Structures of coexisting marine snow and zooplankton in coastal waters of Svalbard (European Arctic)
Author:
Trudnowska Emilia1, Błachowiak-Samołyk Katarzyna1, Stemmann Lars2
Affiliation:
1. 1Department of Marine Ecology, Institute of Oceanology Polish Academy of Sciences, Sopot, Poland 2. 2Laboratoire d’Océanographie de Villefranche-sur-Mer (LOV), Sorbonne Université, CNRS, UMR7093, Villefranche-sur-Mer, France
Abstract
How plankton and particles are arranged spatially and the configurations of their co-occurrence shape the rates of organic matter production, utilization, and export within marine systems. The aim of this study was to examine whether the composition of marine snow (particles and aggregates >500 µm) and its coexistence with zooplankton change with depth layer, level of zooplankton dominance, chlorophyll fluorescence, and turbidity across the coastal–offshore gradients of hydrographically different Arctic fjords. The distribution and concentrations of zooplankton and marine snow were assessed in situ using an underwater vision profiler (UVP) in Svalbard waters during summer 2019. UVP counts of marine snow drastically outnumbered zooplankton at glacial stations, whereas zooplankton dominated offshore and in upper water layers, even in coastal waters. The most common compositional structure was dominance by an elongated morphotype of marine snow, often co-occurring with small dark (opaque) particles below 40 m depth, implying that these were the typical forms exported directly from surface layers. The other widespread type of structuring was dominance of UVP counts by copepods. They often coexisted with a flake morphotype of marine snow associated with high chlorophyll fluorescence. Structuring dominated by dark morphotypes was observed mainly near glaciers and in deep fjord basins. The highest amount of marine snow, represented by a high degree of dark morphotype, was observed in Hornsund, the most Arctic-type fjord. A Phaeocystis-associated agglomerated morphotype of marine snow occurred scarcely and only in more Atlantic-influenced fjords. A bimodal distribution pattern, with one abundance peak at the surface and another in deeper layers (>80 m) was observed offshore and in Kongsfjorden. This study emphasizes the high potential of UVPs for tracking links between plankton and detritus directly in their natural environment, and that variation in their co-occurrence may provide a proxy for the state of a pelagic ecosystem.
Publisher
University of California Press
Subject
Atmospheric Science,Geology,Geotechnical Engineering and Engineering Geology,Ecology,Environmental Engineering,Oceanography
Reference102 articles.
1. Aksnes, DL, Dupont, N, Staby, A, Fiksen, Ø, Kaartvedt, S, Aure, J. 2009. Coastal water darkening and implications for mesopelagic regime shifts in Norwegian Fjords. Marine Ecology Progress Series387: 39–49. DOI: http://dx.doi.org/10.3354/meps08120. 2. Anderson, MJ, Gorley, RN, Clarke, KR. 2008. Permanova+ for primer: Guide to software and statistical methods. Plymouth, UK: PRIMER-E. 3. Arendt, KE, Dutz, J, Jónasdóttir, SH, Jung-Madsen, S, Mortensen, J, Møller, EF, Nielsen, TG.2011. Effects of suspended sediments on copepods feeding in a glacial influenced sub-Arctic fjord. Journal of Plankton Research33(10): 1526–1537. DOI: http://dx.doi.org/10.1093/plankt/fbr054. 4. Ashjian, CJ, Gallager, SM, Plourde, S.2005. Transport of plankton and particles between the Chukchi and Beaufort Seas during summer 2002, described using a Video Plankton Recorder. Deep Sea Research Part II: Topical Studies in Oceanography52(24–26): 3259–3280. DOI: http://dx.doi.org/10.1016/j.dsr2.2005.10.012. 5. Azetsu-Scott, K, Passow, U.2004. Ascending marine particles: Significance of transparent exopolymer particles (TEP) in the upper ocean. Limnology and Oceanography49(3): 741–748. DOI: http://dx.doi.org/10.4319/lo.2004.49.3.0741.
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