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Details

Autor(en) / Beteiligte
Titel
Quantifying multiple pressure interactions affecting populations of a recreationally and commercially important freshwater fish
Ist Teil von
  • Global change biology, 2019-03, Vol.25 (3), p.1049-1062
Ort / Verlag
England: Blackwell Publishing Ltd
Erscheinungsjahr
2019
Quelle
Wiley-Blackwell Journals
Beschreibungen/Notizen
  • The expanding human global footprint and growing demand for freshwater have placed tremendous stress on inland aquatic ecosystems. Aichi Target 10 of the Convention on Biological Diversity aims to minimize anthropogenic pressures affecting vulnerable ecosystems, and pressure interactions are increasingly being incorporated into environmental management and climate change adaptation strategies. In this study, we explore how climate change, overfishing, forest disturbance, and invasive species pressures interact to affect inland lake walleye (Sander vitreus) populations. Walleye support subsistence, recreational, and commercial fisheries and are one of most sought‐after freshwater fish species in North America. Using data from 444 lakes situated across an area of 475 000 km2 in Ontario, Canada, we apply a novel statistical tool, R‐INLA, to determine how walleye biomass deficit (carrying capacity—observed biomass) is impacted by multiple pressures. Individually, angling activity and the presence of invasive zebra mussels (Dreissena polymorpha) were positively related to biomass deficits. In combination, zebra mussel presence interacted negatively and antagonistically with angling activity and percentage decrease in watershed mature forest cover. Velocity of climate change in growing degree days above 5°C and decrease in mature forest cover interacted to negatively affect walleye populations. Our study demonstrates how multiple pressure evaluations can be conducted for hundreds of populations to identify influential pressures and vulnerable ecosystems. Understanding pressure interactions is necessary to guide management and climate change adaptation strategies, and achieve global biodiversity targets. Fish populations provide valuable ecosystem services and support important fisheries, yet we know little about their responses to multiple interacting pressures. We sought to reveal the effects of multiple pressures on walleye populations from 444 lakes across Ontario, Canada. By controlling for spatial autocorrelation, we found statistical interactions that suggest antagonisms exist among pressures including the presence of an invasive species, loss of mature forest cover, angling pressure, and climate change. Quantifying these types of interactions is critical to understanding the current state of fisheries and to developing effective resource management plans that minimize the effects of multiple pressures.

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