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\n \n\n \n \n Agostini, S., Fujimura, H., Hayashi, H., & Fujita, K.\n\n\n \n \n \n \n \n Mitochondrial electron transport activity and metabolism of experimentally bleached hermatypic corals.\n \n \n \n \n\n\n \n\n\n\n Journal of Experimental Marine Biology and Ecology, 475: 100–107. February 2016.\n \n\n\n\n
\n\n\n\n \n \n \"MitochondrialPaper\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 6 downloads\n \n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{agostini_mitochondrial_2016,\n\ttitle = {Mitochondrial electron transport activity and metabolism of experimentally bleached hermatypic corals},\n\tvolume = {475},\n\tissn = {00220981},\n\turl = {https://linkinghub.elsevier.com/retrieve/pii/S0022098115300629},\n\tdoi = {10.1016/j.jembe.2015.11.012},\n\tlanguage = {en},\n\turldate = {2021-07-27},\n\tjournal = {Journal of Experimental Marine Biology and Ecology},\n\tauthor = {Agostini, Sylvain and Fujimura, Hiroyuki and Hayashi, Hiroyuki and Fujita, Kazuhiko},\n\tmonth = feb,\n\tyear = {2016},\n\tpages = {100--107},\n}\n\n
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\n \n\n \n \n Brozovic, M., Martin, C., Dantec, C., Dauga, D., Mendez, M., Simion, P., Percher, M., Laporte, B., Scornavacca, C., Di Gregorio, A., Fujiwara, S., Gineste, M., Lowe, E. K., Piette, J., Racioppi, C., Ristoratore, F., Sasakura, Y., Takatori, N., Brown, T. C., Delsuc, F., Douzery, E., Gissi, C., McDougall, A., Nishida, H., Sawada, H., Swalla, B. J., Yasuo, H., & Lemaire, P.\n\n\n \n \n \n \n \n ANISEED 2015: a digital framework for the comparative developmental biology of ascidians.\n \n \n \n \n\n\n \n\n\n\n Nucleic Acids Research, 44(D1): D808–D818. January 2016.\n \n\n\n\n
\n\n\n\n \n \n \"ANISEEDPaper\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{brozovic_aniseed_2016,\n\ttitle = {{ANISEED} 2015: a digital framework for the comparative developmental biology of ascidians},\n\tvolume = {44},\n\tissn = {0305-1048, 1362-4962},\n\tshorttitle = {{ANISEED} 2015},\n\turl = {https://academic.oup.com/nar/article-lookup/doi/10.1093/nar/gkv966},\n\tdoi = {10.1093/nar/gkv966},\n\tlanguage = {en},\n\tnumber = {D1},\n\turldate = {2021-07-27},\n\tjournal = {Nucleic Acids Research},\n\tauthor = {Brozovic, Matija and Martin, Cyril and Dantec, Christelle and Dauga, Delphine and Mendez, Mickaël and Simion, Paul and Percher, Madeline and Laporte, Baptiste and Scornavacca, Céline and Di Gregorio, Anna and Fujiwara, Shigeki and Gineste, Mathieu and Lowe, Elijah K. and Piette, Jacques and Racioppi, Claudia and Ristoratore, Filomena and Sasakura, Yasunori and Takatori, Naohito and Brown, Titus C. and Delsuc, Frédéric and Douzery, Emmanuel and Gissi, Carmela and McDougall, Alex and Nishida, Hiroki and Sawada, Hitoshi and Swalla, Billie J. and Yasuo, Hitoyoshi and Lemaire, Patrick},\n\tmonth = jan,\n\tyear = {2016},\n\tpages = {D808--D818},\n}\n\n
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\n \n\n \n \n Hama, T., Inoue, T., Suzuki, R., Kashiwazaki, H., Wada, S., Sasano, D., Kosugi, N., & Ishii, M.\n\n\n \n \n \n \n \n Response of a phytoplankton community to nutrient addition under different CO$_{\\textrm{2}}$ and pH conditions.\n \n \n \n \n\n\n \n\n\n\n Journal of Oceanography, 72(2): 207–223. April 2016.\n \n\n\n\n
\n\n\n\n \n \n \"ResponsePaper\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{hama_response_2016,\n\ttitle = {Response of a phytoplankton community to nutrient addition under different {CO}$_{\\textrm{2}}$ and {pH} conditions},\n\tvolume = {72},\n\tissn = {0916-8370, 1573-868X},\n\turl = {http://link.springer.com/10.1007/s10872-015-0322-4},\n\tdoi = {10.1007/s10872-015-0322-4},\n\tlanguage = {en},\n\tnumber = {2},\n\turldate = {2021-07-27},\n\tjournal = {Journal of Oceanography},\n\tauthor = {Hama, Takeo and Inoue, Tomoki and Suzuki, Risa and Kashiwazaki, Hiroto and Wada, Shigeki and Sasano, Daisuke and Kosugi, Naohiro and Ishii, Masao},\n\tmonth = apr,\n\tyear = {2016},\n\tpages = {207--223},\n}\n\n
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\n \n\n \n \n Horinouchi, M., Tongnunui, P., Furumitsu, K., Kon, K., Nakamura, Y., Kanou, K., Yamaguchi, A., Seto, K., Okamoto, K., & Sano, M.\n\n\n \n \n \n \n \n Effects of habitat change from a bare sand/mud area to a short seagrass Halophila ovalis bed on fish assemblage structure: a case study in an intertidal bay in Trang, southern Thailand.\n \n \n \n \n\n\n \n\n\n\n Ichthyological Research, 63(3): 391–404. July 2016.\n \n\n\n\n
\n\n\n\n \n \n \"EffectsPaper\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_effects_2016,\n\ttitle = {Effects of habitat change from a bare sand/mud area to a short seagrass \\textit{{Halophila} ovalis} bed on fish assemblage structure: a case study in an intertidal bay in {Trang}, southern {Thailand}},\n\tvolume = {63},\n\tissn = {1341-8998, 1616-3915},\n\tshorttitle = {Effects of habitat change from a bare sand/mud area to a short seagrass {Halophila} ovalis bed on fish assemblage structure},\n\turl = {http://link.springer.com/10.1007/s10228-016-0510-2},\n\tdoi = {10.1007/s10228-016-0510-2},\n\tlanguage = {en},\n\tnumber = {3},\n\turldate = {2021-07-27},\n\tjournal = {Ichthyological Research},\n\tauthor = {Horinouchi, Masahiro and Tongnunui, Prasert and Furumitsu, Keisuke and Kon, Koetsu and Nakamura, Yohei and Kanou, Kouki and Yamaguchi, Atsuko and Seto, Kouji and Okamoto, Ken and Sano, Mitsuhiko},\n\tmonth = jul,\n\tyear = {2016},\n\tpages = {391--404},\n}\n\n
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\n \n\n \n \n Inaba, K., & Mizuno, K.\n\n\n \n \n \n \n \n Sperm dysfunction and ciliopathy.\n \n \n \n \n\n\n \n\n\n\n Reproductive Medicine and Biology, 15(2): 77–94. April 2016.\n \n\n\n\n
\n\n\n\n \n \n \"SpermPaper\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{inaba_sperm_2016,\n\ttitle = {Sperm dysfunction and ciliopathy},\n\tvolume = {15},\n\tissn = {14455781},\n\turl = {http://doi.wiley.com/10.1007/s12522-015-0225-5},\n\tdoi = {10.1007/s12522-015-0225-5},\n\tlanguage = {en},\n\tnumber = {2},\n\turldate = {2021-07-27},\n\tjournal = {Reproductive Medicine and Biology},\n\tauthor = {Inaba, Kazuo and Mizuno, Katsutoshi},\n\tmonth = apr,\n\tyear = {2016},\n\tpages = {77--94},\n}\n
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\n \n\n \n \n Kinoshita, N., Shiba, K., Inaba, K., Fu, G., Nagasato, C., & Motomura, T.\n\n\n \n \n \n \n \n Flagellar waveforms of gametes in the brown alga Ectocarpus siliculosus.\n \n \n \n \n\n\n \n\n\n\n European Journal of Phycology, 51(2): 139–148. April 2016.\n \n\n\n\n
\n\n\n\n \n \n \"FlagellarPaper\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{kinoshita_flagellar_2016,\n\ttitle = {Flagellar waveforms of gametes in the brown alga \\textit{{Ectocarpus} siliculosus}},\n\tvolume = {51},\n\tissn = {0967-0262, 1469-4433},\n\turl = {http://www.tandfonline.com/doi/full/10.1080/09670262.2015.1109144},\n\tdoi = {10.1080/09670262.2015.1109144},\n\tlanguage = {en},\n\tnumber = {2},\n\turldate = {2021-07-27},\n\tjournal = {European Journal of Phycology},\n\tauthor = {Kinoshita, Nana and Shiba, Kogiku and Inaba, Kazuo and Fu, Gang and Nagasato, Chikako and Motomura, Taizo},\n\tmonth = apr,\n\tyear = {2016},\n\tpages = {139--148},\n}\n\n
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\n \n\n \n \n Kodama, M., Ohtsuchi, N., & Kon, K.\n\n\n \n \n \n \n \n A new species of the genus Rhinoecetes Just, 1983 (Crustacea: Amphipoda: Ischyroceridae) from Japan.\n \n \n \n \n\n\n \n\n\n\n Zootaxa, 4169(1): 133. September 2016.\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{kodama_new_2016,\n\ttitle = {A new species of the genus \\textit{{Rhinoecetes}} {Just}, 1983 ({Crustacea}: {Amphipoda}: {Ischyroceridae}) from {Japan}},\n\tvolume = {4169},\n\tissn = {1175-5334, 1175-5326},\n\tshorttitle = {A new species of the genus {Rhinoecetes} {Just}, 1983 ({Crustacea}},\n\turl = {http://biotaxa.org/Zootaxa/article/view/zootaxa.4169.1.6},\n\tdoi = {10.11646/zootaxa.4169.1.6},\n\tnumber = {1},\n\turldate = {2021-07-27},\n\tjournal = {Zootaxa},\n\tauthor = {Kodama, Masafumi and Ohtsuchi, Naoya and Kon, Koetsu},\n\tmonth = sep,\n\tyear = {2016},\n\tpages = {133},\n}\n\n
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\n \n\n \n \n Konno, A., Ikegami, K., Konishi, Y., Yang, H., Abe, M., Yamazaki, M., Sakimura, K., Yao, I., Shiba, K., Inaba, K., & Setou, M.\n\n\n \n \n \n \n \n Doublet 7 shortening, doublet 5-preferential poly-Glu reduction, and beating stall of sperm flagella in Ttll9 −/− mice.\n \n \n \n \n\n\n \n\n\n\n Journal of Cell Science, 129: 2757–2766. January 2016.\n \n\n\n\n
\n\n\n\n \n \n \"DoubletPaper\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{konno_doublet_2016,\n\ttitle = {Doublet 7 shortening, doublet 5-preferential poly-{Glu} reduction, and beating stall of sperm flagella in \\textit{{Ttll9}} −/− mice},\n\tvolume = {129},\n\tissn = {1477-9137, 0021-9533},\n\turl = {https://journals.biologists.com/jcs/article/doi/10.1242/jcs.185983/260345/Doublet-7-shortening-doublet-5-preferential-poly},\n\tdoi = {10.1242/jcs.185983},\n\tabstract = {Nine outer doublet microtubules (MTs) in axonemes of flagella and cilia are heterogeneous in structure and biochemical properties. In mammalian sperm flagella, one of the factors to generate the heterogeneity is tubulin polyglutamylation, although the importance of the heterogeneous modification is unclear. Here we show that a tubulin polyglutamylase Ttll9 deficiency (Ttll9−/−) causes a unique set of phenotypes related to doublet heterogeneity. Ttll9−/− sperm axonemes had frequent loss of a doublet and reduced polyglutamylation. Intriguingly, the doublet loss selectively occurred at the distal region of doublet 7, and the polyglutamylation reduction was observed preferentially on doublet 5. Ttll9−/− spermatozoa showed aberrant flagellar beats characterized by frequent stalls after anti-hook bending. This abnormal motility could be attributed to the reduction of polyglutamylation on doublet 5, which probably occurred at a position involved in the switching of bending. These results indicate that mammalian Ttll9 plays essential roles for the normal structure and beating pattern of sperm flagella by establishing normal heterogeneous polyglutamylation patterns.},\n\tlanguage = {en},\n\turldate = {2021-07-27},\n\tjournal = {Journal of Cell Science},\n\tauthor = {Konno, Alu and Ikegami, Koji and Konishi, Yoshiyuki and Yang, Hyun-Jeong and Abe, Manabu and Yamazaki, Maya and Sakimura, Kenji and Yao, Ikuko and Shiba, Kogiku and Inaba, Kazuo and Setou, Mitsutoshi},\n\tmonth = jan,\n\tyear = {2016},\n\tpages = {2757--2766},\n}\n\n
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\n Nine outer doublet microtubules (MTs) in axonemes of flagella and cilia are heterogeneous in structure and biochemical properties. In mammalian sperm flagella, one of the factors to generate the heterogeneity is tubulin polyglutamylation, although the importance of the heterogeneous modification is unclear. Here we show that a tubulin polyglutamylase Ttll9 deficiency (Ttll9−/−) causes a unique set of phenotypes related to doublet heterogeneity. Ttll9−/− sperm axonemes had frequent loss of a doublet and reduced polyglutamylation. Intriguingly, the doublet loss selectively occurred at the distal region of doublet 7, and the polyglutamylation reduction was observed preferentially on doublet 5. Ttll9−/− spermatozoa showed aberrant flagellar beats characterized by frequent stalls after anti-hook bending. This abnormal motility could be attributed to the reduction of polyglutamylation on doublet 5, which probably occurred at a position involved in the switching of bending. These results indicate that mammalian Ttll9 plays essential roles for the normal structure and beating pattern of sperm flagella by establishing normal heterogeneous polyglutamylation patterns.\n
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\n \n\n \n \n Ogura, Y., & Sasakura, Y.\n\n\n \n \n \n \n \n Cell-cycle compensation coupled with developmental patterning.\n \n \n \n \n\n\n \n\n\n\n Cell Cycle, 15(20): 2685–2686. October 2016.\n \n\n\n\n
\n\n\n\n \n \n \"Cell-cyclePaper\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 7 downloads\n \n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{ogura_cell-cycle_2016,\n\ttitle = {Cell-cycle compensation coupled with developmental patterning},\n\tvolume = {15},\n\tissn = {1538-4101, 1551-4005},\n\turl = {https://www.tandfonline.com/doi/full/10.1080/15384101.2016.1204859},\n\tdoi = {10.1080/15384101.2016.1204859},\n\tlanguage = {en},\n\tnumber = {20},\n\turldate = {2021-07-27},\n\tjournal = {Cell Cycle},\n\tauthor = {Ogura, Yosuke and Sasakura, Yasunori},\n\tmonth = oct,\n\tyear = {2016},\n\tpages = {2685--2686},\n}\n\n
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\n \n\n \n \n Ogura, Y., & Sasakura, Y.\n\n\n \n \n \n \n \n Developmental Control of Cell-Cycle Compensation Provides a Switch for Patterned Mitosis at the Onset of Chordate Neurulation.\n \n \n \n \n\n\n \n\n\n\n Developmental Cell, 37(2): 148–161. April 2016.\n \n\n\n\n
\n\n\n\n \n \n \"DevelopmentalPaper\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 7 downloads\n \n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{ogura_developmental_2016,\n\ttitle = {Developmental {Control} of {Cell}-{Cycle} {Compensation} {Provides} a {Switch} for {Patterned} {Mitosis} at the {Onset} of {Chordate} {Neurulation}},\n\tvolume = {37},\n\tissn = {15345807},\n\turl = {https://linkinghub.elsevier.com/retrieve/pii/S1534580716301587},\n\tdoi = {10.1016/j.devcel.2016.03.013},\n\tlanguage = {en},\n\tnumber = {2},\n\turldate = {2021-07-27},\n\tjournal = {Developmental Cell},\n\tauthor = {Ogura, Yosuke and Sasakura, Yasunori},\n\tmonth = apr,\n\tyear = {2016},\n\tpages = {148--161},\n}\n\n
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\n \n\n \n \n Okamoto, Y., Muto, N., Kon, K., Watanabe, K., Yoshikawa, T., Salaenoi, J., & Ishikawa, S.\n\n\n \n \n \n \n \n Stable isotope analysis suggests the existence of multiple populations of streaked spinefoot (Siganus javus L.) in Bandon Bay, Southern Thailand.\n \n \n \n \n\n\n \n\n\n\n International Aquatic Research, 8(2): 169–178. June 2016.\n \n\n\n\n
\n\n\n\n \n \n \"StablePaper\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{okamoto_stable_2016,\n\ttitle = {Stable isotope analysis suggests the existence of multiple populations of streaked spinefoot (\\textit{{Siganus} javus} {L}.) in {Bandon} {Bay}, {Southern} {Thailand}},\n\tvolume = {8},\n\tissn = {2008-4935, 2008-6970},\n\turl = {http://link.springer.com/10.1007/s40071-016-0132-3},\n\tdoi = {10.1007/s40071-016-0132-3},\n\tlanguage = {en},\n\tnumber = {2},\n\turldate = {2021-07-27},\n\tjournal = {International Aquatic Research},\n\tauthor = {Okamoto, Yuki and Muto, Nozomu and Kon, Koetsu and Watanabe, Kazuya and Yoshikawa, Takashi and Salaenoi, Jintana and Ishikawa, Satoshi},\n\tmonth = jun,\n\tyear = {2016},\n\tpages = {169--178},\n}\n\n
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\n \n\n \n \n Sasakura, Y., Ogura, Y., Treen, N., Yokomori, R., Park, S., Nakai, K., Saiga, H., Sakuma, T., Yamamoto, T., Fujiwara, S., & Yoshida, K.\n\n\n \n \n \n \n \n Transcriptional regulation of a horizontally transferred gene from bacterium to chordate.\n \n \n \n \n\n\n \n\n\n\n Proceedings of the Royal Society B: Biological Sciences, 283(1845): 20161712. December 2016.\n \n\n\n\n
\n\n\n\n \n \n \"TranscriptionalPaper\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 7 downloads\n \n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{sasakura_transcriptional_2016,\n\ttitle = {Transcriptional regulation of a horizontally transferred gene from bacterium to chordate},\n\tvolume = {283},\n\tissn = {0962-8452, 1471-2954},\n\turl = {https://royalsocietypublishing.org/doi/10.1098/rspb.2016.1712},\n\tdoi = {10.1098/rspb.2016.1712},\n\tabstract = {The horizontal transfer of genes between distantly related organisms is undoubtedly a major factor in the evolution of novel traits. Because genes are functionless without expression, horizontally transferred genes must acquire appropriate transcriptional regulations in their recipient organisms, although the evolutionary mechanism is not known well. The defining characteristic of tunicates is the presence of a cellulose containing tunic covering the adult and larval body surface. Cellulose synthase was acquired by horizontal gene transfer from Actinobacteria. We found that acquisition of the binding site of AP-2 transcription factor was essential for tunicate cellulose synthase to gain epidermal-specific expression. Actinobacteria have very GC-rich genomes, regions of which are capable of inducing specific expression in the tunicate epidermis as the AP-2 binds to a GC-rich region. Therefore, the actinobacterial cellulose synthase could have been potentiated to evolve its new function in the ancestor of tunicates with a higher probability than the evolution depending solely on a spontaneous event.},\n\tlanguage = {en},\n\tnumber = {1845},\n\turldate = {2021-07-27},\n\tjournal = {Proceedings of the Royal Society B: Biological Sciences},\n\tauthor = {Sasakura, Yasunori and Ogura, Yosuke and Treen, Nicholas and Yokomori, Rui and Park, Sung-Joon and Nakai, Kenta and Saiga, Hidetoshi and Sakuma, Tetsushi and Yamamoto, Takashi and Fujiwara, Shigeki and Yoshida, Keita},\n\tmonth = dec,\n\tyear = {2016},\n\tpages = {20161712},\n}\n\n
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\n The horizontal transfer of genes between distantly related organisms is undoubtedly a major factor in the evolution of novel traits. Because genes are functionless without expression, horizontally transferred genes must acquire appropriate transcriptional regulations in their recipient organisms, although the evolutionary mechanism is not known well. The defining characteristic of tunicates is the presence of a cellulose containing tunic covering the adult and larval body surface. Cellulose synthase was acquired by horizontal gene transfer from Actinobacteria. We found that acquisition of the binding site of AP-2 transcription factor was essential for tunicate cellulose synthase to gain epidermal-specific expression. Actinobacteria have very GC-rich genomes, regions of which are capable of inducing specific expression in the tunicate epidermis as the AP-2 binds to a GC-rich region. Therefore, the actinobacterial cellulose synthase could have been potentiated to evolve its new function in the ancestor of tunicates with a higher probability than the evolution depending solely on a spontaneous event.\n
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\n \n\n \n \n Tongnunui, P., Yoknoi, N., Pechnoi, P., Yamada, H., & Kon, K.\n\n\n \n \n \n \n \n The First Record of Female Maturation of the Short-finned Eel, Anguilla bicolor bicolor, in the Coastal Waters of Thailand.\n \n \n \n \n\n\n \n\n\n\n Tropical Life Sciences Research, 27(1): 145–152. February 2016.\n \n\n\n\n
\n\n\n\n \n \n \"ThePaper\n  \n \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{tongnunui_first_2016,\n\ttitle = {The {First} {Record} of {Female} {Maturation} of the {Short}-finned {Eel}, \\textit{{Anguilla} bicolor bicolor}, in the {Coastal} {Waters} of {Thailand}},\n\tvolume = {27},\n\tissn = {1985-3718},\n\turl = {https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4807959/},\n\tabstract = {The objective of the present study was to provide reproductive biological information on the gonadal development of the short-finned eel, Anguilla bicolor bicolor, which inhabits the coastal waters of Thailand. Short-finned eels were collected from three coastal areas of Trang Province, southern Thailand, from September 2011 to December 2013. The gonads of 151 specimens were subjected to a histological analysis. The histological observations found both immature and maturing females. Based on the advanced oocytes within an entire ovarian section, the ovaries of the studied specimens were classified into three maturity phases: 1) the immature phase was defined by ovaries that showed oogonia and primary growth oocytes, 2) the developing phase was defined by ovaries that contained early vitellogenic-stage oocytes with some oogonia present along with cortical alveolar oocytes and many adipocytes, and 3) the late vitellogenic phase refers to ovaries that contained nearly entirely late-vitellogenic oocytes. The density of oocytes in juxtaposition to an adipose matrix is considered to represent the degree of gonadal development. The results of this study may be applicable in further defining the general spawning area of A. bicolor bicolor in regions of the Indian Ocean.},\n\tnumber = {1},\n\turldate = {2021-07-27},\n\tjournal = {Tropical Life Sciences Research},\n\tauthor = {Tongnunui, Prasert and Yoknoi, Nuengruetai and Pechnoi, Pimwipa and Yamada, Hideaki and Kon, Koetsu},\n\tmonth = feb,\n\tyear = {2016},\n\tpmid = {27019687},\n\tpmcid = {PMC4807959},\n\tpages = {145--152},\n}\n\n
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\n The objective of the present study was to provide reproductive biological information on the gonadal development of the short-finned eel, Anguilla bicolor bicolor, which inhabits the coastal waters of Thailand. Short-finned eels were collected from three coastal areas of Trang Province, southern Thailand, from September 2011 to December 2013. The gonads of 151 specimens were subjected to a histological analysis. The histological observations found both immature and maturing females. Based on the advanced oocytes within an entire ovarian section, the ovaries of the studied specimens were classified into three maturity phases: 1) the immature phase was defined by ovaries that showed oogonia and primary growth oocytes, 2) the developing phase was defined by ovaries that contained early vitellogenic-stage oocytes with some oogonia present along with cortical alveolar oocytes and many adipocytes, and 3) the late vitellogenic phase refers to ovaries that contained nearly entirely late-vitellogenic oocytes. The density of oocytes in juxtaposition to an adipose matrix is considered to represent the degree of gonadal development. The results of this study may be applicable in further defining the general spawning area of A. bicolor bicolor in regions of the Indian Ocean.\n
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\n \n\n \n \n Yaguchi, J., Takeda, N., Inaba, K., & Yaguchi, S.\n\n\n \n \n \n \n \n Cooperative Wnt-Nodal Signals Regulate the Patterning of Anterior Neuroectoderm.\n \n \n \n \n\n\n \n\n\n\n PLOS Genetics, 12(4): e1006001. April 2016.\n \n\n\n\n
\n\n\n\n \n \n \"CooperativePaper\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_cooperative_2016,\n\ttitle = {Cooperative {Wnt}-{Nodal} {Signals} {Regulate} the {Patterning} of {Anterior} {Neuroectoderm}},\n\tvolume = {12},\n\tissn = {1553-7404},\n\turl = {https://dx.plos.org/10.1371/journal.pgen.1006001},\n\tdoi = {10.1371/journal.pgen.1006001},\n\tlanguage = {en},\n\tnumber = {4},\n\turldate = {2021-07-27},\n\tjournal = {PLOS Genetics},\n\tauthor = {Yaguchi, Junko and Takeda, Noriyo and Inaba, Kazuo and Yaguchi, Shunsuke},\n\teditor = {Lowe, Christopher},\n\tmonth = apr,\n\tyear = {2016},\n\tpages = {e1006001},\n}\n\n
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\n \n\n \n \n Yamada, H., Hayakawa, J., Nakamoto, K., Kawamura, T., & Kon, K.\n\n\n \n \n \n \n \n Effects of artificial seaweed on vulnerability of two gastropod species (Cerithium zonatum and Clypeomorus bifasciata) to carnivorous crab Calappa hepatica.\n \n \n \n \n\n\n \n\n\n\n NIPPON SUISAN GAKKAISHI, 82(1): 33–35. 2016.\n \n\n\n\n
\n\n\n\n \n \n \"EffectsPaper\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{yamada_effects_2016,\n\ttitle = {Effects of artificial seaweed on vulnerability of two gastropod species (\\textit{{Cerithium} zonatum} and \\textit{{Clypeomorus} bifasciata}) to carnivorous crab \\textit{{Calappa} hepatica}},\n\tvolume = {82},\n\tissn = {0021-5392, 1349-998X},\n\turl = {https://www.jstage.jst.go.jp/article/suisan/82/1/82_15-00044/_article/-char/ja/},\n\tdoi = {10.2331/suisan.15-00044},\n\tlanguage = {en},\n\tnumber = {1},\n\turldate = {2021-07-27},\n\tjournal = {NIPPON SUISAN GAKKAISHI},\n\tauthor = {Yamada, Hideaki and Hayakawa, Jun and Nakamoto, Kenta and Kawamura, Tomohiko and Kon, Koetsu},\n\tyear = {2016},\n\tpages = {33--35},\n}\n\n
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\n \n\n \n \n 山田秀秋, 島袋寛盛, 早川淳, 中本健太, 河村知彦, & 今孝悦\n\n\n \n \n \n \n \n 亜熱帯藻場構成植物に対するアイゴ幼魚の摂食選択性評価.\n \n \n \n \n\n\n \n\n\n\n 日本水産学会誌, 82(4): 631–633. 2016.\n Publisher: 日本水産學會\n\n\n\n
\n\n\n\n \n \n \"亜熱帯藻場構成植物に対するアイゴ幼魚の摂食選択性評価Paper\n  \n \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{__2016,\n\ttitle = {亜熱帯藻場構成植物に対するアイゴ幼魚の摂食選択性評価},\n\tvolume = {82},\n\tissn = {0021-5392},\n\turl = {https://ci.nii.ac.jp/naid/130005406764},\n\tabstract = {亜熱帯藻場構成植物に対するアイゴ幼魚の摂食選択性評価 山田 秀秋 , 島袋 寛盛 , 早川 淳 , 中本 健太 , 河村 知彦 , 今 孝悦 日本水産学会誌 82(4), 631-633, 2016},\n\tlanguage = {en},\n\tnumber = {4},\n\turldate = {2021-07-27},\n\tjournal = {日本水産学会誌},\n\tauthor = {{山田秀秋} and {島袋寛盛} and {早川淳} and {中本健太} and {河村知彦} and {今孝悦}},\n\tyear = {2016},\n\tnote = {Publisher: 日本水産學會},\n\tpages = {631--633},\n}\n\n
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\n 亜熱帯藻場構成植物に対するアイゴ幼魚の摂食選択性評価 山田 秀秋 , 島袋 寛盛 , 早川 淳 , 中本 健太 , 河村 知彦 , 今 孝悦 日本水産学会誌 82(4), 631-633, 2016\n
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