Distribution of Arctic and Pacific copepods and their habitat in the
northern Bering and Chukchi seas
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Published:2016-08-12
Issue:15
Volume:13
Page:4555-4567
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ISSN:1726-4189
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Container-title:Biogeosciences
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language:en
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Short-container-title:Biogeosciences
Author:
Sasaki Hiroko,Matsuno Kohei,Fujiwara Amane,Onuka Misaki,Yamaguchi Atsushi,Ueno Hiromichi,Watanuki Yutaka,Kikuchi Takashi
Abstract
Abstract. The advection of warm Pacific water and the reduction in sea ice in the western Arctic Ocean may influence the abundance and distribution of copepods, a key component of food webs. To quantify the factors affecting the abundance of copepods in the northern Bering and Chukchi seas, we constructed habitat models explaining the spatial patterns of large and small Arctic and Pacific copepods separately. Copepods were sampled using NORPAC (North Pacific Standard) nets. The structures of water masses indexed by principle component analysis scores, satellite-derived timing of sea ice retreat, bottom depth and chlorophyll a concentration were integrated into generalized additive models as explanatory variables. The adequate models for all copepods exhibited clear continuous relationships between the abundance of copepods and the indexed water masses. Large Arctic copepods were abundant at stations where the bottom layer was saline; however they were scarce at stations where warm fresh water formed the upper layer. Small Arctic copepods were abundant at stations where the upper layer was warm and saline and the bottom layer was cold and highly saline. In contrast, Pacific copepods were abundant at stations where the Pacific-origin water mass was predominant (i.e. a warm, saline upper layer and saline and a highly saline bottom layer). All copepod groups showed a positive relationship with early sea ice retreat. Early sea ice retreat has been reported to initiate spring blooms in open water, allowing copepods to utilize more food while maintaining their high activity in warm water without sea ice and cold water. This finding indicates that early sea ice retreat has positive effects on the abundance of all copepod groups in the northern Bering and Chukchi seas, suggesting a change from a pelagic–benthic-type ecosystem to a pelagic–pelagic type.
Publisher
Copernicus GmbH
Subject
Earth-Surface Processes,Ecology, Evolution, Behavior and Systematics
Reference51 articles.
1. Arrigo, K. R., van Dijken, G., and Pabi, S.: Impact of a shrinking Arctic ice cover on marine primary production, Geophys. Res. Lett., 35, L19603, https://doi.org/10.1029/2008GL035028, 2008. 2. Ashjian, C. J., Campbell, R. G., Welch, H. E., Butler, M., and Van Keuren, D.: Annual cycle in abundance, distribution, and size in relation to hydrography of important copepod species in the western Arctic Ocean, Deep-Sea Res. Pt. I, 50, 1235–1261, 2003. 3. Brown, Z. W. and Arrigo, K. R.: Sea ice impacts on spring bloom dynamics and net primary production in the Eastern Bering Sea, J. Geophys. Res.-Oceans, 118, 43–62, 2013. 4. Clement, J. L., Cooper, L. W., and Grebmeier, J. M.: Late winter water column and sea ice conditions in the northern Bering Sea, J. Geophys. Res.-Oceans, 109, C03022, https://doi.org/10.1029/2003JC002047, 2004. 5. Coachman, L. K., Aagaard, K., and Tripp, R. B.: Bering Strait: the regional physical oceanography, University of Washington Press, 1975.
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