Pelagic food-webs in a changing Arctic: a trait-based perspective suggests a mode of resilience

被引:72
作者
Renaud, Paul E. [1 ,2 ]
Daase, Malin [3 ]
Banas, Neil S. [4 ]
Gabrielsen, Tove M. [2 ]
Soreide, Janne E. [2 ]
Varpe, Oystein [1 ,2 ]
Cottier, Finlo [3 ,5 ]
Falk-Petersen, Stig [1 ,3 ]
Halsband, Claudia [1 ]
Vogedes, Daniel [3 ]
Heggland, Kristin [3 ]
Berge, Jorgen [2 ,3 ]
机构
[1] Fram Ctr Climate & Environm, Akvaplan Niva, N-9296 Tromso, Norway
[2] Univ Ctr Svalbard, POB 156, N-9171 Longyearbyen, Norway
[3] Univ Tromso, Fac Biosci Fisheries & Econ, N-9037 Tromso, Norway
[4] Univ Strathclyde, Dept Math & Stat, 26 Richmond St, Glasgow G1 1XQ, Lanark, Scotland
[5] Scottish Marine Inst, Scottish Assoc Marine Sci, Oban PA37 1QA, Argyll, Scotland
基金
美国国家科学基金会; 英国自然环境研究理事会;
关键词
Arctic ecosystem; Calanus; life-history modelling; secondary production; COPEPOD CALANUS-GLACIALIS; EASTERN BERING-SEA; LIFE-HISTORY; BODY-SIZE; CLIMATE-CHANGE; GREENLAND SEA; FINMARCHICUS; TEMPERATURE; FJORD; SPP;
D O I
10.1093/icesjms/fsy063
中图分类号
S9 [水产、渔业];
学科分类号
0908 ;
摘要
Arctic marine ecosystems support fisheries of significant and increasing economic and nutritional value. Commercial stocks are sustained by pelagic food webs with relatively few keystone taxa mediating energy transfer to higher trophic levels, and it remains largely unknown how these taxa will be affected by changing climate and the influx of boreal taxa. Calanus species store large quantities of lipids, making these zooplankton a critical link in marine food-webs. The Arctic Calanus species are usually larger and, importantly, have been suggested to contain disproportionately larger lipid stores than their boreal congeners. Continued climate warming and subsequent changes in primary production regimes have been predicted to lead to a shift from the larger, lipid-rich Arctic species, Calanus glacialis and Calanus hyperboreus, toward the smaller, boreal Calanus finmarchicus in the European Arctic, with negative consequences for top predators. Our data show that lipid content is closely related to body size for all three species, i. e. is not a species-specific trait, and that there is considerable overlap in size between C. finmarchicus and C. glacialis. A trait-based life-history model was used to examine an idealized scenario where, in a changed Arctic with a longer period of primary production, C. glacialis-and C. hyperboreuslike copepods are indeed replaced by C. finmarchicus-like individuals, whether through competition, plasticity, hybridization, or evolution. However, the model finds that transfer of energy from primary producers to higher predators may actually be more efficient in this future scenario, because of the changes in generation length and population turnover rate that accompany the body-size shifts. These findings suggest that Arctic marine food webs may be more resilient to climate-related shifts in the Calanus complex than previously assumed.
引用
收藏
页码:1871 / 1881
页数:11
相关论文
共 66 条
[1]   Life in a warming ocean: thermal thresholds and metabolic balance of arctic zooplankton [J].
Alcaraz, Miquel ;
Felipe, Jorge ;
Grote, Ulrike ;
Arashkevich, Elena ;
Nikishina, Anastasia .
JOURNAL OF PLANKTON RESEARCH, 2014, 36 (01) :3-10
[2]   Where to Forage in the Absence of Sea Ice? Bathymetry As a Key Factor for an Arctic Seabird [J].
Amelineau, Francoise ;
Gremillet, David ;
Bonnet, Delphine ;
Le Bot, Tangi ;
Fort, Jerme .
PLOS ONE, 2016, 11 (07)
[3]   Dynamics of coexisting Calanus finmarchicus, Calanus glacialis and Calanus hyperboreus populations in a high-Arctic fjord [J].
Arnkværn, G ;
Daase, M ;
Eiane, K .
POLAR BIOLOGY, 2005, 28 (07) :528-538
[4]  
Banas N, 2016, FRONTIERS MARINE SCI, V3, P255
[5]   Traits controlling body size in copepods: separating general constraints from species-specific strategies [J].
Banas, Neil S. ;
Campbell, Robert G. .
MARINE ECOLOGY PROGRESS SERIES, 2016, 558 :21-33
[6]   Spring plankton dynamics in the Eastern Bering Sea, 1971-2050: Mechanisms of interannual variability diagnosed with a numerical model [J].
Banas, Neil S. ;
Zhang, Jinlun ;
Campbell, Robert G. ;
Sambrotto, Raymond N. ;
Lomas, Michael W. ;
Sherr, Evelyn ;
Sherr, Barry ;
Ashjian, Carin ;
Stoecker, Diane ;
Lessard, Evelyn J. .
JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2016, 121 (02) :1476-1501
[7]   Evolution of the Arctic Calanus complex: an Arctic marine avocado? [J].
Berge, Jorgen ;
Gabrielsen, Tove M. ;
Moline, Mark ;
Renaud, Paul E. .
JOURNAL OF PLANKTON RESEARCH, 2012, 34 (03) :191-195
[8]  
Breur A.N, 2003, THESIS
[9]   Can morphology reliably distinguish between the copepods Calanus finmarchicus and C-glacialis, or is DNA the only way? [J].
Choquet, Marvin ;
Kosobokova, Ksenia ;
Kwasniewski, Slawomir ;
Hatlebakk, Maja ;
Dhanasiri, Anusha K. S. ;
Melle, Webjorn ;
Daase, Malin ;
Svensen, Camilla ;
Soreide, Janne E. ;
Hoarau, Galice .
LIMNOLOGY AND OCEANOGRAPHY-METHODS, 2018, 16 (04) :237-252
[10]   Genetics redraws pelagic biogeography of Calanus [J].
Choquet, Marvin ;
Hatlebakk, Maja ;
Dhanasiri, Anusha K. S. ;
Kosobokova, Ksenia ;
Smolina, Irina ;
Soreide, Janne E. ;
Svensen, Camilla ;
Melle, Webjorn ;
Kwasniewski, Slawomir ;
Eiane, Ketil ;
Daase, Malin ;
Tverberg, Vigdis ;
Skreslet, Stig ;
Bucklin, Ann ;
Hoarau, Galice .
BIOLOGY LETTERS, 2017, 13 (12)