Efficiency of sympagic-benthic coupling revealed by analyses of n-3 fatty acids, IP25 and other highly branched isoprenoids in two filter-feeding Arctic benthic molluscs: Mya truncata and Serripes groenlandicus

被引:18
作者
Amiraux, Remi [1 ,2 ]
Archambault, Philippe [1 ,3 ]
Moriceau, Brivaela [2 ]
Lemire, Melanie [4 ]
Babin, Marcel [1 ]
Memery, Laurent [2 ]
Masse, Guillaume [1 ]
Tremblay, Jean-Eric [1 ]
机构
[1] Univ Laval, Dept Biol & Quebec Ocean, CNRS, Takuvik Int Res Lab,Quebec Ocean,Laval Univ Canad, Quebec City, PQ, Canada
[2] Inst Univ Europeen Mer IUEM, Technopole Brest Iroise, Lab Sci Environm MARin LEMAR, UMR 6539,CNRS,Ifremer,IRD,UBO, Plouzane, France
[3] Univ Laval, Dept Biol, ArcticNet, Quebec Ocean, Quebec City, PQ, Canada
[4] Univ Laval, Ctr Rech, Axe Sante Populat & Prat Optimales Sante, CHU Quebec, Quebec City, PQ, Canada
关键词
Arctic shelves; Sympagic-benthic coupling; IP25; HBI; n-3; PUFA; EPA; DHA; Mya truncata; Serripes groenlandicus; ice-derived HBI III; WESTERN BARENTS SEA; FOOD-WEB STRUCTURE; MARGINAL ICE-ZONE; ORGANIC-MATTER; ASSIMILATION PATHWAYS; FILTRATION-RATES; MACOMA-BALTHICA; MYTILUS-EDULIS; CLIMATE-CHANGE; FRAM STRAIT;
D O I
10.1016/j.orggeochem.2020.104160
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
The aim of this work was to determine the impact of sympagic (ice-associated) algal primary production on the quality of Arctic filter-feeding bivalves. For this purpose, we investigated the sea ice production of lipids (including omega-3 polyunsaturated fatty acids (n-3 PUFA) and highly branched isoprenoids (HBI)), as well as their subsequent incorporation into the truncate softshell clam (Mya truncata) and the Greenland cockle (Serripes groenlandicus), during the melting periods of two consecutive years in Baffin Bay. Lipid and primary production exhibited seasonal variability and overall contrasts between the two years, as a result of distinct physical forcings and the ensuing biological responses. Whilst less productive in terms of total lipids or chlorophyll a, spring 2016 was more productive than spring 2015 for n-3 PUFA, which are essential for benthic fauna. The sea ice diatom HBI biomarker IP25 was quantified in sea ice from both years. Interestingly, such production was preceded by a production of the hitherto 'pelagic' biomarker, HBI III, in sea ice. In bivalves, HBI contents and correlations confirmed the tightness of the Arctic sympagic-benthic coupling and highlighted that S. groenlandicus can be used as a sentinel species for assessing the degree of this coupling. The confirmation that bivalves incorporate sea-ice derived HBI III and not only IP25, may introduce uncertainties into the use of some HBI-based indices. Monitoring of the fatty acid contents of bivalves allowed identification of their spawning periods and suggests that M. truncata did not store enough n-3 PUFA to sustain its reproductive effort. (C) 2020 Elsevier Ltd. All rights reserved.
引用
收藏
页数:14
相关论文
共 103 条
[1]   Does a pulsed food supply to the benthos affect polychaete recruitment patterns in the Northeast Water Polynya? [J].
Ambrose, WG ;
Renaud, PE .
JOURNAL OF MARINE SYSTEMS, 1997, 10 (1-4) :483-495
[2]   Stress factors resulting from the Arctic vernal sea-ice melt: Impact on the viability of bacterial communities associated with sympagic algae [J].
Amiraux, Remi ;
Burot, Christopher ;
Bonin, Patricia ;
Masse, Guillaume ;
Guasco, Sophie ;
Babin, Marcel ;
Vaultier, Frederic ;
Rontani, Jean-Francois .
ELEMENTA-SCIENCE OF THE ANTHROPOCENE, 2020, 8 (01)
[3]   Temporal evolution of IP25 and other highly branched isoprenoid lipids in sea ice and the underlying water column during an Arctic melting season [J].
Amiraux, Remi ;
Smik, Lukas ;
Koseoglu, Denizcan ;
Rontani, Jean-Francois ;
Galindo, Virginie ;
Grondin, Pierre-Luc ;
Babin, Marcel ;
Belt, Simon T. .
ELEMENTA-SCIENCE OF THE ANTHROPOCENE, 2019, 7
[4]   Monitoring photo-oxidative and salinity-induced bacterial stress in the Canadian Arctic using specific lipid tracers [J].
Amiraux, Remi ;
Belt, Simon T. ;
Vaultier, Frederic ;
Galindo, Virginie ;
Gosselin, Michel ;
Bonin, Patricia ;
Rontani, Jean-Francois .
MARINE CHEMISTRY, 2017, 194 :89-99
[5]  
[Anonymous], 2016, THESIS
[6]   Large scale importance of sea ice biology in the Southern Ocean [J].
Arrigo, KR ;
Thomas, DN .
ANTARCTIC SCIENCE, 2004, 16 (04) :471-486
[7]   FLUORESCENCE INDUCTION AND PHOTOSYNTHETIC RESPONSES OF ARCTIC ICE ALGAE TO SAMPLE TREATMENT AND SALINITY [J].
BATES, SS ;
COTA, GF .
JOURNAL OF PHYCOLOGY, 1986, 22 (04) :421-429
[8]   Source identification and distribution reveals the potential of the geochemical Antarctic sea ice proxy IPSO25 [J].
Belt, S. T. ;
Smik, L. ;
Brown, A. ;
Kim, J. -H. ;
Rowland, S. J. ;
Allen, C. S. ;
Gal, J. -K. ;
Shin, K. -H. ;
Lee, J. I. ;
Taylor, K. W. R. .
NATURE COMMUNICATIONS, 2016, 7
[9]   An inter-laboratory investigation of the Arctic sea ice biomarker proxy IP25 in marine sediments: key outcomes and recommendations [J].
Belt, S. T. ;
Brown, T. A. ;
Ampel, L. ;
Cabedo-Sanz, P. ;
Fahl, K. ;
Kocis, J. J. ;
Masse, G. ;
Navarro-Rodriguez, A. ;
Ruan, J. ;
Xu, Y. .
CLIMATE OF THE PAST, 2014, 10 (01) :155-166
[10]   A novel chemical fossil of palaeo sea ice:: IP25 [J].
Belt, Simon T. ;
Masse, Guillaume ;
Rowland, Steven J. ;
Poulin, Michel ;
Michel, Christine ;
LeBlanc, Bernard .
ORGANIC GEOCHEMISTRY, 2007, 38 (01) :16-27