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\n \n\n \n \n Auger, H., Sasakura, Y., Joly, J., & Jeffery, W. R.\n\n\n \n \n \n \n \n Regeneration of oral siphon pigment organs in the ascidian Ciona intestinalis.\n \n \n \n \n\n\n \n\n\n\n Developmental Biology, 339(2): 374–389. March 2010.\n \n\n\n\n
\n\n\n\n \n \n \"RegenerationPaper\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{auger_regeneration_2010,\n\ttitle = {Regeneration of oral siphon pigment organs in the ascidian \\textit{{Ciona} intestinalis}},\n\tvolume = {339},\n\tissn = {00121606},\n\turl = {https://linkinghub.elsevier.com/retrieve/pii/S0012160609014651},\n\tdoi = {10.1016/j.ydbio.2009.12.040},\n\tlanguage = {en},\n\tnumber = {2},\n\turldate = {2021-07-27},\n\tjournal = {Developmental Biology},\n\tauthor = {Auger, Hélène and Sasakura, Yasunori and Joly, Jean-Stéphane and Jeffery, William R.},\n\tmonth = mar,\n\tyear = {2010},\n\tpages = {374--389},\n}\n\n
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\n \n\n \n \n Horie, T., Nakagawa, M., Sasakura, Y., Kusakabe, T. G., & Tsuda, M.\n\n\n \n \n \n \n \n Simple Motor System of the Ascidian Larva: Neuronal Complex Comprising Putative Cholinergic and GABAergic/Glycinergic Neurons.\n \n \n \n \n\n\n \n\n\n\n Zoological Science, 27(2): 181–190. February 2010.\n \n\n\n\n
\n\n\n\n \n \n \"SimplePaper\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{horie_simple_2010,\n\ttitle = {Simple {Motor} {System} of the {Ascidian} {Larva}: {Neuronal} {Complex} {Comprising} {Putative} {Cholinergic} and {GABAergic}/{Glycinergic} {Neurons}},\n\tvolume = {27},\n\tissn = {0289-0003},\n\tshorttitle = {Simple {Motor} {System} of the {Ascidian} {Larva}},\n\turl = {http://www.bioone.org/doi/abs/10.2108/zsj.27.181},\n\tdoi = {10.2108/zsj.27.181},\n\tlanguage = {en},\n\tnumber = {2},\n\turldate = {2021-07-27},\n\tjournal = {Zoological Science},\n\tauthor = {Horie, Takeo and Nakagawa, Masashi and Sasakura, Yasunori and Kusakabe, Takehiro G. and Tsuda, Motoyuki},\n\tmonth = feb,\n\tyear = {2010},\n\tpages = {181--190},\n}\n\n
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\n \n\n \n \n Hozumi, A., Kawai, N., Yoshida, R., Ogura, Y., Ohta, N., Satake, H., Satoh, N., & Sasakura, Y.\n\n\n \n \n \n \n \n Efficient transposition of a single Minos transposon copy in the genome of the ascidian Ciona intestinalis with a transgenic line expressing transposase in eggs.\n \n \n \n \n\n\n \n\n\n\n Developmental Dynamics, 239(4): 1076–1088. April 2010.\n \n\n\n\n
\n\n\n\n \n \n \"EfficientPaper\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{hozumi_efficient_2010,\n\ttitle = {Efficient transposition of a single \\textit{{Minos}} transposon copy in the genome of the ascidian \\textit{{Ciona} intestinalis} with a transgenic line expressing transposase in eggs},\n\tvolume = {239},\n\tissn = {10588388},\n\turl = {https://onlinelibrary.wiley.com/doi/10.1002/dvdy.22254},\n\tdoi = {10.1002/dvdy.22254},\n\tlanguage = {en},\n\tnumber = {4},\n\turldate = {2021-07-27},\n\tjournal = {Developmental Dynamics},\n\tauthor = {Hozumi, Akiko and Kawai, Narudo and Yoshida, Reiko and Ogura, Yosuke and Ohta, Naoyuki and Satake, Honoo and Satoh, Nori and Sasakura, Yasunori},\n\tmonth = apr,\n\tyear = {2010},\n\tpages = {1076--1088},\n}\n\n
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\n \n\n \n \n Katow, H., Suyemitsu, T., Ooka, S., Yaguchi, J., Jin-nai, T., Kuwahara, I., Katow, T., Yaguchi, S., & Abe, H.\n\n\n \n \n \n \n \n Development of a dopaminergic system in sea urchin embryos and larvae.\n \n \n \n \n\n\n \n\n\n\n Journal of Experimental Biology, 213(16): 2808–2819. August 2010.\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 abstract \n \n\n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
\n
@article{katow_development_2010,\n\ttitle = {Development of a dopaminergic system in sea urchin embryos and larvae},\n\tvolume = {213},\n\tissn = {1477-9145, 0022-0949},\n\turl = {https://journals.biologists.com/jeb/article/213/16/2808/9863/Development-of-a-dopaminergic-system-in-sea-urchin},\n\tdoi = {10.1242/jeb.042150},\n\tabstract = {SUMMARY\n            The mechanisms that regulate the organized swimming movements of sea urchin blastulae are largely unknown. Using immunohistochemistry, we found that dopamine (DA) and the Hemicentrotus pulcherrimus homolog of the dopamine receptor D1 (Hp-DRD1) were strongly co-localized in 1–2 μm diameter granules (DA/DRD1 granules). Furthermore, these granules were arranged across the entire surface of blastulae as they developed locomotory cilia before hatching, and remained evident until metamorphosis. DA/DRD1 granules were associated with the basal bodies of cilia, and were densely packed in the ciliary band by the eight-arm pluteus stage. The transcription of Hp-DRD1 was detected from the unfertilized egg stage throughout the period of larval development. Treatment with S-(–)-carbidopa, an inhibitor of aromatic-l-amino acid decarboxylase, for 20–24 h (i) from soon after insemination until the 20 h post-fertilization (20 hpf) early gastrula stage and (ii) from the 24 hpf prism larva stage until the 48 hpf pluteus stage, inhibited the formation of DA granules and decreased the swimming activity of blastulae and larvae in a dose-dependent manner. Exogenous DA rescued these deprivations. The formation of DRD1 granules was not affected. However, in 48 hpf plutei, the serotonergic nervous system (5HT-NS) developed normally. Morpholino antisense oligonucleotides directed against Hp-DRD1 inhibited the formation of DRD1 granules and the swimming of larvae, but did not disturb the formation of DA granules. Thus, the formation of DRD1 granules and DA granules occurs chronologically closely but mechanically independently and the swimming of blastulae is regulated by the dopaminergic system. In plutei, the 5HT-NS closely surrounded the ciliary bands, suggesting the functional collaboration with the dopaminergic system in larvae.},\n\tlanguage = {en},\n\tnumber = {16},\n\turldate = {2021-07-27},\n\tjournal = {Journal of Experimental Biology},\n\tauthor = {Katow, Hideki and Suyemitsu, Takashi and Ooka, Shio and Yaguchi, Junko and Jin-nai, Takayuki and Kuwahara, Iku and Katow, Tomoko and Yaguchi, Shunsuke and Abe, Hirokazu},\n\tmonth = aug,\n\tyear = {2010},\n\tpages = {2808--2819},\n}\n\n
\n
\n\n\n
\n SUMMARY The mechanisms that regulate the organized swimming movements of sea urchin blastulae are largely unknown. Using immunohistochemistry, we found that dopamine (DA) and the Hemicentrotus pulcherrimus homolog of the dopamine receptor D1 (Hp-DRD1) were strongly co-localized in 1–2 μm diameter granules (DA/DRD1 granules). Furthermore, these granules were arranged across the entire surface of blastulae as they developed locomotory cilia before hatching, and remained evident until metamorphosis. DA/DRD1 granules were associated with the basal bodies of cilia, and were densely packed in the ciliary band by the eight-arm pluteus stage. The transcription of Hp-DRD1 was detected from the unfertilized egg stage throughout the period of larval development. Treatment with S-(–)-carbidopa, an inhibitor of aromatic-l-amino acid decarboxylase, for 20–24 h (i) from soon after insemination until the 20 h post-fertilization (20 hpf) early gastrula stage and (ii) from the 24 hpf prism larva stage until the 48 hpf pluteus stage, inhibited the formation of DA granules and decreased the swimming activity of blastulae and larvae in a dose-dependent manner. Exogenous DA rescued these deprivations. The formation of DRD1 granules was not affected. However, in 48 hpf plutei, the serotonergic nervous system (5HT-NS) developed normally. Morpholino antisense oligonucleotides directed against Hp-DRD1 inhibited the formation of DRD1 granules and the swimming of larvae, but did not disturb the formation of DA granules. Thus, the formation of DRD1 granules and DA granules occurs chronologically closely but mechanically independently and the swimming of blastulae is regulated by the dopaminergic system. In plutei, the 5HT-NS closely surrounded the ciliary bands, suggesting the functional collaboration with the dopaminergic system in larvae.\n
\n\n\n
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\n \n\n \n \n Kjeldsen, K. U., Obst, M., Nakano, H., Funch, P., & Schramm, A.\n\n\n \n \n \n \n \n Two Types of Endosymbiotic Bacteria in the Enigmatic Marine Worm Xenoturbella bocki.\n \n \n \n \n\n\n \n\n\n\n Applied and Environmental Microbiology, 76(8): 2657–2662. April 2010.\n \n\n\n\n
\n\n\n\n \n \n \"TwoPaper\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
\n
@article{kjeldsen_two_2010,\n\ttitle = {Two {Types} of {Endosymbiotic} {Bacteria} in the {Enigmatic} {Marine} {Worm} \\textit{{Xenoturbella} bocki}},\n\tvolume = {76},\n\tissn = {0099-2240, 1098-5336},\n\turl = {https://journals.asm.org/doi/10.1128/AEM.01092-09},\n\tdoi = {10.1128/AEM.01092-09},\n\tabstract = {ABSTRACT\n            \n              Two types of endosymbiotic bacteria were identified in the gastrodermis of the marine invertebrate\n              Xenoturbella\n              bocki\n              (Xenoturbellida, Bilateria). While previously described\n              Chlamydia\n              -like endosymbionts were rare,\n              Gammaproteobacteria\n              distantly related to other endosymbionts and pathogens were abundant. The endosymbionts should be considered when interpreting the poorly understood ecology and evolution of\n              Xenoturbella\n              .},\n\tlanguage = {en},\n\tnumber = {8},\n\turldate = {2021-07-27},\n\tjournal = {Applied and Environmental Microbiology},\n\tauthor = {Kjeldsen, Kasper Urup and Obst, Matthias and Nakano, Hiroaki and Funch, Peter and Schramm, Andreas},\n\tmonth = apr,\n\tyear = {2010},\n\tpages = {2657--2662},\n}\n\n
\n
\n\n\n
\n ABSTRACT Two types of endosymbiotic bacteria were identified in the gastrodermis of the marine invertebrate Xenoturbella bocki (Xenoturbellida, Bilateria). While previously described Chlamydia -like endosymbionts were rare, Gammaproteobacteria distantly related to other endosymbionts and pathogens were abundant. The endosymbionts should be considered when interpreting the poorly understood ecology and evolution of Xenoturbella .\n
\n\n\n
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\n \n\n \n \n Klimpel, S., Heukelbach, J., Pothmann, D., & Rückert, S.\n\n\n \n \n \n \n \n Gastrointestinal and ectoparasites from urban stray dogs in Fortaleza (Brazil): high infection risk for humans?.\n \n \n \n \n\n\n \n\n\n\n Parasitology Research, 107(3): 713–719. August 2010.\n \n\n\n\n
\n\n\n\n \n \n \"GastrointestinalPaper\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{klimpel_gastrointestinal_2010,\n\ttitle = {Gastrointestinal and ectoparasites from urban stray dogs in {Fortaleza} ({Brazil}): high infection risk for humans?},\n\tvolume = {107},\n\tissn = {0932-0113, 1432-1955},\n\tshorttitle = {Gastrointestinal and ectoparasites from urban stray dogs in {Fortaleza} ({Brazil})},\n\turl = {http://link.springer.com/10.1007/s00436-010-1926-7},\n\tdoi = {10.1007/s00436-010-1926-7},\n\tlanguage = {en},\n\tnumber = {3},\n\turldate = {2021-07-27},\n\tjournal = {Parasitology Research},\n\tauthor = {Klimpel, Sven and Heukelbach, Jörg and Pothmann, David and Rückert, Sonja},\n\tmonth = aug,\n\tyear = {2010},\n\tpages = {713--719},\n}\n\n
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\n \n\n \n \n Konno, A., Kaizu, M., Hotta, K., Horie, T., Sasakura, Y., Ikeo, K., & Inaba, K.\n\n\n \n \n \n \n \n Distribution and structural diversity of cilia in tadpole larvae of the ascidian Ciona intestinalis.\n \n \n \n \n\n\n \n\n\n\n Developmental Biology, 337(1): 42–62. January 2010.\n \n\n\n\n
\n\n\n\n \n \n \"DistributionPaper\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{konno_distribution_2010,\n\ttitle = {Distribution and structural diversity of cilia in tadpole larvae of the ascidian \\textit{{Ciona} intestinalis}},\n\tvolume = {337},\n\tissn = {00121606},\n\turl = {https://linkinghub.elsevier.com/retrieve/pii/S001216060901255X},\n\tdoi = {10.1016/j.ydbio.2009.10.012},\n\tlanguage = {en},\n\tnumber = {1},\n\turldate = {2021-07-27},\n\tjournal = {Developmental Biology},\n\tauthor = {Konno, Alu and Kaizu, Maiko and Hotta, Kohji and Horie, Takeo and Sasakura, Yasunori and Ikeo, Kazuho and Inaba, Kazuo},\n\tmonth = jan,\n\tyear = {2010},\n\tpages = {42--62},\n}\n\n
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\n \n\n \n \n Konno, A., Padma, P., Ushimaru, Y., & Inaba, K.\n\n\n \n \n \n \n \n Multidimensional Analysis of Uncharacterized Sperm Proteins in Ciona intestinalis : EST-Based Analysis and Functional Immunoscreening of Testis-Expressed Genes.\n \n \n \n \n\n\n \n\n\n\n Zoological Science, 27(2): 204–215. February 2010.\n \n\n\n\n
\n\n\n\n \n \n \"MultidimensionalPaper\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{konno_multidimensional_2010,\n\ttitle = {Multidimensional {Analysis} of {Uncharacterized} {Sperm} {Proteins} in \\textit{{Ciona} intestinalis} : {EST}-{Based} {Analysis} and {Functional} {Immunoscreening} of {Testis}-{Expressed} {Genes}},\n\tvolume = {27},\n\tissn = {0289-0003},\n\tshorttitle = {Multidimensional {Analysis} of {Uncharacterized} {Sperm} {Proteins} in \\textit{{Ciona} intestinalis}},\n\turl = {http://www.bioone.org/doi/abs/10.2108/zsj.27.204},\n\tdoi = {10.2108/zsj.27.204},\n\tlanguage = {en},\n\tnumber = {2},\n\turldate = {2021-07-27},\n\tjournal = {Zoological Science},\n\tauthor = {Konno, Alu and Padma, Potturi and Ushimaru, Yuji and Inaba, Kazuo},\n\tmonth = feb,\n\tyear = {2010},\n\tpages = {204--215},\n}\n
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\n \n\n \n \n Miyamoto, N., Nakajima, Y., Wada, H., & Saito, Y.\n\n\n \n \n \n \n \n Development of the nervous system in the acorn worm Balanoglossus simodensis: insights into nervous system evolution: Development of hemichordate nervous system.\n \n \n \n \n\n\n \n\n\n\n Evolution & Development, 12(4): 416–424. July 2010.\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\n\n
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@article{miyamoto_development_2010,\n\ttitle = {Development of the nervous system in the acorn worm \\textit{{Balanoglossus} simodensis}: insights into nervous system evolution: {Development} of hemichordate nervous system},\n\tvolume = {12},\n\tissn = {1520541X, 1525142X},\n\tshorttitle = {Development of the nervous system in the acorn worm {Balanoglossus} simodensis},\n\turl = {https://onlinelibrary.wiley.com/doi/10.1111/j.1525-142X.2010.00428.x},\n\tdoi = {10.1111/j.1525-142X.2010.00428.x},\n\tlanguage = {en},\n\tnumber = {4},\n\turldate = {2021-07-27},\n\tjournal = {Evolution \\& Development},\n\tauthor = {Miyamoto, Norio and Nakajima, Yoko and Wada, Hiroshi and Saito, Yasunori},\n\tmonth = jul,\n\tyear = {2010},\n\tkeywords = {wrongWada},\n\tpages = {416--424},\n}\n\n
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\n \n\n \n \n Miyamoto, N., & Saito, Y.\n\n\n \n \n \n \n \n Morphological characterization of the asexual reproduction in the acorn worm Balanoglossus simodensis: Asexual reproduction in B. simodensis.\n \n \n \n \n\n\n \n\n\n\n Development, Growth & Differentiation, 52(7): 615–627. September 2010.\n \n\n\n\n
\n\n\n\n \n \n \"MorphologicalPaper\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{miyamoto_morphological_2010,\n\ttitle = {Morphological characterization of the asexual reproduction in the acorn worm \\textit{{Balanoglossus} simodensis}: {Asexual} reproduction in \\textit{{B}. simodensis}},\n\tvolume = {52},\n\tissn = {00121592},\n\tshorttitle = {Morphological characterization of the asexual reproduction in the acorn worm {Balanoglossus} simodensis},\n\turl = {https://onlinelibrary.wiley.com/doi/10.1111/j.1440-169X.2010.01197.x},\n\tdoi = {10.1111/j.1440-169X.2010.01197.x},\n\tlanguage = {en},\n\tnumber = {7},\n\turldate = {2021-07-27},\n\tjournal = {Development, Growth \\& Differentiation},\n\tauthor = {Miyamoto, Norio and Saito, Yasunori},\n\tmonth = sep,\n\tyear = {2010},\n\tpages = {615--627},\n}\n\n
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\n \n\n \n \n Morita, M., Awata, S., Takahashi, T., Takemura, A., & Kohda, M.\n\n\n \n \n \n \n \n Sperm motility adaptation to ion-differing aquatic environments in the Tanganyikan cichlid, Astatotilapia burtoni.\n \n \n \n \n\n\n \n\n\n\n Journal of Experimental Zoology Part A: Ecological Genetics and Physiology, 9999A: n/a–n/a. 2010.\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
\n
@article{morita_sperm_2010,\n\ttitle = {Sperm motility adaptation to ion-differing aquatic environments in the {Tanganyikan} cichlid, \\textit{{Astatotilapia} burtoni}},\n\tvolume = {9999A},\n\tissn = {19325223, 19325231},\n\turl = {https://onlinelibrary.wiley.com/doi/10.1002/jez.587},\n\tdoi = {10.1002/jez.587},\n\tlanguage = {en},\n\turldate = {2021-07-27},\n\tjournal = {Journal of Experimental Zoology Part A: Ecological Genetics and Physiology},\n\tauthor = {Morita, Masaya and Awata, Satoshi and Takahashi, Tetsumi and Takemura, Akihiro and Kohda, Masanori},\n\tyear = {2010},\n\tpages = {n/a--n/a},\n}\n\n
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\n \n\n \n \n Morita, M., Suwa, R., Iguchi, A., Nakamura, M., Shimada, K., Sakai, K., & Suzuki, A.\n\n\n \n \n \n \n \n Ocean acidification reduces sperm flagellar motility in broadcast spawning reef invertebrates.\n \n \n \n \n\n\n \n\n\n\n Zygote, 18(2): 103–107. May 2010.\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 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{morita_ocean_2010,\n\ttitle = {Ocean acidification reduces sperm flagellar motility in broadcast spawning reef invertebrates},\n\tvolume = {18},\n\tissn = {0967-1994, 1469-8730},\n\turl = {https://www.cambridge.org/core/product/identifier/S0967199409990177/type/journal_article},\n\tdoi = {10.1017/S0967199409990177},\n\tabstract = {Summary\n            Ocean acidification is now recognized as a threat to marine ecosystems; however, the effect of ocean acidification on fertilization in marine organisms is still largely unknown. In this study, we focused on sperm flagellar motility in broadcast spawning reef invertebrates (a coral and a sea cucumber). Below pH 7.7, the pH predicted to occur within the next 100 years, sperm flagellar motility was seriously impaired in these organisms. Considering that sperm flagellar motility is indispensable for transporting the paternal haploid genome for fertilization, fertilization taking place in seawater may decline in the not too distant future. Urgent surveys are necessary for a better understanding of the physiological consequences of ocean acidification on sperm flagellar motility in a wide range of marine invertebrates.},\n\tlanguage = {en},\n\tnumber = {2},\n\turldate = {2021-07-27},\n\tjournal = {Zygote},\n\tauthor = {Morita, Masaya and Suwa, Ryota and Iguchi, Akira and Nakamura, Masako and Shimada, Kazuaki and Sakai, Kazuhiko and Suzuki, Atsushi},\n\tmonth = may,\n\tyear = {2010},\n\tpages = {103--107},\n}\n\n
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\n Summary Ocean acidification is now recognized as a threat to marine ecosystems; however, the effect of ocean acidification on fertilization in marine organisms is still largely unknown. In this study, we focused on sperm flagellar motility in broadcast spawning reef invertebrates (a coral and a sea cucumber). Below pH 7.7, the pH predicted to occur within the next 100 years, sperm flagellar motility was seriously impaired in these organisms. Considering that sperm flagellar motility is indispensable for transporting the paternal haploid genome for fertilization, fertilization taking place in seawater may decline in the not too distant future. Urgent surveys are necessary for a better understanding of the physiological consequences of ocean acidification on sperm flagellar motility in a wide range of marine invertebrates.\n
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\n \n\n \n \n Ohta, N., Horie, T., Satoh, N., & Sasakura, Y.\n\n\n \n \n \n \n \n Transposon-Mediated Enhancer Detection Reveals the Location, Morphology and Development of the Cupular Organs, which are Putative Hydrodynamic Sensors, in the Ascidian Ciona intestinalis.\n \n \n \n \n\n\n \n\n\n\n Zoological Science, 27(11): 842–850. November 2010.\n \n\n\n\n
\n\n\n\n \n \n \"Transposon-MediatedPaper\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{ohta_transposon-mediated_2010,\n\ttitle = {Transposon-{Mediated} {Enhancer} {Detection} {Reveals} the {Location}, {Morphology} and {Development} of the {Cupular} {Organs}, which are {Putative} {Hydrodynamic} {Sensors}, in the {Ascidian} \\textit{{Ciona} intestinalis}},\n\tvolume = {27},\n\tissn = {0289-0003},\n\turl = {http://www.bioone.org/doi/abs/10.2108/zsj.27.842},\n\tdoi = {10.2108/zsj.27.842},\n\tlanguage = {en},\n\tnumber = {11},\n\turldate = {2021-07-27},\n\tjournal = {Zoological Science},\n\tauthor = {Ohta, Naoyuki and Horie, Takeo and Satoh, Nori and Sasakura, Yasunori},\n\tmonth = nov,\n\tyear = {2010},\n\tpages = {842--850},\n}\n\n
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\n \n\n \n \n Ooka, S., Katow, T., Yaguchi, S., Yaguchi, J., & Katow, H.\n\n\n \n \n \n \n \n Spatiotemporal expression pattern of an encephalopsin orthologue of the sea urchin Hemicentrotus pulcherrimus during early development, and its potential role in larval vertical migration: Expression and potential role of Hp-ECPN.\n \n \n \n \n\n\n \n\n\n\n Development, Growth & Differentiation, 52(2): 195–207. January 2010.\n \n\n\n\n
\n\n\n\n \n \n \"SpatiotemporalPaper\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{ooka_spatiotemporal_2010,\n\ttitle = {Spatiotemporal expression pattern of an encephalopsin orthologue of the sea urchin \\textit{{Hemicentrotus} pulcherrimus} during early development, and its potential role in larval vertical migration: {Expression} and potential role of {Hp}-{ECPN}},\n\tvolume = {52},\n\tissn = {00121592, 1440169X},\n\tshorttitle = {Spatiotemporal expression pattern of an encephalopsin orthologue of the sea urchin {Hemicentrotus} pulcherrimus during early development, and its potential role in larval vertical migration},\n\turl = {https://onlinelibrary.wiley.com/doi/10.1111/j.1440-169X.2009.01154.x},\n\tdoi = {10.1111/j.1440-169X.2009.01154.x},\n\tlanguage = {en},\n\tnumber = {2},\n\turldate = {2021-07-27},\n\tjournal = {Development, Growth \\& Differentiation},\n\tauthor = {Ooka, Shioh and Katow, Tomoko and Yaguchi, Shunsuke and Yaguchi, Junko and Katow, Hideki},\n\tmonth = jan,\n\tyear = {2010},\n\tpages = {195--207},\n}\n\n
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\n \n\n \n \n Prokopowicz, A. J., Rueckert, S., Leander, B. S., Michaud, J., & Fortier, L.\n\n\n \n \n \n \n \n Parasitic infection of the hyperiid amphipod Themisto libellula in the Canadian Beaufort Sea (Arctic Ocean), with a description of Ganymedes themistos sp. n. (Apicomplexa, Eugregarinorida).\n \n \n \n \n\n\n \n\n\n\n Polar Biology, 33(10): 1339–1350. October 2010.\n \n\n\n\n
\n\n\n\n \n \n \"ParasiticPaper\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{prokopowicz_parasitic_2010,\n\ttitle = {Parasitic infection of the hyperiid amphipod \\textit{{Themisto} libellula} in the {Canadian} {Beaufort} {Sea} ({Arctic} {Ocean}), with a description of \\textit{{Ganymedes} themistos} sp. n. ({Apicomplexa}, {Eugregarinorida})},\n\tvolume = {33},\n\tissn = {0722-4060, 1432-2056},\n\turl = {http://link.springer.com/10.1007/s00300-010-0821-0},\n\tdoi = {10.1007/s00300-010-0821-0},\n\tlanguage = {en},\n\tnumber = {10},\n\turldate = {2021-07-27},\n\tjournal = {Polar Biology},\n\tauthor = {Prokopowicz, Anna J. and Rueckert, Sonja and Leander, Brian S. and Michaud, Josée and Fortier, Louis},\n\tmonth = oct,\n\tyear = {2010},\n\tpages = {1339--1350},\n}\n\n
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\n \n\n \n \n Rueckert, S., Chantangsi, C., & Leander, B. S.\n\n\n \n \n \n \n \n Molecular systematics of marine gregarines (Apicomplexa) from North-eastern Pacific polychaetes and nemerteans, with descriptions of three novel species: Lecudina phyllochaetopteri sp. nov., Difficilina tubulani sp. nov. and Difficilina paranemertis sp. nov.\n \n \n \n \n\n\n \n\n\n\n International Journal of Systematic and Evolutionary Microbiology, 60(11): 2681–2690. November 2010.\n \n\n\n\n
\n\n\n\n \n \n \"MolecularPaper\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
\n
@article{rueckert_molecular_2010,\n\ttitle = {Molecular systematics of marine gregarines ({Apicomplexa}) from {North}-eastern {Pacific} polychaetes and nemerteans, with descriptions of three novel species: \\textit{{Lecudina} phyllochaetopteri} sp. nov., \\textit{{Difficilina} tubulani }sp. nov. and \\textit{{Difficilina} paranemertis} sp. nov.},\n\tvolume = {60},\n\tissn = {1466-5026, 1466-5034},\n\tshorttitle = {Molecular systematics of marine gregarines ({Apicomplexa}) from {North}-eastern {Pacific} polychaetes and nemerteans, with descriptions of three novel species},\n\turl = {https://www.microbiologyresearch.org/content/journal/ijsem/10.1099/ijs.0.016436-0},\n\tdoi = {10.1099/ijs.0.016436-0},\n\tabstract = {Most eugregarine apicomplexans infecting the intestines of marine invertebrates have been described within the family Lecudinidae and the type genus\n              Lecudina\n              . The diversity of these parasites is vast and poorly understood and only a tiny number of species has been characterized at the molecular phylogenetic level. DNA sequences coupled with high-resolution micrographs of trophozoites provide an efficient and precise approach for delimiting gregarine lineages from one another and also facilitate our overall understanding of gregarine biodiversity. In this study, phylogenetic analyses of small subunit (SSU) rDNA sequences from five (uncultivated) gregarines isolated from polychaetes and nemerteans in the North-eastern Pacific Ocean are presented.\n              Lecudina phyllochaetopteri\n              sp. nov. was isolated from the intestines of the parchment tubeworm\n              Phyllochaetopterus prolifica\n              (Polychaeta).\n              Lecudina longissima\n              and\n              Lecudina polymorpha\n              were both isolated from the intestines of\n              Lumbrineris japonica\n              (Polychaeta).\n              Difficilina tubulani\n              sp. nov. was isolated from the nemertean\n              Tubulanus polymorpha\n              and\n              Difficilina paranemertis\n              sp. nov. was isolated from the nemertean\n              Paranemertes peregrina\n              . This is the first report of molecular sequence data from gregarines that infect nemerteans. The two novel species of the genus\n              Difficilina\n              described in this study formed a strongly supported clade in the phylogenetic analyses. This\n              Difficilina\n              clade formed the sister group to a robust subclade of lecudinids consisting of\n              Lecudina longissima\n              ,\n              Lecudina phyllochaetopteri\n              sp. nov. (which lacked epicytic folds),\n              Lecudina tuzetae\n              , species of the genus\n              Lankesteria\n              and several sequences derived from previous environmental DNA surveys of marine biodiversity.},\n\tlanguage = {en},\n\tnumber = {11},\n\turldate = {2021-07-27},\n\tjournal = {International Journal of Systematic and Evolutionary Microbiology},\n\tauthor = {Rueckert, Sonja and Chantangsi, Chitchai and Leander, Brian S.},\n\tmonth = nov,\n\tyear = {2010},\n\tpages = {2681--2690},\n}\n\n
\n
\n\n\n
\n Most eugregarine apicomplexans infecting the intestines of marine invertebrates have been described within the family Lecudinidae and the type genus Lecudina . The diversity of these parasites is vast and poorly understood and only a tiny number of species has been characterized at the molecular phylogenetic level. DNA sequences coupled with high-resolution micrographs of trophozoites provide an efficient and precise approach for delimiting gregarine lineages from one another and also facilitate our overall understanding of gregarine biodiversity. In this study, phylogenetic analyses of small subunit (SSU) rDNA sequences from five (uncultivated) gregarines isolated from polychaetes and nemerteans in the North-eastern Pacific Ocean are presented. Lecudina phyllochaetopteri sp. nov. was isolated from the intestines of the parchment tubeworm Phyllochaetopterus prolifica (Polychaeta). Lecudina longissima and Lecudina polymorpha were both isolated from the intestines of Lumbrineris japonica (Polychaeta). Difficilina tubulani sp. nov. was isolated from the nemertean Tubulanus polymorpha and Difficilina paranemertis sp. nov. was isolated from the nemertean Paranemertes peregrina . This is the first report of molecular sequence data from gregarines that infect nemerteans. The two novel species of the genus Difficilina described in this study formed a strongly supported clade in the phylogenetic analyses. This Difficilina clade formed the sister group to a robust subclade of lecudinids consisting of Lecudina longissima , Lecudina phyllochaetopteri sp. nov. (which lacked epicytic folds), Lecudina tuzetae , species of the genus Lankesteria and several sequences derived from previous environmental DNA surveys of marine biodiversity.\n
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\n \n\n \n \n Rueckert, S., & Leander, B. S.\n\n\n \n \n \n \n \n Description of Trichotokara nothriae n. gen. et sp. (Apicomplexa, Lecudinidae) – An intestinal gregarine of Nothria conchylega (Polychaeta, Onuphidae).\n \n \n \n \n\n\n \n\n\n\n Journal of Invertebrate Pathology, 104(3): 172–179. July 2010.\n \n\n\n\n
\n\n\n\n \n \n \"DescriptionPaper\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{rueckert_description_2010,\n\ttitle = {Description of \\textit{{Trichotokara} nothriae} n. gen. et sp. ({Apicomplexa}, {Lecudinidae}) – {An} intestinal gregarine of {Nothria} conchylega ({Polychaeta}, {Onuphidae})},\n\tvolume = {104},\n\tissn = {00222011},\n\turl = {https://linkinghub.elsevier.com/retrieve/pii/S0022201110000650},\n\tdoi = {10.1016/j.jip.2010.03.005},\n\tlanguage = {en},\n\tnumber = {3},\n\turldate = {2021-07-27},\n\tjournal = {Journal of Invertebrate Pathology},\n\tauthor = {Rueckert, Sonja and Leander, Brian S.},\n\tmonth = jul,\n\tyear = {2010},\n\tpages = {172--179},\n}\n\n
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\n \n\n \n \n Rückert, S., Klimpel, S., & Palm, H. W.\n\n\n \n \n \n \n \n Parasites of cultured and wild brown-marbled grouper Epinephelus fuscoguttatus (Forsskål, 1775) in Lampung Bay, Indonesia: Parasites of cultured and wild brown-marbled grouper.\n \n \n \n \n\n\n \n\n\n\n Aquaculture Research, 41(8): 1158–1169. July 2010.\n \n\n\n\n
\n\n\n\n \n \n \"ParasitesPaper\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{ruckert_parasites_2010,\n\ttitle = {Parasites of cultured and wild brown-marbled grouper \\textit{{Epinephelus} fuscoguttatus} ({Forsskål}, 1775) in {Lampung} {Bay}, {Indonesia}: {Parasites} of cultured and wild brown-marbled grouper},\n\tvolume = {41},\n\tissn = {1355557X},\n\tshorttitle = {Parasites of cultured and wild brown-marbled grouper \\textit{{Epinephelus} fuscoguttatus} ({Forsskål}, 1775) in {Lampung} {Bay}, {Indonesia}},\n\turl = {https://onlinelibrary.wiley.com/doi/10.1111/j.1365-2109.2009.02403.x},\n\tdoi = {10.1111/j.1365-2109.2009.02403.x},\n\tlanguage = {en},\n\tnumber = {8},\n\turldate = {2021-07-27},\n\tjournal = {Aquaculture Research},\n\tauthor = {Rückert, Sonja and Klimpel, Sven and Palm, Harry Wilhelm},\n\tmonth = jul,\n\tyear = {2010},\n\tpages = {1158--1169},\n}\n\n
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\n \n\n \n \n Sasakura, Y., Suzuki, M. M., Hozumi, A., Inaba, K., & Satoh, N.\n\n\n \n \n \n \n \n Maternal factor-mediated epigenetic gene silencing in the ascidian Ciona intestinalis.\n \n \n \n \n\n\n \n\n\n\n Molecular Genetics and Genomics, 283(1): 99. January 2010.\n \n\n\n\n
\n\n\n\n \n \n \"MaternalPaper\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{sasakura_maternal_2010,\n\ttitle = {Maternal factor-mediated epigenetic gene silencing in the ascidian \\textit{{Ciona} intestinalis}},\n\tvolume = {283},\n\tissn = {1617-4615, 1617-4623},\n\turl = {http://link.springer.com/10.1007/s00438-009-0500-4},\n\tdoi = {10.1007/s00438-009-0500-4},\n\tlanguage = {en},\n\tnumber = {1},\n\turldate = {2021-07-27},\n\tjournal = {Molecular Genetics and Genomics},\n\tauthor = {Sasakura, Yasunori and Suzuki, Miho M. and Hozumi, Akiko and Inaba, Kazuo and Satoh, Nori},\n\tmonth = jan,\n\tyear = {2010},\n\tpages = {99},\n}\n\n
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\n \n\n \n \n Sasakura, Y., Yaguchi, J., Yaguchi, S., & Yajima, M.\n\n\n \n \n \n \n \n Excision and Transposition Activity of Tc1/ mariner Superfamily Transposons in Sea Urchin Embryos.\n \n \n \n \n\n\n \n\n\n\n Zoological Science, 27(3): 256–262. March 2010.\n \n\n\n\n
\n\n\n\n \n \n \"ExcisionPaper\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{sasakura_excision_2010,\n\ttitle = {Excision and {Transposition} {Activity} of {Tc1}/ \\textit{mariner} {Superfamily} {Transposons} in {Sea} {Urchin} {Embryos}},\n\tvolume = {27},\n\tissn = {0289-0003},\n\turl = {http://www.bioone.org/doi/abs/10.2108/zsj.27.256},\n\tdoi = {10.2108/zsj.27.256},\n\tlanguage = {en},\n\tnumber = {3},\n\turldate = {2021-07-27},\n\tjournal = {Zoological Science},\n\tauthor = {Sasakura, Yasunori and Yaguchi, Junko and Yaguchi, Shunsuke and Yajima, Mamiko},\n\tmonth = mar,\n\tyear = {2010},\n\tpages = {256--262},\n}\n\n
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\n \n\n \n \n Squires, L. N., Rubakhin, S. S., Wadhams, A. A., Talbot, K. N., Nakano, H., Moroz, L. L., & Sweedler, J. V.\n\n\n \n \n \n \n \n Serotonin and its metabolism in basal deuterostomes: insights from Strongylocentrotus purpuratus and Xenoturbella bocki.\n \n \n \n \n\n\n \n\n\n\n Journal of Experimental Biology, 213(15): 2647–2654. August 2010.\n \n\n\n\n
\n\n\n\n \n \n \"SerotoninPaper\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{squires_serotonin_2010,\n\ttitle = {Serotonin and its metabolism in basal deuterostomes: insights from \\textit{{Strongylocentrotus} purpuratus} and \\textit{{Xenoturbella} bocki}},\n\tvolume = {213},\n\tissn = {1477-9145, 0022-0949},\n\tshorttitle = {Serotonin and its metabolism in basal deuterostomes},\n\turl = {https://journals.biologists.com/jeb/article/213/15/2647/9729/Serotonin-and-its-metabolism-in-basal},\n\tdoi = {10.1242/jeb.042374},\n\tabstract = {SUMMARY\n            Serotonin (5-HT), an important molecule in metazoans, is involved in a range of biological processes including neurotransmission and neuromodulation. Both its creation and release are tightly regulated, as is its removal. Multiple neurochemical pathways are responsible for the catabolism of 5-HT and are phyla specific; therefore, by elucidating these catabolic pathways we glean greater understanding of the relationships and origins of various transmitter systems. Here, 5-HT catabolic pathways were studied in Strongylocentrotus purpuratus and Xenoturbella bocki, two organisms occupying distinct positions in deuterostomes. The 5-HT-related compounds detected in these organisms were compared with those reported in other phyla. In S. purpuratus, 5-HT-related metabolites include N-acetyl serotonin, γ-glutamyl-serotonin and 5-hydroxyindole acetic acid; the quantity and type were found to vary based on the specific tissues analyzed. In addition to these compounds, varying levels of tryptamine were also seen. Upon addition of a 5-HT precursor and a monoamine oxidase inhibitor, 5-HT itself was detected. In similar experiments using X. bocki tissues, the 5-HT-related compounds found included 5-HT sulfate, γ-glutamyl-serotonin and 5-hydroxyindole acetic acid, as well as 5-HT and tryptamine. The sea urchin metabolizes 5-HT in a manner similar to both gastropod mollusks, as evidenced by the detection of γ-glutamyl-serotonin, and vertebrates, as indicated by the presence of 5-hydroxyindole acetic acid and N-acetyl serotonin. In contrast, 5-HT metabolism in X. bocki appears more similar to common protostome 5-HT catabolic pathways.},\n\tlanguage = {en},\n\tnumber = {15},\n\turldate = {2021-07-27},\n\tjournal = {Journal of Experimental Biology},\n\tauthor = {Squires, Leah N. and Rubakhin, Stanislav S. and Wadhams, Andinet Amare and Talbot, Kristen N. and Nakano, Hiroaki and Moroz, Leonid L. and Sweedler, Jonathan V.},\n\tmonth = aug,\n\tyear = {2010},\n\tpages = {2647--2654},\n}\n\n
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\n SUMMARY Serotonin (5-HT), an important molecule in metazoans, is involved in a range of biological processes including neurotransmission and neuromodulation. Both its creation and release are tightly regulated, as is its removal. Multiple neurochemical pathways are responsible for the catabolism of 5-HT and are phyla specific; therefore, by elucidating these catabolic pathways we glean greater understanding of the relationships and origins of various transmitter systems. Here, 5-HT catabolic pathways were studied in Strongylocentrotus purpuratus and Xenoturbella bocki, two organisms occupying distinct positions in deuterostomes. The 5-HT-related compounds detected in these organisms were compared with those reported in other phyla. In S. purpuratus, 5-HT-related metabolites include N-acetyl serotonin, γ-glutamyl-serotonin and 5-hydroxyindole acetic acid; the quantity and type were found to vary based on the specific tissues analyzed. In addition to these compounds, varying levels of tryptamine were also seen. Upon addition of a 5-HT precursor and a monoamine oxidase inhibitor, 5-HT itself was detected. In similar experiments using X. bocki tissues, the 5-HT-related compounds found included 5-HT sulfate, γ-glutamyl-serotonin and 5-hydroxyindole acetic acid, as well as 5-HT and tryptamine. The sea urchin metabolizes 5-HT in a manner similar to both gastropod mollusks, as evidenced by the detection of γ-glutamyl-serotonin, and vertebrates, as indicated by the presence of 5-hydroxyindole acetic acid and N-acetyl serotonin. In contrast, 5-HT metabolism in X. bocki appears more similar to common protostome 5-HT catabolic pathways.\n
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\n \n\n \n \n Suwa, R., Nakamura, M., Morita, M., Shimada, K., Iguchi, A., Sakai, K., & Suzuki, A.\n\n\n \n \n \n \n \n Effects of acidified seawater on early life stages of scleractinian corals (Genus Acropora).\n \n \n \n \n\n\n \n\n\n\n Fisheries Science, 76(1): 93–99. January 2010.\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{suwa_effects_2010,\n\ttitle = {Effects of acidified seawater on early life stages of scleractinian corals ({Genus} \\textit{{Acropora}})},\n\tvolume = {76},\n\tissn = {0919-9268, 1444-2906},\n\turl = {http://link.springer.com/10.1007/s12562-009-0189-7},\n\tdoi = {10.1007/s12562-009-0189-7},\n\tlanguage = {en},\n\tnumber = {1},\n\turldate = {2021-07-27},\n\tjournal = {Fisheries Science},\n\tauthor = {Suwa, Ryota and Nakamura, Masako and Morita, Masaya and Shimada, Kazuaki and Iguchi, Akira and Sakai, Kazuhiko and Suzuki, Atsushi},\n\tmonth = jan,\n\tyear = {2010},\n\tpages = {93--99},\n}\n\n
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\n \n\n \n \n Terakubo, H. Q., Nakajima, Y., Sasakura, Y., Horie, T., Konno, A., Takahashi, H., Inaba, K., Hotta, K., & Oka, K.\n\n\n \n \n \n \n \n Network structure of projections extending from peripheral neurons in the tunic of ascidian larva.\n \n \n \n \n\n\n \n\n\n\n Developmental Dynamics, 239(8): 2278–2287. August 2010.\n \n\n\n\n
\n\n\n\n \n \n \"NetworkPaper\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 12 downloads\n \n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{terakubo_network_2010,\n\ttitle = {Network structure of projections extending from peripheral neurons in the tunic of ascidian larva},\n\tvolume = {239},\n\tissn = {10588388},\n\turl = {https://onlinelibrary.wiley.com/doi/10.1002/dvdy.22361},\n\tdoi = {10.1002/dvdy.22361},\n\tlanguage = {en},\n\tnumber = {8},\n\turldate = {2021-07-27},\n\tjournal = {Developmental Dynamics},\n\tauthor = {Terakubo, Hiroshi Q. and Nakajima, Yoko and Sasakura, Yasunori and Horie, Takeo and Konno, Alu and Takahashi, Hiroki and Inaba, Kazuo and Hotta, Kohji and Oka, Kotaro},\n\tmonth = aug,\n\tyear = {2010},\n\tpages = {2278--2287},\n}\n\n
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\n \n\n \n \n Yaguchi, S., Yaguchi, J., Angerer, R. C., Angerer, L. M., & Burke, R. D.\n\n\n \n \n \n \n \n TGFβ signaling positions the ciliary band and patterns neurons in the sea urchin embryo.\n \n \n \n \n\n\n \n\n\n\n Developmental Biology, 347(1): 71–81. November 2010.\n \n\n\n\n
\n\n\n\n \n \n \"TGFβPaper\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_tgf_2010,\n\ttitle = {{TGFβ} signaling positions the ciliary band and patterns neurons in the sea urchin embryo},\n\tvolume = {347},\n\tissn = {00121606},\n\turl = {https://linkinghub.elsevier.com/retrieve/pii/S0012160610010018},\n\tdoi = {10.1016/j.ydbio.2010.08.009},\n\tlanguage = {en},\n\tnumber = {1},\n\turldate = {2021-07-27},\n\tjournal = {Developmental Biology},\n\tauthor = {Yaguchi, Shunsuke and Yaguchi, Junko and Angerer, Robert C. and Angerer, Lynne M. and Burke, Robert D.},\n\tmonth = nov,\n\tyear = {2010},\n\tpages = {71--81},\n}\n\n
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\n \n\n \n \n Yaguchi, S., Yaguchi, J., Wei, Z., Shiba, K., Angerer, L. M., & Inaba, K.\n\n\n \n \n \n \n \n ankAT-1 is a novel gene mediating the apical tuft formation in the sea urchin embryo.\n \n \n \n \n\n\n \n\n\n\n Developmental Biology, 348(1): 67–75. December 2010.\n \n\n\n\n
\n\n\n\n \n \n \"ankAT-1Paper\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_ankat-1_2010,\n\ttitle = {{ankAT}-1 is a novel gene mediating the apical tuft formation in the sea urchin embryo},\n\tvolume = {348},\n\tissn = {00121606},\n\turl = {https://linkinghub.elsevier.com/retrieve/pii/S0012160610010754},\n\tdoi = {10.1016/j.ydbio.2010.09.011},\n\tlanguage = {en},\n\tnumber = {1},\n\turldate = {2021-07-27},\n\tjournal = {Developmental Biology},\n\tauthor = {Yaguchi, Shunsuke and Yaguchi, Junko and Wei, Zheng and Shiba, Kogiku and Angerer, Lynne M. and Inaba, Kazuo},\n\tmonth = dec,\n\tyear = {2010},\n\tpages = {67--75},\n}\n\n
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\n \n\n \n \n Yamazaki, Y., Akashi, R., Banno, Y., Endo, T., Ezura, H., Fukami-Kobayashi, K., Inaba, K., Isa, T., Kamei, K., Kasai, F., Kobayashi, M., Kurata, N., Kusaba, M., Matuzawa, T., Mitani, S., Nakamura, T., Nakamura, Y., Nakatsuji, N., Naruse, K., Niki, H., Nitasaka, E., Obata, Y., Okamoto, H., Okuma, M., Sato, K., Serikawa, T., Shiroishi, T., Sugawara, H., Urushibara, H., Yamamoto, M., Yaoita, Y., Yoshiki, A., & Kohara, Y.\n\n\n \n \n \n \n \n NBRP databases: databases of biological resources in Japan.\n \n \n \n \n\n\n \n\n\n\n Nucleic Acids Research, 38(Database): D26–D32. January 2010.\n \n\n\n\n
\n\n\n\n \n \n \"NBRPPaper\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 4 downloads\n \n \n\n \n \n \n \n \n \n \n\n  \n \n \n\n\n\n
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@article{yamazaki_nbrp_2010,\n\ttitle = {{NBRP} databases: databases of biological resources in {Japan}},\n\tvolume = {38},\n\tissn = {0305-1048, 1362-4962},\n\tshorttitle = {{NBRP} databases},\n\turl = {http://nar.oxfordjournals.org/lookup/doi/10.1093/nar/gkp996},\n\tdoi = {10.1093/nar/gkp996},\n\tlanguage = {en},\n\tnumber = {Database},\n\turldate = {2021-07-27},\n\tjournal = {Nucleic Acids Research},\n\tauthor = {Yamazaki, Y. and Akashi, R. and Banno, Y. and Endo, T. and Ezura, H. and Fukami-Kobayashi, K. and Inaba, K. and Isa, T. and Kamei, K. and Kasai, F. and Kobayashi, M. and Kurata, N. and Kusaba, M. and Matuzawa, T. and Mitani, S. and Nakamura, T. and Nakamura, Y. and Nakatsuji, N. and Naruse, K. and Niki, H. and Nitasaka, E. and Obata, Y. and Okamoto, H. and Okuma, M. and Sato, K. and Serikawa, T. and Shiroishi, T. and Sugawara, H. and Urushibara, H. and Yamamoto, M. and Yaoita, Y. and Yoshiki, A. and Kohara, Y.},\n\tmonth = jan,\n\tyear = {2010},\n\tpages = {D26--D32},\n}\n\n
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