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Forecasting the combined effects of anticipated climate change and agricultural conservation practices on fish recruitment dynamics in Lake Erie

dc.contributor.authorDippold, David A.
dc.contributor.authorAloysius, Noel R.
dc.contributor.authorKeitzer, Steven Conor
dc.contributor.authorYen, Haw
dc.contributor.authorArnold, Jeffrey G.
dc.contributor.authorDaggupati, Prasad
dc.contributor.authorFraker, Michael E.
dc.contributor.authorMartin, Jay F.
dc.contributor.authorRobertson, Dale M.
dc.contributor.authorSowa, Scott P.
dc.contributor.authorJohnson, Mari‐vaughn V.
dc.contributor.authorWhite, Mike J.
dc.contributor.authorLudsin, Stuart A.
dc.date.accessioned2020-09-02T14:58:55Z
dc.date.availableWITHHELD_13_MONTHS
dc.date.available2020-09-02T14:58:55Z
dc.date.issued2020-09
dc.identifier.citationDippold, David A.; Aloysius, Noel R.; Keitzer, Steven Conor; Yen, Haw; Arnold, Jeffrey G.; Daggupati, Prasad; Fraker, Michael E.; Martin, Jay F.; Robertson, Dale M.; Sowa, Scott P.; Johnson, Mari‐vaughn V. ; White, Mike J.; Ludsin, Stuart A. (2020). "Forecasting the combined effects of anticipated climate change and agricultural conservation practices on fish recruitment dynamics in Lake Erie." Freshwater Biology 65(9): 1487-1508.
dc.identifier.issn0046-5070
dc.identifier.issn1365-2427
dc.identifier.urihttps://hdl.handle.net/2027.42/156436
dc.description.abstractMany aquatic ecosystems are experiencing multiple anthropogenic stressors that threaten their ability to support ecologically and economically important fish species. Two of the most ubiquitous stressors are climate change and non- point source nutrient pollution.Agricultural conservation practices (ACPs, i.e. farming practices that reduce runoff, prevent erosion, and curb excessive nutrient loading) offer a potential means to mitigate the negative effects of non- point source pollution on fish populations. However, our understanding of how ACP implementation amidst a changing climate will affect fish production in large ecosystems that receive substantial upstream sediment and nutrient inputs remains incomplete.Towards this end, we explored how anticipated climate change and the implementation of realistic ACPs might alter the recruitment dynamics of three fish populations (native walleye Sander vitreus and yellow perch Perca flavescens and invasive white perch Morone americana) in the highly productive, dynamic west basin of Lake Erie. We projected future (2020- 2065) recruitment under different combinations of anticipated climate change (n = 2 levels) and ACP implementation (n = 4 levels) in the western Lake Erie catchment using predictive biological models driven by forecasted winter severity, spring warming rate, and Maumee River total phosphorus loads that were generated from linked climate, catchment- hydrology, and agricultural- practice- simulation models.In general, our models projected reduced walleye and yellow perch recruitment whereas invasive white perch recruitment was projected to remain stable or increase relative to the recent past. Our modelling also suggests the potential for trade- offs, as ACP implementation was projected to reduce yellow perch recruitment with anticipated climate change.Overall, our study presents a useful modelling framework to forecast fish recruitment in Lake Erie and elsewhere, as well as offering projections and new avenues of research that could help resource management agencies and policy- makers develop adaptive and resilient management strategies in the face of anticipated climate and land- management change.
dc.publisherWiley Periodicals, Inc.
dc.publisherWayne State University Press
dc.subject.othermultiple stressors
dc.subject.otherpercid
dc.subject.otherfisheries management
dc.subject.othereutrophication
dc.subject.otherclimate warming
dc.titleForecasting the combined effects of anticipated climate change and agricultural conservation practices on fish recruitment dynamics in Lake Erie
dc.typeArticle
dc.rights.robotsIndexNoFollow
dc.subject.hlbsecondlevelEcology and Evolutionary Biology
dc.subject.hlbtoplevelScience
dc.description.peerreviewedPeer Reviewed
dc.description.bitstreamurlhttp://deepblue.lib.umich.edu/bitstream/2027.42/156436/2/fwb13515.pdfen_US
dc.description.bitstreamurlhttp://deepblue.lib.umich.edu/bitstream/2027.42/156436/1/fwb13515_am.pdfen_US
dc.identifier.doi10.1111/fwb.13515
dc.identifier.sourceFreshwater Biology
dc.identifier.citedreferencePritt, J. J., Roseman, E. F., & O’Brien, T. P. ( 2014 ). Mechanisms driving recruitment variability in fish: Comparisons between the Laurentian Great Lakes and marine systems. ICES Journal of Marine Science, 71 ( 8 ), 2252 - 2267.
dc.identifier.citedreferenceReichert, J. M., Fryer, B. J., Pangle, K. L., Johnson, T. B., Tyson, J. T., Drelich, A. B., & Ludsin, S. A. ( 2010 ). River- plume use during the pelagic larval stage benefits recruitment of a lentic fish. Canadian Journal of Fisheries and Aquatic Sciences, 67 ( 6 ), 987 - 1004.
dc.identifier.citedreferenceRichards, R. P., Baker, D. B., & Crumrine, J. P. ( 2009 ). Improved water quality in Ohio tributaries to Lake Erie: A consequence of conservation practices. Journal of Soil and Water Conservation, 64 ( 3 ), 200 - 211.
dc.identifier.citedreferenceRoberts, J. J., Höök, T. O., Ludsin, S. A., Pothoven, S. A., Vanderploeg, H. A., & Brandt, S. B. ( 2009 ). Effects of hypolimnetic hypoxia on foraging and distributions of Lake Erie yellow perch. Journal of Experimental Marine Biology and Ecology, 381, S132 - S142.
dc.identifier.citedreferenceRoseman, E. F., Taylor, W. W., Hayes, D. B., Haas, R. C., Davies, D. H., & Mackey, S. D. ( 1999 ). Influence of physical processes on the early life history stages of walleye ( Stizostedion vitreum ) in western Lake Erie. Ecosystem approaches for fisheries management. University of Alaska Sea.
dc.identifier.citedreferenceRoseman, E. F., Taylor, W. W., Hayes, D. B., Haas, R. C., Knight, R. L., & Paxton, K. O. ( 1996 ). Walleye egg deposition and survival on reefs in Western Lake Erie (USA). Annales Zoologici Fennici (pp. 341- 351). Finnish Zoological and Botanical Publishing Board.
dc.identifier.citedreferenceScavia, D., David Allan, J., Arend, K. K., Bartell, S., Beletsky, D., Bosch, N. S., - ¦ Zhou, Y. ( 2014 ). Assessing and addressing the re- eutrophication of Lake Erie: Central basin hypoxia. Journal of Great Lakes Research, 40 ( 2 ), 226 - 246.
dc.identifier.citedreferenceSchaeffer, J. S., & Margraf, F. J. ( 1986 ). Population characteristics of the invading white perch ( Morone americana ) in western Lake Erie. Journal of Great Lakes Research, 12 ( 2 ), 127 - 131.
dc.identifier.citedreferenceSchaeffer, J. S., & Margraf, F. J. ( 1987 ). Predation on fish eggs by white perch, Morone americana, in western Lake Erie. Environmental Biology of Fishes, 18 ( 1 ), 77 - 80.
dc.identifier.citedreferenceSchindler, D. E., & Hilborn, R. ( 2015 ). Prediction, precaution, and policy under global change. Science, 347 ( 6225 ), 953 - 954.
dc.identifier.citedreferenceSharma, S., Jackson, D. A., Minns, C. K., & Shuter, B. J. ( 2007 ). Will northern fish populations be in hot water because of climate change? Global Change Biology, 13 ( 10 ), 2052 - 2064.
dc.identifier.citedreferenceSharma, S., Vander Zanden, M. J., Magnuson, J. J., & Lyons, J. ( 2011 ). Comparing climate change and species invasions as drivers of coldwater fish population extirpations. PLoS ONE, 6 ( 8 ), e22906.
dc.identifier.citedreferenceShaw, S. L., Sass, G. G., & VanDeHey, J. A. ( 2018 ). Maternal effects better predict walleye recruitment in Escanaba Lake, Wisconsin, 1957- 2015: Implications for regulations. Canadian Journal of Fisheries and Aquatic Sciences, 75 ( 12 ), 2320 - 2331.
dc.identifier.citedreferenceShuter, B. J., & Koonce, J. F. ( 1977 ). A dynamic model of the western Lake Erie walleye ( Stizostedion vitreum vitreum ) population. Journal of the Fisheries Board of Canada, 34 ( 10 ), 1972 - 1982.
dc.identifier.citedreferenceShuter, B. J., Minns, C. K., & Lester, N. ( 2002 ). Climate change, freshwater fish, and fisheries: Case studies from Ontario and their use in assessing potential impacts. American Fisheries Society Symposium (pp. 77- 88). American Fisheries Society.
dc.identifier.citedreferenceSimberloff, D., & Gibbons, L. ( 2004 ). Now you see them, now you don’t!- population crashes of established introduced species. Biological Invasions, 6 ( 2 ), 161 - 172.
dc.identifier.citedreferenceTyson, J. T., Johnson, T. B., Knight, C. T., & Bur, M. T. ( 2006 ). Intercalibration of research survey vessels on Lake Erie. North American Journal of Fisheries Management, 26 ( 3 ), 559 - 570.
dc.identifier.citedreferenceUSDA NRCS ( 2011 ). Conservation Effects Assessment Project. Assessment of the Effects of Conservation Practices on Cultivated Cropland in the Great Lakes Region. United States Department of Agricultural Natural Resources Conservation Service (172 pp.).
dc.identifier.citedreferenceVan Zuiden, T. M., Chen, M. M., Stefanoff, S., Lopez, L., & Sharma, S. ( 2016 ). Projected impacts of climate change on three freshwater fishes and potential novel competitive interactions. Diversity and Distributions, 22 ( 5 ), 603 - 614.
dc.identifier.citedreferenceVandergoot, C. S., Cook, H. A., Thomas, M. V., Einhouse, D. W., & Murray, C. ( 2010 ). Status of walleye in western Lake Erie, 1985- 2006. In Status of Walleye in the Great Lakes: Proceedings of the 2006 Symposium: Great Lakes Fish. Comm. Tech. Rep (Vol. 69, pp. 123- 150).
dc.identifier.citedreferenceWang, X., Kannan, N., Santhi, C., Potter, S. R., Williams, J. R., & Arnold, J. G. ( 2011 ). Integrating APEX output for cultivated cropland with SWAT simulation for regional modeling. Transactions of the ASABE, 54 ( 4 ), 1281 - 1298.
dc.identifier.citedreferenceWatson, S. B., Miller, C., Arhonditsis, G., Boyer, G. L., Carmichael, W., Charlton, M. N., - ¦ Wilhelm, S. W. ( 2016 ). The re- eutrophication of Lake Erie: Harmful algal blooms and hypoxia. Harmful Algae, 56, 44 - 66.
dc.identifier.citedreferenceWiley, M., Hyndman, D., Pijanowski, B. C., Kendall, A., Riseng, C., Rutherford, E., - ¦ Koches, J. ( 2010 ). A multi- modeling approach to evaluate impacts of global change on river ecosystems. Hydrobiologia, 657 ( 1 ), 243 - 262.
dc.identifier.citedreferenceWilliams, J. R., Izaurralde, R. C., & Steglich, E. M. ( 2008 ). Agricultural policy/environmental extender model. Theoretical Documentation, Version, 604, 2008- 2017.
dc.identifier.citedreferenceWilliamson, M. ( 1996 ). Biological invasions, (Vol. 15 ). Berlin: Springer Science & Business Media.
dc.identifier.citedreferenceWilson, R. S., Beetstra, M. A., Reutter, J. M., Hesse, G., Fussell, K. M. D. V., Johnson, L. T., - ¦ Winslow, C. ( 2019 ). Commentary: Achieving phosphorus reduction targets for Lake Erie. Journal of Great Lakes Research, 45 ( 1 ), 4 - 11.
dc.identifier.citedreferenceWood, S., & Wood, M. S. ( 2015 ). Package - mgcv- . R package version, 1, 29.
dc.identifier.citedreferenceWTG Walleye Task Group ( 2017 ). Report of the Lake Erie Walleye Task Group to the Standing Technical Committee, Lake Erie Committee. Great Lakes Fishery Commission, Ann Arbor, MI, USA.
dc.identifier.citedreferenceYen, H., White, M. J., Arnold, J. G., Keitzer, S. C., Johnson, M.- V., Atwood, J. D., - ¦ Rewa, C. A. ( 2016 ). Western Lake Erie Basin: Soft- data- constrained, NHDPlus resolution watershed modeling and exploration of applicable conservation scenarios. Science of the Total Environment, 569, 1265 - 1281.
dc.identifier.citedreferenceZhang, F., Reid, K. B., & Nudds, T. D. ( 2016 ). Relative effects of biotic and abiotic factors during early life history on recruitment dynamics: A case study. Canadian Journal of Fisheries and Aquatic Sciences, 74 ( 7 ), 1125 - 1134.
dc.identifier.citedreferenceZhang, F., Reid, K. B., & Nudds, T. D. ( 2018 ). Effects of walleye predation on variation in the stock- recruitment relationship of Lake Erie yellow perch. Journal of Great Lakes Research, 44 ( 4 ), 805 - 812.
dc.identifier.citedreferenceZhao, Y., Jones, M. L., Shuter, B. J., & Roseman, E. F. ( 2009 ). A biophysical model of Lake Erie walleye ( Sander vitreus ) explains interannual variations in recruitment. Canadian Journal of Fisheries and Aquatic Sciences, 66 ( 1 ), 114- 125.
dc.identifier.citedreferenceZhao, Y., Kocovsky, P. M., & Madenjian, C. P. ( 2013 ). Development of a stock- recruitment model and assessment of biological reference points for the Lake Erie Walleye fishery. North American Journal of Fisheries Management, 33 ( 5 ), 956 - 964.
dc.identifier.citedreferenceZuur, A., Ieno, E. N., Walker, N., Saveliev, A. A., & Smith, G. M. ( 2009 ). Mixed effects models and extensions in ecology with R. Berlin: Springer Science & Business Media.
dc.identifier.citedreferenceAdams, G. D., Leaf, R. T., Wu, W., & Hernandez, F. J. ( 2018 ). Environmentally driven fluctuations in condition factor of adult Gulf menhaden ( Brevoortia patronus ) in the northern Gulf of Mexico. ICES Journal of Marine Science, 75 ( 4 ), 1269 - 1279.
dc.identifier.citedreferenceAlofs, K. M., Jackson, D. A., & Lester, N. P. ( 2014 ). Ontario freshwater fishes demonstrate differing range- boundary shifts in a warming climate. Diversity and Distributions, 20 ( 2 ), 123 - 136.
dc.identifier.citedreferenceAnderson, D. R., & Burnham, K. P. ( 2002 ). Avoiding pitfalls when using information- theoretic methods. The Journal of Wildlife Management, 66 ( 3 ), 912 - 918. https://doi.org/10.2307/3803155.
dc.identifier.citedreferenceArnold, J. G., Srinivasan, R., Muttiah, R. S., & Williams, J. R. ( 1998 ). Large area hydrologic modeling and assessment part I: Model development 1. JAWRA Journal of the American Water Resources Association, 34 ( 1 ), 73 - 89.
dc.identifier.citedreferenceArvai, J., Bridge, G., Dolsak, N., Franzese, R., Koontz, T., Luginbuhl, A., - ¦ Thompson, A. ( 2006 ). Adaptive management of the global climate problem: Bridging the gap between climate research and climate policy. Climatic Change, 78 ( 1 ), 217 - 225.
dc.identifier.citedreferenceBaker, D. B., & Richards, R. P. ( 2002 ). Phosphorus budgets and riverine phosphorus export in northwestern Ohio watersheds. Journal of Environmental Quality, 31 ( 1 ), 96 - 108.
dc.identifier.citedreferenceBarbiero, R. P., Balcer, M., Rockwell, D. C., & Tuchman, M. L. ( 2009 ). Recent shifts in the crustacean zooplankton community of Lake Huron. Canadian Journal of Fisheries and Aquatic Sciences, 66 ( 5 ), 816 - 828.
dc.identifier.citedreferenceBartolai, A. M., He, L., Hurst, A. E., Mortsch, L., Paehlke, R., & Scavia, D. ( 2015 ). Climate change as a driver of change in the Great Lakes St. Lawrence River basin. Journal of Great Lakes Research, 41, 45 - 58.
dc.identifier.citedreferenceBartolino, V., Margonski, P., Lindegren, M., Linderholm, H. W., Cardinale, M., Rayner, D., - ¦ Casini, M. ( 2014 ). Forecasting fish stock dynamics under climate change: Baltic herring ( Clupea harengus ) as a case study. Fisheries Oceanography, 23 ( 3 ), 258 - 269.
dc.identifier.citedreferenceBelore, M., Cook, A., Hartman, T., Hosack, M., Kayle, K., Knight, C., - ¦ Witzel, L. ( 2014 ). Report of the Lake Erie Yellow Perch Task Group. Ann Arbor: Michigan, USA.
dc.identifier.citedreferenceBlanchard, J. L., Jennings, S., Holmes, R., Harle, J., Merino, G., Allen, J. I., - ¦ Barange, M. ( 2012 ). Potential consequences of climate change for primary production and fish production in large marine ecosystems. Philosophical Transactions of the Royal Society B: Biological Sciences, 367 ( 1605 ), 2979 - 2989.
dc.identifier.citedreferenceBoileau, M. G. ( 1985 ). The expansion of white perch, Morone americana, in the lower Great Lakes. Fisheries, 10 ( 1 ), 6 - 10.
dc.identifier.citedreferenceBolsenga, S. J., & C. E. Herdendorf (Eds.) ( 1993 ). Lake Erie and Lake St. Clair Handbook. Detroit: Wayne State University Press.
dc.identifier.citedreferenceBosch, N. S., Allan, J. D., Selegean, J. P., & Scavia, D. ( 2013 ). Scenario- testing of agricultural best management practices in Lake Erie watersheds. Journal of Great Lakes Research, 39 ( 3 ), 429 - 436.
dc.identifier.citedreferenceBreitburg, D. ( 2002 ). Effects of hypoxia, and the balance between hypoxia and enrichment, on coastal fishes and fisheries. Estuaries, 25 ( 4 ), 767 - 781.
dc.identifier.citedreferenceBreitburg, D. L., Hondorp, D. W., Davias, L. A., & Diaz, R. J. ( 2009 ). Hypoxia, nitrogen, and fisheries: Integrating effects across local and global landscapes. Annual Review of Marine Science, 1, 329 - 349.
dc.identifier.citedreferenceBriland, R. ( 2018 ). Evaluating the causes and consequences of ecosystem change in Lake Erie: From plankton to fish (Doctoral dissertation. The Ohio: State University).
dc.identifier.citedreferenceBrochier, T., Echevin, V., Tam, J., Chaigneau, A., Goubanova, K., & Bertrand, A. ( 2013 ). Climate change scenarios experiments predict a future reduction in small pelagic fish recruitment in the Humboldt Current system. Global Change Biology, 19 ( 6 ), 1841 - 1853.
dc.identifier.citedreferenceBrunel, T., & Boucher, J. ( 2007 ). Long- term trends in fish recruitment in the north- east Atlantic related to climate change. Fisheries Oceanography, 16 ( 4 ), 336 - 349.
dc.identifier.citedreferenceBuchheister, A., Bonzek, C. F., Gartland, J., & Latour, R. J. ( 2013 ). Patterns and drivers of the demersal fish community of Chesapeake Bay. Marine Ecology Progress Series, 481, 161 - 180.
dc.identifier.citedreferenceBunnell, D. B., Barbiero, R. P., Ludsin, S. A., Madenjian, C. P., Warren, G. J., Dolan, D. M., - ¦ Weidel, B. C. ( 2013 ). Changing ecosystem dynamics in the Laurentian Great Lakes: Bottom- up and top- down regulation. BioScience, 64 ( 1 ), 26 - 39.
dc.identifier.citedreferenceBureau of Reclamation ( 2013 ). Downscaled CMIP3 and CMIP5 Climate and Hydrology Projections: Release of Downscaled CMIP5 Climate Projections, Comparison with preceding Information, and Summary of User Needs. (U.S. Department of the Interior, Bureau of Reclamation, Technical Service Center, Denver, Colorado
dc.identifier.citedreferenceBurnham, K. P., & Anderson, D. R. ( 2003 ). Model selection and multimodel inference: A practical information- theoretic approach. Berlin: Springer Science & Business Media.
dc.identifier.citedreferenceBusch, W. D. N., Scholl, R. L., & Hartman, W. L. ( 1975 ). Environmental factors affecting the strength of walleye ( Stizostedion vitreum vitreum ) year- classes in western Lake Erie, 1960- 70. Journal of the Fisheries Board of Canada, 32 ( 10 ), 1733 - 1743.
dc.identifier.citedreferenceCaddy, J. F. ( 1993 ). Toward a comparative evaluation of human impacts on fishery ecosystems of enclosed and semi- enclosed seas. Reviews in Fisheries Science, 1 ( 1 ), 57 - 95.
dc.identifier.citedreferenceCaddy, J. F. ( 2000 ). Marine catchment basin effects versus impacts of fisheries on semi- enclosed seas. ICES Journal of Marine Science, 57 ( 3 ), 628 - 640.
dc.identifier.citedreferenceCardinale, M., & Arrhenius, F. ( 2000 ). The influence of stock structure and environmental conditions on the recruitment process of Baltic cod estimated using a generalized additive model. Canadian Journal of Fisheries and Aquatic Sciences, 57 ( 12 ), 2402 - 2409.
dc.identifier.citedreferenceCarreon- Martinez, L. B., Wellband, K. W., Johnson, T. B., Ludsin, S. A., & Heath, D. D. ( 2014 ). Novel molecular approach demonstrates that turbid river plumes reduce predation mortality on larval fish. Molecular Ecology, 23 ( 21 ), 5366 - 5377.
dc.identifier.citedreferenceChu, C., Mandrak, N. E., & Minns, C. K. ( 2005 ). Potential impacts of climate change on the distributions of several common and rare freshwater fishes in Canada. Diversity and Distributions, 11 ( 4 ), 299 - 310.
dc.identifier.citedreferenceClady, M. D. ( 1976 ). Influence of temperature and wind on the survival of early stages of yellow perch, Perca flavescens. Journal of the Fisheries Board of Canada, 33 ( 9 ), 1887 - 1893.
dc.identifier.citedreferenceCollingsworth, P. D., Bunnell, D. B., Murray, M. W., Kao, Y.- C., Feiner, Z. S., Claramunt, R. M., - ¦ Ludsin, S. A. ( 2017 ). Climate change as a long- term stressor for the fisheries of the Laurentian Great Lakes of North America. Reviews in Fish Biology and Fisheries, 27 ( 2 ), 363 - 391.
dc.identifier.citedreferenceCollingsworth, P. D., & Marschall, E. A. ( 2011 ). Identifying relationships between catches of spawning condition yellow perch and environmental variables in the western basin of Lake Erie. Transactions of the American Fisheries Society, 140 ( 1 ), 31 - 36.
dc.identifier.citedreferenceComte, L., Buisson, L., Daufresne, M., & Grenouillet, G. ( 2013 ). Climate- induced changes in the distribution of freshwater fish: Observed and predicted trends. Freshwater Biology, 58 ( 4 ), 625 - 639.
dc.identifier.citedreferenceDaggupati, P., Yen, H., White, M. J., Srinivasan, R., Arnold, J. G., Keitzer, C. S., & Sowa, S. P. ( 2015 ). Impact of model development, calibration and validation decisions on hydrological simulations in West Lake Erie Basin. Hydrological Processes, 29 ( 26 ), 5307 - 5320.
dc.identifier.citedreferenceDaskalov, G. ( 1999 ). Relating fish recruitment to stock biomass and physical environment in the Black Sea using generalized additive models. Fisheries Research, 41 ( 1 ), 1 - 23.
dc.identifier.citedreferencede Mutsert, K., Steenbeek, J., Lewis, K., Buszowski, J., Cowan, J. H. Jr, & 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 - 150.
dc.identifier.citedreferenceDecker, M. B., Liu, H., Ciannelli, L., Ladd, C., Cheng, W., & Chan, K. S. ( 2013 ). Linking changes in eastern Bering Sea jellyfish populations to environmental factors via nonlinear time series models. Marine Ecology Progress Series, 494, 179 - 189.
dc.identifier.citedreferenceDeVanna Fussell, K. M., Smith, R. E. H., Fraker, M. E., Boegman, L., Frank, K. T., Miller, T. J., - ¦ Ludsin, S. A. ( 2016 ). A perspective on needed research, modeling, and management approaches that can enhance Great Lakes fisheries management under changing ecosystem conditions. Journal of Great Lakes Research, 42 ( 4 ), 743 - 752.
dc.identifier.citedreferenceDiaz, R. J., & Rosenberg, R. ( 2008 ). Spreading dead zones and consequences for marine ecosystems. Science, 321 ( 5891 ), 926 - 929.
dc.identifier.citedreferenceDrinkwater, K. F., Beaugrand, G., Kaeriyama, M., Kim, S., Ottersen, G., Perry, R. I., - ¦ Takasuka, A. ( 2010 ). On the processes linking climate to ecosystem changes. Journal of Marine Systems, 79 ( 3- 4 ), 374 - 388.
dc.identifier.citedreferenceDuFour, M. R., May, C. J., Roseman, E. F., Ludsin, S. A., Vandergoot, C. S., Pritt, J. J., - ¦ Mayer, C. M. ( 2015 ). Portfolio theory as a management tool to guide conservation and restoration of multi- stock fish populations. Ecosphere, 6 ( 12 ), 1 - 21.
dc.identifier.citedreferenceEshenroder, R. L. ( 1977 ). Effects of intensified fishing, species changes, and spring water temperatures on yellow perch, Perca flavescens, in Saginaw Bay. Journal of the Fisheries Board of Canada, 34 ( 10 ), 1830 - 1838.
dc.identifier.citedreferenceFarmer, T. M. ( 2013 ). Climate change effects on Lake Erie yellow perch reproduction and recruitment (Doctoral dissertation. The Ohio: State University).
dc.identifier.citedreferenceFarmer, T. M., Marschall, E. A., Dabrowski, K., & Ludsin, S. A. ( 2015 ). Short winters threaten temperate fish populations. Nature Communications, 6, 7724.
dc.identifier.citedreferenceFedor, S. L. ( 2008 ). Synchronous Recruitment of Walleye in the Great Lakes and the Influence [sic] of Climate on Recruitment (Master- s thesis. Ohio State University).
dc.identifier.citedreferenceFilipe, A. F., Markovic, D., Pletterbauer, F., Tisseuil, C., De Wever, A., Schmutz, S., - ¦ Freyhof, J. ( 2013 ). Forecasting fish distribution along stream networks: Brown trout ( Salmo trutta ) in Europe. Diversity and Distributions, 19 ( 8 ), 1059 - 1071.
dc.identifier.citedreferenceForsythe, P. S., Doll, J. C., & Lauer, T. E. ( 2012 ). Abiotic and biotic correlates of yellow perch recruitment to age- 2 in southern Lake Michigan, 1984- 2007. Fisheries Management and Ecology, 19 ( 5 ), 389 - 399.
dc.identifier.citedreferenceFTG Forage Task Group ( 2013 ). Report of the Lake Erie Forage Task Group, March 2013. Presented to the Standing Technical Committee, Lake Erie Committee of the Great Lakes Fishery Commission, Ann Arbor, MI.
dc.identifier.citedreferenceGassman, P. W., Williams, J. R., Wang, X., Saleh, A., Osei, E., Hauck, L. M., - ¦ Flowers, J. ( 2009 ). The Agricultural Policy Environmental Extender (APEX) model: An emerging tool for landscape and watershed environmental analyses.
dc.identifier.citedreferenceGrimes, C. B., & Finucane, J. H. ( 1991 ). Spatial distribution and abundance of larval and juvenile fish, chlorophyll and macrozooplankton around the Mississippi River discharge plume, and the role of the plume in fish recruitment. Marine Ecology Progress Series, 75 ( 2 ), 109 - 119.
dc.identifier.citedreferenceGuisan, A., & Thuiller, W. ( 2005 ). Predicting species distribution: Offering more than simple habitat models. Ecology Letters, 8 ( 9 ), 993 - 1009.
dc.identifier.citedreferenceHagy, J. D., Boynton, W. R., Keefe, C. W., & Wood, K. V. ( 2004 ). Hypoxia in Chesapeake Bay, 1950- 2001: Long- term change in relation to nutrient loading and river flow. Estuaries, 27 ( 4 ), 634 - 658.
dc.identifier.citedreferenceHall, S. R., & Rudstam, L. G. ( 1999 ). Habitat use and recruitment: A comparison of longterm recruitment patterns among fish species in a shallow eutrophic lake, Oneida, NY, U.S.A. Hydrobiologia 408/409, 101 - 103.
dc.identifier.citedreferenceHansen, G. J., Read, J. S., Hansen, J. F., & Winslow, L. A. ( 2017 ). Projected shifts in fish species dominance in Wisconsin lakes under climate change. Global Change Biology, 23 ( 4 ), 1463 - 1476.
dc.identifier.citedreferenceHartman, K. J., & Margraf, F. J. ( 1993 ). Evidence of predatory control of yellow perch ( Perca flavescens ) recruitment in Lake Erie, USA. Journal of Fish Biology, 43 ( 1 ), 109 - 119.
dc.identifier.citedreferenceHartman, W. L. ( 1972 ). Lake Erie: Effects of exploitation, environmental changes and new species on the fishery resources. Journal of the Fisheries Board of Canada, 29 ( 6 ), 899 - 912.
dc.identifier.citedreferenceHastie, T., & Tibshirani, R. ( 1987 ). Generalized additive models: Some applications. Journal of the American Statistical Association, 82 ( 398 ), 371 - 386.
dc.identifier.citedreferenceHawes, E. J., & Parrish, D. L. ( 2003 ). Using abiotic and biotic factors to predict the range expansion of white perch in Lake Champlain. Journal of Great Lakes Research, 29 ( 2 ), 268 - 279.
dc.identifier.citedreferenceHayhoe, K., VanDorn, J., Croley, T. II, Schlegal, N., & Wuebbles, D. ( 2010 ). Regional climate change projections for Chicago and the US Great Lakes. Journal of Great Lakes Research, 36, 7 - 21.
dc.identifier.citedreferenceR Core Team ( 2019 ). R: A language and environment for statistical computing. R Foundation for Statistical Computing, Vienna, Austria. https://www.R- project.org/.
dc.identifier.citedreferenceHeller, N. E., & Zavaleta, E. S. ( 2009 ). Biodiversity management in the face of climate change: A review of 22 years of recommendations. Biological Conservation, 142 ( 1 ), 14 - 32.
dc.identifier.citedreferenceHenderson, B. A. ( 1985 ). Factors affecting growth and recruitment of yellow perch, Perca flavescens Mitchill, in South Bay, Lake Huron. Journal of Fish Biology, 26 ( 4 ), 449 - 458.
dc.identifier.citedreferenceHenderson, B. A., & Nepszy, S. J. ( 1988 ). Recruitment of yellow perch ( Perca flavescens ) affected by stock size and water temperature in Lakes Erie and St. Clair, 1965- 85. Journal of Great Lakes Research, 14 ( 2 ), 205 - 215.
dc.identifier.citedreferenceHilborn, R. ( 2016 ). Correlation and causation in fisheries and watershed management. Fisheries, 41 ( 1 ), 18 - 25.
dc.identifier.citedreferenceHokanson, K. E. ( 1977 ). Temperature requirements of some percids and adaptations to the seasonal temperature cycle. Journal of the Fisheries Board of Canada, 34 ( 10 ), 1524 - 1550.
dc.identifier.citedreferenceHollowed, A. B., Bond, N. A., Wilderbuer, T. K., Stockhausen, W. T., A’mar, Z. T., Beamish, R. J., - ¦ Schirripa, M. J. ( 2009 ). A framework for modelling fish and shellfish responses to future climate change. ICES Journal of Marine Science, 66 ( 7 ), 1584 - 1594.
dc.identifier.citedreferenceHonsey, A. E., Bunnell, D. B., Troy, C. D., Fielder, D. G., Thomas, M. V., Knight, C. T., - ¦ Höök, T. O. ( 2016 ). Recruitment synchrony of yellow perch ( Perca flavescens, Percidae) in the Great Lakes region, 1966- 2008. Fisheries Research, 181, 214 - 221.
dc.identifier.citedreferenceHunsicker, M. E., Kappel, C. V., Selkoe, K. A., Halpern, B. S., Scarborough, C., Mease, L., & Amrhein, A. ( 2016 ). Characterizing driver- response relationships in marine pelagic ecosystems for improved ocean management. Ecological Applications, 26 ( 3 ), 651 - 663.
dc.identifier.citedreferenceIPCC ( 2014 ). Summary for policymakers. In: Climate Change 2014: Impacts Adaptation and Vulnerability. Part A: Global and Sectoral Aspects. Contribution of Working Group II to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change. eds Field CB Barros VR Dokken DJ Mach KJ Mastrandrea MD Bilir TE Chatterjee M Ebi KL Estrada YO Genova RC et al (Intergovernmental Panel on Climate Change, Cambridge, UK), pp 1- 32.
dc.identifier.citedreferenceJohnson, T. B., & Evans, D. O. ( 1990 ). Size- dependent winter mortality of young- of- the- year white perch: Climate warming and invasion of the Laurentian Great Lakes. Transactions of the American Fisheries Society, 119 ( 2 ), 301 - 313.
dc.identifier.citedreferenceJones, M. L., Netto, J. K., Stockwell, J. D., & Mion, J. B. ( 2003 ). Does the value of newly accessible spawning habitat for walleye ( Stizostedion vitreum ) depend on its location relative to nursery habitats? Canadian Journal of Fisheries and Aquatic Sciences, 60 ( 12 ), 1527 - 1538.
dc.identifier.citedreferenceJones, M. L., Shuter, B. J., Zhao, Y., & Stockwell, J. D. ( 2006 ). Forecasting effects of climate change on Great Lakes fisheries: Models that link habitat supply to population dynamics can help. Canadian Journal of Fisheries and Aquatic Sciences, 63 ( 2 ), 457 - 468.
dc.identifier.citedreferenceKane, D. D., Conroy, J. D., Richards, R. P., Baker, D. B., & Culver, D. A. ( 2014 ). Re- eutrophication of Lake Erie: Correlations between tributary nutrient loads and phytoplankton biomass. Journal of Great Lakes Research, 40 ( 3 ), 496 - 501.
dc.identifier.citedreferenceKao, Y. C., Rogers, M. W., & Bunnell, D. B. ( 2018 ). Evaluating stocking efficacy in an ecosystem undergoing oligotrophication. Ecosystems, 21, 1 - 19.
dc.identifier.citedreferenceKayle, K., Oldenburg, K., Murray, C., Francis, J., & Markham, J. ( 2015 ). Lake Erie walleye management plan 2015- 2019. Great Lakes Fishery Commission, Ann Arbor, Michigan. Retrieved from http://www.glfc.org/pubs/lake_committees/erie/LEC_docs/position_statements/walleye_managment_plan.pdf.
dc.identifier.citedreferenceKeitzer, S. C., Ludsin, S. A., Sowa, S. P., Annis, G., Arnold, J. G., Daggupati, P., - ¦ Rewa, C. A. ( 2016 ). Thinking outside of the lake: Can controls on nutrient inputs into Lake Erie benefit stream conservation in its watershed? Journal of Great Lakes Research, 42 ( 6 ), 1322 - 1331.
dc.identifier.citedreferenceKemp, W. M., Boynton, W. R., Adolf, J. E., Boesch, D. F., Boicourt, W. C., Brush, G., - ¦ Stevenson, J. C. ( 2005 ). Eutrophication of Chesapeake Bay: Historical trends and ecological interactions. Marine Ecology Progress Series, 303, 1 - 29.
dc.identifier.citedreferenceKoenst, W. M., & Smith, L. L. Jr ( 1976 ). Thermal requirements of the early life history stages of walleye, Stizostedion vitreum vitreum, and sauger, Stizostedion canadense. Journal of the Fisheries Board of Canada, 33 ( 5 ), 1130 - 1138.
dc.identifier.citedreferenceKrabbenhoft, T. J., Platania, S. P., & Turner, T. F. ( 2014 ). Interannual variation in reproductive phenology in a riverine fish assemblage: Implications for predicting the effects of climate change and altered flow regimes. Freshwater Biology, 59 ( 8 ), 1744 - 1754.
dc.identifier.citedreferenceLeach, J. H., & Nepszy, S. J. ( 1976 ). The fish community in Lake Erie. Journal of the Fisheries Board of Canada, 33 ( 3 ), 622 - 638.
dc.identifier.citedreferenceLindegren, M., Möllmann, C., Nielsen, A., Brander, K., MacKenzie, B. R., & Stenseth, N. C. ( 2010 ). Ecological forecasting under climate change: The case of Baltic cod. Proceedings of the Royal Society of London B: Biological Sciences, 277 ( 1691 ), 2121 - 2130.
dc.identifier.citedreferenceLudsin, S. A. ( 2000 ). Exploration of spatiotemporal patterns in recruitment and community organization of Lake Erie fishes: A multiscale, mechanistic approach (Doctoral dissertation. The Ohio: State University).
dc.identifier.citedreferenceLudsin, S. A., DeVanna, K. M., & Smith, R. E. ( 2014 ). Physical- biological coupling and the challenge of understanding fish recruitment in freshwater lakes. Canadian Journal of Fisheries and Aquatic Sciences, 71 ( 5 ), 775 - 794.
dc.identifier.citedreferenceLudsin, S. A., Kershner, M. W., Blocksom, K. A., Knight, R. L., & Stein, R. A. ( 2001 ). Life after death in Lake Erie: Nutrient controls drive fish species richness, rehabilitation. Ecological Applications, 11 ( 3 ), 731 - 746.
dc.identifier.citedreferenceLudsin, S., Pangle, K., Carreon- Martinez, L., Legler, N., Reichert, J., Heath, D., - ¦ Leshkevich, G. ( 2011 ). River discharge as a predictor of Lake Erie yellow perch recruitment. Final Completion Report, Great Lakes Fishery Commission. Fisheries Research Program, Ann Arbor, MI. 166 pp.
dc.identifier.citedreferenceLynch, A. J., Myers, B. J. E., Chu, C., Eby, L. A., Falke, J. A., Kovach, R. P., - ¦ Whitney, J. E. ( 2016 ). Climate change effects on North American inland fish populations and assemblages. Fisheries, 41 ( 7 ), 346 - 361.
dc.identifier.citedreferenceMaccoux, M. J., Dove, A., Backus, S. M., & Dolan, D. M. ( 2016 ). Total and soluble reactive phosphorus loadings to Lake Erie: A detailed accounting by year, basin, country, and tributary. Journal of Great Lakes Research, 42 ( 6 ), 1151 - 1165.
dc.identifier.citedreferenceMadenjian, C. P., Tyson, J. T., Knight, R. L., Kershner, M. W., & Hansen, M. J. ( 1996 ). First- year growth, recruitment, and maturity of walleyes in western Lake Erie. Transactions of the American Fisheries Society, 125 ( 6 ), 821 - 830.
dc.identifier.citedreferenceMaghrebi, M., Nalley, D., Laurent, K. L., & Atkinson, J. F. ( 2015 ). Water quantity as a driver of change in the Great Lakes- St. Lawrence River Basin. Journal of Great Lakes Research, 41, 84 - 95.
dc.identifier.citedreferenceMarkham, J. L., & Knight, R. L. ( 2017 ). The state of Lake Erie 2009. Great Lakes Fishery Commission, Ann Arbor, MI. Special Publication 2017- 01. Retrieved from http://www.glfc.org/pubs/SpecialPubs/Sp17_01.pdf.
dc.identifier.citedreferenceMaunder, M. N., & Punt, A. E. ( 2004 ). Standardizing catch and effort data: A review of recent approaches. Fisheries Research, 70 ( 2- 3 ), 141 - 159.
dc.identifier.citedreferenceMaurer, E. P., Brekke, L., Pruitt, T., & Duffy, P. B. ( 2007 ). Fine- resolution climate projections enhance regional climate change impact studies. Eos, Transactions American Geophysical Union, 88 ( 47 ), 504 - 504.
dc.identifier.citedreferenceMay, C. J. ( 2015 ). The importance of early life processes to future growth and recruitment in Lake Erie walleye (Doctoral dissertation. The Ohio: State University).
dc.identifier.citedreferenceMenne, M. J., Durre, I., Vose, R. S., Gleason, B. E., & Houston, T. G. ( 2012 ). An overview of the global historical climatology network- daily database. Journal of Atmospheric and Oceanic Technology, 29 ( 7 ), 897 - 910.
dc.identifier.citedreferenceMion, J. B., Stein, R. A., & Marschall, E. A. ( 1998 ). River discharge drives survival of larval walleye. Ecological Applications, 8 ( 1 ), 88 - 103.
dc.identifier.citedreferenceMueter, F. J., Bond, N. A., Ianelli, J. N., & Hollowed, A. B. ( 2011 ). Expected declines in recruitment of walleye pollock ( Theragra chalcogramma ) in the eastern Bering Sea under future climate change. ICES Journal of Marine Science, 68 ( 6 ), 1284 - 1296.
dc.identifier.citedreferenceNey, J. J. ( 1996 ). Oligotrophication and its discontents: Effects of reduced nutrient loading on reservoir fisheries. American Fisheries Society Symposium, 16, 285 - 295.
dc.identifier.citedreferenceODW Ohio Division of Wildlife ( 2017 ). Ohio- s Lake Erie Fisheries, 2016. Annual status report. Federal Aid in Fish Restoration Project F- 69- P. Ohio Department of Natural Resources, Division of Wildlife, Lake Erie Fisheries Units, Fairport and Sandusky. 123 pp.
dc.identifier.citedreferenceODW Ohio Division of Wildlife ( 2018 ). Ohio- s Lake Erie Fisheries, 2018. Annual Report. Federal Aid in Fish Restoration Project F- 69- P. Ohio Department of Natural Resources, Division of Wildlife, Lake Erie Fisheries Units, Fairport and Sandusky. 123 pp.
dc.identifier.citedreferenceOglesby, R. T., Leach, J. H., & Forney, J. ( 1987 ). Potential Stizostedion yield as a function of chlorophyll concentration with special reference to Lake Erie. Canadian Journal of Fisheries and Aquatic Sciences, 44 ( S2 ), s166 - s170.
dc.identifier.citedreferenceOhio EPA ( 2013 ). Ohio Lake Erie phosphorus task force II, final report. Columbus, Ohio: Ohio Environmental Protection Agency.
dc.identifier.citedreferenceOhio Supercomputer Center ( 1987 ). Ohio Supercomputer Center. Columbus, OH. Retrieved from http://osc.edu/ark:/19495/f5s1ph73.
dc.identifier.citedreferencePaukert, C. P., Glazer, B. A., Hansen, G. J. A., Irwin, B. J., Jacobson, P. C., Kershner, J. L., - ¦ Lynch, A. J. ( 2016 ). Adapting inland fisheries management to a changing climate. Fisheries, 41 ( 7 ), 374 - 384.
dc.identifier.citedreferenceProut, M. W., Mills, E. L., & Forney, J. L. ( 1990 ). Diet, growth, and potential competitive interactions between age- 0 white perch and yellow perch in Oneida Lake, New York. Transactions of the American Fisheries Society, 119 ( 6 ), 966 - 975.
dc.identifier.citedreferenceQuiñones, J., Mianzan, H., Purca, S., Robinson, K. L., Adams, G. D., & Acha, E. M. ( 2015 ). Climate- driven population size fluctuations of jellyfish ( Chrysaora plocamia ) off Peru. Marine Biology, 162 ( 12 ).
dc.identifier.citedreferenceRadinger, J., Hölker, F., Horký, P., Slavík, O., Dendoncker, N., & Wolter, C. ( 2016 ). Synergistic and antagonistic interactions of future land use and climate change on river fish assemblages. Global Change Biology, 22 ( 4 ), 1505 - 1522.
dc.identifier.citedreferenceRahel, F. J., & Olden, J. D. ( 2008 ). Assessing the effects of climate change on aquatic invasive species. Conservation Biology, 22 ( 3 ), 521 - 533.
dc.owningcollnameInterdisciplinary and Peer-Reviewed


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