Distribution and Suitable Habitat of the Cold-Water Corals Lophelia pertusa, Paragorgia arborea, and Primnoa resedaeformis on the Norwegian Continental Shelf

被引:29
|
作者
Sundahl, Hanna [1 ]
Buhl-Mortensen, Pal [2 ]
Buhl-Mortensen, Lene [2 ]
机构
[1] Univ Bergen, Dept Biol Sci, Bergen, Norway
[2] Inst Marine Res, Bergen, Norway
基金
美国国家航空航天局;
关键词
cold-water corals; Maxent; species distribution modeling; habitat suitability; vulnerable marine ecosystems; Lophelia pertusa; Paragorgia arborea; Primnoa resedaeformis; DEEP-SEA; GORGONIAN CORALS; NORTHEAST CHANNEL; GROWTH; ATLANTIC; REEFS; SCLERACTINIA; CONSERVATION; NEWFOUNDLAND; SUITABILITY;
D O I
10.3389/fmars.2020.00213
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Cold-water corals are habitat-forming species that are also classified as indicators of vulnerable marine ecosystems (VMEs) due to the threat of various anthropogenic impacts, e.g., fisheries and oil/mineral exploration. To best protect VMEs, knowledge of their habitat requirements and distribution is essential. However, comprehensive sampling of the deep sea is difficult due to access and cost constraints, so species distribution modeling (SDM) is often used to predict overall distributions and ecological preferences of species based on limited data. We used Maximum Entropy (Maxent) modeling to predict the probability of presence of the reef-building scleractinian Lophelia pertusa and the octocorals Paragorgia arborea and Primnoa resedaeformis using a total of 2149 coral presence points and 15 environmental predictor variables. The environmental variables used in the analysis were processed to 176 m resolution and included bathymetry, depth, geomorphometric characteristics [slope, aspect, and bathymetric position index (BPI)], oceanography (temperature, salinity, current directions, and speed), surface chlorophyll a concentration, sediment type, and marine landscape type. Comparing presence points with environmental data showed that the temperature and depth range for Lophelia was narrower compared to the gorgonians, and it occurred in shallower, warmer water. Observations showed that Lophelia had a broad, bimodal response to Broad BPI, while the predicted model indicated a more narrow response. Paragorgia tolerated the greatest range of sloping according to the model. All three species were observed with a bimodal pattern along a wide range of mean current speed, while the models indicated a high response to faster current speed. Jackknife tests showed that sediment type was an important predictor for gorgonian corals, while BPI and minimum temperature were more important for Lophelia. The spatial precision of the models could be further increased by applying environmental layers with a higher and uniform spatial resolution. The predicted distribution of corals and their relation to environmental variables provides an important background for prioritizing areas for detailed mapping surveys and will aid in the conservation efforts for these VMEs in Norwegian waters and beyond.
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页数:22
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共 19 条
  • [1] Predicting suitable habitat for the cold-water coral Lophelia pertusa (Scleractinia)
    Davies, Andrew J.
    Wisshak, Max
    Orr, James C.
    Roberts, J. Murray
    [J]. DEEP-SEA RESEARCH PART I-OCEANOGRAPHIC RESEARCH PAPERS, 2008, 55 (08) : 1048 - 1062
  • [2] In situ growth and bioerosion rates of Lophelia pertusa in a Norwegian fjord and open shelf cold-water coral habitat
    Buescher, Janina, V
    Wisshak, Max
    Form, Armin U.
    Titschack, Juergen
    Nachtigall, Kerstin
    Riebesell, Ulf
    [J]. PEERJ, 2019, 7
  • [3] Crustaceans associated with the deep-water gorgonian corals Paragorgia arborea (L., 1758) and Primnoa resedaeformis (Gunn., 1763)
    Buhl-Mortensen, L
    Mortensen, PB
    [J]. JOURNAL OF NATURAL HISTORY, 2004, 38 (10) : 1233 - 1247
  • [4] Comparison of microbiomes of cold-water corals Primnoa pacifica and Primnoa resedaeformis, with possible link between microbiome composition and host genotype
    Goldsmith, Dawn B.
    Kellogg, Christina A.
    Morrison, Cheryl L.
    Gray, Michael A.
    Stone, Robert P.
    Waller, Rhian G.
    Brooke, Sandra D.
    Ross, Steve W.
    [J]. SCIENTIFIC REPORTS, 2018, 8
  • [5] Comparison of microbiomes of cold-water corals Primnoa pacifica and Primnoa resedaeformis, with possible link between microbiome composition and host genotype
    Dawn B. Goldsmith
    Christina A. Kellogg
    Cheryl L. Morrison
    Michael A. Gray
    Robert P. Stone
    Rhian G. Waller
    Sandra D. Brooke
    Steve W. Ross
    [J]. Scientific Reports, 8
  • [6] Role of cold-water Lophelia pertusa coral reefs as fish habitat in the NE Atlantic
    Costello, MJ
    McCrea, M
    Freiwald, A
    Lundälv, T
    Jonsson, L
    Bett, BJ
    van Weering, TCE
    de Haas, H
    Roberts, JM
    Allen, D
    [J]. COLD-WATER CORALS AND ECOSYSTEMS, 2005, : 771 - 805
  • [7] Food supply mechanisms for cold-water corals along a continental shelf edge
    Thiem, Oyvind
    Ravagnan, Efisa
    Fossa, Jan Helge
    Berntsen, Jarle
    [J]. JOURNAL OF MARINE SYSTEMS, 2006, 60 (3-4) : 207 - 219
  • [8] A health survey of the reef forming scleractinian cold-water corals Lophelia pertusa and Madrepora oculata in a remote submarine canyon on the European continental margin, NE Atlantic
    Appah, J. K. M.
    Lynch, S. A.
    Lim, A.
    Riordan, R. O.
    O'Reilly, L.
    de Oliveira, L.
    Wheeler, A. J.
    [J]. JOURNAL OF INVERTEBRATE PATHOLOGY, 2022, 192
  • [9] Fine-scale spatial genetic structure and clonal distribution of the cold-water coral Lophelia pertusa
    M. P. Dahl
    R. T. Pereyra
    T. Lundälv
    C. André
    [J]. Coral Reefs, 2012, 31 : 1135 - 1148
  • [10] Fine-scale spatial genetic structure and clonal distribution of the cold-water coral Lophelia pertusa
    Dahl, M. P.
    Pereyra, R. T.
    Lundalv, T.
    Andre, C.
    [J]. CORAL REEFS, 2012, 31 (04) : 1135 - 1148