Literature DB >> 27608297

Projected shifts in fish species dominance in Wisconsin lakes under climate change.

Gretchen J A Hansen1, Jordan S Read2, Jonathan F Hansen3, Luke A Winslow2.   

Abstract

Temperate lakes may contain both coolwater fish species such as walleye (Sander vitreus) and warmwater fish species such as largemouth bass (Micropterus salmoides). Recent declining walleye and increasing largemouth bass populations have raised questions regarding the future trajectories and management actions for these species. We developed a thermodynamic model of water temperatures driven by downscaled climate data and lake-specific characteristics to estimate daily water temperature profiles for 2148 lakes in Wisconsin, US, under contemporary (1989-2014) and future (2040-2064 and 2065-2089) conditions. We correlated contemporary walleye recruitment and largemouth bass relative abundance to modeled water temperature, lake morphometry, and lake productivity, and projected lake-specific changes in each species under future climate conditions. Walleye recruitment success was negatively related and largemouth bass abundance was positively related to water temperature degree days. Both species exhibited a threshold response at the same degree day value, albeit in opposite directions. Degree days were predicted to increase in the future, although the magnitude of increase varied among lakes, time periods, and global circulation models (GCMs). Under future conditions, we predicted a loss of walleye recruitment in 33-75% of lakes where recruitment is currently supported and a 27-60% increase in the number of lakes suitable for high largemouth bass abundance. The percentage of lakes capable of supporting abundant largemouth bass but failed walleye recruitment was predicted to increase from 58% in contemporary conditions to 86% by mid-century and to 91% of lakes by late century, based on median projections across GCMs. Conversely, the percentage of lakes with successful walleye recruitment and low largemouth bass abundance was predicted to decline from 9% of lakes in contemporary conditions to only 1% of lakes in both future periods. Importantly, we identify up to 85 resilient lakes predicted to continue to support natural walleye recruitment. Management resources could target preserving these resilient walleye populations.
© 2016 The Authors. Global Change Biology published by John Wiley & Sons Ltd.

Entities:  

Keywords:  zzm321990Micropterus salmoideszzm321990; zzm321990Sander vitreuszzm321990; climate projections; community composition; largemouth bass; species distribution model; temperate lakes; thermal profiles; walleye

Mesh:

Year:  2016        PMID: 27608297     DOI: 10.1111/gcb.13462

Source DB:  PubMed          Journal:  Glob Chang Biol        ISSN: 1354-1013            Impact factor:   10.863


  6 in total

Review 1.  Climate change, ecosystems and abrupt change: science priorities.

Authors:  Monica G Turner; W John Calder; Graeme S Cumming; Terry P Hughes; Anke Jentsch; Shannon L LaDeau; Timothy M Lenton; Bryan N Shuman; Merritt R Turetsky; Zak Ratajczak; John W Williams; A Park Williams; Stephen R Carpenter
Journal:  Philos Trans R Soc Lond B Biol Sci       Date:  2020-01-27       Impact factor: 6.237

2.  Large-scale modeled contemporary and future water temperature estimates for 10774 Midwestern U.S. Lakes.

Authors:  Luke A Winslow; Gretchen J A Hansen; Jordan S Read; Michael Notaro
Journal:  Sci Data       Date:  2017-04-25       Impact factor: 6.444

3.  Deeper waters are changing less consistently than surface waters in a global analysis of 102 lakes.

Authors:  Rachel M Pilla; Craig E Williamson; Boris V Adamovich; Rita Adrian; Orlane Anneville; Sudeep Chandra; William Colom-Montero; Shawn P Devlin; Margaret A Dix; Martin T Dokulil; Evelyn E Gaiser; Scott F Girdner; K David Hambright; David P Hamilton; Karl Havens; Dag O Hessen; Scott N Higgins; Timo H Huttula; Hannu Huuskonen; Peter D F Isles; Klaus D Joehnk; Ian D Jones; Wendel Bill Keller; Lesley B Knoll; Johanna Korhonen; Benjamin M Kraemer; Peter R Leavitt; Fabio Lepori; Martin S Luger; Stephen C Maberly; John M Melack; Stephanie J Melles; Dörthe C Müller-Navarra; Don C Pierson; Helen V Pislegina; Pierre-Denis Plisnier; David C Richardson; Alon Rimmer; Michela Rogora; James A Rusak; Steven Sadro; Nico Salmaso; Jasmine E Saros; Émilie Saulnier-Talbot; Daniel E Schindler; Martin Schmid; Svetlana V Shimaraeva; Eugene A Silow; Lewis M Sitoki; Ruben Sommaruga; Dietmar Straile; Kristin E Strock; Wim Thiery; Maxim A Timofeyev; Piet Verburg; Rolf D Vinebrooke; Gesa A Weyhenmeyer; Egor Zadereev
Journal:  Sci Rep       Date:  2020-11-25       Impact factor: 4.379

4.  Estimating the degree to which distance and temperature differences drive changes in fish community composition over time in the upper Mississippi River.

Authors:  James H Larson; Jon M Vallazza; Brent C Knights
Journal:  PLoS One       Date:  2019-12-02       Impact factor: 3.240

5.  Factors of surface thermal variation in high-mountain lakes of the Pyrenees.

Authors:  Ibor Sabás; Alexandre Miró; Jaume Piera; Jordi Catalan; Lluís Camarero; Teresa Buchaca; Marc Ventura
Journal:  PLoS One       Date:  2021-08-03       Impact factor: 3.240

6.  Global data set of long-term summertime vertical temperature profiles in 153 lakes.

Authors:  Rachel M Pilla; Elizabeth M Mette; Craig E Williamson; Boris V Adamovich; Rita Adrian; Orlane Anneville; Esteban Balseiro; Syuhei Ban; Sudeep Chandra; William Colom-Montero; Shawn P Devlin; Margaret A Dix; Martin T Dokulil; Natalie A Feldsine; Heidrun Feuchtmayr; Natalie K Fogarty; Evelyn E Gaiser; Scott F Girdner; María J González; K David Hambright; David P Hamilton; Karl Havens; Dag O Hessen; Harald Hetzenauer; Scott N Higgins; Timo H Huttula; Hannu Huuskonen; Peter D F Isles; Klaus D Joehnk; Wendel Bill Keller; Jen Klug; Lesley B Knoll; Johanna Korhonen; Nikolai M Korovchinsky; Oliver Köster; Benjamin M Kraemer; Peter R Leavitt; Barbara Leoni; Fabio Lepori; Ekaterina V Lepskaya; Noah R Lottig; Martin S Luger; Stephen C Maberly; Sally MacIntyre; Chris McBride; Peter McIntyre; Stephanie J Melles; Beatriz Modenutti; Dörthe C Müller-Navarra; Laura Pacholski; Andrew M Paterson; Don C Pierson; Helen V Pislegina; Pierre-Denis Plisnier; David C Richardson; Alon Rimmer; Michela Rogora; Denis Y Rogozin; James A Rusak; Olga O Rusanovskaya; Steve Sadro; Nico Salmaso; Jasmine E Saros; Jouko Sarvala; Émilie Saulnier-Talbot; Daniel E Schindler; Svetlana V Shimaraeva; Eugene A Silow; Lewis M Sitoki; Ruben Sommaruga; Dietmar Straile; Kristin E Strock; Hilary Swain; Jason M Tallant; Wim Thiery; Maxim A Timofeyev; Alexander P Tolomeev; Koji Tominaga; Michael J Vanni; Piet Verburg; Rolf D Vinebrooke; Josef Wanzenböck; Kathleen Weathers; Gesa A Weyhenmeyer; Egor S Zadereev; Tatyana V Zhukova
Journal:  Sci Data       Date:  2021-08-04       Impact factor: 6.444

  6 in total

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