLoS ONE, 5, e12110.Google Scholar
Cózar, A., Sanz-Martín, M., Martí, E., et al. (2015). Plastic accumulation in the Mediterranean Sea. PLoS ONE, 10, e0121762.Google Scholar
Dahms, H.-U. & Lee, J.-S. (2010). UV radiation in marine ectotherms: molecular effects and responses. Aquatic Toxicology, 97, 314.Google Scholar
Davenport, J. & Davenport, J.L. (2006). The impact of tourism and personal leisure transport on coastal environments: a review. Estuarine, Coastal and Shelf Science, 67, 280–92.Google Scholar
David, M. (2015). Vessels and ballast water. In Global Maritime Transport and Ballast Water: Management Issues and Solutions, ed. David, M. & Gollasch, S., pp. 1334. Dordrecht, Netherlands: Springer.Google Scholar
David, M. & Gollasch, S. (2015). Ballast water management systems for vessels. In Global Maritime Transport and Ballast Water: Management Issues and Solutions, ed. David, M. & Gollasch, S., pp. 109–32. Dordrecht, Netherlands: Springer.CrossRefGoogle Scholar
Davis, W.J. (1993). Contamination of coastal versus open ocean surface waters: a brief meta-analysis. Marine Pollution Bulletin, 26, 128–34.CrossRefGoogle Scholar
Dayton, P.K., Thrush, S.F., Agardy, M.T. & Hofman, R.J. (1995). Environmental effects of marine fishing. Aquatic Conservation: Marine and Freshwater Ecosystems, 5, 205–32.Google Scholar
Derraik, J.G.B. (2002). The pollution of the marine environment by plastic debris: a review. Marine Pollution Bulletin, 44, 842–52.CrossRefGoogle ScholarPubMed
Dietz, T., Rosa, E.A. & York, R. (2007). Driving the human ecological footprint. Frontiers in Ecology and the Environment, 5, 1318.Google Scholar
Doney, S.C., Ruckelshaus, M., Duffy, J.E., et al. (2012). Climate change impacts on marine ecosystems. Annual Review of Marine Science, 4, 1137.Google Scholar
Drinkwater, K.F., Beaugrand, G., Kaeriyama, M., et al. (2010). On the processes linking climate to ecosystem changes. Journal of Marine Systems, 79, 374–88.Google Scholar
Dyoulgerov, M.F. (2000). Global legal instruments on the marine environment at the year 2000. In Seas at the Millennium: an Environmental Evaluation, ed. Sheppard, C., pp. 331–48. Oxford, UK: Elsevier Science Ltd.Google Scholar
Edgar, G.J., Stuart-Smith, R.D., Willis, T.J., et al. (2014). Global conservation outcomes depend on marine protected areas with five key features. Nature, 506, 216–20.Google Scholar
Eriksen, M., Lebreton, L.C.M., Carson, H.S., et al. (2014). Plastic pollution in the world’s oceans: more than 5 trillion plastic pieces weighing over 250,000 tons afloat at sea. PLoS ONE, 9, e111913.Google Scholar
Erlandson, J.M. & Rick, T.C. (2010). Archaeology meets marine ecology: the antiquity of maritime cultures and human impacts on marine fisheries and ecosystems. Annual Review of Marine Science, 2, 231–51.Google Scholar
Fabry, V.J., Seibel, B.A., Feely, R.A. & Orr, J.C. (2008). Impacts of ocean acidification on marine fauna and ecosystem processes. ICES Journal of Marine Science, 65, 414–32.Google Scholar
FAO (2016). The State of World Fisheries and Aquaculture 2016: Contributing to Food Security and Nutrition for All. Rome: FAO.Google Scholar
Feely, R.A., Sabine, C.L., Lee, K., et al. (2004). Impact of anthropogenic CO2 on the CaCO3 system in the oceans. Science, 305, 362–6.Google Scholar
Fowler, S.W. (1990). Critical review of selected heavy metal and chlorinated hydrocarbon concentrations in the marine environment. Marine Environmental Research, 29, 164.Google Scholar
Fowler, S.W. & Fisher, N.S. (2004). Radionuclides in the biosphere. In Marine Radioactivity, ed. Livingston, H.D., pp. 167203. Amsterdam: Elsevier.Google Scholar
Gabric, A.J. & Bell, P.R.F. (1993). Review of the effects of non-point nutrient loading on coastal ecosystems. Australian Journal of Marine and Freshwater Research, 44, 261–83.CrossRefGoogle Scholar
Gall, S.C. & Thompson, R.C. (2015). The impact of debris on marine life. Marine Pollution Bulletin, 92, 170–9.Google Scholar
Geller, J.B., Darling, J.A. & Carlton, J.T. (2010). Genetic perspectives on marine biological invasions. Annual Review of Marine Science, 2, 367–93.Google Scholar
Geller, J.B., Walton, E.D., Grosholz, E.D. & Ruiz, G.M. (1997). Cryptic invasions of the crab Carcinus detected by molecular phylogeography. Molecular Ecology, 6, 901–6.CrossRefGoogle ScholarPubMed
Gerges, M.A. (1994). Marine pollution monitoring, assessment and control: UNEP’s approach and strategy. Marine Pollution Bulletin, 28, 199210.Google Scholar
GESAMP (IMO/FAO/UNESCO/WMO/WHO/IAEA/UN/UNEP Joint Group of Experts on the Scientific Aspects of Marine Pollution) (1990a). The State of the Marine Environment. GESAMP Reports and Studies, 39, 111 pp.Google Scholar
GESAMP (IMO/FAO/UNESCO/WMO/WHO/IAEA/UN/UNEP Joint Group of Experts on the Scientific Aspects of Marine Pollution) (1990b). Review of Potentially Harmful Substances. Nutrients. GESAMP Reports and Studies, 34, 40 pp.Google Scholar
GESAMP (IMO/FAO/UNESCO/WMO/WHO/IAEA/UN/UNEP Joint Group of Experts on the Scientific Aspects of Marine Pollution) (1991). Global Strategies for Marine Environmental Protection. GESAMP Reports and Studies, 45, 36 pp.Google Scholar
GESAMP (IMO/FAO/UNESCO/WMO/WHO/IAEA/UN/UNEP Joint Group of Experts on the Scientific Aspects of Marine Pollution) (1993). Impact of Oil and Related Chemicals and Wastes on the Marine Environment. GESAMP Reports and Studies, 50, 180 pp.Google Scholar
Glasson, J., Therivel, R. & Chadwick, A., eds. (2005). Introduction to Environmental Impact Assessment, 3rd edn. London: Routledge.Google Scholar
Gollasch, S., Minchin, D. & David, M. (2015). The transfer of harmful aquatic organisms and pathogens with ballast water and their impacts. In Global Maritime Transport and Ballast Water: Management Issues and Solutions, ed. David, M. & Gollasch, S., pp. 3558. Dordrecht, Netherlands: Springer.CrossRefGoogle Scholar
Gordon, H.S. (1954). The economic theory of a common-property resource: the fishery. Journal of Political Economy, 62, 124–42.Google Scholar
Gray, J.S. (1992). Eutrophication in the sea. In Marine Eutrophication and Population Dynamics, ed. Colombo, G., Ferrari, I., Cecherelli, V.U. & Rossi, R., pp. 315. Fredensborg, Denmark: Olsen & Olsen.Google Scholar
Gregory, M.R. (1991). The hazards of persistent marine pollution: drift plastics and conservation islands. Journal of the Royal Society of New Zealand, 21, 83100.Google Scholar
Gregory, M.R. (1999). Plastics and South Pacific island shores: environmental implications. Ocean & Coastal Management, 42, 603–15.Google Scholar
Gregory, M.R. (2009). Environmental implications of plastic debris in marine settings–entanglement, ingestion, smothering, hangers-on, hitch-hiking and alien invasions. Philosophical Transactions of the Royal Society B, 364, 2013–25.Google Scholar
Gruber, N., Hauri, C., Lachkar, Z., et al. (2012). Rapid progression of ocean acidification in the California Current System. Science, 337, 220–3.Google Scholar
Guinotte, J.M. & Fabry, V.J. (2008). Ocean acidification and its potential effects on marine ecosystems. Annals of the New York Academy of Sciences, 1134, 320–42.Google Scholar
Häder, D.-P., Williamson, C.E., Wängberg, S.-Å., et al. (2015). Effects of UV radiation on aquatic ecosystems and interactions with other environmental factors. Photochemical & Photobiological Sciences, 14, 108–26.Google Scholar
Hall, S.J. (1999). The Effects of Fishing on Marine Ecosystems and Communities. Oxford, UK: Blackwell Science.Google Scholar
Hammer, J., Kraak, M.H.S. & Parsons, J.R. (2012). Plastics in the marine environment: the dark side of a modern gift. Reviews of Environmental Contamination and Toxicology, 220, 144.Google Scholar
Hansen, J., Ruedy, R., Sato, M. & Lo, K. (2010). Global surface temperature change. Reviews of Geophysics, 48, article RG4004.Google Scholar
Hansen, J., Sato, M., Hearty, P., et al. (2016). Ice melt, sea level rise and superstorms: evidence from paleoclimate data, climate modeling, and modern observations that 2 °C global warming could be dangerous. Atmospheric Chemistry and Physics, 16, 3761–812.Google Scholar
Hardin, G. (1968). The tragedy of the commons. Science, 162, 1243–8.Google Scholar
Harding, L.E. (1992). Measures of marine environmental quality. Marine Pollution Bulletin, 25, 23–7.Google Scholar
Harvell, C.D., Kim, K., Burkholder, J.M., et al. (1999). Emerging marine diseases – climate links and anthropogenic factors. Science, 285, 1505–10.Google Scholar
Hay, C.C., Morrow, E., Kopp, R.E. & Mitrovica, J.X. (2015). Probabilistic reanalysis of twentieth-century sea-level rise. Nature, 517, 481–4.Google Scholar
Hayes, K.R. & Sliwa, C. (2003). Identifying potential marine pests – a deductive approach applied to Australia. Marine Pollution Bulletin, 46, 91–8.Google Scholar
Heck, K.L. Jr. & Valentine, J.F. (2007). The primacy of top-down effects in shallow benthic ecosystems. Estuaries and Coasts, 30, 371–81.Google Scholar
Hoegh-Guldberg, O. (2011). The impact of climate change on coral reef ecosystems. In Coral Reefs: An Ecosystem in Transition, ed. Dubinsky, Z. & Stambler, N., pp. 391403. New York: Springer-Verlag.Google Scholar
Hoegh-Guldberg, O. & Bruno, J.F. (2010). The impact of climate change on the world’s marine ecosystems. Science, 328, 1523–8.Google Scholar
Howarth, R.W. (2008). Coastal nitrogen pollution: a review of sources and trends globally and regionally. Harmful Algae, 8, 1420.Google Scholar
Hunt, B. & Vincent, A.C.J. (2006). Scale and sustainability of marine bioprospecting for pharmaceuticals. Ambio, 35, 5764.Google Scholar
IAEA (2005). Worldwide Marine Radioactivity Studies (WOMARS): Radionuclide Levels in Oceans and Seas. IAEA-TECDOC-1429, 187 pp. Vienna: International Atomic Energy Agency.Google Scholar
IAIA (2010). Principles of environmental impact assessment best practice. International Association for Impact Assessment (www.iaia.org).Google Scholar
IPCC (2014). Climate Change 2014: Synthesis Report. Contribution of Working Groups I, II and III to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change (Core Writing Team, Pachauri, R.K. & Meyer, L.A. (eds.)). Geneva, Switzerland: IPCC.Google Scholar
Jackson, J.B.C., Kirby, M.X., Berger, W.H., et al. (2001). Historical overfishing and the recent collapse of coastal ecosystems. Science, 293, 629–38.Google Scholar
Jambeck, J.R., Geyer, R. & Wilcox, C., et al. (2015). Plastic waste inputs from land into the ocean. Science, 347, 768–71.Google Scholar
Jennings, S., Kaiser, M.J. & Reynolds, J.D. (2001). Marine Fisheries Ecology. Oxford, UK: Blackwell Science.Google Scholar
Johnson, S.W. (1994). Deposition of trawl web on an Alaska beach after implementation of MARPOL Annex V legislation. Marine Pollution Bulletin, 28, 477–81.CrossRefGoogle Scholar
Kite-Powell, H.L., Hoagland, P. & Jin, D. (1998). Policy, law, and public opposition: the prospects for abyssal ocean waste disposal in the United States. Journal of Marine Systems, 14, 377–96.Google Scholar
Kitzes, J., Wackernagel, M., Loh, J., et al. (2008). Shrink and share: humanity’s present and future Ecological Footprint. Philosophical Transactions of the Royal Society B, 363, 467–75.Google Scholar
Koslow, J.A. & Couture, J. (2013). Follow the fish. Nature, 502, 163–4.Google Scholar
Kroeker, K.J., Kordas, R.L., Crim, R., et al. (2013). Impacts of ocean acidification on marine organisms: quantifying sensitivities and interaction with warming. Global Change Biology, 19, 1884–96.Google Scholar
Lagring, R., Degraer, S., de Montpellier, G., et al. (2012). Twenty years of Belgian North Sea aerial surveillance: a quantitative analysis of results confirms effectiveness of international oil pollution legislation. Marine Pollution Bulletin, 64, 644–52.Google Scholar
Laist, D.W. (1987). Overview of the biological effects of lost and discarded plastic debris in the marine environment. Marine Pollution Bulletin, 18, 319–26.Google Scholar
Lester, J.N. (1990). Sewage and sewage sludge treatment. In Pollution: Causes, Effects, and Control, 2nd edn, ed. Harrison, R.M., pp. 3362. Cambridge, UK: The Royal Society of Chemistry.Google Scholar
Ling, S.D. (2008). Range expansion of a habitat-modifying species leads to loss of taxonomic diversity: a new and impoverished reef state. Oecologia, 156, 883–94.Google Scholar
Lobel, P.B., Belkhode, S.P., Jackson, S.E. & Longerich, H.P. (1990). Recent taxonomic discoveries concerning the mussel Mytilus: implications for biomonitoring. Archives of Environmental Contamination and Toxicology, 19, 508–12.Google Scholar
Loganathan, B.G. & Kannan, K. (1994). Global organochlorine contamination trends: an overview. Ambio, 23, 187–91.Google Scholar
Lotze, H.K. & Worm, B. (2008). Historical baselines for large marine animals. Trends in Ecology and Evolution, 24, 254–62.Google Scholar
Ludwig, D., Hilborn, R. & Walters, C. (1993). Uncertainty, resource exploitation, and conservation: lessons from history. Science, 260, 17 & 36.Google Scholar
MacKenzie, D. (2011). Operation clean-up. New Scientist, 212 (2836), 46–9.Google Scholar
Markert, A., Wehrmann, A. & Kröncke, I. (2010). Recently established Crassostrea-reefs versus native Mytilus-beds: differences in ecosystem engineering affects the macrofaunal communities (Wadden Sea of Lower Saxony, southern German Bight). Biological Invasions, 12, 1532.Google Scholar
Mason, M. (2003). Civil liability for oil pollution damage: examining the evolving scope for environmental compensation in the international regime. Marine Policy, 27, 112.Google Scholar
Mattson, G. (2006). MARPOL 73/78 and Annex I: an assessment of its effectiveness. Journal of International Wildlife Law and Policy, 9, 175–94.Google Scholar
Mayer, A.M.S., Glaser, K.B., Cuevas, C., et al. (2010). The odyssey of marine pharmaceuticals: a current pipeline perspective. Trends in Pharmacological Science, 31, 255–65.Google Scholar
Mayer-Pinto, M., Underwood, A.J., Tolhurst, T. & Coleman, R.A. (2010). Effects of metals on aquatic assemblages: what do we really know? Journal of Experimental Marine Biology and Ecology, 391, 19.Google Scholar
McCollin, T., Shanks, A.M. & Dunn, J. (2008). Changes in zooplankton abundance and diversity after ballast water exchange in regional seas. Marine Pollution Bulletin, 56, 834–44.Google Scholar
McDonald, J.H., Seed, R. & Koehn, R.K. (1991). Allozymes and morphometric characters of three species of Mytilus in the Northern and Southern Hemisphere. Marine Biology, 111, 323–33.Google Scholar
Mee, L.D. & Fowler, S.W. (1991). Organotin biocides in the marine environment: a managed transient? Marine Environmental Research, 32, 15.Google Scholar
Michel, J., Etkin, D.S., Gilbert, T., Urban, R., Waldron, J. & Blocksidge, C.T. (2005). Potentially polluting wrecks in marine waters. An issue paper prepared for the 2005 International Oil Spill Conference, Miami, Florida. 40 pp.Google Scholar
Molnar, J.L., Gamboa, R.L., Revenga, C. & Spalding, M.D. (2008). Assessing the global threat of invasive species to marine biodiversity. Frontiers in Ecology and the Environment, 6, 485–92.Google Scholar
Moore, C.J. (2008). Synthetic polymers in the marine environment: a rapidly increasing, long-term threat. Environmental Research, 108, 131–9.Google Scholar
National Research Council (2003). Oil in the Sea III: Inputs, Fates, and Effects. Washington, DC: National Academies Press.Google Scholar
Norse, E.A. (ed.) (1993). Global Marine Biological Diversity: a Strategy for Building Conservation into Decision Making. Washington, DC: Island Press.Google Scholar
Ocean Conservancy (2010). International Coastal Cleanup 2010 Report. Washington, DC: Ocean Conservancy.Google Scholar
Orams, M. (1999). Marine Tourism: Development, Impacts and Management. London: Routledge.Google Scholar
Pauly, D. (1995). Anecdotes and the shifting baseline syndrome of fisheries. Trends in Ecology and Evolution, 10, 430.Google Scholar
Pauly, D. & Zeller, D. (2016). Catch reconstructions reveal that global marine fisheries catches are higher than reported and declining. Nature Communications, 7, 10244.Google Scholar
Pinnegar, J.K. & Engelhard, G.H. (2008). The ‘shifting baseline’ phenomenon: a global perspective. Reviews in Fish Biology and Fisheries, 18, 116.Google Scholar
Pinnegar, J.K., Polunin, N.V.C., Francour, P., et al. (2000). Trophic cascades in benthic marine ecosystems: lessons for fisheries and protected-area management. Environmental Conservation, 27, 179200.CrossRefGoogle Scholar
Poloczanska, E.S., Brown, C.J., Sydeman, W.J., et al. (2013). Global imprint of climate change on marine life. Nature Climate Change, 3, 919–25.Google Scholar
Porte, C., Janer, G., Lorusso, L.C., et al. (2006). Endocrine disruptors in marine organisms: approaches and perspectives. Comparative Biochemistry and Physiology C, 143, 303–15.Google Scholar
Pörtner, H.-O. (2008). Ecosystem effects of ocean acidification in times of ocean warming: a physiologist’s view. Marine Ecology Progress Series, 373, 203–17.Google Scholar
Prater, A.J. & Lloyd, C.S. (1987). Birds. In Biological Surveys of Estuaries and Coasts, ed. Baker, J.M. & Wolff, W.J., pp. 374403. Cambridge, UK: Cambridge University Press.Google Scholar
Pruter, A.T. (1987). Sources, quantities, and distribution of persistent plastics in the marine environment. Marine Pollution Bulletin, 18, 305–10.Google Scholar
Rabalais, N.N. (2005). The potential for nutrient overenrichment to diminish marine biodiversity. In Marine Conservation Biology: The Science of Maintaining the Sea’s Biodiversity, ed. Norse, E.A. & Crowder, L.B., pp. 109–22. Washington, DC: Island Press.Google Scholar
Raffaelli, D. & Hawkins, S. (1996). Intertidal Ecology. London: Chapman & Hall.Google Scholar
Redford, D.P., Trulli, H.K. & Trulli, W.R. (1997). Sources of plastic pellets in the aquatic environment. In Marine Debris: Sources, Impacts, and Solutions, ed. Coe, J.M. & Rogers, D.B., pp. 335–43. New York: Springer-Verlag.Google Scholar
Rochman, C.M., Kross, S.M., Armstrong, J.B., et al. (2015). Scientific evidence supports a ban on microbeads. Environmental Science & Technology, 49, 10759−61.Google Scholar
Rogelj, J., den Elzen, M., Höhne, N., et al. (2016). Paris Agreement climate proposals need a boost to keep warming well below 2 °C. Nature, 534, 631–9.Google Scholar
Samiullah, Y. (1985). Biological effects of marine oil pollution. Oil & Petrochemical Pollution, 2, 235–64.Google Scholar
Seebens, H., Gastner, M.T. & Blasius, B. (2013). The risk of marine bioinvasion caused by global shipping. Ecology Letters, 16, 782–90.Google Scholar
Setälä, O., Fleming-Lehtinen, V. & Lehtiniemi, M. (2014). Ingestion and transfer of microplastics in the planktonic food web. Environmental Pollution, 185, 7783.Google Scholar
Sheppard, C. (1995). The shifting baseline syndrome. Marine Pollution Bulletin, 12, 766–7.Google Scholar
Simberloff, D., Martin, J.-L., Genovesi, P., et al. (2013). Impacts of biological invasions: what’s what and the way forward. Trends in Ecology & Evolution, 28, 5866.Google Scholar
Solomon, S., Haskins, J., Ivy, D.J. & Min, F. (2014). Fundamental differences between Arctic and Antarctic ozone depletion. Proceedings of the National Academy of Sciences, 111, 6220–5.Google Scholar
Solomon, S., Ivy, D.J., Kinnison, D., et al. (2016). Emergence of healing in the Antarctic ozone layer. Science, 353, 269–74.Google Scholar
Stachowicz, J.J., Whitlatch, R.B. & Osman, R.W. (1999). Species diversity and invasion resistance in a marine ecosystem. Science, 286, 1577–9.Google Scholar
Stuart-Smith, R.D., Edgar, G.J., Barrett, N.S., Kininmonth, S.J. & Bates, A.E. (2015). Thermal biases and vulnerability to warming in the world’s marine fauna. Nature, 528, 8892.Google Scholar
Taylor, P. (1993). The state of the marine environment: a critique of the work and role of the Joint Group of Experts on Scientific Aspects of Marine Pollution (GESAMP). Marine Pollution Bulletin, 26, 120–7.Google Scholar
Thorne-Miller, B. (1999). The Living Ocean: Understanding and Protecting Marine Biodiversity, 2nd edn. Washington, DC: Island Press.Google Scholar
Thrush, S.F., Hewitt, J.E., Norkko, A., Cummings, V.J. & Funnell, G.A. (2003). Macrobenthic recovery processes following catastrophic sedimentation on estuarine sandflats. Ecological Applications, 13, 1433–55.Google Scholar
Troost, K. (2010). Causes and effects of a highly successful marine invasion: case-study of the introduced Pacific oyster Crassostrea gigas in continental NW European estuaries. Journal of Sea Research, 64, 145–65.Google Scholar
UN (1983). The Law of the Sea: United Nations Convention on the Law of the Sea with Index and Final Act of the Third United Nations Conference on the Law of the Sea. New York: United Nations.Google Scholar
UN, Department of Economic and Social Affairs, Population Division (1999). The World at Six Billion. ESA/P/WP.154. New York: United Nations.Google Scholar
UN, Department of Economic and Social Affairs, Population Division (2015). World Population Prospects: The 2015 Revision, Key Findings and Advance Tables. Working Paper No. ESA/P/WP.241. New York: United Nations.Google Scholar
Underwood, A.J. (1992). Beyond BACI: the detection of environmental impacts on populations in the real, but variable, world. Journal of Experimental Marine Biology and Ecology, 161, 145–78.Google Scholar
UNEP (1995). Global Programme of Action for the Protection of the Marine Environment from Land-based Activities. Washington, DC: United Nations Environment Programme. 60 pp.Google Scholar
UNEP/GPA (2006). The State of the Marine Environment: Trends and Processes. The Hague: Coordination Office of the Global Programme of Action for the Protection of the Marine Environment from Land-based Activities of the United Nations Environment Programme.Google Scholar
UNFCCC Secretariat (2015). Adoption of the Paris Agreement. United Nations Framework Convention on Climate Change. FCCC/CP/2015/L.9/Rev.1.Google Scholar
Van Dyke, J.M. (1991). Protected marine areas and low-lying atolls. Ocean & Shoreline Management, 16, 87160.Google Scholar
van Sebille, E., Wilcox, C., Lebreton, L., et al. (2015). A global inventory of small floating plastic debris. Environmental Research Letters, 10, 124006.Google Scholar
Walpole, S.C., Prieto-Merino, D., Edwards, P., et al. (2012). The weight of nations: an estimation of adult human biomass. BMC Public Health, 12, article 439.Google Scholar
Wang, Z., Stout, S.A. & Fingas, M. (2006). Forensic fingerprinting of biomarkers for oil spill characterization and source identification. Environmental Forensics, 7, 105–46.Google Scholar
Warwick, R.M. (1988). The level of taxonomic discrimination required to detect pollution effects on marine benthic communities. Marine Pollution Bulletin, 19, 259–68.Google Scholar
Warwick, R.M. (1993). Environmental impact studies on marine communities: pragmatical considerations. Australian Journal of Ecology, 18, 6380.Google Scholar
Wells, P.G., Duce, R.A. & Huber, M.E. (2002). Caring for the sea – accomplishments, activities and future of the United Nations GESAMP (the Joint Group of Experts on the Scientific Aspects of Marine Environmental Protection). Ocean & Coastal Management, 45, 7789.Google Scholar
Wilson, J.G. (1988). The Biology of Estuarine Management. London: Croom Helm.Google Scholar
Winston, J.E. (1982). Drift plastic – an expanding niche for a marine invertebrate? Marine Pollution Bulletin, 13, 348–51.Google Scholar
Winston, J.E., Gregory, M.R. & Stevens, L.M. (1997). Encrusters, epibionts, and other biota associated with pelagic plastics: a review of biogeographical, environmental, and conservation issues. In Marine Debris: Sources, Impacts, and Solutions, ed. Coe, J.M. & Rogers, D.B., pp. 8197. New York: Springer-Verlag.Google Scholar
Woodall, L.C., Sanchez-Vidal, A., Canals, M., et al. (2014). The deep sea is a major sink for microplastic debris. Royal Society Open Science, 1, 140317.Google Scholar
Wright, S.L., Thompson, R.C. & Galloway, T.S. (2013). The physical impacts of microplastics on marine organisms: a review. Environmental Pollution, 178, 483–92.Google Scholar
Yablokov, A.V. (2005). Meta-analysis of the radioactive pollution of the ocean. In Strategic Management of Marine Ecosystems, ed. Levner, E., Linkov, I. & Proth, J.-M., pp. 1127. Dordrecht, Netherlands: Springer.Google Scholar
Zhang, P., Song, J. & Yuan, H. (2009). Persistent organic pollutant residues in the sediments and mollusks from the Bohai Sea coastal areas, North China: an overview. Environment International, 35, 632–46.Google Scholar

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  • Human Impacts
  • P. Keith Probert, University of Otago, New Zealand
  • Book: Marine Conservation
  • Online publication: 13 July 2017
  • Chapter DOI: https://doi.org/10.1017/9781139043588.003
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  • Human Impacts
  • P. Keith Probert, University of Otago, New Zealand
  • Book: Marine Conservation
  • Online publication: 13 July 2017
  • Chapter DOI: https://doi.org/10.1017/9781139043588.003
Available formats
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  • Human Impacts
  • P. Keith Probert, University of Otago, New Zealand
  • Book: Marine Conservation
  • Online publication: 13 July 2017
  • Chapter DOI: https://doi.org/10.1017/9781139043588.003
Available formats
×