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The idealized model assumes two unbounded basins, shallow and deep, separated by an infinitely long and thin barrier. On either side of the barrier, a western boundary current in the deep basin and a shelf current in the shallow basin flow along the barrier with the surface elevation of the former higher than that of the latter. When a part of the barrier is removed and a gap is created, the onshore part of the western boundary current intrudes onto the shallow basin through the gap while conserving its potential vorticity. Both the intruding current and the shelf current will later geostrophically adjust themselves to the disturbances created by the intrusion. Model results show that the transport of onshore intrusion increases with the sea level difference imposed initially between the deep and shallow basins across the barrier, indicating that the sea level rise associated with the strengthening of shelf current inhibits the shelf-ward intrusion. The intruding current is in jet mode when its transport is maximized, which otherwise is in coastal mode. The maximization of transport occurs when the sea level difference between the two basins is sufficiently large. Although this model greatly idealizes the problem, it explains well the observed fact that the transport of Tsushima Warm Current is fed mostly by the Taiwan Strait Current in summer when the latter becomes the strongest, and by the onshore intrusion of Kuroshio in winter when the Taiwan Strait Current nearly vanishes, suggesting that the seasonal variation of the onshore intrusion of Kuroshio is largely due to the seasonal variation in the strength of the Taiwan Strait Current.",{"EN":158,"VI":159},"Effect of Taiwan Strait Current on the onshore intrusion of Kuroshio: A geostrophic adjustment model","Ảnh hưởng của dòng chảy eo biển Đài Loan lên sự xâm nhập ven bờ của hải lưu Kuroshio: Mô hình điều chỉnh địa chuyển",{"VOID":161},"Chen CTA, Sheu DD (2006) Does the Taiwan Warm Current originate in the Taiwan Strait in wintertime? J Geophys Res 111:C04005. doi:10.1029\u002F2005JC003281\nChern CS, Wang J, Wang DP (1990)The exchange of Kuroshio and East China Sea water. J Geophys Res 95:16017–16023\nFukudome K, Yoon JH, Ostrovskii A, Takikawa T (2010) Seasonal volume transport variation in the Tsushima Warm Current through the Tsushima Straits from 10 years of ADCP observations. J Oceanogr 66:539–551\nGuo X, Miyazawa Y, Yamagata T (2006) The Kuroshio onshore intrusion along the shelf break of the East China Sea: the origin of the Tsushima Warm Current. J Phys Oceanogr 36: 2205–2231\nHsueh Y, Lie HJ, Ichikawa H (1996) On the branching of the Kuroshio west of Kyushu. J Geophys Res 101:3851–3857\nHsueh Y, Wang J, Chern CS (1992) The intrusion of the Kuroshio across the continental shelf northeast of Taiwan. J Geophy Res 97:14323–14330\nIchikawa H, Chaen M (2000) Seasonal variation of heat and freshwater transports by the Kuroshio in the East China Sea. J Mar Sys 24:119–129\nImawaki S, Uchida H, Ichikawa H, Fukasawa M, Umatani S, ASUKA Group (1997) Time series of the Kuroshio transport derived from field observation and altimetry data. Int WOCE Newslett 25:15–18\nIsobe A (2000) Two-layer model on the branching of the Kuroshio southwest of Kyushu, Japan. J Phys Oceanogr 30:2461–2476\nIsobe A (2008) Recent advances in ocean-circulation research on the Yellow Sea and East China Sea shelves. J Oceanogr 64: 569–584\nJan S, Sheu DD, Kuo HM (2006) Water mass and throughflow transport variability in the Taiwan Strait. J Geophys Res 111: C12012. doi:10.1029\u002F2006JC003656\nJan S, Tseng Y, Dietrich DE (2010) Sources of water in the Taiwan Strait. J Oceanogr 66:211–221\nLie HJ, Cho CH (1994) On the origin of the Tsushima Warm Current. J Geophys Res 99:25081–25091\nLie HJ, Cho CH, Lee JH, Niiler P, Hu JH (1998) Separation of the Kuroshio water and its penetration onto the continental shelf west of Kyushu. J Geophys Res 103:2963–2976\nMinato S, Kimura R (1980) Volume transport of the western boundary current penetrating into a marginal sea. J Oceanogr Soc Japan 36:185–195\nMoon JH, Hirose N, Yoon JH, Pang IC (2009) Effect of the alongstrait wind on the volume transport through the Tsushima\u002F Korea Strait in September. J Oceanogr 65:17–29\nNof D (1993) The penetration of Kuroshio water into the Sea of Japan. J Phys Oceanogr 23:797–807\nNof D (2000) Why much of the Atlantic circulation enters the Caribbean Sea and very little of the Pacific circulation enters the Sea of Japan. Prog Oceanogr 45:39–67\nOhshima KI (1994) The flow system in the Japan Sea caused by a sea level difference through shallow straits. J Geophys Res 99:9925–9940\nQiu B, Imasato N (1990) A numerical study on the formation of Kuroshio countercurrent and the Kuroshio branch current in the East China Sea. Cont Shelf Res 10:165–184\nSeung YH (2003) Significance of shallow bottom friction in the dynamics of the Tsushima Current. J Oceanogr 59:113–118\nSeung YH (2007) Effect of the change of bottom depth on the penetration of Kuroshio water onto the East China Sea shelf. J Geophys Res 112:C02013. doi:10.1029\u002F2006JC003789\nTakikawa T, Yoon JH, Cho KD (2005) The Tsushima Warm Current through Tsushima Straits estimated from ferryboat ADCP data. J Phys Oceanogr 35:1154–1168\nTeague WJ, Jacobs GA, Perkins HT, Book JW, Chang KI, Suk MS (2003) Connectivity of the Taiwan, Cheju, and Korea Straits. Cont Shelf Res 23:63–77\nToba Y, Tomizawa K, Kurasawa Y, Hanawa K (1982) Seasonal and year-to-year variability of the Tsushima-Tsugaru warm current system with its possible cause. La Mer 20:41–51",{"VOID":163},"10.1007\u002Fs12601-012-0004-8","PUBLICATION",[166],"VI","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs12601-012-0004-8",[169],{"id":170,"sortIndex":21,"researcher":20,"roles":171,"affiliations":173,"properties":182,"displayName":184,"givenName":20,"familyName":20},"bed33a9c-bbab-4bb8-aaf9-86330ab1f1f6",[172],"AUTHOR",[174],{"id":175,"sortIndex":21,"affiliation":176,"properties":20},"b0654615-58e2-49d1-9a41-67d44e4edc9e",{"id":175,"createTime":20,"updateTime":20,"relativeEntities":177,"slug":20,"properties":178,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":181,"statistic":20},[],{"title":179},{"VI":180},"Department of Oceanography, College of Natural Sciences, Inha University, Incheon, Korea",[],{"title":183},{"VI":184},"Young Ho Seung","ARTICLE",{"url":167,"publisher":187,"properties":229},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":188,"slug":10,"properties":189,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":193,"manageAffiliations":198,"indexDatabases":209,"url":80,"thumbnailPath":20,"statistic":224,"gsStatistic":20,"type":143,"analyzePriority":20},[],{"issn":190,"title":191,"eissn":192},{"VOID":13},{"EN":15},{"VOID":17},[194],{"id":24,"createTime":20,"updateTime":20,"relativeEntities":195,"label":196,"description":197,"parentId":20,"standard":20,"scholarHubFieldId":20},[],{"EN":27},{},[199,204],{"id":31,"createTime":20,"updateTime":20,"relativeEntities":200,"slug":20,"properties":201,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":203,"statistic":20},[],{"title":202},{"EN":35},[],{"id":38,"createTime":20,"updateTime":20,"relativeEntities":205,"slug":20,"properties":206,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":208,"statistic":20},[],{"title":207},{"EN":42},[],[210,217],{"id":46,"indexDatabase":211,"url":57,"indexYears":58,"academicFieldIds":216,"indexDatabaseRanking":61},{"id":48,"createTime":20,"updateTime":20,"relativeEntities":212,"label":213,"description":214,"key":54,"publicationTags":215,"standard":20},[],{"EN":51,"VI":51},{"EN":51,"VI":53},[56],[60],{"id":63,"indexDatabase":218,"url":76,"indexYears":20,"academicFieldIds":223,"indexDatabaseRanking":20},{"id":65,"createTime":20,"updateTime":20,"relativeEntities":219,"label":220,"description":221,"key":72,"publicationTags":222,"standard":20},[],{"EN":68,"VI":68},{"EN":70,"VI":71},[74,75],[78,79],{"impactFactor":21,"impactFactorByYear":225,"i10Index":93,"i10IndexLast5Year":94,"totalPublication":95,"totalPublicationByYear":226,"totalCitation":111,"totalCitationByYear":227,"totalCitationPerPublication":124,"totalCitationPerPublicationByYear":228,"hindexLast5Year":115,"hindex":115},{"2012":83,"2013":84,"2014":85,"2015":86,"2016":87,"2017":88,"2018":89,"2019":90,"2020":90,"2021":84,"2022":91,"2023":92},{"2005":97,"2006":98,"2007":99,"2008":99,"2009":100,"2010":101,"2011":97,"2012":102,"2013":103,"2014":104,"2015":105,"2016":106,"2017":107,"2018":106,"2019":108,"2020":102,"2021":109,"2022":110,"2023":98,"2024":100},{"2005":113,"2006":114,"2007":94,"2008":115,"2009":115,"2010":116,"2011":117,"2012":118,"2013":119,"2014":104,"2015":120,"2017":121,"2018":103,"2019":103,"2020":108,"2021":122,"2022":113,"2023":123},{"2005":126,"2006":127,"2007":128,"2008":129,"2009":123,"2010":130,"2011":131,"2012":132,"2013":133,"2014":134,"2015":135,"2017":136,"2018":137,"2019":138,"2020":139,"2021":140,"2022":141,"2023":142},{"pages":230,"volume":232},{"VOID":231},"41-50",{"VOID":233},"47","2012-04-03",2012,[61,74],false,{"id":239,"createTime":240,"updateTime":241,"relativeEntities":242,"slug":243,"properties":244,"entityType":164,"verifyStatus":255,"verifyTime":256,"verifyNote":257,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":258,"fullTextUrl":20,"authors":259,"publicationType":185,"publisherRelationship":364,"citationCount":21,"citationInfo":412,"publishDate":415,"publishYear":413,"citationAnalyzeStatus":416,"lastCitationAnalyze":417,"indexDatabases":418,"openAccess":20,"references":20,"isForceReanalyzing":237},"6acdff88-4d71-4fd6-8106-c430e2ec5f7e","2024-02-09T07:17:52.414+00:00","2026-07-28T08:57:54.803+00:00",[],"Morphology-and-molecular-characterization-of-the-epiphytic-dinoflagellate-Prorocentrum-cf-rhathymum-in-temperate-waters-off-Jeju-Island-Korea",{"abstract":245,"title":247,"gsPaper":249,"references":251,"doi":253},{"EN":246},"\n                Prorocentrum spp. are planktonic and\u002For benthic species. Benthic Prorocentrum species are of primary concern to scientists and the public because some of them are toxic. We established clonal cultures of 3 strains of Prorocentrum species that were collected from the thalli of a macroalga in the coastal waters off Jeju Island, located at the southern end of Korea. The Korean strains of P. cf. rhathymum, which are morphologically almost identical to the Virgin Island strain of P. rhathymum, were different from P. mexicanum because the former dinoflagellate has one simple collar-like spine in the periflagellar area, while the latter dinoflagellate has a 2- or 3-horned spine. In addition, the sequences of the small subunit (SSU) rDNA of the Korean strains were identical to those of the Malaysian and Floridian strains of P. rhathymum, while the sequences of the large subunit (LSU) rDNA of the Korean strains were 0.1–0.9% different from those of the Iranian and Malaysian strains of P. rhathymum. In phylogenetic trees based on the SSU rDNA sequences, the Korean strains of P. rhathymum formed a clade with the Malaysian and Floridian strains of P. rhathymum and the Vietnamese and Polynesian strains of P. mexicanum. However, in phylogenetic trees based on the LSU rDNA sequences, the Korean strains of P. rhathymum formed a clade with the Iranian strain of P. rhathymum and the Spanish and Mexican strains of P. mexicanum. Therefore, the molecular characterization of the Korean strains does not allow us to clearly classify them as P. rhathymum, nor P. mexicanum, although their morphology has so far been reported to be closer to that of P. rhathymum than P. mexicanum and thus we designated them as P. cf. rhathymum.",{"EN":248},"Morphology and molecular characterization of the epiphytic dinoflagellate Prorocentrum cf. rhathymum in temperate waters off Jeju Island, Korea",{"VOID":250},"[\"9680299392900154975\"]",{"VOID":252},"Ajani P, Ingleton T, Pritchard T, Armand L (2011) Microalgal blooms in the coastal waters of New South Wales, Australia. Proc Linn Soc NSW 133:15–31\nAligizaki K, Nikolaidis G, Katikou P, Baxevanis AD, Abatzopoulos TJ (2009) Potentially toxic epiphytic Prorocentrum (dinophyceae) species in Greek coastal waters. Harmful Algae 8:299–311\nAlonso-Rodrìguez R, Ochoa JL (2004) Hydrology of winter-spring “red tides” in Bahía de Mazatlán, Sinaloa, México. Harmful Algae 3:163–171\nAl-Qassab S, Lee WJ, Murray S, Simpson AGB, Patterson DJ (2002) Flagellates from stromatolites and surrounding sediments in Shark Bay, Western Australia. Acta Protozol 41:91–144\nAl-Yamani FY, Bishop JW, Al-Rifaie K, Ismail W (2007) The effects of the river diversion, Mesopotamian marsh drainage and restoration, and river damming on the marine environment of the northwestern Arabian Gulf. Aquat Ecosyst Health 10:277–289\nAn T, Winshell J, Scorzetti G, Fell JW, Rein KS (2010) Identification of okadaic acid production in the marine dinoflagellate Prorocentrum rhathymum from Florida Bay. Toxicon 55:653–657\nBadylak S, Phlips EJ, Baker P, Fajans JS, Bowler R (2007) Distributions of phytoplankton in Tampa Bay Estuary, USA 2002–2003. Bull Mar Sci 80:295–317\nBellassoued K, Hamza A, van Pelt J, Elfeki A (2013) Seasonal variation of Sarpa salpa fish toxicity, as related to phytoplankton consumption, accumulation of heavy metals, lipids peroxidation level in fish tissues and toxicity upon mice. Environ Monit Assess 185:1137–1150\nBizsel N, Nezan E (2007) The new phytoplankton records from Turkey. Rapp Comm Int Mer Médit 28:350\nBomber JW, Morton SL, Babinchak JA, Norris DR, Morton JG (1988) Epiphytic dinoflagellates of drift algae — another toxigenic community in the ciguatera food chain. Bull Mar Sci 43:204–214\nBomber JW, Rubio MG, Norris DR (1989) Epiphytism of dinoflagellates associated with the disease ciguatera: substrate specificity and nutrition. Phycologia 28:360–368\nBoonyapiwat S (1999) Species Composition, Abundance and Distribution of Phytoplankton in the Thermocline Layer in the South China Sea, Area III: Western Philippines. Proceedings of the SEAFDEC Seminar on Fishery Resource in the South China Sea, Area III: Western Philippines, pp 197–216\nBoonyapiwat S (2000) Species Composition, Abundance and Distribution of Phytoplankton in the Thermocline Layer in the South China Sea, Area IV: Vietnamese Waters. Proceedings of the SEAFDEC Seminar on Fishery Resources in the South China Sea, Area IV: Vietnamese Waters, pp 292–309\nBorja A, Franco J, Valencia V, Bald J, Muxika I, Belzunce MJ, Solaun O (2004) Implementation of the European water framework directive from the Basque country (northern Spain): a methodological approach. Mar Pollut Bull 48:209–218\nBuddo DS, Steele RD, D’Oyen ER (2003) Distribution of the invasive Indo-Pacific green mussel, Perna viridis, in Kingston Harbour, Jamaica. Bull Mar Sci 73:433–441\nCarlson RD, Tindall DR (1985) Distribution and periodicity of toxic dinoflagellates in the Virgin Islands. In: Anderson DM, White AW, Baden DG (eds) Toxic dinoflagellates. Elsevier, New York, pp 171–176\nCaroppo C (2000) The contribution of picophytoplankton to community structure in a Mediterranean brackish environment. J Plankton Res 22:381–397\nChasar LC, Chanton JP, Koening CC, Coleman FC (2005) Evaluating the effect of environmental disturbance on the trophic structure of Florida Bay, USA: Multiple stable isotope analyses of contemporary and historical specimens. Limnol Oceanogr 50:1059–1072\nCohen-Fernández EJ, Pedroche FF, Palacios MR, Hernández SÁ, Castillo EM (2010) Molecular phylogeny of Prorocentrum (Dinoflagellata) from the Pacific coast of Mexico based on the parsimony analysis of fragment of LSU rDNA and SSU rDNA. Int J Plant Physiol Biochem 2:29–37\nCortés-Altamirano R, Sierra-Beltrán AP (2003) Morphology and taxonomy of Prorocentrum mexicanum and reinstatement of Prorocentrum rhathymum (Dinophyceae). J Phycol 39:221–225\nCurrie B, Louw D, Anderson DM, Anderson PS, Fernández-Tejedor M, Rangel I (2004) Review of existing information on Harmful Algal Blooms in Angola, including past and present Monitoring of Phytoplankton. Project EV\u002FHAB\u002F02\u002F02a Benguela Current Large Marine Ecosystem: Development of an Operational Capacity for Monitoring of Harmful Algal Blooms in Countries Bordering the Northern part of the Benguela Current Large Marine Ecosystem: Phase 1-Design\nDelesalle B, Sakka A, Legendre L, Pagès J, Charpy L, Loret P (2001) The phytoplankton of Takapoto Atoll (Tuamotu Archipelago, French Polynesia): time and space variability of biomass, primary production and composition over 24 years. Aquat Living Resour 14:175–182\nDelgado G, Lechuga-Devéze CH, Popowski G, Troccoli L, Salinas CA (2006) Epiphytic dinoflagellates associated with ciguatera in the northwestern coast of Cuba. Rev Biol Trop 54:299–310\nDortch Q, Parsons ML, Rabalais NN, Turner RE (1999) What is the threat of harmful algal blooms in Louisiana coastal waters? In: Rozas LP, Nyman JA, Proffitt EE, Rabalais NN, Reed DJ, Turner RE (eds) Recent Research in Coastal Louisiana: Natural System Function and Response to Human Influences, pp 1–11\nDolapsakis NP, Tzovenis I, Kantourou P, Bitis I, Economou-Amilli A (2008) Potentially harmful microalgae from lagoons of the NW Ionian Sea, Greece. J Biol Res Thessalon 9:89–95\nDrira Z, Hamza A, Belhassen M, Ayadi H, Bouaïn A, Aleya L (2008) Dynamics of dinoflagellates and environmental factors during the summer in the Gulf of Gabes (Tunisia, Eastern Mediterranean Sea). Sci Mar 72:59–71\nEhrenberg CG (1834) Dritter Beitrag zur Erkenntniss grosser Organisation in der Richtung des kleinsten Raumes. Abh Akad Wiss Berlin 1833:145–336\nFaust MA (1990) Morphologic details of six benthic species of Prorocentrum (Pyrrhophyta) from a mangrove island, Twin Cays, Belize, including two new species. J Phycol 26:548–558\nFaust MA (1993) Three new benthic species of Prorocentrum (Dinophyceae) from Twin Cays, Belize: P. maculosum sp. nov., P. foraminosum sp. nov. and P. formosusm sp. nov. Phycologia 32:410–418\nFaust MA (1995) Observation of sand-dwelling toxic dinoflagellate (Dinophyceae) from widely differing sites, including two new species. J Phycol 31:996–1003\nFaust MA, Tester PA (2005) Harmful Dinoflagellates in the Gulf Stream and Atlantic Barrier Coral Reef, Belize. In: Steidinger KA, Lansberg JH, Tomas CR, Vargo GA (eds) Harmful Algae 2002. the Xth HAB International Conference, pp 326–328\nGárate-Lizárraga I, Hernández-Orozco ML, Band-Schmidt C, Serrano-Casillas G (2001) Red tides along the coasts of Baja California Sur, México (1984 to 2001). 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Biol Bull 172:128–131\nYoo YD, Jeong HJ, Kim MS, Kang NS, Song JY, Shin WG, Kim KY, Lee KT (2009) Feeding by phototrophic red-tide dinoflagellates on the ubiquitous marine diatom Skeletonema costatum. 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changes in climate and environmental conditions have had great negative effects such as decreasing sea ice thickness and the extent of Arctic sea ice floes that support ice-related organisms. However, limited field observations hinder the understanding of the impacts of the current changes in the previously ice-covered regions on sea ice algae and other ice-related ecosystems. Our main objective in this study was to measure recent primary production of ice algae and their relative contribution to total primary production (ice plus pelagic primary production). In-situ primary productivity experiments with a new incubation system for ice algae were conducted in 3 sea ice cores at 2 different ice camps in the northern Chukchi Sea, 2014, using a 13C and 15N isotope tracer technique. A new incubation system was tested for conducting primary productivity experiments on ice algae that has several advantages over previous incubation methods, enabling stable carbon and nitrogen uptake experiments on ice algae under more natural environmental conditions. The vertical C-shaped distributions of the ice algal chl-a, with elevated concentrations at the top and bottom of the sea ice were observed in all cores, which is unusual for Arctic sea ice. The mean chl-a concentration (0.05 ± 0.03 mg chl-a m−3) and the daily carbon uptake rates (ranging from 0.55 to 2.23 mg C m−2 d−1) for the ice algae were much lower in this study than in previous studies in the Arctic Ocean. This is likely because of the late sampling periods and thus the substantial melting occurring. Ice algae contributed 1.5–5.7% of the total particulate organic carbon (POC) contents of the combined euphotic water columns and sea ice floes. In comparison, ice algae contributed 4.8–8.6% to the total primary production which is greater than previously reported in the Arctic Ocean. If all of the ice-associated productions were included, the contributions of the sea ice floes to the total primary production would be greater in the Arctic Ocean and their importance would be greater in the arctic marine ecosystems.",{"EN":429},"In-situ measured primary productivity of ice algae in Arctic sea ice floes using a new incubation method",{"VOID":431},"[\"9739444783610138832\"]",{"VOID":433},"Ackley SF, Lange M, Wadhams P (1990) Snow cover effects on Antarctic sea ice thickness. In: Ackley SF, Weeks WF (eds) Sea ice properties and processes. CRREL Monograph 90-1, pp 16–21\nArrigo KR (2014) Sea ice ecosystem. Ann Rev Mar Sci 6:439–467\nArrigo KR, van Dijken GL (2011) Secular trends in Arctic Ocean net primary production. J Geophys Res 116(C9):C09011. doi:10.1029\u002F2011JC007151\nArrigo KR, van Dijken GL, Pabi S (2008) Impact of a shrinking Arctic ice cover on marine primary production. J Geophys Res 35(19):L19603. doi:10.1029\u002F2008GL035028\nBoetius A, Albrecht S, Bakker K, Bienhold C, Felden J, Fernández-Méndez M, Hendricks S, Katlein C, Lalande C, Krumpen T, Nicolaus M, Peekekn I, Rabe B, Rogacheva A, Rybakova E, Somavilla R, Wenzhöfer F (2013) Export of algal biomass from the melting Arctic sea ice. Science 339:1430–1432\nCota GF, Smith REH (1991) Ecology of bottom ice algae: III comparative physiology. J Marine Syst 2:297–315\nFernández-Méndez M, Wenzhöfer F, Peeken I, Sørensen HL, Glud RN, Boetius A (2014) Composition, buoyancy regulation and fate of ice algal aggregates in the Central Arctic Ocean. Plos One 9(9):e107452. doi:10.1371\u002Fjournal.pone.0107452\nFernández-Méndez M, Katlein C, Rabe B, Nicolaus M, Peeken I, Bakker K, Flores H, Boetius A (2015) Photosynthetic production in the Central Arctic during the record sea-ice minimum in 2012. Biogeosciences 12:2897–2945. doi:10.5194\u002Fbgd-12-2897-2015\nFujiwara A, Hirawake T, Suzuki K, Imai I, Saitoh SI (2014) Timing of sea ice retreat can alter phytoplankton community structure in the western Arctic Ocean. Biogeosciences 11:1705–1716. doi:10.5194\u002Fbg-11-1705-2014\nGosselin M, Levasseur M, Wheeler PA, Horner RA, Booth BC (1997) New measurements of phytoplankton and ice algal production in the Arctic Ocean. Deep-Sea Res Pt II 8:1623–1644\nGradinger (1999) Vertical fine structure of the biomass and composition of algal communities in Arctic pack ice. Mar Biol 133:745–754\nGradinger (2009) Sea-ice algae: major contributors to primary production and algal biomass in the Chukchi and Beaufort Sea during May\u002FJune 2002. Deep-Sea Res Pt II 56:1201–1212\nHerman AW, Know DF, Conrad J, Mitchell MR (1993) Instruments for measuring subice algal profiles and productivity in situ. Can J Fish Aquat Sci 50:359–369\nHorner R (1990) Techniques for sampling sea ice algae. In: Medlin LK, Priddle J (eds) Polar marine diatoms. British Antarctic Survey, Natural Environment Research Council, Cambridge, pp 19–24\nHorner R, Ackely SF, Dieckmann GS, Gulliksen B, Hoshiai T, Legendre L, Melnikov IA, Reeburgh WS, Spindler M, Sullivan CW (1992) Ecology of sea ice biota: 1. habitat, terminology, and methodology. Polar Biol 12:417–427\nJoo HT, Lee JH, Kang CK, An SM, Kang SH, Lim JH, Joo HM, Lee SH (2014) Macromolecular production of phytoplankton in the northern Bering Sea, 2007. Polar Biol 37:391–401.\nKim BK, Lee JH, Yun MS, Joo HT, Song HJ, Yang EJ, Chung KH, Kang SH, Lee SH (2014) High lipid composition of particulate organic matter in the northern Chukchi Sea, 2011. Deep-Sea Res Pt II 120:72–81\nLee SH, Whitledge TE (2005) Primary and new production in the deep Canada basin during summer 2002. Polar Biol 28:190–197\nLee SH, Whitledge TE, Kang SH (2008) Spring time production of bottom ice algae in the landfast sea ice zone at Barrow, Alaska. J Exp Mar Biol Ecol 367:204–212\nLee SH, Kim HJ, Whitledge TE (2009) High incorporation of carbon into proteins by the phytoplankton of the Bering Strait and Chukchi Sea. Cont Shelf Res 29:1689–1696\nLee SH, Stockwell D, Whitledge TE (2010) Uptake rates of dissolved inorganic carbon and nitrogen by under-ice phytoplankton in the Canada Basin in summer 2005. Polar Biol 33:1027–1036\nLee SH, McRoy CP, Joo HM, Gradinger R, Cui X, Yun MS, Chung KH, Kang SH, Kang CK, Choy EJ, Son S, Carmack E, Whitledge TE (2011) Holes in progressively thinning arctic sea ice lead to new ice algae habitat. Oceanography 4:302–308\nLee SH, Kim BK, Joo HT, Park JW, Lee JH, Joo HM, Lee DB, Kang CK, Kang SH (2015) Carbon contribution of sea ice floes in the Arctic Ocean. Deep-Sea Res Pt II 120:35–42\nLegendre L, Ackely SF, Dieckmann GS, Gulliksen B, Horner R, Hoshiai T, Melnikov IA, Reeburgh WS, Spindler M, Sullivan CW (1992) Ecology of sea ice biota: 2. global significance. Polar Biol 12:429–444\nMarkus T, Stroeve JC, Miller J (2009) Recent changes in Arctic sea ice melt onset, freezeup, and melt season length. J Geophys Res 114(C12):C12024. doi:10.1029\u002F2009JC005436\nMichel C, Legendre L, Ingram RG, Gosselin M, Levasseur M (1996) Carbon budget of sea-ice algae in spring: evidence of a significant transfer to zooplankton grazers. J Geophys Res 101:18345–18360\nMock T, Gradinger R (1999) Determination of Arctic ice algal production with a new in situ incubation technique. Mar Ecol-Prog Ser 177:15–26\nMorris I (1981) Photosynthetic products, physiological state, and phytoplankton growth. Can B Fish Aquat Sci 210:83–102\nPerovich DK, Richter M, Jacqueline A, Jones KF, Light B, Elder BC, Polashenski C, Laroche D, Markus T, Lindsay R (2011) Arctic sea-ice melt in 2008 and the role of solar heating. Ann Glaciol 52:355–359\nRysgaard S, Kühl M, Blud RN, Hansen JW (2001) Biomass, production and horizontal patchiness of sea ice algae in a high-Arctic fjord (Yung Sound, NE Greenland). Mar Ecol-Prog Ser 223:15–26\nRedfield AC, Ketchum BH, Richards FA (1963) The influence of organisms on the composition of sea water. In: Hill MN (ed) The sea. Interscience, New York, pp 26–77\nShifrin NS, Chisholm SW (1981) Phytoplankton lipids: interspecific differences and effects of nitrate, silicate and light-dark cycles. J Phycol 17:374–384\nSong HJ, Kang JJ, Kim BK, Joo HT, Yang EJ, Park JS, Lee SH, Lee SH (2015) High protein production of phytoplankton in the Amundsen Sea. Deep-Sea Res Pt II 123:50–57\nSubba Rao DV, Platt T (1984) Primary production of Arctic waters. Polar Biol 3:191–201\nVetrov AA, Romankevich EA (2014) Primary production and fluxes of organic carbon to the seabed in the Eurasian Arctic Seas, 2003–2012. Dokl Earth Sci 454:44–46\nYun MS, Whitledge TE, Kong M, Lee SH (2014) Low primary production the Chukchi sea shelf, 2009. Cont Shelf Res 76:1–11",{"VOID":435},"10.1007\u002Fs12601-016-0035-7","2024-06-25T00:18:09.166+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs12601-016-0035-7",[439,454,469,482,497,512,525,538,551],{"id":440,"sortIndex":21,"researcher":20,"roles":441,"affiliations":442,"properties":451,"displayName":453,"givenName":20,"familyName":20},"d13c8e1a-3c0a-4817-80e6-4b94c4e3210d",[172],[443],{"id":444,"sortIndex":21,"affiliation":445,"properties":20},"0f1aacae-5928-4291-b7f6-8939d480acc6",{"id":444,"createTime":20,"updateTime":20,"relativeEntities":446,"slug":20,"properties":447,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":450,"statistic":20},[],{"title":448},{"EN":449},"Department of Oceanography, College of Natural Sciences, Pusan National University, Busan, Korea",[],{"title":452},{"VI":453},"Ho Jung 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spawning, development, and early life cycle of three species of marine nematodes in Mallipo, Korea, were studied. With regard to Bathylaimus sp., the number of spawned eggs ranged from four to ten, with an average of seven. The mean hatching time was 99.5 h, while body size was 320–400 μm immediately after hatching and 680–800 μm 1 week after hatching. Twenty-eight days after hatching, Bathylaimus sp. had grown to 1900–2200 μm, which is similar to its adult size and female Bathylaimus sp. developed vulva, and male Bathylaimus sp. developed a spicule. The adult body size of Oncholaimus sp., a scavenger, was 3300–3700 μm, and the number of spawned eggs was 4 to 7 (average 5.2). Spawning to hatching took 72–96 h (average 81 h) and the mean hatching rate was 96.1%. The hatched juveniles grew to 1100–1250 μm 4 days after hatching and 2100–2400 μm 15 days after hatching, which was about 65% of the adult body size. The adult body size of Oncholaimellus sp., another scavenger, was 850–1100 μm, and the number of spawned eggs ranged from 2 to 8 (average 5.3). Spawning to hatching took 52–72 h, with an average of 60 h, and the mean hatching rate was 90.5%. The size of the juveniles ranged from 220–300 μm immediately after hatching to 460–550 μm 5 days after hatching, which was about 50% of the adult body size.",{"EN":628},"In Vivo Culture Study of Free-Living Marine Nematodes (Bathylaimus sp., Oncholaimus sp., Oncholaimellus sp.) Inhabiting West Coast Mallipo, Korea",{"VOID":630},"[\"5001864352649944192\"]",{"VOID":632},"Aller RC, Aller JY (1992) Meiofauna and solute transport in marine muds. Limnol Oceanogr 37:1018–1033. https:\u002F\u002Fdoi.org\u002F10.4319\u002Flo.1992.37.5.1018\nBang KH (2003) A study on littoral deposits of West Coast Mallipo in winter. M.S. Thesis, Ewha Womans University\nBell SS, Coull BC (1978) Field evidence that shrimp predation regulates meiofauna. Oecologia 35:141–148. https:\u002F\u002Fdoi.org\u002F10.1007\u002FBF00344727\nBoufahija F, Semprucci F, Beyrem H (2016) An experimental protocol to select nematode species from an entire community using progressive sedimentary enrichment. Ecol Indic 60:292–309. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.ecolind.2015.07.002\nCoull BC (1990) Are members of the meiofauna food for higher trophic levels? Trans Am Microsc Soc 109:233–246. https:\u002F\u002Fdoi.org\u002F10.2307\u002F3226794\nCoull BC (1999) Role of meiofauna in estuarine soft-bottom habitats. Aust J Ecol 24:327–343. https:\u002F\u002Fdoi.org\u002F10.1046\u002Fj.1442-9993.1999.00979.x\nFonseca G, Derycke S, Moens T (2008) Integrative taxonomy in two free-living nematode species complexes. Biol J Linn Soc 94:737–753. https:\u002F\u002Fdoi.org\u002F10.1111\u002Fj.1095-8312.2008.01015.x\nFranco MA, Vanaverbeke J, Van Oevelen D, Soetaert K, Costa MJ, Vincx M, Moens T (2010) Respiration partitioning in contrasting subtidal sediments: seasonality and response to a spring phytoplankton deposition. Mar Ecol Evol Perspect 31:276–290. https:\u002F\u002Fdoi.org\u002F10.1111\u002Fj.1439-0485.2009.00319.x\nGerlach SA, Schrage M (1969) Freilebende nematoden als nahrung der sandgarnele crangon crangon experimentelle untersuchungen fiber die bedeutung der meiofauna als nahrung ffir das marine makrobenthos. Oecologia 2:362–375. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fbf00778992\nGerlach SA, Schrage M (1971) Life cycles in marine meiobenthos experiments at various temperatures with Monhystera disjuncta and Theristus pertenuis (Nernatoda). Mar Biol 9:274–280. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fbf00351390\nGerlach SA, Schrage M (1972) Life cycles at low temperatures in some free-living marine nematodes. Veröffentl Inst Meeresforsch Bremerh 14:5–11\nHamerlynck O, Vanreusel A (1993) Mesacanthion diplechma (Nematoda: Thoracostomopsidae) a link to higher trophic levels? J Mar Biol Assoc UK 73:453–456. https:\u002F\u002Fdoi.org\u002F10.1017\u002Fs0025315400032999\nHeip C, Stool N, Absillis V (1978) Influence of temperature on the reproductive potential of Oncholaimus oxyuris (Nematoda Oncholaimidae). Mar Biol 45:255–260. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fbf00390608\nHeip C, Vincx MG, Vranken G (1985) The ecology of marine nematodes. Oceanogr Mar Biol 23:399–489\nHerman Peter MJ, Vracken G (1988) Studies of the life history and energetics of marine and brackish-water nematodes. Oecologia 77:457–463. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fbf00377260\nHouthoofd W, Jacobsen K, Mertens CL, Vangestel S, Coomans A, Borgonie G (2003) Embryonic cell lineage of the marine nematode Pellioditis marina. Dev Biol 258:57–69. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fs0012-1606(03)00101-5\nJensen P (1982) A new meiofauna sample splitter. Ann Zool Finn 19:233–236\nJensen P (1995) Life history of the nematode Theristus anoxybioticus from sublittoral mussy sediment at methane seepages in the northern Kattegat Denmark. Mar Biol 123:131–136. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fbf00350331\nLahl V, Sadler B, Schierenberg E (2006) Egg development in parthenogenitic nematodes: variations in meiosis and axis formation. Int J Dev Biol 50:393–398. https:\u002F\u002Fdoi.org\u002F10.1387\u002Fijdb.052030vl\nLee JJ, Tietjen JH, Stone RJ, Muller WA, Rullman J, McEnergy M (1970) The cultivation and physiological ecology of members of salt marsh epiphytic communities. Helgoländer wiss Meeresunters 20:136–156. https:\u002F\u002Fdoi.org\u002F10.1007\u002FBF01609896\nMesel ID, Derycke S, Swings J, Vincx M, Moens T (2003) Influence of bacterivorous nematodes on the decomposition of cordgrass. J Exp Mar Biol Ecol 296:227–242. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fs0022-0981(03)00338-1\nMesel ID, Derycke S, Swings J, Vincx M, Moens T (2006) Role of nematodes in decomposition processes: Does within-trophic group diversity matter? Mar Ecol Prog Ser 321:157–166. https:\u002F\u002Fdoi.org\u002F10.3354\u002Fmeps321157\nMoens T, Vincx M (1998) On the cultivation of free-living marine and estuarine nematodes. Helgoland Mar Res 52:115–139. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fbf02908742\nMoens T, Vincx M (2000a) Temperature and salinity constraints on the life cycle of two brackish water nematode species. J Exp Mar Biol Ecol 243:115–135. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fs0022-0981(99)00113-6\nMoens T, Vincx M (2000b) Temperature salinity and food thresholds in two brackishwater bacterivorous nematode species: assessing niches from food absorption and respiration experiments. J Exp Mar Biol Ecol 243:137–154. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fs0022-0981(99)00114-8\nMoens T, Verbeek L, Maeyer A, Swings J, Vincx M (1999) Selective attraction of marine bacterivorous nematodes to their bacterial food. Mar Eco Prog Ser 176:165–178. https:\u002F\u002Fdoi.org\u002F10.3354\u002Fmeps176165\nMoens T, Paiva dos Santos GA, Thompson F, Swings J, Fonsêca-Genevois B, Vinck M, Mesel ID (2005) Do nematode mucus secretions affect bacterial growth? Aquat Microb Ecol 40:77–83. https:\u002F\u002Fdoi.org\u002F10.3354\u002Fame040077\nNehring S, Jensen P, Lorenzen S (1990) Tube-dwelling nematodes: tube construction and possible ecological effects on sediment-water interfaces. Mar Eco Prog Ser 64:123–128. https:\u002F\u002Fdoi.org\u002F10.3354\u002Fmeps064123\nRiemann F, Schrage M (1978) The mucus-trap hypothesis on feeding of aquatic nematodes and implications for biodegradation and sediment texture. Oecologia 34:75–88. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fbf00346242\nShin A, Kim D, Kang T, Oh JH, Lee J, Hong JS (2018) Sutdy of appropriate media selection and early life cycle of marine free-living nematodes, Enopolaimus sp. (Cnoplida: Thoracostomopsidae) and Bathylaimus sp. (Enoplida: Tripyloidiae). J Korean Soc Oceanogr 23:109–124. https:\u002F\u002Fdoi.org\u002F10.7850\u002Fjkso.2018.23.3.109\nSingh R, Ingole B (2011) Life history of a free-living marine nematode Daptonema normandicum reared in laboratory. J Environ Biol 32:147–152\nSoetaert K, Vincx M, Wittoeck J, Tulkens M (1995) Meiobenthic distribution and nematode community structure in five European estuaries. Hydrobiol 311:185–206. https:\u002F\u002Fdoi.org\u002F10.1007\u002F978-94-009-0117-9_15\nTaheri M, Braeckman U, Vincx M, Vanaverbeke J (2014) Effect of short-term hypoxia on marine nematode community structure and vertical distribution pattern in three different sediment types of the North Sea. Mar Environ Res 99:149–159. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.marenvres.2014.04.010\nTietjen JH, Lee JJ (1972) Life cycles of marine nematodes Influence of temperature and salinity on the development of Monhystera denticulata. Oecologia 10:167–176. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fbf00347988\nTietjen JH, Lee JJ (1973) Life history and feeding habits of the marine nematode Chromadora macrolaimoides Steiner. Oecologia 12:303–314. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fbf00345045\nTietjen JH, Lee JJ, Rullman J, Greengart A, Trompeter J (1970) Gnotobiotic culture and physiological ecology of the marine nematode Rhabditis marina Bastian. Limnol Oceanogr 15:535–543. https:\u002F\u002Fdoi.org\u002F10.4319\u002Flo.1970.15.4.0535\nTsujino M, Uchida T, Tamai K (1997) Life cycle of the free-living marine nematode Microlaimus sp. (Chromadorida: Microlaimidae) cultured in the laboratory. Benthos Res 1:9–14. https:\u002F\u002Fdoi.org\u002F10.5179\u002Fbenthos1996.52.1_9\nTsujino M, Arima S, Uchida T (1998) Life cycles of two free-living marine nematodes Prochromadorella sp. and Spiliphera sp. (Chromadorida: Chromadoridae) cultured in the laboratory. Benthos Res 53:89–93. https:\u002F\u002Fdoi.org\u002F10.5179\u002Fbenthos1996.53.2_89\nVranken G, Heip C (1986) The productivity of marine nematodes. Ophelia 26:429–442. https:\u002F\u002Fdoi.org\u002F10.1080\u002F00785326.1986.10422004\nVranken G, Herman PMJ, Heip C (1988) Studies of the life-history and energetics of marine and brackish-water nematodes. Oecologia 77:296–301. https:\u002F\u002Fdoi.org\u002F10.1007\u002FBF00378033\nVranken G, Thielemans LK, Heip K, Vandycke M (1981) Aspects of the life-cycle of Monhystera parelegantula (Nematoda; Monhysteridae). Mar Ecol Prog Ser 6:67–72. https:\u002F\u002Fdoi.org\u002F10.3354\u002Fmeps006067\nWoombs M, Laybourn-Parry J (1984) Growth, reproduction and longevity in nematodes from sewage treatment plants. Oecologia 62:168–172. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fbf00376866",{"VOID":634},"10.1007\u002Fs12601-023-00105-2","2024-07-11T01:35:30.276+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs12601-023-00105-2",[638,653,666,681,694],{"id":639,"sortIndex":21,"researcher":20,"roles":640,"affiliations":641,"properties":650,"displayName":652,"givenName":20,"familyName":20},"c38244b1-4ffd-4b64-b296-522e1bdb78ef",[172],[642],{"id":643,"sortIndex":21,"affiliation":644,"properties":20},"1a77b5f6-633f-404a-8fcb-aec8cdd1f3cb",{"id":643,"createTime":20,"updateTime":20,"relativeEntities":645,"slug":20,"properties":646,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":649,"statistic":20},[],{"title":647},{"EN":648},"Marine Ecosystem Research Center, Korea Institute of Ocean Science and Technology, Busan, Republic of Korea",[],{"title":651},{"VI":652},"Ayoung 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process of embryogenesis and larval development of the asteroid sea star Asterias amurensis (Lütken) was observed, with special attention paid to morphological change and larval duration. In reproductive season, mature sea stars were collected under floating net cages, located in Tongyeong, southern Korea. The mature eggs are 138 μm in average diameter, semi-translucent and orange in color, sperms in good condition appear light cream to white-gray in color. Embryos develop through the holoblastic equal cleavage stage and a wrinkled blastula stage that lasts about 9 hours after fertilization. Gastrulae bearing an expanded archenteron hatch from the fertilization envelope 22 hours after fertilization. At the end of gastrulation, rudiments of the left and right coelom are formed. By day 2, larvae possess complete alimentary canal and begin to feed. At this stage, the larva is called early bipinnaria. In 6day-old larvae, the pre- and post- oral ciliated bands form complete circuits and the bipinnarial processes start to develop. By day 12, the lateral and anterior projection of the larval wall processes along the ciliated bands begins to thicken and curl, and the ciliated bands become more prominent. By day 32, early brachiolaria are presented with three pairs of brachiolar arms. Advanced brachiolaria with a well-developed brachiolar complex (three pairs of brachia and central adhesive disc) occur 6 weeks after fertilization. In the field, spawning of the sea star was observed in April to May, settlement form larvae and just settlements seem to occur from June to July, and early juveniles occur from August to September. Although we had not described the end of brachiolaria stage, it can be tentatively estimated that the duration of the pelagic stage of A. amurensis is 40 to 50 days.",{"EN":773},"Developmental duration and morphology of the sea star asterias amurensis, in tongyeong, 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M.F. 1979. Breeding and recruitment in a population of the New Zealand starfishStichaster australis (Verrill) andMarthasterias glacialis (Grey) (Echinodermata: Asteroidea). J. Exp. Mar. Biol. Ecol.,33, 1–36.",{},{"id":897,"text":898,"url":899,"identifiers":900},"4c68646b-0035-4279-8000-0006b275d4fa","Barker, M.F. and D. Nichols. 1983. Reproduction, recruitment and juvenile ecology of the starfish,Asterias rubens andMarthasterias glacialis. J. Mar. Biol. Ass. U.K.,63, 745–765.","https:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs10440-022-00541-7",{"doi":901},"10.1007\u002Fs10440-022-00541-7",{"id":20,"text":903,"url":20,"identifiers":904},"Bruce, B.D., C.A. Sutton, and V. Lyne. 1995. Laboratory and field studies of the larval distribution and duration of the introduced seastarAsterias amurensis with updated and improved prediction of the species spread based on a larval dispersal model. Final Report, Fisheries Research and Development Corporation, Deakin, ACT, Australia, 66 p.",{},{"id":897,"text":906,"url":899,"identifiers":907},"Byrne, M. and M.F. Barker. 1991. Embryogenesis and larval development of the asteroidPatiriella regularis viewed by light and scanning electron microscopy. Biol. Bull. Mar. Biol. Lab., Woods Hole,180, 332–345.",{"doi":901},{"id":897,"text":909,"url":899,"identifiers":910},"Byrne, M., M.G., Morrice, and B. Wolf. 1997. Introduction of the northern Pacific asteroidAsterias amurensis to Tasmania: reproduction and current distribution. Mar. Bio.,127, 673–685.",{"doi":901},{"id":897,"text":912,"url":899,"identifiers":913},"Fisher, W.K. 1930. Asteroidea of the north Pacific and adjacent waters. Bull. US. Nati. Mus.,76, 5–23.",{"doi":901},{"id":20,"text":915,"url":20,"identifiers":916},"Hatanaka, M., and M. Kosaka. 1958. Biological studies on the population of the starfishAsterias amurensis in Sendai Bay. Tohoku J. Agr. Res.,9, 159–173.",{},{"id":897,"text":918,"url":899,"identifiers":919},"Kanatani, H. 1969. Introduction of spawning and oocy te maturation by 1-methyladenine in starfishes. Exp. Cell Res.,57, 333–337.",{"doi":901},{"id":897,"text":921,"url":899,"identifiers":922},"Kasyanov, V.L., G.A. Kryuchkova, V.A. Kulikova, and L.A. Medvedvea. 1998. Larvae of mairne bivalves and echinoderms. Science publishers, New Hampshire, 288 p.",{"doi":901},{"id":20,"text":924,"url":20,"identifiers":925},"Keesing, J.K, A.R. Halford, K.C. Hall, and C.M. Cartwright. 1997. Large-scale laboratory culture of the crown-of-thorns starfishAcanthaster planci (L.) (Echinodermata: Asteroidea). Aquaculture,157, 215–226.",{},{"id":20,"text":927,"url":20,"identifiers":928},"Kim, Y.S. 1968. Histological observations of the annual change in the gonad of the starfishAsterias amurensis Lütken. Bull. Fac. Fish. Hokkaido Univ.,19, 97–108.",{},{"id":20,"text":930,"url":20,"identifiers":931},"Kim, Y.S. 1969. Selective feeding on several bivalve molluscs by the starfish,Asterias amurensis Lüken. Bull. Fac. Fish. Hokkaido. Univ.,19, 244–249.",{},{"id":20,"text":933,"url":20,"identifiers":934},"Kume, M. and K. Dan, 1968. Invertebrate embryology. Nolit, Belgrade, 605 p.",{},{"id":897,"text":936,"url":899,"identifiers":937},"Lee, C.H., T.K. Ryu and J.W. Choi. 2004. Effects of water temperature on embryonic development in the northern Pacific asteroid,Asterias amurensis, from the southern coast of Korea. IRD.,45, 109–116.",{"doi":901},{"id":20,"text":939,"url":20,"identifiers":940},"Lockhart, S.J. and D.A. Ritz. 2001. Size selectivity and energy maximisation of the introduced seastar,Asterias amurensis (Lütken), in Tasmania, Australia. Pap. Proc. R. Soc. Tasman.,135, 35–40.",{},{"id":20,"text":942,"url":20,"identifiers":943},"Morrice, M.G. 1995. The distribution and ecology of the introduced northern pacific seastar, Asterias amurensis (Lütken), in Tasmania. Final Report, Australian Nature Conservation Agency Feral Pests Program Number 35, Commonwealth Ministry of Environment Sport and Territories, Canberra.",{},{"id":20,"text":945,"url":20,"identifiers":946},"Nojima, S., F.E. Soliman, Y. Kondo, Y. Kuwano, K. Nasu and C. Kitajimi. 1986. Some notes on the outbreak of the sea starAsterias amurensis versicolor Sladen, in the Ariake Sea, western Kyushu. Pub. Amakusa mar. biol. Lab.,8, 89–112.",{},{"id":20,"text":948,"url":20,"identifiers":949},"Onguru, C. and T. Okutani. 1991. Echinoderms from continental shelf and slope around Japan. Vol. II Japan Fish. Res. Conservation Assoc. Tokyo, 204 p.",{},{"id":897,"text":951,"url":899,"identifiers":952},"Pearse, J.S. and C.W. Walker. 1986. Photoperiodic regulation of gametogenesis in a North Atlantic sea starAsterias vulgaris. Int. J. Invert. Reprod. Dev.,9, 71–77.",{"doi":901},{"id":954,"text":955,"url":956,"identifiers":957},"a9fe46c5-a098-4b67-bbac-eff051fc0d62","Ross, D.J., C.R. Johnson and C.L. Hewitt. 2003. Variability in the impact of an introduced predator (Asterias amurensis: Asteroidea) on soft-sediment assemblages. J. Exp. Mar. Biol. Ecol.,41, 1–22.","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0022098103000224",{"doi":958},"10.1016\u002Fs0022-0981(03)00022-4",{"id":897,"text":960,"url":899,"identifiers":961},"Strathmann, R.R. 1978. Lenght of pelagic period in echinoderms with feeding larvae from the northeast Pacific. J. Exp. Mar. Biol. Ecol.,34, 23–27.",{"doi":901},{"id":897,"text":963,"url":899,"identifiers":964},"Ward, R.D. and J. Andrew. 1995. Population genetics of the northern pacific seastarAsterias amurensis (Echinodermata: Asteriidae): allozyme differentiation among Japanese, Russian, and recently introduced Tasmanian populations. Mar. Biol.,124, 99–109.",{"doi":901},{"id":966,"createTime":967,"updateTime":968,"relativeEntities":969,"slug":970,"properties":971,"entityType":164,"verifyStatus":255,"verifyTime":982,"verifyNote":257,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":983,"fullTextUrl":20,"authors":984,"publicationType":185,"publisherRelationship":1098,"citationCount":20,"citationInfo":20,"publishDate":415,"publishYear":413,"citationAnalyzeStatus":19,"lastCitationAnalyze":968,"indexDatabases":1145,"openAccess":20,"references":20,"isForceReanalyzing":237},"df2734e1-a79c-4099-8148-597124aac2d7","2024-02-09T11:05:15.115+00:00","2026-07-15T22:06:45.800+00:00",[],"Seasonal-variations-in-the-low-salinity-intermediate-water-in-the-region-south-of-sub-polar-front-of-the-East-Sea-Sea-of-Japan-",{"abstract":972,"title":974,"gsPaper":976,"references":978,"doi":980},{"EN":973},"Seasonal variations in the low-salinity intermediate water (ESIW) in the region south of the sub-polar front of the East Sea were investigated by using historical hydrographic data. The salinity of the representative density (sigma-0=27.2) of the ESIW was minimal in summer and maximal in winter in the region south of the sub-polar front. The selected four subregions showed different salinity variations. In the west of Oki Spur and the Yamato Basin, salinity fluctuated similarly, with a minimum during summer. In the Ulleung Basin and northwest of Sado Island, however, variations in salinity showed two minima, one is in winter and the other is in summer. These results imply differences in the flow path of the ESIW into the region south of the sub-polar front over time.",{"EN":975},"Seasonal variations in the low-salinity intermediate water in the region south of sub-polar front of the East Sea (Sea of Japan)",{"VOID":977},"[\"11587979073679268163\"]",{"VOID":979},"Chang KI, Kim K, Kim YB, Teague WJ, Lee JC, Lee JH (2009) Deep flow and transport through the Ulleung Interplain Gap in the Southwestern East\u002FJapan Sea. Deep-Sea Res I 56:61–72. doi:10.1016\u002Fj.dsr.2008.07.015\nKawamura H, Yoon JH, Ito T (2007) Formation rate of water masses in the Japan Sea. J Oceanogr 63:243–253\nKim K, Chung JY (1984) On the salinity-minimum and dissolved oxygen-maximum layer in the East Sea (Sea of Japan). In: Ichiye T (ed) Ocean hydrodynamics of the Japan and East China Seas, Elsevier Science Publisher, Amsterdam, pp 55–132\nKim K, Kim KR, Kim YG, Cho YK, Kang DJ, Takematsu M, Volkov Y (2004) Water masses and decadal variability in the East Sea (Sea of Japan). Prog Oceanogr 61:157–174. doi: 10.1016\u002Fj.pocean.2004.06.003\nKim KJ, Seung YH (1999) Formation and movement of the ESIW as modeled by MICOM. J Oceanogr 55:369–382\nKim YG, Kim K (1999) Intermediate water in the East\u002FJapan Sea. J Oceanogr 55:123–132\nKim YH, Chang KI, Park J, Park SK, Lee SH, Kim YG, Jung KT, Kim K (2009) Comparison between a reanalyzed product by 3-dimensional variational assimilation technique and observations in the Ulleung Basin of the East\u002FJapan Sea. J Marine Syst 78:249–264. doi:10.1016\u002Fj.jmarsys.2009.02.017\nLee CM, Thomas LN, Yoshikawa Y (2006) Intermediate water formation at the Japan\u002FEast Sea subpolar front. Oceanography 19:110–121\nLee DK, Niiler PP (2005) The energetic surface circulation patterns of the Japan\u002FEast Sea. Deep-Sea Res II 52(11–13):1547–1563. doi:10.1016\u002Fj.dsr2.2003.08.008\nLozier MS, McCartney MS, Owens WB (1994) Anomalous anomalies in averaged hydrographic data. J Phys Oceanogr 24(12):2624–2638\nLuyten JR, Pedlosky J, Stommel H (1983) The ventilated thermocline. J Phys Oceanogr 13:292–309\nMin HS, Kim K, Park YG (2001) On the variation of the East Sea Intermediate Water. In: Proceedings of the 11th PAMS\u002FJECSS symposium, Cheju, Korea, 11–13 April, pp 269–272\nSenjyu T (1999) The Japan Sea Intermediate Water: Its characteristics and circulation. J Oceanogr 55:111–122\nShin CW (2006) The inflow path of the East Sea Intermediate Water into the Ulleung Basin in July 2005. Ocean and Polar Res 28(2):153–161\nShin CW (2009) Characteristics of a warm eddy observed in the Ulleung Basin in July 2005. Ocean and Polar Res 31(4):283–296. doi: 10.4217\u002FOPR.2009.31.4.283\nShin CW, Byun SK, Kim C, Lee JH, Kim BC, Hwang SC, Seung YH, and Shin HR (2007) General Characteristics of the East Sea Intermediate Water. Ocean and Polar Res 29(1):33–42\nShin CW, Byun SK, Kim C, Seung YH (1998) Southward intrusion of the East Sea Intermediate Water into the Ulleung Basin: Observations in 1992 and 1993. J Korean Soc Oceanogr 33:146–156\nShin HR, Shin CW, Kim C, Byun SK, Hwang SC (2005) Movement and structural variation of warm eddy WE92 for three years in the Western East\u002FJapan Sea. Deep-Sea Res II 52(11–13):1742–1762. doi:10.1016\u002Fj.dsr2.2004.10.004\nUNESCO (1991) Processing of oceanographic station data. Imprimerie des Presses Univeritaires de France, Vendôme, 138 p\nYoon JH, Kawamura H (2002) The formation and circulation of the intermediate water in the Japan Sea. J Oceanogr 58:197–211\nYun, JY, Magaard L, Kim K, Shin CW, Kim C, Byun SK (2004) Spatial and temporal variability of the North Korean Cold Water leading to the near-bottom cold water intrusion in Korea Strait. Prog Oceanogr 60:99–131\nYoshikawa Y, Akitomo K, Awaji T (2001) Formation process of intermediate water in baroclinic current under cooling. J Geophys Res 106(C1):1033–1051\nYoshikawa Y, Awaji T, Akitomo K (1999) Formation and circulation processes of intermediate water in the Japan Sea. J Phys Oceanogr 29:1701–1722",{"VOID":981},"10.1007\u002Fs12601-013-0003-4","2024-06-26T07:48:02.840+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs12601-013-0003-4",[985,1002,1015,1028,1043,1058,1071,1083],{"id":986,"sortIndex":21,"researcher":20,"roles":987,"affiliations":988,"properties":997,"displayName":999,"givenName":20,"familyName":20},"500d5120-dfae-4e3e-8273-b56146e6a4ca",[172],[989],{"id":990,"sortIndex":21,"affiliation":991,"properties":20},"5e695075-4a90-48d2-92e8-0380dafb542c",{"id":990,"createTime":20,"updateTime":20,"relativeEntities":992,"slug":20,"properties":993,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":996,"statistic":20},[],{"title":994},{"VI":995},"Ocean Circulation & Climate Research Division, KIOST, Ansan, Korea",[],{"title":998,"gsAuthor":1000},{"VI":999},"Chang-Woong Shin",{"VOID":1001},"[\"yQRweKEAAAAJ\"]",{"id":1003,"sortIndex":134,"researcher":20,"roles":1004,"affiliations":1005,"properties":1012,"displayName":1014,"givenName":20,"familyName":20},"67fb2629-9a90-471f-95a0-5e0444d237f7",[172],[1006],{"id":990,"sortIndex":21,"affiliation":1007,"properties":20},{"id":990,"createTime":20,"updateTime":20,"relativeEntities":1008,"slug":20,"properties":1009,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":1011,"statistic":20},[],{"title":1010},{"VI":995},[],{"title":1013},{"VI":1014},"Sang-Kyung 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Lee",{"VOID":1042},"[\"34MmNhMAAAAJ\"]",{"id":1044,"sortIndex":322,"researcher":20,"roles":1045,"affiliations":1046,"properties":1055,"displayName":1057,"givenName":20,"familyName":20},"cc927fbc-8b2d-40b3-ab3d-61431be95dcf",[172],[1047],{"id":1048,"sortIndex":21,"affiliation":1049,"properties":20},"a08fa330-aed8-4266-a9aa-07c367ab1665",{"id":1048,"createTime":20,"updateTime":20,"relativeEntities":1050,"slug":20,"properties":1051,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":1054,"statistic":20},[],{"title":1052},{"VI":1053},"Maritime Security Research Center, KIOST, Ansan, Korea",[],{"title":1056},{"VI":1057},"Bong-Chae 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Hwang",{"id":1072,"sortIndex":350,"researcher":20,"roles":1073,"affiliations":1074,"properties":1081,"displayName":184,"givenName":20,"familyName":20},"84be61d6-921c-4485-a57f-77e75dffde62",[172],[1075],{"id":175,"sortIndex":21,"affiliation":1076,"properties":20},{"id":175,"createTime":20,"updateTime":20,"relativeEntities":1077,"slug":20,"properties":1078,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":1080,"statistic":20},[],{"title":1079},{"VI":180},[],{"title":1082},{"VI":184},{"id":1084,"sortIndex":122,"researcher":20,"roles":1085,"affiliations":1086,"properties":1095,"displayName":1097,"givenName":20,"familyName":20},"c933bde3-a128-4b3c-a824-61812eaefdc5",[172],[1087],{"id":1088,"sortIndex":21,"affiliation":1089,"properties":20},"f2ebf620-25fd-41fc-aa6a-317bcdb11948",{"id":1088,"createTime":20,"updateTime":20,"relativeEntities":1090,"slug":20,"properties":1091,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":1094,"statistic":20},[],{"title":1092},{"VI":1093},"Department of Atmospheric Science, Health and Environment Institute, Kongju National University, Gongju, Korea",[],{"title":1096},{"VI":1097},"Hong-Ryeol Shin",{"url":983,"publisher":1099,"properties":1141},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1100,"slug":10,"properties":1101,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":1105,"manageAffiliations":1110,"indexDatabases":1121,"url":80,"thumbnailPath":20,"statistic":1136,"gsStatistic":20,"type":143,"analyzePriority":20},[],{"issn":1102,"title":1103,"eissn":1104},{"VOID":13},{"EN":15},{"VOID":17},[1106],{"id":24,"createTime":20,"updateTime":20,"relativeEntities":1107,"label":1108,"description":1109,"parentId":20,"standard":20,"scholarHubFieldId":20},[],{"EN":27},{},[1111,1116],{"id":31,"createTime":20,"updateTime":20,"relativeEntities":1112,"slug":20,"properties":1113,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":1115,"statistic":20},[],{"title":1114},{"EN":35},[],{"id":38,"createTime":20,"updateTime":20,"relativeEntities":1117,"slug":20,"properties":1118,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":1120,"statistic":20},[],{"title":1119},{"EN":42},[],[1122,1129],{"id":46,"indexDatabase":1123,"url":57,"indexYears":58,"academicFieldIds":1128,"indexDatabaseRanking":61},{"id":48,"createTime":20,"updateTime":20,"relativeEntities":1124,"label":1125,"description":1126,"key":54,"publicationTags":1127,"standard":20},[],{"EN":51,"VI":51},{"EN":51,"VI":53},[56],[60],{"id":63,"indexDatabase":1130,"url":76,"indexYears":20,"academicFieldIds":1135,"indexDatabaseRanking":20},{"id":65,"createTime":20,"updateTime":20,"relativeEntities":1131,"label":1132,"description":1133,"key":72,"publicationTags":1134,"standard":20},[],{"EN":68,"VI":68},{"EN":70,"VI":71},[74,75],[78,79],{"impactFactor":21,"impactFactorByYear":1137,"i10Index":93,"i10IndexLast5Year":94,"totalPublication":95,"totalPublicationByYear":1138,"totalCitation":111,"totalCitationByYear":1139,"totalCitationPerPublication":124,"totalCitationPerPublicationByYear":1140,"hindexLast5Year":115,"hindex":115},{"2012":83,"2013":84,"2014":85,"2015":86,"2016":87,"2017":88,"2018":89,"2019":90,"2020":90,"2021":84,"2022":91,"2023":92},{"2005":97,"2006":98,"2007":99,"2008":99,"2009":100,"2010":101,"2011":97,"2012":102,"2013":103,"2014":104,"2015":105,"2016":106,"2017":107,"2018":106,"2019":108,"2020":102,"2021":109,"2022":110,"2023":98,"2024":100},{"2005":113,"2006":114,"2007":94,"2008":115,"2009":115,"2010":116,"2011":117,"2012":118,"2013":119,"2014":104,"2015":120,"2017":121,"2018":103,"2019":103,"2020":108,"2021":122,"2022":113,"2023":123},{"2005":126,"2006":127,"2007":128,"2008":129,"2009":123,"2010":130,"2011":131,"2012":132,"2013":133,"2014":134,"2015":135,"2017":136,"2018":137,"2019":138,"2020":139,"2021":140,"2022":141,"2023":142},{"pages":1142,"volume":1144},{"VOID":1143},"35-47",{"VOID":411},[61,74],{"id":1147,"createTime":1148,"updateTime":1149,"relativeEntities":1150,"slug":1151,"properties":1152,"entityType":164,"verifyStatus":255,"verifyTime":1163,"verifyNote":257,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":1164,"fullTextUrl":20,"authors":1165,"publicationType":185,"publisherRelationship":1250,"citationCount":20,"citationInfo":20,"publishDate":1298,"publishYear":1299,"citationAnalyzeStatus":1300,"lastCitationAnalyze":1301,"indexDatabases":1302,"openAccess":20,"references":20,"isForceReanalyzing":237},"1c7d09db-c2f8-4f6f-8152-e69e823577ae","2024-01-28T14:01:54.034+00:00","2026-07-14T16:01:37.203+00:00",[],"Patterns-of-Gene-Expression-Variation-across-Body-Parts-of-the-Hydrothermal-Vent-Shrimp-Nautilocaris-saintlaurentae",{"abstract":1153,"title":1155,"gsPaper":1157,"references":1159,"doi":1161},{"EN":1154},"Since deep-sea hydrothermal vents have been targeted for mining mineral resources, concerns about the potential impacts of mining on vent ecosystems have gradually increased. The vent alvinocaridid shrimp is one of the dominant endemic vent organisms. We collected an experimental species, Nautilocaris saintlaurentae, from the Tonga Arc in the Southwest Pacific Ocean, and firstly determined the sequences of seven housekeeping genes (HKGs) and three stress-related genes in this study. The stability of the HKGs was evaluated and the expression levels of targeted genes were measured in different body parts, the cephalothorax, abdomen, and whole body, to provide information on which parts of nonmodel species can be used for ecotoxicological studies. Based on geNorm platform, multiple combinations of HKGs were tested. The stability of the HKG expression in each body part indicated that the cephalothorax can be used alone and also demonstrated that using at least three HKGs provides suitable interpretations for mRNA real-time quantitative PCR arrays in N. saintlaurentae. Although analysis of specific body part subdivisions was not carried out, our results suggested that anatomical characteristics should be considered when investigating biological functions at a molecular level. Finally, this study revealed upregulation of stress-responsive genes in the cephalothorax of N. saintlaurentae with environmental changes.",{"EN":1156},"Patterns of Gene Expression Variation across Body Parts of the Hydrothermal Vent Shrimp Nautilocaris saintlaurentae",{"VOID":1158},"[]",{"VOID":1160},"Allen CH (2001): Protecting the oceanic gardens of Eden: International law issues in deep-sea vent resource conservation and management. Geo Int’l Envtl L Rev 13:563\nAverof, M, Akam M (1995): Hox genes and the diversification of insect and crustacean body plans. Nature 376:420–423\nBeliaeff, B, Burgeot T (2002): Integrated biomarker response: a useful tool for ecological risk assessment. Environ Toxicol Chem 26(6):1316–1322\nBettencourt, R, Dando, P, Collins, P, Costa, V, Allam, B, Santos RS (2009): Innate immunity in the deep sea hydrothermal vent mussel Bathymodiolus azoricus. Comp Biochem Phys A 52(2):278–289\nCalbet, A, Landry, MR, Scheinberg RD (2000): Copepod grazing in a subtropical bay: Species-specific responses to a midsummer increase in nanoplankton standing stock. Mar Ecol-Prog Ser 193:75–84\nCnubben, NH, Rietjens, IM, Wortelboer, H, van Zanden, J, van Bladeren PJ (2001): The interplay of glutathione-related processes in antioxidant defense. Environ Toxicol Phar 10(4):141–152\nCollins, PC, Croot, P, Carlsson, J, Colaço, A, Grehan, A, Hyeong, K, Kennedy, R, Mohn, C, Smith, S, Yamamoto, H, Rowden A (2013): A primer for the environmental impact assessment of mining at seafloor massive sulfide deposits. Mar Policy 42:198–209\nDamen, WG, Tautz D (1999): Abdominal-B expression in a spider suggests a general role for Abdominal-B specifying the genital structure. J Exp Zool 285(1):85–91\nDelgado-Gaytán, MF, Hernández-Palomares, ML, Soñanez-Organis JG, Muhlia-Almazán, A, Sánchez-Paz, A, Stephens-Camacho, NA, Valenzuela-Soto, EM, Rosas-Rodríguez JA (2015): Molecular characterization and organ-specific expression of the gene that encodes betaine aldehyde dehydrogenase from the white shrimp Litopenaeus vannamei in response to osmotic stress. Comp Biochem Phys B 189:40–46\nEissa, N, Wang HP (2016): Transcriptional stress responses to environmental and husbandry stressors in aquaculture species. Rev Aquacult 8(1):61–88\nFeder, ME, Hofmann GE (1999): Heat-shock, proteins, molecular, chaperones, and the stress response: evolutionary and ecological physiology. Annu Rev Physiol 61(1):243–282\nGerman, CR, Thurnherr, AM, Knoery, J, Charlou, JL, Jean-Baptiste, P, Edmonds HN (2010): Heat, volume and chemical fluxes from submarine venting: A synthesis of results from the Rainbow hydrothermal, field, 36 N MAR. 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PLoS One 9(3):e92802. doi:https:\u002F\u002Fdoi.org\u002F10.1371\u002Fjournal.pone.0092802\nMcCurley, AT, Callard GV (2008): Characterization of housekeeping genes in zebrafish: male-female differences and effects of tissue, type, developmental stage and chemical treatment. BMC Mol Biol 9(1):102. doi:https:\u002F\u002Fdoi.org\u002F10.1186\u002F1471-2199-9-102\nMeyer, R, Lochner, S, Melzer R (2009) Decapoda-crabs, shrimps & lobsters. In: Haussermann, V, Gorsterra G (eds) Marine benthic fauna of chilean patagonia. Nature in, Focus, Santiago, pp 293–297\nMullineaux, LS, Metaxas, A, Beauliue, SE, Bright, M, Gollner, S, Grupe, BM, Herrera, S, Kellner, JB, Levin, LA, Mitarai, S, Neubert, MG, Thurnherr, AM, Tunnicliffe, V, Watanabe, HK, Won YJ (2018) Exploring the ecology of deep-sea hydrothermal vents in a metacommunity framework. 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P Natl Aacd Sci USA 97(24): 12961–12962. doi:https:\u002F\u002Fdoi.org\u002F10.1073\u002Fpnas.210395997",{"VOID":1162},"10.1007\u002Fs12601-019-0032-8","2024-06-25T09:31:29.732+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs12601-019-0032-8",[1166,1181,1196,1211,1235],{"id":1167,"sortIndex":21,"researcher":20,"roles":1168,"affiliations":1169,"properties":1178,"displayName":1180,"givenName":20,"familyName":20},"52d2e5c0-aa59-4d28-aaa2-226cc5c9cf70",[172],[1170],{"id":1171,"sortIndex":21,"affiliation":1172,"properties":20},"78269f78-000f-450d-87a7-db31fe560dfd",{"id":1171,"createTime":20,"updateTime":20,"relativeEntities":1173,"slug":20,"properties":1174,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":1177,"statistic":20},[],{"title":1175},{"VI":1176},"Department of Life Science, College of Natural Sciences, Sangmyung University, Seoul, Korea",[],{"title":1179},{"VI":1180},"Ryeo-Ok Kim",{"id":1182,"sortIndex":134,"researcher":20,"roles":1183,"affiliations":1184,"properties":1193,"displayName":1195,"givenName":20,"familyName":20},"aff00698-000f-4d76-b417-536353b8e9c6",[172],[1185],{"id":1186,"sortIndex":21,"affiliation":1187,"properties":20},"c4b70ef8-8789-4551-a783-2d95eee3b148",{"id":1186,"createTime":20,"updateTime":20,"relativeEntities":1188,"slug":20,"properties":1189,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":1192,"statistic":20},[],{"title":1190},{"VI":1191},"Department of Marine Science and Convergent Technology, Hanyang University, Ansan, Korea",[],{"title":1194},{"VI":1195},"Eun-Ji Won",{"id":1197,"sortIndex":123,"researcher":20,"roles":1198,"affiliations":1199,"properties":1208,"displayName":1210,"givenName":20,"familyName":20},"88faf2df-c99d-45e3-abe7-ba3c076845aa",[172],[1200],{"id":1201,"sortIndex":21,"affiliation":1202,"properties":20},"635442af-e656-45f6-9359-13fc558b4d23",{"id":1201,"createTime":20,"updateTime":20,"relativeEntities":1203,"slug":20,"properties":1204,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":1207,"statistic":20},[],{"title":1205},{"VI":1206},"Stem Cell Research Center, Korea Research Institute Bioscience and Biotechnology, Daejeon, Korea",[],{"title":1209},{"VI":1210},"Hyun Mi Kang",{"id":1212,"sortIndex":94,"researcher":20,"roles":1213,"affiliations":1214,"properties":1232,"displayName":1234,"givenName":20,"familyName":20},"08237877-d83e-43fe-94c3-3cf53788869a",[172],[1215,1223],{"id":1216,"sortIndex":21,"affiliation":1217,"properties":20},"6cd232a1-615d-471d-bf5a-556fbc1f46ce",{"id":1216,"createTime":20,"updateTime":20,"relativeEntities":1218,"slug":20,"properties":1219,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":1222,"statistic":20},[],{"title":1220},{"VI":1221},"Global Ocean Research Center, Korea Institute of Ocean Science & Technology, Busan, Korea",[],{"id":1224,"sortIndex":134,"affiliation":1225,"properties":1231},"9266d381-a54c-4dae-a7d8-c7df58071cae",{"id":1224,"createTime":20,"updateTime":20,"relativeEntities":1226,"slug":20,"properties":1227,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":1230,"statistic":20},[],{"title":1228},{"EN":1229},"Department of Marine Biology, University of Science & Technology, Daejeon, Korea",[],{},{"title":1233},{"VI":1234},"Se-Jong 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Kim",{"url":1164,"publisher":1251,"properties":1293},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1252,"slug":10,"properties":1253,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":1257,"manageAffiliations":1262,"indexDatabases":1273,"url":80,"thumbnailPath":20,"statistic":1288,"gsStatistic":20,"type":143,"analyzePriority":20},[],{"issn":1254,"title":1255,"eissn":1256},{"VOID":13},{"EN":15},{"VOID":17},[1258],{"id":24,"createTime":20,"updateTime":20,"relativeEntities":1259,"label":1260,"description":1261,"parentId":20,"standard":20,"scholarHubFieldId":20},[],{"EN":27},{},[1263,1268],{"id":31,"createTime":20,"updateTime":20,"relativeEntities":1264,"slug":20,"properties":1265,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":1267,"statistic":20},[],{"title":1266},{"EN":35},[],{"id":38,"createTime":20,"updateTime":20,"relativeEntities":1269,"slug":20,"properties":1270,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":1272,"statistic":20},[],{"title":1271},{"EN":42},[],[1274,1281],{"id":46,"indexDatabase":1275,"url":57,"indexYears":58,"academicFieldIds":1280,"indexDatabaseRanking":61},{"id":48,"createTime":20,"updateTime":20,"relativeEntities":1276,"label":1277,"description":1278,"key":54,"publicationTags":1279,"standard":20},[],{"EN":51,"VI":51},{"EN":51,"VI":53},[56],[60],{"id":63,"indexDatabase":1282,"url":76,"indexYears":20,"academicFieldIds":1287,"indexDatabaseRanking":20},{"id":65,"createTime":20,"updateTime":20,"relativeEntities":1283,"label":1284,"description":1285,"key":72,"publicationTags":1286,"standard":20},[],{"EN":68,"VI":68},{"EN":70,"VI":71},[74,75],[78,79],{"impactFactor":21,"impactFactorByYear":1289,"i10Index":93,"i10IndexLast5Year":94,"totalPublication":95,"totalPublicationByYear":1290,"totalCitation":111,"totalCitationByYear":1291,"totalCitationPerPublication":124,"totalCitationPerPublicationByYear":1292,"hindexLast5Year":115,"hindex":115},{"2012":83,"2013":84,"2014":85,"2015":86,"2016":87,"2017":88,"2018":89,"2019":90,"2020":90,"2021":84,"2022":91,"2023":92},{"2005":97,"2006":98,"2007":99,"2008":99,"2009":100,"2010":101,"2011":97,"2012":102,"2013":103,"2014":104,"2015":105,"2016":106,"2017":107,"2018":106,"2019":108,"2020":102,"2021":109,"2022":110,"2023":98,"2024":100},{"2005":113,"2006":114,"2007":94,"2008":115,"2009":115,"2010":116,"2011":117,"2012":118,"2013":119,"2014":104,"2015":120,"2017":121,"2018":103,"2019":103,"2020":108,"2021":122,"2022":113,"2023":123},{"2005":126,"2006":127,"2007":128,"2008":129,"2009":123,"2010":130,"2011":131,"2012":132,"2013":133,"2014":134,"2015":135,"2017":136,"2018":137,"2019":138,"2020":139,"2021":140,"2022":141,"2023":142},{"pages":1294,"volume":1296},{"VOID":1295},"595-609",{"VOID":1297},"54","2019-11-11",2019,"ERROR_IN_GET_PLATFORM_ID","2026-07-14T16:01:37.202+00:00",[61,74],{"id":1304,"createTime":1305,"updateTime":1306,"relativeEntities":1307,"slug":1308,"properties":1309,"entityType":164,"verifyStatus":255,"verifyTime":1320,"verifyNote":257,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":1321,"fullTextUrl":20,"authors":1322,"publicationType":185,"publisherRelationship":1365,"citationCount":21,"citationInfo":1412,"publishDate":889,"publishYear":887,"citationAnalyzeStatus":416,"lastCitationAnalyze":1414,"indexDatabases":1415,"openAccess":20,"references":20,"isForceReanalyzing":237},"d8627a89-a9b8-41da-814e-816a77a84731","2024-01-17T17:41:52.682+00:00","2026-07-11T23:33:32.635+00:00",[],"More-about-taxonomic-sufficiency-a-case-study-using-polychaete-communities-in-a-subtropical-bay-moderately-affected-by-urban-sewage",{"abstract":1310,"title":1312,"gsPaper":1314,"references":1316,"doi":1318},{"EN":1311},"The taxonomic sufficiency approach has been proposed as a surrogate for the typical analysis of speciesabundance data, especially in conditions involving prominent pollution gradients. Here, we evaluate the use of taxonomic sufficiency with infralittoral macrobenthic data derived from samples taken in a moderate polluted subtropical environment in southeastern Brazil, analysing five taxonomic levels and including two functional levels throughout polychaete feeding guilds and trophic groups. The data were collected seasonally at nine stations and studied for two abundance data series (0.5 and 1.0 mm sieve mesh-size). The results showed a similar ordination pattern between the two sieve mesh-size, but with the 0.5 mm sieve data a different pattern was observed during austral summer. A slight loss of information was detected using genus, family, polychaete species and their feeding guilds as taxonomic\u002F functional units. These results together with those of the cost\u002F benefit ratio, suggested that the family level seemed to be sufficient to detect the impact caused by moderate pollution in this shallow-water, subtropical environment. In additional, through the use of feeding guilds, similar patterns are obtained. Correlation analysis showed that chlorophyll a, total organic matter, zinc, and chromium sediment content were the variables that best explained the biological pattern observed and not always the best correlation coefficient occurring at the species level. The feeding guild approach seems to be useful and generates interpretable results similar to those obtained with the species level of the whole macroinfauna. The results showed an important cost reduction in the sample processing, suggesting that it is possible to adopt a coarser taxonomic level monitoring program even in species-rich communities.",{"EN":1313},"More about taxonomic sufficiency: a case study using polychaete communities in a subtropical bay moderately affected by urban sewage",{"VOID":1315},"[\"1428011318214571651\"]",{"VOID":1317},"Arasaki, E., Muniz, P., and A.M.S. Pires-Vanin. 2004. 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Ser. 135, 123–135.\nWarwick, R.M., 1988a. Analysis of community attributes of the macrobenthos of Frierfjord\u002FLangesundfjord at taxonomic levels higher than species.Mar. Ecol. Prog. Ser. 46, 167–170.\nWarwick, R.M., 1988b. The level of taxonomic discrimination required to detect pollution effects on marine benthic communities.Mar. Pollut. Bull. 19, 259–268.\nWarwick, R.M., 1993. Environmental studies on marine communities: pragmatical considerations.Austr. J. 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The Global Array of Profiling Floats. p. 248–258. In:Observing Oceans in the 21st Century, ed. by C. Z. Koblinsky and N. R. Smith. Godae Proj. Off., Bur. Meteorol., Melbourne, Australia.",{},{"id":20,"text":1557,"url":20,"identifiers":1558},"Etter, C.P. 1996. Underwater Acoustic Modelling: Principles, Techniques and Applications. 2nd ed., E & FN Spon, London.",{},{"id":20,"text":1560,"url":20,"identifiers":1561},"Fofonoff, P. and R.C. Millard Jr. 1983. Algorithms for computation of fundamental properties of seawater.Unesco Technical Papers in Marine Science,44, 53.",{},{"id":20,"text":1563,"url":20,"identifiers":1564},"Jain, S., M.M. Ali, and P.N. Sen. 2007. Estimation of sonic layer depth from surface parameters.Geophys. Res. Lett.,34, L17602, doi:10.1029\u002F2007GL030577.",{"doi":1565},"10.1029\u002F2007GL030577",{"id":20,"text":1567,"url":20,"identifiers":1568},"Kistler, R., E. Kalnay, W. Collins, S. Saha, G. White, J. Woolen, M. Chelliah, W. Ebisuzaki, M. Kanamitsu, V. Kousky, H. van den Dool, R. Jenne, and M. Fiorino. 2001. The NCEP-NCAR 50-year reanalysis: Monthly mean CD-ROM and documentation.Bull. Amer. Meteor. Soc.,82, 247–268.",{"doi":1569},"10.1175\u002F1520-0477(2001)082\u003C0247:TNNYRM>2.3.CO;2",{"id":20,"text":1571,"url":20,"identifiers":1572},"Lü, L.G., H.X. Chen and Y.L. Yuan. 2003. Spatial and temporal variations of sound speed at the PN Section,J. Oceanog.,60, 673–679.",{},{"id":20,"text":1574,"url":20,"identifiers":1575},"Munk, W.H., C. Wunsch. 1979. Ocean acoustic tomography: A scheme for large scale monitoring.Deep-Sea Res. I,26, 123–161.",{"doi":1576},"10.1016\u002F0198-0149(79)90073-6",{"id":20,"text":1578,"url":20,"identifiers":1579},"Prasad, T.G. and N. Bahulayan. 1996. Mixed layer depth and thermocline climatology of the Arabian Sea and western equatorial Indian Ocean.Indian J. Mar. Sci.,25, 189–194.",{},{"id":20,"text":1581,"url":20,"identifiers":1582},"Prasanna Kumar, S. and J. Narvekar. 2005. Seasonal variability of the mixed layer in the central Arabian Sea and its implication on nutrients and primary productivity.Deep-Sea Res. II,53, 1848–1861.",{"doi":1583},"10.1016\u002Fj.dsr2.2005.06.002",{"id":20,"text":1585,"url":20,"identifiers":1586},"Prasanna Kumar, S. and T.G. Prasad. 1996. Winter cooling in the northern Arabian Sea.Curr. Sci.,71, 834–841.",{},{"id":20,"text":1588,"url":20,"identifiers":1589},"Ravichandran, M., P.N. Vinaychandran, S. Joseph, and K. Radhakrishnan. 2004. Results from the first Argo float deployed by India.Curr. Sci.,86, 651–659.",{},{"id":20,"text":1591,"url":20,"identifiers":1592},"Tomczak, M. and J.S. Godfrey. 1994. Regional Oceanography: An Introduction. Pergamon. 422 p.",{},{"id":20,"text":1594,"url":20,"identifiers":1595},"Udaya Bhaskar, T.V.S., D. Swain, and M. Ravichandran. 2006. Inferring mixed-layer depth variability from Argo observation in the western Indian Ocean.J. Mar. Res.,64, 393–406.",{"doi":1596},"10.1357\u002F002224006778189572",{"id":20,"text":1598,"url":20,"identifiers":1599},"Urick, R.J. 1983. Principles of Underwater Sound. McGraw-Hill, New York. 423 p.",{},{"id":20,"text":1601,"url":20,"identifiers":1602},"Wackernagel, H. 1998. Multivariate Geostatistics. 2nd ed., Springer-Verlag, New York. 291 p.",{"doi":1603},"10.1007\u002F978-3-662-03550-4",{"id":20,"text":1605,"url":20,"identifiers":1606},"Weller R.A., A.S. Fischer, D.L. Rudnick, C.C. Eriksen, T.D. Dickey, J. Marra, C. Fox, and R. Leben. 2002. Moored observations of upper-ocean response to the monsoons in the Arabian Sea during 1994–1995.Deep-Sea Res. II,49, 2195–2230.",{"doi":1607},"10.1016\u002FS0967-0645(02)00035-8",{"id":20,"text":1609,"url":20,"identifiers":1610},"Wong, A., R. Keeley, T. Carval, and the Argo Data Management Team. 2006. Argo quality control manual,Report ver. 2.2, Argo data management. 33 p.",{},{"id":1612,"createTime":1613,"updateTime":1614,"relativeEntities":1615,"slug":1616,"properties":1617,"entityType":164,"verifyStatus":255,"verifyTime":1628,"verifyNote":257,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":1629,"fullTextUrl":20,"authors":1630,"publicationType":185,"publisherRelationship":1699,"citationCount":21,"citationInfo":1746,"publishDate":1748,"publishYear":613,"citationAnalyzeStatus":416,"lastCitationAnalyze":1749,"indexDatabases":1750,"openAccess":20,"references":20,"isForceReanalyzing":237},"b0e43831-a472-42af-8144-29420e69d52d","2024-02-11T00:38:22.294+00:00","2026-07-10T19:54:44.119+00:00",[],"Accuracy-improvement-of-the-radar-backscatter-simulation-from-sea-surface-covered-by-oil-slick-using-fetch-dependent-waveheight-spectrum-Comparison-with-the-2007-Heibei-Spirit-Case-in-the-Yellow-Sea",{"abstract":1618,"title":1620,"gsPaper":1622,"references":1624,"doi":1626},{"EN":1619},"In this paper, results are presented on the comparison of X-band radar backscattering coefficient (RBC) from an oilcovered sea surface that features the Elfouhaily and Durden-Vesecky waveheight spectra. The Durden-Vesecky spectrum applies to a fully-developed sea, while the Elfouhaily spectrum accounts for the fetch of arbitrary length. Using these two waveheight spectra, a one-dimensional random rough surface is simulated by the Monte Carlo method, and the method of moments (MoM) is applied to yield the RBC. Comparison of the results with TerraSAR-X synthetic aperture radar (SAR) data acquired over the coastal waters polluted by the Hebei Spirit oil tanker shows that the Elfouhaily spectrum yields better agreement than the Durden-Vesecky spectrum for the fully-developed sea, and that the fetch-dependent Elfouhaily spectrum improves the agreement with SAR data in comparison with the fetch-independent spectrum for the fully developed sea. A possible application to estimate the amount of spilled oil is also suggested.",{"EN":1621},"Accuracy improvement of the radar backscatter simulation from sea surface covered by oil slick using fetch-dependent waveheight spectrum: Comparison with the 2007 Heibei Spirit Case in the Yellow Sea",{"VOID":1623},"[\"15049983519037400699\"]",{"VOID":1625},"Alpers W, Huhnerfuss H (1989) The damping of ocean waves by surface films: a new look at an old problem. J Geophys Res 94(C5):6251–6265\nAmorocho K, Devries JJ (1980) A new evaluation of the wind stress coefficient over water surfaces. J Geophys Res 85(C1):433–442\nApel JR (1994) An improved model of the ocean surface wave vector spectrum and its effects on radar backscatter. J Geophys Res 99(C8):16269–16291\nAxline RMand Fung AK (1978) Numerical computation of scattering from a perfectly conducting random surface. IEEE T Antenn Propag AP-26(3):482–488\nBrekke C, Solberg AHS (2005) Oil spill detection by satellite remote sensing. 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Environ Sci Technol 46(12):6431–6437",{"VOID":1627},"10.1007\u002Fs12601-016-0020-1","2024-06-26T16:30:36.059+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs12601-016-0020-1",[1631,1655,1684],{"id":1632,"sortIndex":21,"researcher":20,"roles":1633,"affiliations":1634,"properties":1652,"displayName":1654,"givenName":20,"familyName":20},"67e1ef81-7ac5-4002-86ec-a2ccfd6a9756",[172],[1635,1643],{"id":1636,"sortIndex":21,"affiliation":1637,"properties":20},"4cda2211-1936-47e7-8285-db39b541cb31",{"id":1636,"createTime":20,"updateTime":20,"relativeEntities":1638,"slug":20,"properties":1639,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":1642,"statistic":20},[],{"title":1640},{"VI":1641},"Department of Integrated Ocean Sciences, Korea University of Science and Technology, Daejeon, 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