{"id":1305,"date":"2023-10-16T21:34:21","date_gmt":"2023-10-17T01:34:21","guid":{"rendered":"https:\/\/pressbooks.bccampus.ca\/ewemodel\/?post_type=chapter&#038;p=1305"},"modified":"2025-10-30T08:58:23","modified_gmt":"2025-10-30T12:58:23","slug":"hypoxia-and-nutrient-loading","status":"publish","type":"chapter","link":"https:\/\/pressbooks.bccampus.ca\/ewemodel\/chapter\/hypoxia-and-nutrient-loading\/","title":{"raw":"Hypoxia and nutrient loading","rendered":"Hypoxia and nutrient loading"},"content":{"raw":"<p class=\"import-Normal\">A common problem in coastal ecosystems is the need to reduce excessive nutrient loads. Since the inflow of nutrients is also the reason why many coastal systems are so productive, food-web models are useful tools to simulate the effects of nutrient load reductions on fish and shellfish communities[footnote]Piroddi, C., Akoglu, E., Andonegi, E., Bentley, J.W., Celi\u0107, I., Coll, M., Dimarchopoulou, D., Friedland, R., de Mutsert, K., Girardin, R., Garcia-Gorriz, E., Grizzetti, B., Hernvann, P.-Y., Heymans, J.J., M\u00fcller-Karulis, B., Libralato, S., Lynam, C.P., Macias, D., Miladinova, S., Moullec, F., Palialexis, A., Parn, O., Serpetti, N., Solidoro, C., Steenbeek, J., Stips, A., Tomczak, M.T., Travers-Trolet, M., Tsikliras, A.C., 2021. Effects of Nutrient Management Scenarios on Marine Food Webs: A Pan-European Assessment in Support of the Marine Strategy Framework Directive. Front. Mar. Sci. 8. <a href=\"https:\/\/doi.org\/10.3389\/fmars.2021.596797\">https:\/\/doi.org\/10.3389\/fmars.2021.596797<\/a>[\/footnote].<\/p>\r\n<p class=\"import-Normal\">To be able to evaluate the trade-offs between the potential reduced productivity as a consequence of nutrient reduction through bottom-up effects, and increased productivity due to improved water quality, negative effects of eutrophication to coastal species need to be quantified and included in the model. Examples of this include hypoxia[footnote]De Mutsert, Kim, Steenbeek, J., Lewis, K., Buszowski, J., Cowan, J.H., Christensen, V., 2016. Exploring effects of hypoxia on fish and fisheries in the northern Gulf of Mexico using a dynamic spatially explicit ecosystem model. Ecological Modelling 331, 142\u2013150. <a href=\"https:\/\/doi.org\/10.1016\/j.ecolmodel.2015.10.013\">https:\/\/doi.org\/10.1016\/j.ecolmodel.2015.10.013<\/a>[\/footnote] [footnote]De Mutsert, K., Steenbeek, J., Cowan, J.H., Christensen, V., 2017. Using Ecosystem Modeling to Determine Hypoxia Effects on Fish and Fisheries, in: Justic, D., Rose, K.A., Hetland, R.D., Fennel, K. (Eds.), Modeling Coastal Hypoxia: Numerical Simulations of Patterns, Controls and Effects of Dissolved Oxygen Dynamics. Springer International Publishing, Cham, pp. 377\u2013400. <a href=\"https:\/\/doi.org\/10.1007\/978-3-319-54571-4_14\">https:\/\/doi.org\/10.1007\/978-3-319-54571-4_14<\/a>[\/footnote] and harmful algal blooms[footnote]Sagarese, S., Gray, A.M., Ainsworth, C.H., Chagaris, D., Mahmoudi, B., 2015. Red tide mortality on red grouper (Epinephelus morio) between 1980 and 2009 on the West Florida Shelf (<a href=\"https:\/\/sedarweb.org\/documents\/sedar-42-aw-01-red-tide-mortality-on-red-grouper-epinephelus-morio-between-1980-and-2009-on-the-west-florida-shelf\/\">SEDAR42- AW- 01<\/a>).[\/footnote]. The change in frequency and severity of such events under a nutrient reduction scenario needs to be simulated as well, which often requires hydrodynamic-biogeochemical-lower trophic level models that can then be coupled to an Ecospace model[footnote]Bauer, B., Meier, H.E.M., Casini, M., Hoff, A., Margo\u0144ski, P., Orio, A., Saraiva, S., Steenbeek, J., Tomczak, M.T., 2018. Reducing eutrophication increases spatial extent of communities supporting commercial fisheries: a model case study. ICES J Mar Sci 75, 1306\u20131317. <a href=\"https:\/\/doi.org\/10.1093\/icesjms\/fsy003\">https:\/\/doi.org\/10.1093\/icesjms\/fsy003<\/a>[\/footnote], or otherwise used to inform or constrain the nutrient flows in Ecospace[footnote]Libralato, S., Solidoro, C., 2009. Bridging biogeochemical and food web models for an End-to-End representation of marine ecosystem dynamics: The Venice lagoon case study. Ecological Modelling 220, 2960\u20132971. <a href=\"https:\/\/doi.org\/10.1016\/j.ecolmodel.2009.08.017\">https:\/\/doi.org\/10.1016\/j.ecolmodel.2009.08.017<\/a>[\/footnote].<\/p>\r\n<p class=\"import-Normal\">Ecospace can currently serve as a powerful coupled modeling framework to simulate effects on higher trophic levels of eutrophication, hypoxia and\/or HABs, and to simulate how nutrient load reductions affect these coastal systems and the species that reside in them. In Piroddi et al.[footnote]Piroddi et al. 2021. <em>op. cit.<\/em>[\/footnote], a pan-European marine modeling ensemble of fourteen high trophic level models was developed to assess the impact of eutrophication reduction in European Regional Seas. The study included Ecospace models for almost all European seas under two nutrient reduction management scenarios. The main goal was to test the impact of legislation and the management measures that have been implemented to halt nutrient overload in marine ecosystems. Results suggested that the proposed nutrient reduction measures may not have a significant impact on the structure and function of European marine ecosystems. Among the assessed criteria, the spawning stock biomass of commercially important fish stocks and the biomass of small pelagic fishes would be the most impacted, albeit with values lower than 2.5%. The impact on species diversity and trophic level indicators was even lower (Figure 1).<\/p>\r\n<p class=\"import-Normal\"><img class=\"\" src=\"https:\/\/pressbooks.bccampus.ca\/eweguide\/wp-content\/uploads\/sites\/2056\/2023\/10\/image17.png\" alt=\"image\" width=\"782\" height=\"294\" \/><\/p>\r\n<small>Figure 1. Box plots representing the mean change (%) and standard deviation for TL indicators: (A) Mean trophic level of the community (mTLco); (B) Mean Trophic Level of the Catch (TLc) for every MSFD region\/sub-region and smaller areas within an MSFD region\/sub-region. Yearly modelled data points are plotted as coloured circles (modified from Piroddi et al.,[footnote]Piroddi et al. 2021. <em>op. cit.<\/em>[\/footnote], which lists acronyms)<\/small>\r\n\r\n&nbsp;\r\n<div class=\"textbox textbox--examples\"><header class=\"textbox__header\">\r\n<p class=\"textbox__title\"><strong>Attribution<\/strong><\/p>\r\n\r\n<\/header>\r\n<div class=\"textbox__content\">\r\n<div class=\"textbox__content\">\r\n\r\nThis chapter is based on de Mutsert K, Marta Coll, Jeroen Steenbeek, Cameron Ainsworth, Joe Buszowski, David Chagaris, Villy Christensen, Sheila J.J. Heymans, Kristy A. Lewis, Simone Libralato, Greig Oldford, Chiara Piroddi, Giovanni Romagnoni, Natalia Serpetti, Michael Spence, Carl Walters. 2023. Advances in spatial-temporal coastal and marine ecosystem modeling using Ecopath with Ecosim and Ecospace. Treatise on Estuarine and Coastal Science, 2nd Edition. Elsevier. <a href=\"https:\/\/doi.org\/10.1016\/B978-0-323-90798-9.00035-4\">https:\/\/doi.org\/10.1016\/B978-0-323-90798-9.00035-4<\/a>, adapted with permission, License Number 5651431253138.\r\n\r\nRather than citing this chapter, please cite the source.\r\n\r\n<\/div>\r\n<\/div>\r\n<\/div>","rendered":"<p class=\"import-Normal\">A common problem in coastal ecosystems is the need to reduce excessive nutrient loads. Since the inflow of nutrients is also the reason why many coastal systems are so productive, food-web models are useful tools to simulate the effects of nutrient load reductions on fish and shellfish communities<a class=\"footnote\" title=\"Piroddi, C., Akoglu, E., Andonegi, E., Bentley, J.W., Celi\u0107, I., Coll, M., Dimarchopoulou, D., Friedland, R., de Mutsert, K., Girardin, R., Garcia-Gorriz, E., Grizzetti, B., Hernvann, P.-Y., Heymans, J.J., M\u00fcller-Karulis, B., Libralato, S., Lynam, C.P., Macias, D., Miladinova, S., Moullec, F., Palialexis, A., Parn, O., Serpetti, N., Solidoro, C., Steenbeek, J., Stips, A., Tomczak, M.T., Travers-Trolet, M., Tsikliras, A.C., 2021. Effects of Nutrient Management Scenarios on Marine Food Webs: A Pan-European Assessment in Support of the Marine Strategy Framework Directive. Front. Mar. Sci. 8. https:\/\/doi.org\/10.3389\/fmars.2021.596797\" id=\"return-footnote-1305-1\" href=\"#footnote-1305-1\" aria-label=\"Footnote 1\"><sup class=\"footnote\">[1]<\/sup><\/a>.<\/p>\n<p class=\"import-Normal\">To be able to evaluate the trade-offs between the potential reduced productivity as a consequence of nutrient reduction through bottom-up effects, and increased productivity due to improved water quality, negative effects of eutrophication to coastal species need to be quantified and included in the model. Examples of this include hypoxia<a class=\"footnote\" title=\"De Mutsert, Kim, Steenbeek, J., Lewis, K., Buszowski, J., Cowan, J.H., Christensen, V., 2016. Exploring effects of hypoxia on fish and fisheries in the northern Gulf of Mexico using a dynamic spatially explicit ecosystem model. Ecological Modelling 331, 142\u2013150. https:\/\/doi.org\/10.1016\/j.ecolmodel.2015.10.013\" id=\"return-footnote-1305-2\" href=\"#footnote-1305-2\" aria-label=\"Footnote 2\"><sup class=\"footnote\">[2]<\/sup><\/a> <a class=\"footnote\" title=\"De Mutsert, K., Steenbeek, J., Cowan, J.H., Christensen, V., 2017. Using Ecosystem Modeling to Determine Hypoxia Effects on Fish and Fisheries, in: Justic, D., Rose, K.A., Hetland, R.D., Fennel, K. (Eds.), Modeling Coastal Hypoxia: Numerical Simulations of Patterns, Controls and Effects of Dissolved Oxygen Dynamics. Springer International Publishing, Cham, pp. 377\u2013400. https:\/\/doi.org\/10.1007\/978-3-319-54571-4_14\" id=\"return-footnote-1305-3\" href=\"#footnote-1305-3\" aria-label=\"Footnote 3\"><sup class=\"footnote\">[3]<\/sup><\/a> and harmful algal blooms<a class=\"footnote\" title=\"Sagarese, S., Gray, A.M., Ainsworth, C.H., Chagaris, D., Mahmoudi, B., 2015. Red tide mortality on red grouper (Epinephelus morio) between 1980 and 2009 on the West Florida Shelf (SEDAR42- AW- 01).\" id=\"return-footnote-1305-4\" href=\"#footnote-1305-4\" aria-label=\"Footnote 4\"><sup class=\"footnote\">[4]<\/sup><\/a>. The change in frequency and severity of such events under a nutrient reduction scenario needs to be simulated as well, which often requires hydrodynamic-biogeochemical-lower trophic level models that can then be coupled to an Ecospace model<a class=\"footnote\" title=\"Bauer, B., Meier, H.E.M., Casini, M., Hoff, A., Margo\u0144ski, P., Orio, A., Saraiva, S., Steenbeek, J., Tomczak, M.T., 2018. Reducing eutrophication increases spatial extent of communities supporting commercial fisheries: a model case study. ICES J Mar Sci 75, 1306\u20131317. https:\/\/doi.org\/10.1093\/icesjms\/fsy003\" id=\"return-footnote-1305-5\" href=\"#footnote-1305-5\" aria-label=\"Footnote 5\"><sup class=\"footnote\">[5]<\/sup><\/a>, or otherwise used to inform or constrain the nutrient flows in Ecospace<a class=\"footnote\" title=\"Libralato, S., Solidoro, C., 2009. Bridging biogeochemical and food web models for an End-to-End representation of marine ecosystem dynamics: The Venice lagoon case study. Ecological Modelling 220, 2960\u20132971. https:\/\/doi.org\/10.1016\/j.ecolmodel.2009.08.017\" id=\"return-footnote-1305-6\" href=\"#footnote-1305-6\" aria-label=\"Footnote 6\"><sup class=\"footnote\">[6]<\/sup><\/a>.<\/p>\n<p class=\"import-Normal\">Ecospace can currently serve as a powerful coupled modeling framework to simulate effects on higher trophic levels of eutrophication, hypoxia and\/or HABs, and to simulate how nutrient load reductions affect these coastal systems and the species that reside in them. In Piroddi et al.<a class=\"footnote\" title=\"Piroddi et al. 2021. op. cit.\" id=\"return-footnote-1305-7\" href=\"#footnote-1305-7\" aria-label=\"Footnote 7\"><sup class=\"footnote\">[7]<\/sup><\/a>, a pan-European marine modeling ensemble of fourteen high trophic level models was developed to assess the impact of eutrophication reduction in European Regional Seas. The study included Ecospace models for almost all European seas under two nutrient reduction management scenarios. The main goal was to test the impact of legislation and the management measures that have been implemented to halt nutrient overload in marine ecosystems. Results suggested that the proposed nutrient reduction measures may not have a significant impact on the structure and function of European marine ecosystems. Among the assessed criteria, the spawning stock biomass of commercially important fish stocks and the biomass of small pelagic fishes would be the most impacted, albeit with values lower than 2.5%. The impact on species diversity and trophic level indicators was even lower (Figure 1).<\/p>\n<p class=\"import-Normal\"><img loading=\"lazy\" decoding=\"async\" class=\"\" src=\"https:\/\/pressbooks.bccampus.ca\/eweguide\/wp-content\/uploads\/sites\/2056\/2023\/10\/image17.png\" alt=\"image\" width=\"782\" height=\"294\" \/><\/p>\n<p><small>Figure 1. Box plots representing the mean change (%) and standard deviation for TL indicators: (A) Mean trophic level of the community (mTLco); (B) Mean Trophic Level of the Catch (TLc) for every MSFD region\/sub-region and smaller areas within an MSFD region\/sub-region. Yearly modelled data points are plotted as coloured circles (modified from Piroddi et al.,<a class=\"footnote\" title=\"Piroddi et al. 2021. op. cit.\" id=\"return-footnote-1305-8\" href=\"#footnote-1305-8\" aria-label=\"Footnote 8\"><sup class=\"footnote\">[8]<\/sup><\/a>, which lists acronyms)<\/small><\/p>\n<p>&nbsp;<\/p>\n<div class=\"textbox textbox--examples\">\n<header class=\"textbox__header\">\n<p class=\"textbox__title\"><strong>Attribution<\/strong><\/p>\n<\/header>\n<div class=\"textbox__content\">\n<div class=\"textbox__content\">\n<p>This chapter is based on de Mutsert K, Marta Coll, Jeroen Steenbeek, Cameron Ainsworth, Joe Buszowski, David Chagaris, Villy Christensen, Sheila J.J. Heymans, Kristy A. Lewis, Simone Libralato, Greig Oldford, Chiara Piroddi, Giovanni Romagnoni, Natalia Serpetti, Michael Spence, Carl Walters. 2023. Advances in spatial-temporal coastal and marine ecosystem modeling using Ecopath with Ecosim and Ecospace. Treatise on Estuarine and Coastal Science, 2nd Edition. Elsevier. <a href=\"https:\/\/doi.org\/10.1016\/B978-0-323-90798-9.00035-4\">https:\/\/doi.org\/10.1016\/B978-0-323-90798-9.00035-4<\/a>, adapted with permission, License Number 5651431253138.<\/p>\n<p>Rather than citing this chapter, please cite the source.<\/p>\n<\/div>\n<\/div>\n<\/div>\n<hr class=\"before-footnotes clear\" \/><div class=\"footnotes\"><ol><li id=\"footnote-1305-1\">Piroddi, C., Akoglu, E., Andonegi, E., Bentley, J.W., Celi\u0107, I., Coll, M., Dimarchopoulou, D., Friedland, R., de Mutsert, K., Girardin, R., Garcia-Gorriz, E., Grizzetti, B., Hernvann, P.-Y., Heymans, J.J., M\u00fcller-Karulis, B., Libralato, S., Lynam, C.P., Macias, D., Miladinova, S., Moullec, F., Palialexis, A., Parn, O., Serpetti, N., Solidoro, C., Steenbeek, J., Stips, A., Tomczak, M.T., Travers-Trolet, M., Tsikliras, A.C., 2021. Effects of Nutrient Management Scenarios on Marine Food Webs: A Pan-European Assessment in Support of the Marine Strategy Framework Directive. Front. Mar. Sci. 8. <a href=\"https:\/\/doi.org\/10.3389\/fmars.2021.596797\">https:\/\/doi.org\/10.3389\/fmars.2021.596797<\/a> <a href=\"#return-footnote-1305-1\" class=\"return-footnote\" aria-label=\"Return to footnote 1\">&crarr;<\/a><\/li><li id=\"footnote-1305-2\">De Mutsert, Kim, Steenbeek, J., Lewis, K., Buszowski, J., Cowan, J.H., Christensen, V., 2016. Exploring effects of hypoxia on fish and fisheries in the northern Gulf of Mexico using a dynamic spatially explicit ecosystem model. Ecological Modelling 331, 142\u2013150. <a href=\"https:\/\/doi.org\/10.1016\/j.ecolmodel.2015.10.013\">https:\/\/doi.org\/10.1016\/j.ecolmodel.2015.10.013<\/a> <a href=\"#return-footnote-1305-2\" class=\"return-footnote\" aria-label=\"Return to footnote 2\">&crarr;<\/a><\/li><li id=\"footnote-1305-3\">De Mutsert, K., Steenbeek, J., Cowan, J.H., Christensen, V., 2017. Using Ecosystem Modeling to Determine Hypoxia Effects on Fish and Fisheries, in: Justic, D., Rose, K.A., Hetland, R.D., Fennel, K. (Eds.), Modeling Coastal Hypoxia: Numerical Simulations of Patterns, Controls and Effects of Dissolved Oxygen Dynamics. Springer International Publishing, Cham, pp. 377\u2013400. <a href=\"https:\/\/doi.org\/10.1007\/978-3-319-54571-4_14\">https:\/\/doi.org\/10.1007\/978-3-319-54571-4_14<\/a> <a href=\"#return-footnote-1305-3\" class=\"return-footnote\" aria-label=\"Return to footnote 3\">&crarr;<\/a><\/li><li id=\"footnote-1305-4\">Sagarese, S., Gray, A.M., Ainsworth, C.H., Chagaris, D., Mahmoudi, B., 2015. Red tide mortality on red grouper (Epinephelus morio) between 1980 and 2009 on the West Florida Shelf (<a href=\"https:\/\/sedarweb.org\/documents\/sedar-42-aw-01-red-tide-mortality-on-red-grouper-epinephelus-morio-between-1980-and-2009-on-the-west-florida-shelf\/\">SEDAR42- AW- 01<\/a>). <a href=\"#return-footnote-1305-4\" class=\"return-footnote\" aria-label=\"Return to footnote 4\">&crarr;<\/a><\/li><li id=\"footnote-1305-5\">Bauer, B., Meier, H.E.M., Casini, M., Hoff, A., Margo\u0144ski, P., Orio, A., Saraiva, S., Steenbeek, J., Tomczak, M.T., 2018. Reducing eutrophication increases spatial extent of communities supporting commercial fisheries: a model case study. ICES J Mar Sci 75, 1306\u20131317. <a href=\"https:\/\/doi.org\/10.1093\/icesjms\/fsy003\">https:\/\/doi.org\/10.1093\/icesjms\/fsy003<\/a> <a href=\"#return-footnote-1305-5\" class=\"return-footnote\" aria-label=\"Return to footnote 5\">&crarr;<\/a><\/li><li id=\"footnote-1305-6\">Libralato, S., Solidoro, C., 2009. Bridging biogeochemical and food web models for an End-to-End representation of marine ecosystem dynamics: The Venice lagoon case study. Ecological Modelling 220, 2960\u20132971. <a href=\"https:\/\/doi.org\/10.1016\/j.ecolmodel.2009.08.017\">https:\/\/doi.org\/10.1016\/j.ecolmodel.2009.08.017<\/a> <a href=\"#return-footnote-1305-6\" class=\"return-footnote\" aria-label=\"Return to footnote 6\">&crarr;<\/a><\/li><li id=\"footnote-1305-7\">Piroddi et al. 2021. <em>op. cit.<\/em> <a href=\"#return-footnote-1305-7\" class=\"return-footnote\" aria-label=\"Return to footnote 7\">&crarr;<\/a><\/li><li id=\"footnote-1305-8\">Piroddi et al. 2021. <em>op. cit.<\/em> <a href=\"#return-footnote-1305-8\" class=\"return-footnote\" aria-label=\"Return to footnote 8\">&crarr;<\/a><\/li><\/ol><\/div>","protected":false},"author":1909,"menu_order":5,"template":"","meta":{"pb_show_title":"on","pb_short_title":"","pb_subtitle":"","pb_authors":[],"pb_section_license":""},"chapter-type":[49],"contributor":[],"license":[],"class_list":["post-1305","chapter","type-chapter","status-publish","hentry","chapter-type-numberless"],"part":1294,"_links":{"self":[{"href":"https:\/\/pressbooks.bccampus.ca\/ewemodel\/wp-json\/pressbooks\/v2\/chapters\/1305","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/pressbooks.bccampus.ca\/ewemodel\/wp-json\/pressbooks\/v2\/chapters"}],"about":[{"href":"https:\/\/pressbooks.bccampus.ca\/ewemodel\/wp-json\/wp\/v2\/types\/chapter"}],"author":[{"embeddable":true,"href":"https:\/\/pressbooks.bccampus.ca\/ewemodel\/wp-json\/wp\/v2\/users\/1909"}],"version-history":[{"count":11,"href":"https:\/\/pressbooks.bccampus.ca\/ewemodel\/wp-json\/pressbooks\/v2\/chapters\/1305\/revisions"}],"predecessor-version":[{"id":3185,"href":"https:\/\/pressbooks.bccampus.ca\/ewemodel\/wp-json\/pressbooks\/v2\/chapters\/1305\/revisions\/3185"}],"part":[{"href":"https:\/\/pressbooks.bccampus.ca\/ewemodel\/wp-json\/pressbooks\/v2\/parts\/1294"}],"metadata":[{"href":"https:\/\/pressbooks.bccampus.ca\/ewemodel\/wp-json\/pressbooks\/v2\/chapters\/1305\/metadata\/"}],"wp:attachment":[{"href":"https:\/\/pressbooks.bccampus.ca\/ewemodel\/wp-json\/wp\/v2\/media?parent=1305"}],"wp:term":[{"taxonomy":"chapter-type","embeddable":true,"href":"https:\/\/pressbooks.bccampus.ca\/ewemodel\/wp-json\/pressbooks\/v2\/chapter-type?post=1305"},{"taxonomy":"contributor","embeddable":true,"href":"https:\/\/pressbooks.bccampus.ca\/ewemodel\/wp-json\/wp\/v2\/contributor?post=1305"},{"taxonomy":"license","embeddable":true,"href":"https:\/\/pressbooks.bccampus.ca\/ewemodel\/wp-json\/wp\/v2\/license?post=1305"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}