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DOI10.1016/j.pocean.2019.102124
Bottom-up drivers of global patterns of demersal, forage, and pelagic fishes
Petrik, Colleen M.1; Stock, Charles A.2; Andersen, Ken H.3; van Denderen, P. Daniel3; Watson, James R.4
发表日期2019
ISSN0079-6611
卷号176
英文摘要

Large-scale spatial heterogeneity in fisheries production is predominantly controlled by the availability of zooplankton and benthic organisms, which have a complex relationship with primary production. To investigate how cross-ecosystem differences in these drivers determine fish assemblages and productivity, we constructed a spatially explicit mechanistic model of three fish functional types: forage, large pelagic, and demersal fishes. The model is based on allometric scaling principles, includes basic life cycle transitions, and has trophic interactions between the fishes and with their pelagic and benthic food resources. The model was applied to the global ocean, with plankton food web estimates and ocean conditions from a high-resolution earth system model. Further, a simple representation of fishing was included, and led to moderate matches with total, large pelagic, and demersal catches, including re-creation of observed variations in fish catch spanning two orders of magnitude. Our results highlight several ecologically meaningful model sensitivities. First, coexistence between forage and large pelagic fish in productive regions occurred when forage fish survival is promoted via both favorable metabolic allometry and enhanced predator avoidance in adult forage fish. Second, the prominence of demersal fish is highly sensitive to the efficiency of energy transfer to benthic invertebrates. Third, the latitudinal distribution of the total catch is modulated by the temperature dependence of metabolic rates, with increased sensitivity pushing fish biomass toward the poles. Fourth, forage fish biomass is suppressed by strong top-down controls on temperate and subpolar shelves, where mixed assemblages of large pelagic and demersal fishes exerted high predation rates. Last, spatial differences in the dominance of large pelagics vs. demersals is strongly related to the ratio of pelagic zooplankton production to benthic production. We discuss the potential linkages between model misfits and unresolved processes including movement, spawning phenology, seabird and marine mammal predators, and socioeconomically driven fishing pressure, which are identified as priorities for future model development. Ultimately, the model and analyses herein are intended as a baseline for a robust, mechanistic tool to understand, quantify, and predict global fish biomass and yield, now and in a future dominated by climate change and improved fishing technology.


WOS研究方向Oceanography
来源期刊PROGRESS IN OCEANOGRAPHY
文献类型期刊论文
条目标识符http://gcip.llas.ac.cn/handle/2XKMVOVA/102701
作者单位1.Princeton Univ, Program Atmospher & Ocean Sci, Princeton, NJ 08540 USA;
2.NOAA, Geophys Fluid Dynam Lab, Princeton, NJ 08540 USA;
3.Tech Univ Denmark, Ctr Ocean Life, DTU Aqua, Lyngby, Denmark;
4.Oregon State Univ, Coll Earth Ocean & Atmospher Sci, Corvallis, OR 97331 USA
推荐引用方式
GB/T 7714
Petrik, Colleen M.,Stock, Charles A.,Andersen, Ken H.,et al. Bottom-up drivers of global patterns of demersal, forage, and pelagic fishes[J],2019,176.
APA Petrik, Colleen M.,Stock, Charles A.,Andersen, Ken H.,van Denderen, P. Daniel,&Watson, James R..(2019).Bottom-up drivers of global patterns of demersal, forage, and pelagic fishes.PROGRESS IN OCEANOGRAPHY,176.
MLA Petrik, Colleen M.,et al."Bottom-up drivers of global patterns of demersal, forage, and pelagic fishes".PROGRESS IN OCEANOGRAPHY 176(2019).
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