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Full text: Interactive effects of multiple stressors in coastal ecosystems

Gazeau, F., Parker, L. M., Comeau, S., Gattuso, J.-P., O’Connor, W. A., Martin, S., and cu on growth and domoic acid production by Pseudo-nitzschia multiseries and Krishna et al. 10.3389/fmars.2024.1481734et al. (2013). Impacts of ocean acidi?cation on marine shelled molluscs. Mar. Biol. 160, 2207–2245. doi: 10.1007/s00227-013-2219-3 Pseudo-nitzschia australis. Limnology Oceanography 47, 515–526. doi: 10.4319/ lo.2002.47.2.0515References Abbate, M. C. L., Molinero, J. C., Guinder, V. A., Perillo, G. M., Freije, R. H., Sommer, U., et al. (2017). Time-varying environmental control of phytoplankton in a changing estuarine system. Sci. Total Environ. 609, 1390–1400. doi: 10.1016/ j.scitotenv.2017.08.002 Adams, S. M. (2003). Establishing causality between environmental stressors and effects on aquatic ecosystems. Hum. Ecol. Risk Assess. 9, 17–35. doi: 10.1080/713609850 Adams, S. M. (2005). Assessing cause and effect of multiple stressors on marine systems. Mar. pollut. Bull. 51, 649–657. doi: 10.1016/j.marpolbul.2004.11.040 Ainley, D. G., and Blight, L. K. (2009). Ecological repercussions of historical ?sh extraction from the southern ocean. Fish Fisheries 10, 13–38. doi: 10.1111/j.1467- 2979.2008.00293.x Barton, B. A. (2002). Stress in ?shes: a diversity of responses with particular reference to changes in circulating corticosteroids. Integr. Comp. Biol. 42, 517–525. doi: 10.1093/ icb/42.3.517 Bograd, S. J., Castro, C. G., Di Lorenzo, E., Palacios, D. M., Bailey, H., Gilly, W., et al. (2008). Oxygen declines and the shoaling of the hypoxic boundary in the california current. Geophysical Res. Lett. 35, 35–12. doi: 10.1029/2008GL034185 Borja, A. (2014). Grand challenges in marine ecosystems ecology. Frontiers in Marine Science. 1, 1. doi: 10.3389/fmars.2014.00001 Brooks, P. R., and Crowe, T. P. (2019). Combined effects of multiple stressors: New insights into the in?uence of timing and sequence. Front. Ecol. Evol. 7, 387. doi: 10.3389/fevo.2019.00387 Bruno, J. F., and Cardinale, B. J. (2008). Cascading effects of predator richness. Front. Ecol. Environ. 6, 539–546. doi: 10.1890/070136 Bundy, M., Breitburg, D. L., and Sellner, K. G. (2003). The responses of patuxent river upper trophic levels to nutrient and trace element induced changes in the lower food web. Estuaries 26, 365–384. doi: 10.1007/BF02695974 Carrier-Belleau, C., Drolet, D., McKindsey, C. W., and Archambault, P. (2021). Environmental stressors, complex interactions and marine benthic communities’ responses. Sci. Rep. 11, 4194. doi: 10.1038/s41598-021-83533-1 Carstensen, J., Andersen, J. H., Gustafsson, B. G., and Conley, D. J. (2014). Deoxygenation of the baltic sea during the last century. Proc. Natl. Acad. Sci. 111, 5628–5633. doi: 10.1073/pnas.1323156111 Church, T., Sommer?eld, C., Velinsky, D., Point, D., Benoit, C., Amouroux, D., et al. (2006). Marsh sediments as records of sedimentation, eutrophication and metal pollution in the urban delaware estuary. Mar. Chem. 102, 72–95. doi: 10.1016/ j.marchem.2005.10.026 Cloern, J. E. (2001). Our evolving conceptual model of the coastal eutrophication problem. Mar. Ecol. Prog. Ser. 210, 223–253. doi: 10.3354/meps210223 Conley, D. J., Carstensen, J., Vaquer-Sunyer, R., and Duarte, C. M. (2009). “Ecosystem Thresholds with Hypoxia,” in Eutrophication in Coastal Ecosystems: Towards Better Understanding and Management Strategies Selected Papers from the Second International Symposium on Research and Management of Eutrophication in Coastal Ecosystems (Springer, Nyborg, Denmark), 21–29. Cornwall, C. E., and Eddy, T. D. (2015). Effects of near-future ocean acidi?cation, ?shing, and marine protection on a temperate coastal ecosystem. Conserv. Biol. 29, 207–215. doi: 10.1111/cobi.2015.29.issue-1 Co?te?, I. M., Darling, E. S., and Brown, C. J. (2016). Interactions among ecosystem stressors and their importance in conservation. Proc. R. Soc. B: Biol. Sci. 283, 20152592. doi: 10.1098/rspb.2015.2592 Crain, C. M., Kroeker, K., and Halpern, B. S. (2008). Interactive and cumulative effects of multiple human stressors in marine systems. Ecol. Lett. 11, 1304–1315. doi: 10.1111/j.1461-0248.2008.01253.x Elliott, M., and Quintino, V. (2007). The estuarine quality paradox, environmental homeostasis and the dif?culty of detecting anthropogenic stress in naturally stressed areas. Mar. pollut. Bull. 54, 640–645. doi: 10.1016/j.marpolbul.2007.02.003 Eriksson, S. P., Hernroth, B., and Baden, S. P. (2013). “Stress Biology and Immunology in Nephrops Norvegicus,” in Advances in Marine Biology, vol. 64. (Amsterdam, Academic Press: Elsevier), 149–200. Fitzer, S. C., Vittert, L., Bowman, A., Kamenos, N. A., Phoenix, V. R., and Cusack, M. (2015). Ocean acidi?cation and temperature increase impact mussel shell shape and thickness: problematic for protection? Ecol. Evol. 5, 4875–4884. doi: 10.1002/ ece3.2015.5.issue-21 Garnier, A., Pennekamp, F., Lemoine, M., and Petchey, O. L. (2017). Temporal scale dependent interactions between multiple environmental disturbances in microcosm ecosystems. Global Change Biol. 23, 5237–5248. doi: 10.1111/gcb.2017.23.issue-12 Gazeau, F., Alliouane, S., Bock, C., Bramanti, L., Lo?pez Correa, M., Gentile, M., et al. (2014). Impact of ocean acidi?cation and warming on the mediterranean mussel (Mytilus galloprovincialis). Front. Mar. Sci. 1, 62. doi: 10.3389/fmars.2014.00062Frontiers in Marine Science 11Giomi, F., and Pörtner, H.-O. (2013). A role for haemolymph oxygen capacity in heat tolerance of eurythermal crabs. Front. Physiol. 4, 110. doi: 10.3389/fphys.2013.00110 Gissi, E., Manea, E., Mazaris, A. D., Fraschetti, S., Almpanidou, V., Bevilacqua, S., et al. (2021). A review of the combined effects of climate change and other local human stressors on the marine environment. Sci. Total Environ. 755, 142564. doi: 10.1016/ j.scitotenv.2020.142564 Gladstone-Gallagher, R. V., Thrush, S. F., Low, J. M., Pilditch, C. A., Ellis, J. I., and Hewitt, J. E. (2023). Toward a network perspective in coastal ecosystem management. J. Environ. Manage. 346, 119007. doi: 10.1016/j.jenvman.2023.119007 Grantham, B. A., Chan, F., Nielsen, K. J., Fox, D. S., Barth, J. A., Huyer, A., et al. (2004). Upwelling-driven nearshore hypoxia signals ecosystem and oceanographic changes in the northeast Paci?c. Nature 429, 749–754. doi: 10.1038/nature02605 Griffen, B. D., Belgrad, B. A., Cannizzo, Z. J., Knotts, E. R., and Hancock, E. R. (2016). Rethinking our approach to multiple stressor studies in marine environments. Mar. Ecol. Prog. Ser. 543, 273–281. doi: 10.3354/meps11595 Grif?ths, J. R., Kadin, M., Nascimento, F. J., Tamelander, T., Törnroos, A., Bonaglia, S., et al. (2017). The importance of benthic–pelagic coupling for marine ecosystem functioning in a changing world. Global Change Biol. 23, 2179–2196. doi: 10.1111/ gcb.2017.23.issue-6 Halpern, B. S., Selkoe, K. A., Micheli, F., and Kappel, C. V. (2007). Evaluating and ranking the vulnerability of global marine ecosystems to anthropogenic threats. Conserv. Biol. 21, 1301–1315. doi: 10.1111/j.1523-1739.2007.00752.x He, Q., and Silliman, B. R. (2019). Climate change, human impacts, and coastal ecosystems in the anthropocene. Curr. Biol. 29, R1021–R1035. doi: 10.1016/ j.cub.2019.08.042 Heiden, J. P., Thoms, S., Bischof, K., and Trimborn, S. (2018). Ocean acidi?cation stimulates particulate organic carbon accumulation in two antarctic diatom species under moderate and high natural solar radiation. J. Phycology 54, 505–517. doi: 10.1111/jpy.2018.54.issue-4 Henson, S. A., Beaulieu, C., Ilyina, T., John, J. G., Long, M., Se?fe?rian, R., et al. (2017). Rapid emergence of climate change in environmental drivers of marine ecosystems. Nat. Commun. 8, 14682. doi: 10.1038/ncomms14682 Hewitt, J. E., Ellis, J. I., and Thrush, S. F. (2016). Multiple stressors, nonlinear effects and the implications of climate change impacts on marine coastal ecosystems. Global Change Biol. 22, 2665–2675. doi: 10.1111/gcb.2016.22.issue-8 Hodgson, E. E., and Halpern, B. S. (2019). Investigating cumulative effects across ecological scales. Conserv. Biol. 33, 22–32. doi: 10.1111/cobi.13125 Howarth, R., Chan, F., Conley, D. J., Garnier, J., Doney, S. C., Marino, R., et al. (2011). Coupled biogeochemical cycles: eutrophication and hypoxia in temperate estuaries and coastal marine ecosystems. Front. Ecol. Environ. 9, 18–26. doi: 10.1890/ 100008 Hughes, B. B., Levey, M. D., Fountain, M. C., Carlisle, A. B., Chavez, F. P., and Gleason, M. G. (2015). Climate mediates hypoxic stress on ?sh diversity and nursery function at the land–sea interface. Proc. Natl. Acad. Sci. 112, 8025–8030. doi: 10.1073/ pnas.1505815112 Jackson, M. C., Loewen, C. J., Vinebrooke, R. D., and Chimimba, C. T. (2016). Net effects of multiple stressors in freshwater ecosystems: a meta-analysis. Global Change Biol. 22, 180–189. doi: 10.1111/gcb.2016.22.issue-1 Khan, F. U., Hu, M., Kong, H., Shang, Y., Wang, T., Wang, X., et al. (2020). Ocean acidi?cation, hypoxia and warming impair digestive parameters of marine mussels. Chemosphere 256, 127096. doi: 10.1016/j.chemosphere.2020.127096 King, O. C., van de Merwe, J. P., Campbell, M. D., Smith, R. A., Warne, M. S. J., and Brown, C. J. (2022). Interactions among multiple stressors vary with exposure duration and biological response. Proc. R. Soc. B 289, 20220348. doi: 10.1098/rspb.2022.0348 Kroeker, K. J., Gaylord, B., Hill, T. M., Hosfelt, J. D., Miller, S. H., and Sanford, E. (2014). The role of temperature in determining species’ vulnerability to ocean acidi?cation: a case study using mytilus galloprovincialis. PloS One 9, e100353. doi: 10.1371/journal.pone.0100353 Lehtiniemi, M., Engström-Öst, J., and Viitasalo, M. (2005). Turbidity decreases anti- predator behaviour in pike larvae, esox lucius. Environ. Biol. Fishes 73, 1–8. doi: 10.1007/s10641-004-5568-4 Lin, H., Li, H., Yang, X., Xu, Z., Tong, Y., and Yu, X. (2020). Comprehensive investigation and assessment of nutrient and heavy metal contamination in the surface water of coastal Bohai sea in China. J. Ocean Univ. China 19, 843–852. doi: 10.1007/ s11802-020-4283-x Lu, X., Wang, Z., Guo, X., Gu, Y., Liang, W., and Liu, L. (2017). Impacts of metal contamination and eutrophication on dino?agellate cyst assemblages along the Guangdong coast of southern China. Mar. pollut. Bull. 120, 239–249. doi: 10.1016/ j.marpolbul.2017.05.032 Maldonado, M. T., Hughes, M. P., Rue, E. L., and Wells, M. L. (2002). The effect of fefrontiersin.org
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