Epibenthic faunal community dynamics and seasonal species turnover in a deep-sea coral ecosystem
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A. Sherman | S. Litvin | A. DeVogelaere | E. Burton | J. Barry | Paul R. McGill | F. Girard | C. Lovera | Paul McGill
[1] A. Sherman,et al. Phenology in the deep sea: seasonal and tidal feeding rhythms in a keystone octocoral , 2022, Proceedings of the Royal Society B.
[2] C. Messing,et al. Diversity and time-series analyses of Caribbean deep-sea coral and sponge assemblages on the tropical island slope of Isla de Roatán, Honduras , 2022, Marine Biodiversity.
[3] B. Ebenman,et al. The importance of species interactions in eco-evolutionary community dynamics under climate change , 2021, Nature Communications.
[4] Simone Marini,et al. An Automated Pipeline for Image Processing and Data Treatment to Track Activity Rhythms of Paragorgia arborea in Relation to Hydrographic Conditions , 2020, Sensors.
[5] J. Sarrazin,et al. Impacts of an Eruption on Cold-Seep Microbial and Faunal Dynamics at a Mud Volcano , 2020, Frontiers in Marine Science.
[6] E. Marian Scott,et al. Evidence for seasonal cycles in deep-sea fish abundances: a great migration in the deep SE Atlantic? , 2020, The Journal of animal ecology.
[7] Gerald H Taranto,et al. Climate‐induced changes in the suitable habitat of cold‐water corals and commercially important deep‐sea fishes in the North Atlantic , 2020, Global change biology.
[8] D. van Oevelen,et al. Seasonal controls on the diet, metabolic activity, tissue reserves and growth of the cold-water coral Lophelia pertusa , 2019, Coral Reefs.
[9] P. Buhl-Mortensen,et al. Computer vision enables short- and long-term analysis of Lophelia pertusa polyp behaviour and colour from an underwater observatory , 2019, Scientific Reports.
[10] H. Claustre,et al. Multi-faceted particle pumps drive carbon sequestration in the ocean , 2019, Nature.
[11] Andrew J. Wheeler,et al. Cold-water corals in decline – A temporal (4 year) species abundance and biodiversity appraisal of complete photomosaiced cold-water coral reef on the Irish Margin , 2019, Deep Sea Research Part I: Oceanographic Research Papers.
[12] Alex E. Hay,et al. Annual and seasonal dynamics of deep-sea megafaunal epibenthic communities in Barkley Canyon (British Columbia, Canada): A response to climatology, surface productivity and benthic boundary layer variation , 2018, Progress in Oceanography.
[13] C. Fisher,et al. Long-term impact of the Deepwater Horizon oil spill on deep-sea corals detected after seven years of monitoring , 2018, Biological Conservation.
[14] J. Aguzzi,et al. Faunal activity rhythms influencing early community succession of an implanted whale carcass offshore Sagami Bay, Japan , 2018, Scientific Reports.
[15] V. Tunnicliffe,et al. Drivers of temporal beta diversity of a benthic community in a seasonally hypoxic fjord , 2018, Royal Society Open Science.
[16] J. Roberts,et al. Global biodiversity in cold-water coral reef ecosystems , 2017 .
[17] Autun Purser,et al. Seasonal monitoring of deep-sea megabenthos in Barkley Canyon cold seep by internet operated vehicle (IOV) , 2017, PloS one.
[18] Wilhelm Hasselbring,et al. Modeling polyp activity of Paragorgia arborea using supervised learning , 2017, Ecol. Informatics.
[19] Raymond W. Lee,et al. Astronomical and atmospheric impacts on deep-sea hydrothermal vent invertebrates , 2017, Proceedings of the Royal Society B: Biological Sciences.
[20] L. Buhl‐Mortensen,et al. First observations of the structure and megafaunal community of a large Lophelia reef on the Ghanaian shelf (the Gulf of Guinea) , 2017 .
[21] Yann Marcon,et al. PAPARA(ZZ)I: An open-source software interface for annotating photographs of the deep-sea , 2017, SoftwareX.
[22] A. Metaxas,et al. Environmental Impacts of the Deep-Water Oil and Gas Industry: A Review to Guide Management Strategies , 2016, Front. Environ. Sci..
[23] Brian J. Bett,et al. Effectiveness of a deep-sea cold-water coral Marine Protected Area, following eight years of fisheries closure , 2016 .
[24] Alan Williams,et al. The impacts of deep-sea fisheries on benthic communities: a review , 2016 .
[25] L. Levin,et al. The deep ocean under climate change , 2015, Science.
[26] P. Legendre,et al. Thirty-year recovery of mollusc communities after nuclear experimentations on Fangataufa atoll (Tuamotu, French Polynesia) , 2015, Proceedings of the Royal Society B: Biological Sciences.
[27] T. Shank,et al. A systematic approach towards the identification and protection of vulnerable marine ecosystems , 2014 .
[28] C. R. Smith,et al. Seasonal dynamics of megafauna on the deep West Antarctic Peninsula shelf in response to variable phytodetrital influx , 2014, Royal Society Open Science.
[29] C. Fisher,et al. Community succession in hydrothermal vent habitats of the Eastern Lau Spreading Center and Valu Fa Ridge, Tonga , 2014 .
[30] Carrie V. Kappel,et al. Global imprint of climate change on marine life , 2013 .
[31] Steven Mihály,et al. A year in Barkley Canyon: A time-series observatory study of mid-slope benthos and habitat dynamics using the NEPTUNE Canada network , 2013 .
[32] B. Worm,et al. Ecological role of large benthic decapods in marine ecosystems: a review , 2012 .
[33] John H. Harms,et al. Distribution, biomass and size of grooved Tanner crabs (Chionoecetes tanneri) from annual bottom trawl surveys (2003–2010) along the U.S. west coast (Washington to California) , 2012 .
[34] M. Zbinden,et al. Diet and gut microorganisms of Munidopsis squat lobsters associated with natural woods and mesh-enclosed substrates in the deep South Pacific , 2012 .
[35] V. Tunnicliffe,et al. Shortspine thornyhead and rockfish (Scorpaenidae) distribution in response to substratum, biogenic structures and trawling , 2011 .
[36] Paolo Menesatti,et al. Behavioral rhythms of hydrocarbon seep fauna in relation to internal tides , 2010 .
[37] Erik Cordes,et al. Megafauna community composition associated with Lophelia pertusa colonies in the Gulf of Mexico , 2010 .
[38] S. T. Buckland,et al. Long-term datasets in biodiversity research and monitoring: assessing change in ecological communities through time. , 2010, Trends in ecology & evolution.
[39] Roberto Danovaro,et al. Deep, diverse and definitely different: unique attributes of the world's largest ecosystem , 2010 .
[40] Lene Buhl-Mortensen,et al. Biological structures as a source of habitat heterogeneity and biodiversity on the deep ocean margins , 2010 .
[41] Pierre Legendre,et al. Estimating and controlling for spatial structure in the study of ecological communities , 2010 .
[42] David A. Mucciarone,et al. Extreme longevity in proteinaceous deep-sea corals , 2009, Proceedings of the National Academy of Sciences.
[43] K. Bailey,et al. The distribution of life cycle stages of two deep-water pleuronectids, Dover sole ( Microstomus pacificus) and rex sole ( Glyptocephalus zachirus), at the northern extent of their range in the Gulf of Alaska , 2007 .
[44] A. Wheeler,et al. Reefs of the Deep: The Biology and Geology of Cold-Water Coral Ecosystems , 2006, Science.
[45] R. P. Stone,et al. Coral habitat in the Aleutian Islands of Alaska: depth distribution, fine-scale species associations, and fisheries interactions , 2006, Coral Reefs.
[46] D. Bailey,et al. Long-term change in benthopelagic fish abundance in the abyssal northeast Pacific Ocean. , 2006, Ecology.
[47] Kung-Sik Chan,et al. Ecological Effects of Climate Fluctuations , 2002, Science.
[48] Erik Cordes,et al. Age, growth and radiometric age validation of a deep-sea, habitat-forming gorgonian (Primnoa resedaeformis) from the Gulf of Alaska , 2002, Hydrobiologia.
[49] Bruce L. Wing,et al. Megafauna associations with deepwater corals (Primnoa spp.) in the Gulf of Alaska , 2002, Hydrobiologia.
[50] P. Falkowski,et al. Photosynthetic rates derived from satellite‐based chlorophyll concentration , 1997 .
[51] Kenneth L. Smith,et al. Seasonal change in activity of abyssal demersal scavenging grenadiers Coryphaenoides (Nematonums) armatus in the eastern North Pacific Ocean , 1994 .
[52] J. Himmelman,et al. Diet, behaviour and reproduction of the whelk Buccinum undatum in the northern Gulf of St. Lawrence, eastern Canada , 1993 .
[53] Kenneth L. Smith,et al. Temporal change in foraging behaviour of the fish Coryphaenoides (Nematonurus) yaquinae in the central North Pacific , 1991 .
[54] Kenneth L. Smith,et al. Effect of near-bottom currents on detection of bait by the abyssal grenadier fishes Coryphaenoides spp., recorded in situ with a video camera on a free vehicle , 1984 .
[55] A. L. Rice,et al. Seasonal sedimentation of phytoplankton to the deep-sea benthos , 1983, Nature.
[56] William G. Pearcy,et al. Food habits of deep-sea macrourid fishes off the Oregon coast , 1974 .
[57] G. Douglas,et al. Chapter 30 – Red Crabs as Sentinel Organisms in Exposure of Deep-Sea Benthos to Macondo Oil Following the Deepwater Horizon Oil Spill , 2018 .
[58] A. Davies,et al. Predicting the distribution of vulnerable marine ecosystems in the deep sea using presence-background models , 2014 .
[59] E. Pante,et al. Biology of deep-water octocorals. , 2011, Advances in marine biology.
[60] Paolo Menesatti,et al. Activity rhythms in the deep-sea: a chronobiological approach. , 2011, Frontiers in bioscience.
[61] D. Bailey,et al. Temporal change in deep-sea benthic ecosystems: a review of the evidence from recent time-series studies. , 2010, Advances in marine biology.
[62] T. Treude,et al. Scavenger assemblages under differing trophic conditions : a case study in the deep Arabian Sea , 2000 .