Distribution and habitat preference of polar cod (Boreogadus saida) in the Bering and Chukchi Seas inferred from species-specific detection of environmental DNA

被引:1
作者
Kawakami, Tatsuya [1 ]
Yamazaki, Aya [1 ,2 ]
Jiang, Hai-Chao [3 ]
Ueno, Hiromichi [1 ]
Kasai, Akihide [1 ]
机构
[1] Hokkaido Univ, Fac Fisheries Sci, Hakodate, Japan
[2] Japan Agcy Marine Earth Sci & Technol, Res Inst Global Change, Marine Biodivers & Environm Assessment Res Ctr, Yokosuka, Japan
[3] Hokkaido Univ, Sch Fisheries Sci, Hakodate, Japan
基金
日本学术振兴会;
关键词
Arctic; environmental DNA; logistic regression analysis; polar cod (Boreogadus saida); quantitative PCR; sea ice; species-specific assay; water mass classification; LARVAL FISH ASSEMBLAGES; BEAUFORT SEA; QUANTIFICATION; DEGRADATION; COMMUNITIES; ICE;
D O I
10.3389/fmars.2023.1193083
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Ongoing warming and sea-ice reductions in the Arctic can seriously impact cold-water species, such as polar cod (Boreogadus saida), necessitating biomonitoring to reveal the ecological consequences. Recent methodological advancements in environmental DNA (eDNA) techniques have increased our ability to conduct ecological monitoring at various locations, including the Arctic. This study aimed to provide an overview of the distribution of polar cod across the Bering and Chukchi Seas by employing species-specific detection of eDNA. First, we successfully developed novel species-specific qPCR assay targeting the mitochondrial D-loop region, which exclusively amplifies eDNA derived from polar cod. Subsequently, polar cod eDNA was detected using the assay from the samples that we collected latitudinally across the study area during the open -water season. Polar cod eDNA was primarily detected in the surface water from the central Chukchi Sea shelf and the northernmost observation line (75 degrees N), which was located on the shelf slope, off the Point Barrow, and in the marginal ice zone. In contrast, only trace amounts of eDNA were detected in the Bering Sea. This pattern corresponded well with the distribution of water masses classified based on environmental conditions. The detection of eDNA in surface water was clearly limited to cold (-1 to 5 degrees C) and low salinity (25-32) water, whereas it was detected in a higher salinity range (32-34) in the middle and bottom layers. These findings are consistent with current knowledge about the distribution and habitat of the polar cod, suggesting that eDNA can be regarded as a reliable tool to replace or supplement conventional methods. Incorporating eDNA techniques into large-scale oceanographic surveys can improve the spatial and temporal resolution of fish species detection with a reasonable sampling effort and will facilitate the continuous monitoring of Arctic ecosystems.
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页数:14
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共 94 条
  • [1] Afzali SF., 2021, Environ. DNA, V3, P22, DOI DOI 10.1002/EDN3.111
  • [2] A framework for assessing the economic impacts of Arctic change
    Alvarez, Jimena
    Yumashev, Dmitry
    Whiteman, Gail
    [J]. AMBIO, 2020, 49 (02) : 407 - 418
  • [3] Ontogenetic movements of cod in Arctic fjords and the Barents Sea as revealed by otolith microchemistry
    Andrade, Hector
    van der Sleen, Peter
    Black, Bryan A.
    Godiksen, Jane A.
    Locke, William L.
    Carroll, Michael L.
    Ambrose, William G., Jr.
    Geffen, Audrey
    [J]. POLAR BIOLOGY, 2020, 43 (05) : 409 - 421
  • [4] Phytoplankton dynamics in a changing Arctic Ocean
    Ardyna, Mathieu
    Arrigo, Kevin Robert
    [J]. NATURE CLIMATE CHANGE, 2020, 10 (10) : 892 - 903
  • [5] Distribution and ecology of polar cod (Boreogadus saida) in the eastern Barents Sea: A review of historical literature
    Aune, Magnus
    Raskhozheva, Evgeniia
    Andrade, Hector
    Augustine, Starrlight
    Bambulyak, Alexei
    Camus, Lionel
    Carroll, JoLynn
    Dolgov, Andrey V.
    Hop, Haakon
    Moiseev, Denis
    Renaud, Paul E.
    Varpe, Oystein
    [J]. MARINE ENVIRONMENTAL RESEARCH, 2021, 166 (166)
  • [6] The ecology of environmental DNA and implications for conservation genetics
    Barnes, Matthew A.
    Turner, Cameron R.
    [J]. CONSERVATION GENETICS, 2016, 17 (01) : 1 - 17
  • [7] Environmental DNA for wildlife biology and biodiversity monitoring
    Bohmann, Kristine
    Evans, Alice
    Gilbert, M. Thomas P.
    Carvalho, Gary R.
    Creer, Simon
    Knapp, Michael
    Yu, Douglas W.
    de Bruyn, Mark
    [J]. TRENDS IN ECOLOGY & EVOLUTION, 2014, 29 (06) : 358 - 367
  • [8] Climate warming enhances polar cod recruitment, at least transiently
    Bouchard, Caroline
    Geoffroy, Maxime
    LeBlanc, Mathieu
    Majewski, Andrew
    Gauthier, Stephan
    Walkusz, Wojciech
    Reist, James D.
    Fortier, Louis
    [J]. PROGRESS IN OCEANOGRAPHY, 2017, 156 : 121 - 129
  • [9] Vertical stratification of environmental DNA in the open ocean captures ecological patterns and behavior of deep-sea fishes
    Canals, Oriol
    Mendibil, Inaki
    Santos, Maria
    Irigoien, Xabier
    Rodriguez-Ezpeleta, Naiara
    [J]. LIMNOLOGY AND OCEANOGRAPHY LETTERS, 2021, 6 (06) : 339 - 347
  • [10] Pacific Salmon in the Rapidly Changing Arctic: Exploring Local Knowledge and Emerging Fisheries in Utqiagvik and Nuiqsut, Alaska
    Carothers, Courtney
    Sformo, Todd L.
    Cotton, Shelley
    George, John C.
    Westley, Peter A. H.
    [J]. ARCTIC, 2019, 72 (03) : 273 - 288