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\n \n\n \n \n Cattano, C., Agostini, S., Harvey, B. P., Wada, S., Quattrocchi, F., Turco, G., Inaba, K., Hall-Spencer, J. M., & Milazzo, M.\n\n\n \n \n \n \n \n Changes in fish communities due to benthic habitat shifts under ocean acidification conditions.\n \n \n \n \n\n\n \n\n\n\n Science of The Total Environment, 725: 138501. July 2020.\n \n\n\n\n
\n\n\n\n \n \n \"ChangesPaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n\n \n  \n \n 43 downloads\n \n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{cattano_changes_2020,\n\ttitle = {Changes in fish communities due to benthic habitat shifts under ocean acidification conditions},\n\tvolume = {725},\n\tissn = {00489697},\n\turl = {https://linkinghub.elsevier.com/retrieve/pii/S0048969720320143},\n\tdoi = {10.1016/j.scitotenv.2020.138501},\n\tlanguage = {en},\n\turldate = {2021-07-27},\n\tjournal = {Science of The Total Environment},\n\tauthor = {Cattano, Carlo and Agostini, Sylvain and Harvey, Ben P. and Wada, Shigeki and Quattrocchi, Federico and Turco, Gabriele and Inaba, Kazuo and Hall-Spencer, Jason M. and Milazzo, Marco},\n\tmonth = jul,\n\tyear = {2020},\n\tpages = {138501},\n}\n\n
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\n \n\n \n \n Flores, J. M., Bourdin, G., Altaratz, O., Trainic, M., Lang-Yona, N., Dzimban, E., Steinau, S., Tettich, F., Planes, S., Allemand, D., Agostini, S., Banaigs, B., Boissin, E., Boss, E., Douville, E., Forcioli, D., Furla, P., Galand, P. E., Sullivan, M. B., Gilson, É., Lombard, F., Moulin, C., Pesant, S., Poulain, J., Reynaud, S., Romac, S., Sunagawa, S., Thomas, O. P., Troublé, R., de Vargas, C., Thurber, R. V., Voolstra, C. R., Wincker, P., Zoccola, D., Bowler, C., Gorsky, G., Rudich, Y., Vardi, A., & Koren, I.\n\n\n \n \n \n \n \n Tara Pacific Expedition’s Atmospheric Measurements of Marine Aerosols across the Atlantic and Pacific Oceans: Overview and Preliminary Results.\n \n \n \n \n\n\n \n\n\n\n Bulletin of the American Meteorological Society, 101(5): E536–E554. May 2020.\n \n\n\n\n
\n\n\n\n \n \n \"TaraPaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n  \n \n abstract \n \n\n \n  \n \n 13 downloads\n \n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{flores_tara_2020,\n\ttitle = {Tara {Pacific} {Expedition}’s {Atmospheric} {Measurements} of {Marine} {Aerosols} across the {Atlantic} and {Pacific} {Oceans}: {Overview} and {Preliminary} {Results}},\n\tvolume = {101},\n\tissn = {0003-0007, 1520-0477},\n\tshorttitle = {Tara {Pacific} {Expedition}’s {Atmospheric} {Measurements} of {Marine} {Aerosols} across the {Atlantic} and {Pacific} {Oceans}},\n\turl = {https://journals.ametsoc.org/view/journals/bams/101/5/bams-d-18-0224.1.xml},\n\tdoi = {10.1175/BAMS-D-18-0224.1},\n\tabstract = {Abstract\n            \n              Marine aerosols play a significant role in the global radiative budget, in clouds’ processes, and in the chemistry of the marine atmosphere. There is a critical need to better understand their production mechanisms, composition, chemical properties, and the contribution of ocean-derived biogenic matter to their mass and number concentration. Here we present an overview of a new dataset of in situ measurements of marine aerosols conducted over the 2.5-yr\n              Tara\n              Pacific Expedition over 110,000 km across the Atlantic and Pacific Oceans. Preliminary results are presented here to describe the new dataset that will be built using this novel set of measurements. It will characterize marine aerosols properties in detail and will open a new window to study the marine aerosol link to the water properties and environmental conditions.},\n\tnumber = {5},\n\turldate = {2021-07-27},\n\tjournal = {Bulletin of the American Meteorological Society},\n\tauthor = {Flores, J. M. and Bourdin, G. and Altaratz, O. and Trainic, M. and Lang-Yona, N. and Dzimban, E. and Steinau, S. and Tettich, F. and Planes, S. and Allemand, D. and Agostini, S. and Banaigs, B. and Boissin, E. and Boss, E. and Douville, E. and Forcioli, D. and Furla, P. and Galand, P. E. and Sullivan, M. B. and Gilson, É. and Lombard, F. and Moulin, C. and Pesant, S. and Poulain, J. and Reynaud, S. and Romac, S. and Sunagawa, S. and Thomas, O. P. and Troublé, R. and de Vargas, C. and Thurber, R. Vega and Voolstra, C. R. and Wincker, P. and Zoccola, D. and Bowler, C. and Gorsky, G. and Rudich, Y. and Vardi, A. and Koren, I.},\n\tmonth = may,\n\tyear = {2020},\n\tpages = {E536--E554},\n}\n\n
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\n Abstract Marine aerosols play a significant role in the global radiative budget, in clouds’ processes, and in the chemistry of the marine atmosphere. There is a critical need to better understand their production mechanisms, composition, chemical properties, and the contribution of ocean-derived biogenic matter to their mass and number concentration. Here we present an overview of a new dataset of in situ measurements of marine aerosols conducted over the 2.5-yr Tara Pacific Expedition over 110,000 km across the Atlantic and Pacific Oceans. Preliminary results are presented here to describe the new dataset that will be built using this novel set of measurements. It will characterize marine aerosols properties in detail and will open a new window to study the marine aerosol link to the water properties and environmental conditions.\n
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\n \n\n \n \n Harvey, B. P., Kerfahi, D., Jung, Y., Shin, J., Adams, J. M., & Hall-Spencer, J. M.\n\n\n \n \n \n \n \n Ocean acidification alters bacterial communities on marine plastic debris.\n \n \n \n \n\n\n \n\n\n\n Marine Pollution Bulletin, 161: 111749. December 2020.\n \n\n\n\n
\n\n\n\n \n \n \"OceanPaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n\n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{harvey_ocean_2020,\n\ttitle = {Ocean acidification alters bacterial communities on marine plastic debris},\n\tvolume = {161},\n\tissn = {0025326X},\n\turl = {https://linkinghub.elsevier.com/retrieve/pii/S0025326X20308675},\n\tdoi = {10.1016/j.marpolbul.2020.111749},\n\tlanguage = {en},\n\turldate = {2021-07-27},\n\tjournal = {Marine Pollution Bulletin},\n\tauthor = {Harvey, Ben P. and Kerfahi, Dorsaf and Jung, YeonGyun and Shin, Jae-Ho and Adams, Jonathan M. and Hall-Spencer, Jason M.},\n\tmonth = dec,\n\tyear = {2020},\n\tpages = {111749},\n}\n\n
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\n \n\n \n \n Hookabe, N., Asai, M., Nakano, H., Kimura, T., & Kajihara, H.\n\n\n \n \n \n \n \n A new bathyal tubulanid nemertean, Tubulanus izuensis sp. nov. (Nemertea: Palaeonemertea), from Japanese waters.\n \n \n \n \n\n\n \n\n\n\n Proceedings of the Biological Society of Washington, 133(1). November 2020.\n \n\n\n\n
\n\n\n\n \n \n \"APaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n\n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{hookabe_new_2020,\n\ttitle = {A new bathyal tubulanid nemertean, \\textit{{Tubulanus} izuensis} sp. nov. ({Nemertea}: {Palaeonemertea}), from {Japanese} waters},\n\tvolume = {133},\n\tissn = {0006-324X},\n\tshorttitle = {A new bathyal tubulanid nemertean, {Tubulanus} izuensis sp. nov. ({Nemertea}},\n\turl = {https://bioone.org/journals/proceedings-of-the-biological-society-of-washington/volume-133/issue-1/PBSW-D-20-00006/A-new-bathyal-tubulanid-nemertean-Tubulanus-izuensis-sp-nov-Nemertea/10.2988/PBSW-D-20-00006.full},\n\tdoi = {10.2988/PBSW-D-20-00006},\n\tnumber = {1},\n\turldate = {2021-07-27},\n\tjournal = {Proceedings of the Biological Society of Washington},\n\tauthor = {Hookabe, Natsumi and Asai, Masashi and Nakano, Hiroaki and Kimura, Taeko and Kajihara, Hiroshi},\n\tmonth = nov,\n\tyear = {2020},\n}\n\n
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\n \n\n \n \n Horinouchi, M., Kanou, K., Kon, K., Tongnunui, P., & Sano, M.\n\n\n \n \n \n \n \n Fish and macroinvertebrate fauna associated with floating or drifting surface water mangrove litter in a shallow coastal area in Trang, southern Thailand.\n \n \n \n \n\n\n \n\n\n\n Ichthyological Research, 67(1): 177–184. January 2020.\n \n\n\n\n
\n\n\n\n \n \n \"FishPaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n\n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{horinouchi_fish_2020,\n\ttitle = {Fish and macroinvertebrate fauna associated with floating or drifting surface water mangrove litter in a shallow coastal area in {Trang}, southern {Thailand}},\n\tvolume = {67},\n\tissn = {1341-8998, 1616-3915},\n\turl = {http://link.springer.com/10.1007/s10228-019-00695-9},\n\tdoi = {10.1007/s10228-019-00695-9},\n\tlanguage = {en},\n\tnumber = {1},\n\turldate = {2021-07-27},\n\tjournal = {Ichthyological Research},\n\tauthor = {Horinouchi, Masahiro and Kanou, Kouki and Kon, Koetsu and Tongnunui, Prasert and Sano, Mitsuhiko},\n\tmonth = jan,\n\tyear = {2020},\n\tpages = {177--184},\n}\n
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\n \n\n \n \n Hozumi, A., Matsunobu, S., Mita, K., Treen, N., Sugihara, T., Horie, T., Sakuma, T., Yamamoto, T., Shiraishi, A., Hamada, M., Satoh, N., Sakurai, K., Satake, H., & Sasakura, Y.\n\n\n \n \n \n \n \n GABA-Induced GnRH Release Triggers Chordate Metamorphosis.\n \n \n \n \n\n\n \n\n\n\n Current Biology, 30(8): 1555–1561.e4. April 2020.\n \n\n\n\n
\n\n\n\n \n \n \"GABA-InducedPaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n\n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{hozumi_gaba-induced_2020,\n\ttitle = {{GABA}-{Induced} {GnRH} {Release} {Triggers} {Chordate} {Metamorphosis}},\n\tvolume = {30},\n\tissn = {09609822},\n\turl = {https://linkinghub.elsevier.com/retrieve/pii/S0960982220301767},\n\tdoi = {10.1016/j.cub.2020.02.003},\n\tlanguage = {en},\n\tnumber = {8},\n\turldate = {2021-07-27},\n\tjournal = {Current Biology},\n\tauthor = {Hozumi, Akiko and Matsunobu, Shohei and Mita, Kaoru and Treen, Nicholas and Sugihara, Takaho and Horie, Takeo and Sakuma, Tetsushi and Yamamoto, Takashi and Shiraishi, Akira and Hamada, Mayuko and Satoh, Noriyuki and Sakurai, Keisuke and Satake, Honoo and Sasakura, Yasunori},\n\tmonth = apr,\n\tyear = {2020},\n\tpages = {1555--1561.e4},\n}\n\n
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\n \n\n \n \n Inaba, K., & Hall-Spencer, J. M\n\n\n \n \n \n \n \n Japanese Marine Life: A Practical Training Guide in Marine Biology.\n \n \n \n \n\n\n \n\n\n\n 2020.\n OCLC: 1164624214\n\n\n\n
\n\n\n\n \n \n \"JapanesePaper\n  \n \n\n \n\n \n link\n  \n \n\n bibtex\n \n\n \n\n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@book{inaba_japanese_2020,\n\ttitle = {Japanese {Marine} {Life}: {A} {Practical} {Training} {Guide} in {Marine} {Biology}},\n\tisbn = {9789811513268},\n\tshorttitle = {Japanese {Marine} {Life}},\n\turl = {https://doi.org/10.1007/978-981-15-1326-8},\n\tlanguage = {English},\n\turldate = {2021-07-27},\n\tauthor = {Inaba, Kazuo and Hall-Spencer, Jason M},\n\tyear = {2020},\n\tnote = {OCLC: 1164624214},\n}\n\n
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\n \n\n \n \n Jokura, K., & Inaba, K.\n\n\n \n \n \n \n \n Structural diversity and distribution of cilia in the apical sense organ of the ctenophore Bolinopsis mikado.\n \n \n \n \n\n\n \n\n\n\n Cytoskeleton, 77(10): 442–455. October 2020.\n \n\n\n\n
\n\n\n\n \n \n \"StructuralPaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n\n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{jokura_structural_2020,\n\ttitle = {Structural diversity and distribution of cilia in the apical sense organ of the ctenophore \\textit{{Bolinopsis} mikado}},\n\tvolume = {77},\n\tissn = {1949-3584, 1949-3592},\n\turl = {https://onlinelibrary.wiley.com/doi/10.1002/cm.21640},\n\tdoi = {10.1002/cm.21640},\n\tlanguage = {en},\n\tnumber = {10},\n\turldate = {2021-07-27},\n\tjournal = {Cytoskeleton},\n\tauthor = {Jokura, Kei and Inaba, Kazuo},\n\tmonth = oct,\n\tyear = {2020},\n\tpages = {442--455},\n}\n\n
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\n \n\n \n \n Kang, J. H., Jang, J. E., Kim, J. H., Kim, S., Keshavmurthy, S., Agostini, S., Reimer, J. D., Chen, C. A., Choi, K., Park, S. R., & Lee, H. J.\n\n\n \n \n \n \n \n The Origin of the Subtropical Coral Alveopora japonica (Scleractinia: Acroporidae) in High-Latitude Environments.\n \n \n \n \n\n\n \n\n\n\n Frontiers in Ecology and Evolution, 8: 12. February 2020.\n \n\n\n\n
\n\n\n\n \n \n \"ThePaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n\n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{kang_origin_2020,\n\ttitle = {The {Origin} of the {Subtropical} {Coral} \\textit{{Alveopora} japonica} ({Scleractinia}: {Acroporidae}) in {High}-{Latitude} {Environments}},\n\tvolume = {8},\n\tissn = {2296-701X},\n\tshorttitle = {The {Origin} of the {Subtropical} {Coral} {Alveopora} japonica ({Scleractinia}},\n\turl = {https://www.frontiersin.org/article/10.3389/fevo.2020.00012/full},\n\tdoi = {10.3389/fevo.2020.00012},\n\turldate = {2021-07-27},\n\tjournal = {Frontiers in Ecology and Evolution},\n\tauthor = {Kang, Ji Hyoun and Jang, Ji Eun and Kim, Jae Hwan and Kim, Sangil and Keshavmurthy, Shashank and Agostini, Sylvain and Reimer, James D. and Chen, Chaolun Allen and Choi, Kwang-Sik and Park, Sang Rul and Lee, Hyuk Je},\n\tmonth = feb,\n\tyear = {2020},\n\tpages = {12},\n}\n\n
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\n \n\n \n \n Kerfahi, D., Harvey, B. P., Agostini, S., Kon, K., Huang, R., Adams, J. M., & Hall-Spencer, J. M.\n\n\n \n \n \n \n \n Responses of Intertidal Bacterial Biofilm Communities to Increasing pCO$_{\\textrm{2}}$.\n \n \n \n \n\n\n \n\n\n\n Marine Biotechnology, 22(6): 727–738. December 2020.\n \n\n\n\n
\n\n\n\n \n \n \"ResponsesPaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n\n \n  \n \n 22 downloads\n \n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{kerfahi_responses_2020,\n\ttitle = {Responses of {Intertidal} {Bacterial} {Biofilm} {Communities} to {Increasing} {pCO}$_{\\textrm{2}}$},\n\tvolume = {22},\n\tissn = {1436-2228, 1436-2236},\n\turl = {http://link.springer.com/10.1007/s10126-020-09958-3},\n\tdoi = {10.1007/s10126-020-09958-3},\n\tlanguage = {en},\n\tnumber = {6},\n\turldate = {2021-07-27},\n\tjournal = {Marine Biotechnology},\n\tauthor = {Kerfahi, Dorsaf and Harvey, Ben P. and Agostini, Sylvain and Kon, Koetsu and Huang, Ruiping and Adams, Jonathan M. and Hall-Spencer, Jason M.},\n\tmonth = dec,\n\tyear = {2020},\n\tpages = {727--738},\n}\n\n
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\n \n\n \n \n Kletou, D., Kleitou, P., Savva, I., Attrill, M. J., Charalambous, S., Loucaides, A., & Hall-Spencer, J. M.\n\n\n \n \n \n \n \n Seagrass of Vasiliko Bay, Eastern Mediterranean: Lost Cause or Priority Conservation Habitat?.\n \n \n \n \n\n\n \n\n\n\n Journal of Marine Science and Engineering, 8(9): 717. September 2020.\n \n\n\n\n
\n\n\n\n \n \n \"SeagrassPaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n  \n \n abstract \n \n\n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{kletou_seagrass_2020,\n\ttitle = {Seagrass of {Vasiliko} {Bay}, {Eastern} {Mediterranean}: {Lost} {Cause} or {Priority} {Conservation} {Habitat}?},\n\tvolume = {8},\n\tissn = {2077-1312},\n\tshorttitle = {Seagrass of {Vasiliko} {Bay}, {Eastern} {Mediterranean}},\n\turl = {https://www.mdpi.com/2077-1312/8/9/717},\n\tdoi = {10.3390/jmse8090717},\n\tabstract = {Mediterranean coasts are affected by multiple mounting pressures. In Cyprus, marine fish farming has grown rapidly in the past decade and is concentrated in the west side of Vasiliko Bay. The east coast of this bay has ports, a power station, a desalination unit, a cement factory, a major new oil terminal, and gas storage facilities. The bay is earmarked to create the largest hydrocarbon processing, storing, and transport facility in the region. Here, we assess the status of Posidonia oceanica habitat in an understudied region at the upper thermal, and eastern limit, of this Mediterranean endemic seagrass. An extensive ancient seagrass meadow was revealed, covering about 200 ha across 10 km of coastline, over soft substrata at ca 10–30 m depth, and over hard substrata at ca 0–6 m depth. Seagrass shoot density and leaf surface area decreased, both with increasing depth and with proximity to industrial developments; part of the meadow had been destroyed by dredging to build a jetty. Close to fish farms the seagrass had higher epiphytic biomass as well as lower leaf number, mass, and surface area, all of which indicate adverse effects of eutrophication and increased turbidity. Despite these multiple stressors, most of the meadow was in good ecological status, with some of the highest shoot densities ever reported. Furthermore, iconic species like sea turtles, monk seals, and dolphins were seen during sampling. Posidonia oceanica meadows off Cyprus are among the most valuable in the Mediterranean due to their tolerance of high seawater temperatures. Managers of future coastal developments in the region will need to adhere to European legislation and international conventions designed to secure the socioeconomic benefits of seagrass beds.},\n\tlanguage = {en},\n\tnumber = {9},\n\turldate = {2021-07-27},\n\tjournal = {Journal of Marine Science and Engineering},\n\tauthor = {Kletou, Demetris and Kleitou, Periklis and Savva, Ioannis and Attrill, Martin J. and Charalambous, Stephanos and Loucaides, Alexis and Hall-Spencer, Jason M.},\n\tmonth = sep,\n\tyear = {2020},\n\tpages = {717},\n}\n\n
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\n Mediterranean coasts are affected by multiple mounting pressures. In Cyprus, marine fish farming has grown rapidly in the past decade and is concentrated in the west side of Vasiliko Bay. The east coast of this bay has ports, a power station, a desalination unit, a cement factory, a major new oil terminal, and gas storage facilities. The bay is earmarked to create the largest hydrocarbon processing, storing, and transport facility in the region. Here, we assess the status of Posidonia oceanica habitat in an understudied region at the upper thermal, and eastern limit, of this Mediterranean endemic seagrass. An extensive ancient seagrass meadow was revealed, covering about 200 ha across 10 km of coastline, over soft substrata at ca 10–30 m depth, and over hard substrata at ca 0–6 m depth. Seagrass shoot density and leaf surface area decreased, both with increasing depth and with proximity to industrial developments; part of the meadow had been destroyed by dredging to build a jetty. Close to fish farms the seagrass had higher epiphytic biomass as well as lower leaf number, mass, and surface area, all of which indicate adverse effects of eutrophication and increased turbidity. Despite these multiple stressors, most of the meadow was in good ecological status, with some of the highest shoot densities ever reported. Furthermore, iconic species like sea turtles, monk seals, and dolphins were seen during sampling. Posidonia oceanica meadows off Cyprus are among the most valuable in the Mediterranean due to their tolerance of high seawater temperatures. Managers of future coastal developments in the region will need to adhere to European legislation and international conventions designed to secure the socioeconomic benefits of seagrass beds.\n
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\n \n\n \n \n Konno, A., & Inaba, K.\n\n\n \n \n \n \n \n Region-Specific Loss of Two-Headed Ciliary Dyneins in Ascidian Endostyle.\n \n \n \n \n\n\n \n\n\n\n Zoological Science, 37(6). October 2020.\n \n\n\n\n
\n\n\n\n \n \n \"Region-SpecificPaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n\n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{konno_region-specific_2020,\n\ttitle = {Region-{Specific} {Loss} of {Two}-{Headed} {Ciliary} {Dyneins} in {Ascidian} {Endostyle}},\n\tvolume = {37},\n\tissn = {0289-0003},\n\turl = {https://bioone.org/journals/zoological-science/volume-37/issue-6/zs200095/Region-Specific-Loss-of-Two-Headed-Ciliary-Dyneins-in-Ascidian/10.2108/zs200095.full},\n\tdoi = {10.2108/zs200095},\n\tnumber = {6},\n\turldate = {2021-07-27},\n\tjournal = {Zoological Science},\n\tauthor = {Konno, Alu and Inaba, Kazuo},\n\tmonth = oct,\n\tyear = {2020},\n}\n\n
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\n \n\n \n \n Mishra, A., Santos, R., & Hall -Spencer, J.\n\n\n \n \n \n \n \n Elevated trace elements in sediments and seagrasses at CO$_{\\textrm{2}}$ seeps.\n \n \n \n \n\n\n \n\n\n\n Marine Environmental Research, 153: 104810. January 2020.\n \n\n\n\n
\n\n\n\n \n \n \"ElevatedPaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n\n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{mishra_elevated_2020,\n\ttitle = {Elevated trace elements in sediments and seagrasses at {CO}$_{\\textrm{2}}$ seeps},\n\tvolume = {153},\n\tissn = {01411136},\n\turl = {https://linkinghub.elsevier.com/retrieve/pii/S0141113619302867},\n\tdoi = {10.1016/j.marenvres.2019.104810},\n\tlanguage = {en},\n\turldate = {2021-07-27},\n\tjournal = {Marine Environmental Research},\n\tauthor = {Mishra, A.K. and Santos, R. and Hall -Spencer, J.M.},\n\tmonth = jan,\n\tyear = {2020},\n\tpages = {104810},\n}\n\n
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\n \n\n \n \n Miyata, M., Robinson, R. C., Uyeda, T. Q. P., Fukumori, Y., Fukushima, S., Haruta, S., Homma, M., Inaba, K., Ito, M., Kaito, C., Kato, K., Kenri, T., Kinosita, Y., Kojima, S., Minamino, T., Mori, H., Nakamura, S., Nakane, D., Nakayama, K., Nishiyama, M., Shibata, S., Shimabukuro, K., Tamakoshi, M., Taoka, A., Tashiro, Y., Tulum, I., Wada, H., & Wakabayashi, K.\n\n\n \n \n \n \n \n Tree of motility – A proposed history of motility systems in the tree of life.\n \n \n \n \n\n\n \n\n\n\n Genes to Cells, 25(1): 6–21. January 2020.\n \n\n\n\n
\n\n\n\n \n \n \"TreePaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n\n \n\n \n \n \n \n \n \n \n\n  \n \n \n \n \n\n\n\n
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@article{miyata_tree_2020,\n\ttitle = {Tree of motility – {A} proposed history of motility systems in the tree of life},\n\tvolume = {25},\n\tissn = {1356-9597, 1365-2443},\n\turl = {https://onlinelibrary.wiley.com/doi/10.1111/gtc.12737},\n\tdoi = {10.1111/gtc.12737},\n\tlanguage = {en},\n\tnumber = {1},\n\turldate = {2021-07-27},\n\tjournal = {Genes to Cells},\n\tauthor = {Miyata, Makoto and Robinson, Robert C. and Uyeda, Taro Q. P. and Fukumori, Yoshihiro and Fukushima, Shun‐ichi and Haruta, Shin and Homma, Michio and Inaba, Kazuo and Ito, Masahiro and Kaito, Chikara and Kato, Kentaro and Kenri, Tsuyoshi and Kinosita, Yoshiaki and Kojima, Seiji and Minamino, Tohru and Mori, Hiroyuki and Nakamura, Shuichi and Nakane, Daisuke and Nakayama, Koji and Nishiyama, Masayoshi and Shibata, Satoshi and Shimabukuro, Katsuya and Tamakoshi, Masatada and Taoka, Azuma and Tashiro, Yosuke and Tulum, Isil and Wada, Hirofumi and Wakabayashi, Ken‐ichi},\n\tmonth = jan,\n\tyear = {2020},\n\tkeywords = {wrongWada},\n\tpages = {6--21},\n}\n\n
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\n \n\n \n \n Morohoshi, A., Miyata, H., Shimada, K., Nozawa, K., Matsumura, T., Yanase, R., Shiba, K., Inaba, K., & Ikawa, M.\n\n\n \n \n \n \n \n Nexin-Dynein regulatory complex component DRC7 but not FBXL13 is required for sperm flagellum formation and male fertility in mice.\n \n \n \n \n\n\n \n\n\n\n PLOS Genetics, 16(1): e1008585. January 2020.\n \n\n\n\n
\n\n\n\n \n \n \"Nexin-DyneinPaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n\n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{morohoshi_nexin-dynein_2020,\n\ttitle = {Nexin-{Dynein} regulatory complex component {DRC7} but not {FBXL13} is required for sperm flagellum formation and male fertility in mice},\n\tvolume = {16},\n\tissn = {1553-7404},\n\turl = {https://dx.plos.org/10.1371/journal.pgen.1008585},\n\tdoi = {10.1371/journal.pgen.1008585},\n\tlanguage = {en},\n\tnumber = {1},\n\turldate = {2021-07-27},\n\tjournal = {PLOS Genetics},\n\tauthor = {Morohoshi, Akane and Miyata, Haruhiko and Shimada, Keisuke and Nozawa, Kaori and Matsumura, Takafumi and Yanase, Ryuji and Shiba, Kogiku and Inaba, Kazuo and Ikawa, Masahito},\n\teditor = {Dutcher, Susan K.},\n\tmonth = jan,\n\tyear = {2020},\n\tpages = {e1008585},\n}\n\n
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\n \n\n \n \n Mutalipassi, M., Fink, P., Maibam, C., Porzio, L., Buia, M. C., Gambi, M. C., Patti, F. P., Scipione, M. B., Lorenti, M., & Zupo, V.\n\n\n \n \n \n \n \n Ocean acidification alters the responses of invertebrates to wound-activated infochemicals produced by epiphytes of the seagrass Posidonia oceanica.\n \n \n \n \n\n\n \n\n\n\n Journal of Experimental Marine Biology and Ecology, 530-531: 151435. September 2020.\n \n\n\n\n
\n\n\n\n \n \n \"OceanPaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n\n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{mutalipassi_ocean_2020,\n\ttitle = {Ocean acidification alters the responses of invertebrates to wound-activated infochemicals produced by epiphytes of the seagrass \\textit{{Posidonia} oceanica}},\n\tvolume = {530-531},\n\tissn = {00220981},\n\turl = {https://linkinghub.elsevier.com/retrieve/pii/S0022098119305386},\n\tdoi = {10.1016/j.jembe.2020.151435},\n\tlanguage = {en},\n\turldate = {2021-07-27},\n\tjournal = {Journal of Experimental Marine Biology and Ecology},\n\tauthor = {Mutalipassi, Mirko and Fink, Patrick and Maibam, Chingoileima and Porzio, Lucia and Buia, Maria Cristina and Gambi, Maria Cristina and Patti, Francesco Paolo and Scipione, Maria Beatrice and Lorenti, Maurizio and Zupo, Valerio},\n\tmonth = sep,\n\tyear = {2020},\n\tpages = {151435},\n}\n\n
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\n \n\n \n \n Okawa, N., Shimai, K., Ohnishi, K., Ohkura, M., Nakai, J., Horie, T., Kuhara, A., & Kusakabe, T. G.\n\n\n \n \n \n \n \n Cellular identity and Ca2+ signaling activity of the non-reproductive GnRH system in the Ciona intestinalis type A (Ciona robusta) larva.\n \n \n \n \n\n\n \n\n\n\n Scientific Reports, 10(1): 18590. December 2020.\n \n\n\n\n
\n\n\n\n \n \n \"CellularPaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n  \n \n abstract \n \n\n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{okawa_cellular_2020,\n\ttitle = {Cellular identity and {Ca2}+ signaling activity of the non-reproductive {GnRH} system in the \\textit{{Ciona} intestinalis} type {A} (\\textit{{Ciona} robusta}) larva},\n\tvolume = {10},\n\tissn = {2045-2322},\n\turl = {http://www.nature.com/articles/s41598-020-75344-7},\n\tdoi = {10.1038/s41598-020-75344-7},\n\tabstract = {Abstract\n            \n              Tunicate larvae have a non-reproductive gonadotropin-releasing hormone (GnRH) system with multiple ligands and receptor heterodimerization enabling complex regulation. In\n              Ciona intestinalis\n              type A larvae, one of the\n              gnrh\n              genes,\n              gnrh2\n              , is conspicuously expressed in the motor ganglion and nerve cord, which are homologous structures to the hindbrain and spinal cord, respectively, of vertebrates. The\n              gnrh2\n              gene is also expressed in the proto-placodal sensory neurons, which are the proposed homologue of vertebrate olfactory neurons. Tunicate larvae occupy a non-reproductive dispersal stage, yet the role of their GnRH system remains elusive. In this study, we investigated neuronal types of\n              gnrh2\n              -expressing cells in\n              Ciona\n              larvae and visualized the activity of these cells by fluorescence imaging using a calcium sensor protein. Some cholinergic neurons and dopaminergic cells express\n              gnrh2\n              , suggesting that GnRH plays a role in controlling swimming behavior. However, none of the\n              gnrh2\n              -expressing cells overlap with glycinergic or GABAergic neurons. A role in motor control is also suggested by a relationship between the activity of\n              gnrh2\n              -expressing cells and tail movements. Interestingly,\n              gnrh2\n              -positive ependymal cells in the nerve cord, known as a kind of glia cells, actively produced Ca\n              2+\n              transients, suggesting that active intercellular signaling occurs in the glia cells of the nerve cord.},\n\tlanguage = {en},\n\tnumber = {1},\n\turldate = {2021-07-27},\n\tjournal = {Scientific Reports},\n\tauthor = {Okawa, Nanako and Shimai, Kotaro and Ohnishi, Kohei and Ohkura, Masamichi and Nakai, Junichi and Horie, Takeo and Kuhara, Atsushi and Kusakabe, Takehiro G.},\n\tmonth = dec,\n\tyear = {2020},\n\tpages = {18590},\n}\n\n
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\n Abstract Tunicate larvae have a non-reproductive gonadotropin-releasing hormone (GnRH) system with multiple ligands and receptor heterodimerization enabling complex regulation. In Ciona intestinalis type A larvae, one of the gnrh genes, gnrh2 , is conspicuously expressed in the motor ganglion and nerve cord, which are homologous structures to the hindbrain and spinal cord, respectively, of vertebrates. The gnrh2 gene is also expressed in the proto-placodal sensory neurons, which are the proposed homologue of vertebrate olfactory neurons. Tunicate larvae occupy a non-reproductive dispersal stage, yet the role of their GnRH system remains elusive. In this study, we investigated neuronal types of gnrh2 -expressing cells in Ciona larvae and visualized the activity of these cells by fluorescence imaging using a calcium sensor protein. Some cholinergic neurons and dopaminergic cells express gnrh2 , suggesting that GnRH plays a role in controlling swimming behavior. However, none of the gnrh2 -expressing cells overlap with glycinergic or GABAergic neurons. A role in motor control is also suggested by a relationship between the activity of gnrh2 -expressing cells and tail movements. Interestingly, gnrh2 -positive ependymal cells in the nerve cord, known as a kind of glia cells, actively produced Ca 2+ transients, suggesting that active intercellular signaling occurs in the glia cells of the nerve cord.\n
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\n \n\n \n \n Omori, Y., Saeki, A., Wada, S., Inagaki, Y., & Hama, T.\n\n\n \n \n \n \n \n Experimental Analysis of Diurnal Variations in Humic-Like Fluorescent Dissolved Organic Matter in Surface Seawater.\n \n \n \n \n\n\n \n\n\n\n Frontiers in Marine Science, 7: 589064. November 2020.\n \n\n\n\n
\n\n\n\n \n \n \"ExperimentalPaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n\n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{omori_experimental_2020,\n\ttitle = {Experimental {Analysis} of {Diurnal} {Variations} in {Humic}-{Like} {Fluorescent} {Dissolved} {Organic} {Matter} in {Surface} {Seawater}},\n\tvolume = {7},\n\tissn = {2296-7745},\n\turl = {https://www.frontiersin.org/articles/10.3389/fmars.2020.589064/full},\n\tdoi = {10.3389/fmars.2020.589064},\n\turldate = {2021-07-27},\n\tjournal = {Frontiers in Marine Science},\n\tauthor = {Omori, Yuko and Saeki, Akira and Wada, Shigeki and Inagaki, Yuji and Hama, Takeo},\n\tmonth = nov,\n\tyear = {2020},\n\tpages = {589064},\n}\n\n
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\n \n\n \n \n Osugi, T., Sasakura, Y., & Satake, H.\n\n\n \n \n \n \n \n The ventral peptidergic system of the adult ascidian Ciona robusta (Ciona intestinalis Type A) insights from a transgenic animal model.\n \n \n \n \n\n\n \n\n\n\n Scientific Reports, 10(1): 1892. December 2020.\n \n\n\n\n
\n\n\n\n \n \n \"ThePaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n  \n \n abstract \n \n\n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{osugi_ventral_2020,\n\ttitle = {The ventral peptidergic system of the adult ascidian \\textit{{Ciona} robusta} (\\textit{{Ciona} intestinalis} {Type} {A}) insights from a transgenic animal model},\n\tvolume = {10},\n\tissn = {2045-2322},\n\turl = {http://www.nature.com/articles/s41598-020-58884-w},\n\tdoi = {10.1038/s41598-020-58884-w},\n\tabstract = {Abstract\n            \n              Ascidians are the sister group of vertebrates and occupy a critical position in explorations of the evolution of the endocrine and nervous systems of chordates. Here, we describe the complete ventral peptidergic system in adult transgenic\n              Ciona robusta\n              (\n              Ciona intestinalis\n              Type A) which expresses the\n              Kaede\n              reporter gene driven by the prohormone convertase 2 (PC2) gene promoter. Numerous PC2 promoter-driven fluorescent (Kaede-positive) non-neural cells were distributed in the blood sinus located at the anterior end of the pharynx, suggesting the acquisition of a peptidergic circulatory system in\n              Ciona\n              . Kaede-positive ciliated columnar cells, rounded cells, and tall ciliated cells were observed in the alimentary organs, including the endostyle, pharynx, esophagus, stomach, and intestine, suggesting that digestive functions are regulated by multiple peptidergic systems. In the heart, Kaede-positive neurons were located in the ring-shaped plexus at both ends of the myocardium. Nerve fiber–like tracts ran along the raphe and appeared to be connected with the plexuses. Such unique structures suggest a role for the peptidergic system in cardiac function. Collectively, the present anatomic analysis revealed the major framework of the ventral peptidergic system of adult\n              Ciona\n              , which could facilitate investigations of peptidergic regulation of the pharynx, endostyle, alimentary tissues, and heart.},\n\tlanguage = {en},\n\tnumber = {1},\n\turldate = {2021-07-27},\n\tjournal = {Scientific Reports},\n\tauthor = {Osugi, Tomohiro and Sasakura, Yasunori and Satake, Honoo},\n\tmonth = dec,\n\tyear = {2020},\n\tpages = {1892},\n}\n\n
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\n Abstract Ascidians are the sister group of vertebrates and occupy a critical position in explorations of the evolution of the endocrine and nervous systems of chordates. Here, we describe the complete ventral peptidergic system in adult transgenic Ciona robusta ( Ciona intestinalis Type A) which expresses the Kaede reporter gene driven by the prohormone convertase 2 (PC2) gene promoter. Numerous PC2 promoter-driven fluorescent (Kaede-positive) non-neural cells were distributed in the blood sinus located at the anterior end of the pharynx, suggesting the acquisition of a peptidergic circulatory system in Ciona . Kaede-positive ciliated columnar cells, rounded cells, and tall ciliated cells were observed in the alimentary organs, including the endostyle, pharynx, esophagus, stomach, and intestine, suggesting that digestive functions are regulated by multiple peptidergic systems. In the heart, Kaede-positive neurons were located in the ring-shaped plexus at both ends of the myocardium. Nerve fiber–like tracts ran along the raphe and appeared to be connected with the plexuses. Such unique structures suggest a role for the peptidergic system in cardiac function. Collectively, the present anatomic analysis revealed the major framework of the ventral peptidergic system of adult Ciona , which could facilitate investigations of peptidergic regulation of the pharynx, endostyle, alimentary tissues, and heart.\n
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\n \n\n \n \n Porzio, L., Arena, C., Lorenti, M., De Maio, A., & Buia, M. C.\n\n\n \n \n \n \n \n Long-term response of Dictyota dichotoma var. intricata (C. Agardh) Greville (Phaeophyceae) to ocean acidification: Insights from high pCO$_{\\textrm{2}}$ vents.\n \n \n \n \n\n\n \n\n\n\n Science of The Total Environment, 731: 138896. August 2020.\n \n\n\n\n
\n\n\n\n \n \n \"Long-termPaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n\n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{porzio_long-term_2020-1,\n\ttitle = {Long-term response of \\textit{{Dictyota} dichotoma} var. \\textit{intricata} ({C}. {Agardh}) {Greville} ({Phaeophyceae}) to ocean acidification: {Insights} from high {pCO}$_{\\textrm{2}}$ vents},\n\tvolume = {731},\n\tissn = {00489697},\n\tshorttitle = {Long-term response of {Dictyota} dichotoma var. intricata ({C}. {Agardh}) {Greville} ({Phaeophyceae}) to ocean acidification},\n\turl = {https://linkinghub.elsevier.com/retrieve/pii/S004896972032413X},\n\tdoi = {10.1016/j.scitotenv.2020.138896},\n\tlanguage = {en},\n\turldate = {2021-07-27},\n\tjournal = {Science of The Total Environment},\n\tauthor = {Porzio, Lucia and Arena, Carmen and Lorenti, Maurizio and De Maio, Anna and Buia, Maria Cristina},\n\tmonth = aug,\n\tyear = {2020},\n\tpages = {138896},\n}\n\n
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\n \n\n \n \n Porzio, L., Grech, D., & Buia, M. C.\n\n\n \n \n \n \n \n Long-term changes (1800–2019) in marine vegetational habitats: Insights from a historic industrialised coastal area.\n \n \n \n \n\n\n \n\n\n\n Marine Environmental Research, 161: 105003. October 2020.\n \n\n\n\n
\n\n\n\n \n \n \"Long-termPaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n\n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
\n
@article{porzio_long-term_2020,\n\ttitle = {Long-term changes (1800–2019) in marine vegetational habitats: {Insights} from a historic industrialised coastal area},\n\tvolume = {161},\n\tissn = {01411136},\n\tshorttitle = {Long-term changes (1800–2019) in marine vegetational habitats},\n\turl = {https://linkinghub.elsevier.com/retrieve/pii/S0141113619308700},\n\tdoi = {10.1016/j.marenvres.2020.105003},\n\tlanguage = {en},\n\turldate = {2021-07-27},\n\tjournal = {Marine Environmental Research},\n\tauthor = {Porzio, Lucia and Grech, Daniele and Buia, Maria Cristina},\n\tmonth = oct,\n\tyear = {2020},\n\tpages = {105003},\n}\n\n
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\n \n\n \n \n Satoh, Y., & Wada, S.\n\n\n \n \n \n \n \n Using organic compounds to assess the dominant controls on seasonal iodine variability in the brown alga Ecklonia cava in the northwestern Pacific coast of central Japan.\n \n \n \n \n\n\n \n\n\n\n Journal of Applied Phycology, 32(1): 519–527. February 2020.\n \n\n\n\n
\n\n\n\n \n \n \"UsingPaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n\n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{satoh_using_2020,\n\ttitle = {Using organic compounds to assess the dominant controls on seasonal iodine variability in the brown alga \\textit{{Ecklonia} cava} in the northwestern {Pacific} coast of central {Japan}},\n\tvolume = {32},\n\tissn = {0921-8971, 1573-5176},\n\turl = {http://link.springer.com/10.1007/s10811-019-01912-8},\n\tdoi = {10.1007/s10811-019-01912-8},\n\tlanguage = {en},\n\tnumber = {1},\n\turldate = {2021-07-27},\n\tjournal = {Journal of Applied Phycology},\n\tauthor = {Satoh, Yuhi and Wada, Shigeki},\n\tmonth = feb,\n\tyear = {2020},\n\tpages = {519--527},\n}\n\n
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\n \n\n \n \n Satoh, Y., Wada, S., & Hisamatsu, S.\n\n\n \n \n \n \n \n Relationship between iodine and carbohydrate contents in the seagrass Zostera marina on the northwestern Pacific coast of central Japan.\n \n \n \n \n\n\n \n\n\n\n Botanica Marina, 63(3): 273–281. June 2020.\n \n\n\n\n
\n\n\n\n \n \n \"RelationshipPaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n  \n \n abstract \n \n\n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{satoh_relationship_2020,\n\ttitle = {Relationship between iodine and carbohydrate contents in the seagrass \\textit{{Zostera} marina} on the northwestern {Pacific} coast of central {Japan}},\n\tvolume = {63},\n\tissn = {1437-4323, 0006-8055},\n\turl = {https://www.degruyter.com/document/doi/10.1515/bot-2020-0004/html},\n\tdoi = {10.1515/bot-2020-0004},\n\tabstract = {Abstract\n            \n              Previously, we reported seasonal variation in iodine contents in the seagrass\n              Zostera marina\n              . Herein, we sought the factors controlling this variation, and investigated relationships between iodine and carbohydrate contents, using extracts and residues of seagrass samples extracted with 0.1 N HCl. In plants, carbohydrates in HCl-extracted and residual fractions are considered to represent storage and structural carbohydrates, respectively. On average, 44\\% and 56\\% of total iodine in samples was contained in the HCl-extracted and residual fractions, respectively. Both HCl-extracted and residual iodine contents showed seasonal trends similar to that of total iodine, being high in winter–spring and low in summer. Total and HCl-extracted carbohydrate contents showed reverse seasonal trends from those of iodine, whereas residual carbohydrate contents had comparable values throughout the sampling period. In the total and HCl-extracted fractions, negative correlations between iodine and carbohydrate contents were confirmed, suggesting that carbohydrates do not play important roles in iodine accumulation. Although most monosaccharide contents were not correlated with iodine contents in these two fractions, residual galactose content was positively correlated with residual iodine. We accordingly suggest that one or more specific structural carbohydrate constituents may potentially function as an iodine store in\n              Z. marina\n              .},\n\tnumber = {3},\n\turldate = {2021-07-27},\n\tjournal = {Botanica Marina},\n\tauthor = {Satoh, Yuhi and Wada, Shigeki and Hisamatsu, Shun’ichi},\n\tmonth = jun,\n\tyear = {2020},\n\tpages = {273--281},\n}\n\n
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\n Abstract Previously, we reported seasonal variation in iodine contents in the seagrass Zostera marina . Herein, we sought the factors controlling this variation, and investigated relationships between iodine and carbohydrate contents, using extracts and residues of seagrass samples extracted with 0.1 N HCl. In plants, carbohydrates in HCl-extracted and residual fractions are considered to represent storage and structural carbohydrates, respectively. On average, 44% and 56% of total iodine in samples was contained in the HCl-extracted and residual fractions, respectively. Both HCl-extracted and residual iodine contents showed seasonal trends similar to that of total iodine, being high in winter–spring and low in summer. Total and HCl-extracted carbohydrate contents showed reverse seasonal trends from those of iodine, whereas residual carbohydrate contents had comparable values throughout the sampling period. In the total and HCl-extracted fractions, negative correlations between iodine and carbohydrate contents were confirmed, suggesting that carbohydrates do not play important roles in iodine accumulation. Although most monosaccharide contents were not correlated with iodine contents in these two fractions, residual galactose content was positively correlated with residual iodine. We accordingly suggest that one or more specific structural carbohydrate constituents may potentially function as an iodine store in Z. marina .\n
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\n \n\n \n \n Sawada, H., Yamamoto, K., Yamaguchi, A., Yamada, L., Higuchi, A., Nukaya, H., Fukuoka, M., Sakuma, T., Yamamoto, T., Sasakura, Y., & Shirae-Kurabayashi, M.\n\n\n \n \n \n \n \n Three multi-allelic gene pairs are responsible for self-sterility in the ascidian Ciona intestinalis.\n \n \n \n \n\n\n \n\n\n\n Scientific Reports, 10(1): 2514. December 2020.\n \n\n\n\n
\n\n\n\n \n \n \"ThreePaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n  \n \n abstract \n \n\n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{sawada_three_2020,\n\ttitle = {Three multi-allelic gene pairs are responsible for self-sterility in the ascidian \\textit{{Ciona} intestinalis}},\n\tvolume = {10},\n\tissn = {2045-2322},\n\turl = {http://www.nature.com/articles/s41598-020-59147-4},\n\tdoi = {10.1038/s41598-020-59147-4},\n\tabstract = {Abstract\n            \n              Many hermaphroditic organisms possess a self-incompatibility system to avoid inbreeding. Although the mechanisms of self-incompatibility in flowering plants are well known, little is known about the mechanisms of self-sterility in hermaphroditic marine invertebrates. Ascidians are hermaphroditic sessile marine invertebrates that release sperm and eggs into the surrounding seawater. Several species, including\n              Ciona intestinalis\n              type A\n              (Ciona robusta)\n              , exhibit strict self-sterility. In a previous study, we found that the candidate genes responsible for self-sterility in\n              Ciona\n              reside in chromosome 2q (locus A) and chromosome 7q (locus B). Two pairs of multi-allelic genes, named\n              s(sperm)-Themis-A\n              and\n              v(vitelline-coat)-Themis-A\n              in locus A and\n              s-Themis-B\n              and\n              v-Themis-B\n              in locus B, are responsible for self-sterility. In this study, we identified a third multi-allelic gene pair,\n              s-Themis-B2\n              and\n              v-Themis-B2\n              , within locus B that is also involved in this system. Genetic analysis revealed that the haplotypes of\n              s/v-Themis-A, s/v-Themis-B\n              and\n              s/v-Themis-B2\n              play essential roles in self-sterility. When three haplotypes were matched between\n              s-Themis\n              and\n              v-Themis\n              , fertilization never occurred even in nonself crossing. Interestingly, gene targeting of either\n              s/v-Themis-B/B2\n              or\n              s/v-Themis-A\n              by genome editing enabled self-fertilization. These results indicate that\n              s/v-Themis-A, -B\n              and\n              -B2\n              are\n              S-\n              determinant genes responsible for self-sterility in the ascidian\n              C. intestinalis\n              type A.},\n\tlanguage = {en},\n\tnumber = {1},\n\turldate = {2021-07-27},\n\tjournal = {Scientific Reports},\n\tauthor = {Sawada, Hitoshi and Yamamoto, Kazunori and Yamaguchi, Akira and Yamada, Lixy and Higuchi, Arata and Nukaya, Haruhiko and Fukuoka, Masashi and Sakuma, Tetsushi and Yamamoto, Takashi and Sasakura, Yasunori and Shirae-Kurabayashi, Maki},\n\tmonth = dec,\n\tyear = {2020},\n\tpages = {2514},\n}\n\n
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\n Abstract Many hermaphroditic organisms possess a self-incompatibility system to avoid inbreeding. Although the mechanisms of self-incompatibility in flowering plants are well known, little is known about the mechanisms of self-sterility in hermaphroditic marine invertebrates. Ascidians are hermaphroditic sessile marine invertebrates that release sperm and eggs into the surrounding seawater. Several species, including Ciona intestinalis type A (Ciona robusta) , exhibit strict self-sterility. In a previous study, we found that the candidate genes responsible for self-sterility in Ciona reside in chromosome 2q (locus A) and chromosome 7q (locus B). Two pairs of multi-allelic genes, named s(sperm)-Themis-A and v(vitelline-coat)-Themis-A in locus A and s-Themis-B and v-Themis-B in locus B, are responsible for self-sterility. In this study, we identified a third multi-allelic gene pair, s-Themis-B2 and v-Themis-B2 , within locus B that is also involved in this system. Genetic analysis revealed that the haplotypes of s/v-Themis-A, s/v-Themis-B and s/v-Themis-B2 play essential roles in self-sterility. When three haplotypes were matched between s-Themis and v-Themis , fertilization never occurred even in nonself crossing. Interestingly, gene targeting of either s/v-Themis-B/B2 or s/v-Themis-A by genome editing enabled self-fertilization. These results indicate that s/v-Themis-A, -B and -B2 are S- determinant genes responsible for self-sterility in the ascidian C. intestinalis type A.\n
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\n \n\n \n \n Tajima, Y., Hozumi, A., Yoshida, K., Treen, N., Sakuma, T., Yamamoto, T., & Sasakura, Y.\n\n\n \n \n \n \n \n Hox13 is essential for formation of a sensory organ at the terminal end of the sperm duct in Ciona.\n \n \n \n \n\n\n \n\n\n\n Developmental Biology, 458(1): 120–131. February 2020.\n \n\n\n\n
\n\n\n\n \n \n \"Hox13Paper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n\n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{tajima_hox13_2020,\n\ttitle = {Hox13 is essential for formation of a sensory organ at the terminal end of the sperm duct in \\textit{{Ciona}}},\n\tvolume = {458},\n\tissn = {00121606},\n\turl = {https://linkinghub.elsevier.com/retrieve/pii/S0012160619302702},\n\tdoi = {10.1016/j.ydbio.2019.10.028},\n\tlanguage = {en},\n\tnumber = {1},\n\turldate = {2021-07-27},\n\tjournal = {Developmental Biology},\n\tauthor = {Tajima, Yukako and Hozumi, Akiko and Yoshida, Keita and Treen, Nicholas and Sakuma, Tetsushi and Yamamoto, Takashi and Sasakura, Yasunori},\n\tmonth = feb,\n\tyear = {2020},\n\tpages = {120--131},\n}\n\n
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\n \n\n \n \n Wada, S., Ishii, M., Kosugi, N., Sasano, D., Matsushita, W., Omori, Y., & Hama, T.\n\n\n \n \n \n \n \n Seasonal dynamics of seawater CO$_{\\textrm{2}}$ system at a coastal site near the southern tip of Izu Peninsula, Japan.\n \n \n \n \n\n\n \n\n\n\n Journal of Oceanography, 76(3): 227–242. June 2020.\n \n\n\n\n
\n\n\n\n \n \n \"SeasonalPaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n\n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{wada_seasonal_2020,\n\ttitle = {Seasonal dynamics of seawater {CO}$_{\\textrm{2}}$ system at a coastal site near the southern tip of {Izu} {Peninsula}, {Japan}},\n\tvolume = {76},\n\tissn = {0916-8370, 1573-868X},\n\turl = {http://link.springer.com/10.1007/s10872-020-00541-x},\n\tdoi = {10.1007/s10872-020-00541-x},\n\tlanguage = {en},\n\tnumber = {3},\n\turldate = {2021-07-27},\n\tjournal = {Journal of Oceanography},\n\tauthor = {Wada, Shigeki and Ishii, Masao and Kosugi, Naohiro and Sasano, Daisuke and Matsushita, Wakana and Omori, Yuko and Hama, Takeo},\n\tmonth = jun,\n\tyear = {2020},\n\tpages = {227--242},\n}\n\n
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\n \n\n \n \n Wada, S., Omori, Y., Yamashita, S., Hayashi, Y., Hama, T., & Adachi, Y.\n\n\n \n \n \n \n \n Aggregation of marine organic matter by bubbling.\n \n \n \n \n\n\n \n\n\n\n Journal of Oceanography, 76(4): 317–326. August 2020.\n \n\n\n\n
\n\n\n\n \n \n \"AggregationPaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n\n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{wada_aggregation_2020,\n\ttitle = {Aggregation of marine organic matter by bubbling},\n\tvolume = {76},\n\tissn = {0916-8370, 1573-868X},\n\turl = {http://link.springer.com/10.1007/s10872-019-00538-1},\n\tdoi = {10.1007/s10872-019-00538-1},\n\tlanguage = {en},\n\tnumber = {4},\n\turldate = {2021-07-27},\n\tjournal = {Journal of Oceanography},\n\tauthor = {Wada, Shigeki and Omori, Yuko and Yamashita, Saki and Hayashi, Yasuhito and Hama, Takeo and Adachi, Yasuhisa},\n\tmonth = aug,\n\tyear = {2020},\n\tpages = {317--326},\n}\n\n
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\n \n\n \n \n Wang, Y., Fan, X., Gao, G., Beardall, J., Inaba, K., Hall-Spencer, J. M., Xu, D., Zhang, X., Han, W., McMinn, A., & Ye, N.\n\n\n \n \n \n \n \n Decreased motility of flagellated microalgae long-term acclimated to CO$_{\\textrm{2}}$-induced acidified waters.\n \n \n \n \n\n\n \n\n\n\n Nature Climate Change, 10(6): 561–567. June 2020.\n \n\n\n\n
\n\n\n\n \n \n \"DecreasedPaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n\n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{wang_decreased_2020,\n\ttitle = {Decreased motility of flagellated microalgae long-term acclimated to {CO}$_{\\textrm{2}}$-induced acidified waters},\n\tvolume = {10},\n\tissn = {1758-678X, 1758-6798},\n\turl = {http://www.nature.com/articles/s41558-020-0776-2},\n\tdoi = {10.1038/s41558-020-0776-2},\n\tlanguage = {en},\n\tnumber = {6},\n\turldate = {2021-07-27},\n\tjournal = {Nature Climate Change},\n\tauthor = {Wang, Yitao and Fan, Xiao and Gao, Guang and Beardall, John and Inaba, Kazuo and Hall-Spencer, Jason M. and Xu, Dong and Zhang, Xiaowen and Han, Wentao and McMinn, Andrew and Ye, Naihao},\n\tmonth = jun,\n\tyear = {2020},\n\tpages = {561--567},\n}\n\n
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\n \n\n \n \n Yaguchi, S., Morino, Y., & Sasakura, Y.\n\n\n \n \n \n \n \n Development of Marine Invertebrates.\n \n \n \n \n\n\n \n\n\n\n In Inaba, K., & Hall-Spencer, J. M., editor(s), Japanese Marine Life, pages 109–124. Springer Singapore, Singapore, 2020.\n \n\n\n\n
\n\n\n\n \n \n \"DevelopmentPaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n\n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@incollection{inaba_development_2020,\n\taddress = {Singapore},\n\ttitle = {Development of {Marine} {Invertebrates}},\n\tisbn = {9789811513251 9789811513268},\n\turl = {http://link.springer.com/10.1007/978-981-15-1326-8_10},\n\tlanguage = {en},\n\turldate = {2022-01-25},\n\tbooktitle = {Japanese {Marine} {Life}},\n\tpublisher = {Springer Singapore},\n\tauthor = {Yaguchi, Shunsuke and Morino, Yoshiaki and Sasakura, Yasunori},\n\teditor = {Inaba, Kazuo and Hall-Spencer, Jason M.},\n\tyear = {2020},\n\tdoi = {10.1007/978-981-15-1326-8_10},\n\tpages = {109--124},\n}\n\n
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\n \n\n \n \n Yaguchi, S., Yaguchi, J., Suzuki, H., Kinjo, S., Kiyomoto, M., Ikeo, K., & Yamamoto, T.\n\n\n \n \n \n \n \n Establishment of homozygous knock-out sea urchins.\n \n \n \n \n\n\n \n\n\n\n Current Biology, 30(10): R427–R429. May 2020.\n \n\n\n\n
\n\n\n\n \n \n \"EstablishmentPaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n\n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{yaguchi_establishment_2020,\n\ttitle = {Establishment of homozygous knock-out sea urchins},\n\tvolume = {30},\n\tissn = {09609822},\n\turl = {https://linkinghub.elsevier.com/retrieve/pii/S0960982220304279},\n\tdoi = {10.1016/j.cub.2020.03.057},\n\tlanguage = {en},\n\tnumber = {10},\n\turldate = {2021-07-27},\n\tjournal = {Current Biology},\n\tauthor = {Yaguchi, Shunsuke and Yaguchi, Junko and Suzuki, Haruka and Kinjo, Sonoko and Kiyomoto, Masato and Ikeo, Kazuho and Yamamoto, Takashi},\n\tmonth = may,\n\tyear = {2020},\n\tpages = {R427--R429},\n}\n\n
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\n \n\n \n \n Yamaji, S., Hozumi, A., Matsunobu, S., & Sasakura, Y.\n\n\n \n \n \n \n \n Orchestration of the distinct morphogenetic movements in different tissues drives tail regression during ascidian metamorphosis.\n \n \n \n \n\n\n \n\n\n\n Developmental Biology, 465(1): 66–78. September 2020.\n \n\n\n\n
\n\n\n\n \n \n \"OrchestrationPaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n\n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{yamaji_orchestration_2020,\n\ttitle = {Orchestration of the distinct morphogenetic movements in different tissues drives tail regression during ascidian metamorphosis},\n\tvolume = {465},\n\tissn = {00121606},\n\turl = {https://linkinghub.elsevier.com/retrieve/pii/S0012160620302050},\n\tdoi = {10.1016/j.ydbio.2020.07.009},\n\tlanguage = {en},\n\tnumber = {1},\n\turldate = {2021-07-27},\n\tjournal = {Developmental Biology},\n\tauthor = {Yamaji, Sota and Hozumi, Akiko and Matsunobu, Shohei and Sasakura, Yasunori},\n\tmonth = sep,\n\tyear = {2020},\n\tpages = {66--78},\n}\n\n
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\n \n\n \n \n Zhao, D., Chen, S., Horie, T., Gao, Y., Bao, H., & Liu, X.\n\n\n \n \n \n \n \n Comparison of differentiation gene batteries for migratory mechanosensory neurons across bilaterians.\n \n \n \n \n\n\n \n\n\n\n Evolution & Development, 22(6): 438–450. November 2020.\n \n\n\n\n
\n\n\n\n \n \n \"ComparisonPaper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n\n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{zhao_comparison_2020,\n\ttitle = {Comparison of differentiation gene batteries for migratory mechanosensory neurons across bilaterians},\n\tvolume = {22},\n\tissn = {1520-541X, 1525-142X},\n\turl = {https://onlinelibrary.wiley.com/doi/10.1111/ede.12331},\n\tdoi = {10.1111/ede.12331},\n\tlanguage = {en},\n\tnumber = {6},\n\turldate = {2021-07-27},\n\tjournal = {Evolution \\& Development},\n\tauthor = {Zhao, Di and Chen, Siyu and Horie, Takeo and Gao, Yimeng and Bao, Hongcun and Liu, Xiao},\n\tmonth = nov,\n\tyear = {2020},\n\tpages = {438--450},\n}\n\n
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\n \n\n \n \n 正憲, 武, & 茂樹, 和.\n\n\n \n \n \n \n \n 東京都式根島の海水浴場における混雑度が利用者の混雑感及び満足感に与える影響.\n \n \n \n \n\n\n \n\n\n\n In pages 31–36, December 2020. 一般社団法人 環境情報科学センター\n \n\n\n\n
\n\n\n\n \n \n \"東京都式根島の海水浴場における混雑度が利用者の混雑感及び満足感に与える影響Paper\n  \n \n\n \n \n doi\n  \n \n\n \n link\n  \n \n\n bibtex\n \n\n \n  \n \n abstract \n \n\n \n  \n \n 11 downloads\n \n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@inproceedings{__2020,\n\ttitle = {東京都式根島の海水浴場における混雑度が利用者の混雑感及び満足感に与える影響},\n\turl = {https://www.jstage.jst.go.jp/article/ceispapers/ceis34/0/ceis34_31/_article/-char/ja/},\n\tdoi = {10.11492/ceispapers.ceis34.0_31},\n\tabstract = {本研究は,東京都新島村式根島にある地形的特徴の異なる二つの海水浴場を事例に,海水浴場の利用者密度と利用者の混雑感と満足度の3変数の相互関係を明らかにすることを目的とした。利用者密度は目視観察で把握し,混雑感と満足度はアンケート調査で把握した。調査結果から,利用者密度と利用者の混雑感と満足度の3 変数 …},\n\tlanguage = {ja},\n\turldate = {2021-07-27},\n\tpublisher = {一般社団法人 環境情報科学センター},\n\tauthor = {正憲, 武 and 茂樹, 和田},\n\tmonth = dec,\n\tyear = {2020},\n\tpages = {31--36},\n}\n\n
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\n 本研究は,東京都新島村式根島にある地形的特徴の異なる二つの海水浴場を事例に,海水浴場の利用者密度と利用者の混雑感と満足度の3変数の相互関係を明らかにすることを目的とした。利用者密度は目視観察で把握し,混雑感と満足度はアンケート調査で把握した。調査結果から,利用者密度と利用者の混雑感と満足度の3 変数 …\n
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