{"id":173,"date":"2019-07-03T03:08:02","date_gmt":"2019-07-03T03:08:02","guid":{"rendered":"https:\/\/www.mmbs.s.u-tokyo.ac.jp\/wp\/?page_id=173"},"modified":"2024-10-23T07:18:53","modified_gmt":"2024-10-23T07:18:53","slug":"%e6%9c%80%e8%bf%91%e3%81%ae%e6%a5%ad%e7%b8%be","status":"publish","type":"page","link":"https:\/\/www.mmbs.s.u-tokyo.ac.jp\/wp-en\/%e6%9c%80%e8%bf%91%e3%81%ae%e6%a5%ad%e7%b8%be","title":{"rendered":"Recent publication"},"content":{"rendered":"<h5><strong><span style=\"color: #000000;\">Peer-reviewed Original Research Paper<\/span><\/strong><\/h5>\r\n<p><span style=\"color: #0000ff;\"><strong>in press &amp; accepted<\/strong><\/span><\/p>\r\n<hr \/>\r\n<p><span style=\"color: #0000ff;\"><strong>2023<\/strong><\/span><\/p>\r\n<ul>\r\n\t<li><strong>Nakamura M<\/strong>,\u00a0<strong>Oguchi K<\/strong>,\u00a0<strong>Sato DS<\/strong>, Kato S,\u00a0<strong>Okanishi M<\/strong>, Hayashi Y., Aguado MT,\u00a0<strong>Miura T<\/strong>\u00a0(2023) Morphological, histological and gene-expression analyses on stolonization in the Japanese green syllid,\u00a0<em>Megasyllis nipponica<\/em>\u00a0(Annelida, Syllidae). Sci Rep 13: 19419.\u00a0<\/li>\r\n\t<li>\r\n<p><strong>Inui N, Miura T<\/strong>\u00a0(2023) Homeotic transformation in a terrestrial isopod: Insights into the appendage identity in crustaceans. Sci Nat 110: 47.<\/p>\r\n<\/li>\r\n\t<li>\r\n<p><strong>Yao A, Nakamura M, Kohtsuka H<\/strong>, Sunobe T,\u00a0<strong>Miura T<\/strong>\u00a0(2023)\u00a0Gonadal and cellular dynamics during protogynous sex change in the harlequin sandsmelt\u00a0<em>Parapercis pulchella<\/em>.\u00a0J Fish Biol\u00a0103:\u00a0published online.<\/p>\r\n<\/li>\r\n\t<li>\r\n<p><strong>Oguchi K, Miura T<\/strong>\u00a0(2023) Upregulation of Hox genes leading to caste-specific morphogenesis in a termite. EvoDevo 14: 12.<\/p>\r\n<\/li>\r\n\t<li>\r\n<p><strong>Kimbara R, Kohtsuka H,\u00a0Miura T\u00a0<\/strong>(2023)\u00a0Differences of sucker-formation processes depending on benthic or pelagic post-hatching lifestyles in two octopus species. Biol Bull 244\/245:\u00a0published online.<\/p>\r\n<\/li>\r\n\t<li>\r\n<p><strong>Kobayashi K, Oguchi K, Miura T<\/strong>\u00a0(2023) Physiological and developmental mechanism of regressive molt in a damp-wood termite\u00a0<em>Hodotermopsis sjostedti<\/em>. Front Ecol Evol 11: 1200081.<\/p>\r\n<\/li>\r\n\t<li>\r\n<p><strong>Chiyoda S, Oguchi K, Miura T<\/strong>\u00a0(2023) Appearance of a transparent protrusion containing two pairs of legs on the apodous ring preceding the anamorphic molt in a millipede,\u00a0<em>Niponia nodulosa<\/em>. Front Zool 20: 14.<\/p>\r\n<\/li>\r\n\t<li>\r\n<p>Zhu L, Shimizu K, Kintsu H, Negishi L, Kurumizaka H, Sakuda S, Kuriyama I, Atsumi T, Maeyama K, Nagai K,\u00a0<strong>Kawabata M, Kotsuka H, Miura T, Oka Y<\/strong>, Ifuku S, Nagata K, Suzuki M\u00a0\u00a0(2023) Structural and functional analyses of chitinolytic enzymes in the nacreous layer of Pinctada fucata. Biochem Eng J191: 108780.<\/p>\r\n<\/li>\r\n\t<li>\r\n<p>Sensui N, Itoh Y, Okura N, Shiba K, Baba S, Inaba K, and\u00a0<strong>Yoshida M\u00a0<\/strong>(2023) Spawning-induced pH increase activates sperm attraction and fertilization abilities in eggs of the ascidian,\u00a0<em>Phallusia<\/em>\u00a0<em>philippinensis\u00a0<\/em>and\u00a0<em>Ciona intestinalis.\u00a0<\/em>Int J Mol Sci 24(3): 2666.\u00a0<\/p>\r\n<\/li>\r\n\t<li>\r\n<p>Maruyama T, Yamaguchi M, Tame A, Toyofuku T, Chibana H and<strong>\u00a0Yoshida M<\/strong>\u00a0(2023) Retractile moton of the longitudinal flagellum in a dinoflagellate,\u00a0<em>Akashiwo sanguinea.\u00a0<\/em>Cytologia 88: 321-329.<\/p>\r\n<\/li>\r\n\t<li>\r\n<p><strong>Kijima T, Kurokawa D<\/strong>, Sasakura Y, Ogasawara M, Aratake S, Yoshida K, and\u00a0<strong>Yoshida M<\/strong>. (2023) CatSper mediates the chemotactic behavior and motility of the ascidian sperm. Front Cell Dev Biol 11: 1136537.<\/p>\r\n<\/li>\r\n\t<li>\r\n<p><strong>Kobayashi I<\/strong>\u00a0and Fujita T (2023) A new shallow-water species of the genus\u00a0<em>Odontohenricia<\/em>\u00a0from Northern Japan (Asteroidea: Spinulosida: Echinasteridae). Species Diversity 28: 45\u201350.<\/p>\r\n<\/li>\r\n\t<li>\r\n<p>Gomi K, Nagai S, Nomura S, Sato R,<strong>\u00a0Kobayashi I<\/strong>, Yasuda H and Lee H (2023) Effect of time elapsed after sacrifice on the stiffness of male beetle head horns. Adv Exp Mechanics 47\u201352.<\/p>\r\n<\/li>\r\n\t<li>\r\n<p>Jimi N,\u00a0<strong>Kobayashi I<\/strong>, Moritaki T, Woo SP, Tsuchida S, and Fujiwara Y (2023) Insights into the diversification of deep-sea endoparasites: Phylogenetic relationships within\u00a0<em>Dendrogaster<\/em>\u00a0(Crustacea: Ascothoracida) and a new species description from a western Pacific seamount. Deep-Sea Res Part I 196, 104025.<\/p>\r\n<\/li>\r\n\t<li>\r\n<p>Hookabe N,\u00a0<strong>Kohtsuka H<\/strong>, Fujiwara Y, Tsuchida S and Ueshima R (2023) Three new species in Tetrastemma Ehrenberg, 1828 (Nemertea, Monostilifera) from sublittoral to upper bathyal zones of the northwestern Pacific. ZooKeys, 1146, 135\u2013146.<\/p>\r\n<\/li>\r\n\t<li>\r\n<p><strong>Okanishi M, Kohtsuka H<\/strong>, Wu Q, Shinji J, Shibata N, Tamada T, Nakano T and Minamoto T (2023) Development of two new sets of PCR primers for eDNA metabarcoding of brittle stars (Echinodermata, Ophiuroidea). Metabarcoding &amp; Metagenomics MBMG 7, 51\u201372.<\/p>\r\n<\/li>\r\n\t<li>Kobayashi, I., Watanabe, H.,\u00a0<strong>Oguchi K<\/strong>\u00a0and\u00a0<strong>Kohtsuka H<\/strong>\u00a0(2023) Rediscovery of rarely encountered sea star,\u00a0<em>Dipsacaster sagaminus\u00a0<\/em>Hayashi, 1973 (Paxillosida: Astropectinidae). Aquatic Animals AA2023-15.<\/li>\r\n\t<li>\r\n<p>Ogawa,A.\u00a0<strong>Kobayashi I, Kohtsuka H<\/strong>\u00a0and Fujita T (2023) Two new species of the bathyal holothurian genus Pannychia (Elasipodida, Laetmogonidae) from Japanese waters. Zootaxa 5323 (1), 105\u2013125.<\/p>\r\n<\/li>\r\n\t<li>\r\n<p><strong>Kohtsuka H<\/strong>\u00a0and\u00a0<strong>Okanishi M<\/strong>\u00a0(2023) First record and northernmost record of basket star\u00a0<em>Astroglymma sculpta<\/em>\u00a0collected from the Sagami Bay. Biogeography 25, 32\u201335.<\/p>\r\n<\/li>\r\n\t<li>\r\n<p><strong>Kohtsuka H<\/strong>, Oya T, Abe S and\u00a0<strong>Okanishi M<\/strong>\u00a0(2023) First record and northernmost record of basket star\u00a0<em>Astroglymma sculpta<\/em>\u00a0collected from the Sagami Bay. Biogeography 25, 28\u201331.<\/p>\r\n<\/li>\r\n<\/ul>\r\n<hr \/>\r\n<p><span style=\"color: #0000ff;\"><strong>2022<\/strong><\/span><\/p>\r\n<ul>\r\n\t<li>Kakizawa S*, Hosokawa T*,\u00a0<strong>Oguchi K<\/strong>, Miyakoshi K, Fukatsu T. (2022) Spiroplasma as facultative bacterial symbionts of stinkbugs. Frontiers in Microbiology 13: 1044771. https:\/\/doi.org\/10.3389\/fmicb.2022.1044771 *: equally contributed<\/li>\r\n\t<li>Nishide Y*,\u00a0<strong>Oguchi K*<\/strong>, Murakami M, Moriyama M, Koga R, Fukatsu T. (2022) Endosymbiotic bacteria of the boar louse Haematopinus apri (Insecta: Phthiraptera: Anoplura). Frontiers in Microbiology 13: 962252. https:\/\/doi.org\/10.3389\/fmicb.2022.962252 *: equally contributed<\/li>\r\n\t<li>Koga R, Moriyama M, Onodera-Tanifuji N, Ishii Y, Hiroki Takai H, Mizutani M,\u00a0<strong>Oguchi K<\/strong>, Okura R, Suzuki S, Goto Y, Hayashi T, Seki M, Suzuki Y, Nishide Y, Hosokawa T, Wakamoto Y, Furusawa C, Fukatsu T (2022) Single mutation makes Escherichia coli an insect mutualist. Nature Microbiology 7(8): 1141-1150. https:\/\/doi.org\/10.1038\/s41564-022-01179-9<\/li>\r\n<\/ul>\r\n<ul style=\"list-style-type: disc;\">\r\n\t<li>\r\n<p>Ueno D, <span style=\"text-decoration: underline;\"><strong>Kohtsuka H<\/strong><\/span>, Maeno A (2022) Ceratosomicola oki n. sp., a new species of the copepod (Cyclopoida: Splanchnotrophidae) parasitic on the chromodoridid nudibranch, Glossodoris misakinosibogae Baba, 1988 off the Oki Islands, Japan, with microanatomical observation using micro-CT. Zoolgical Science 39 (1): 115\u2013123. https:\/\/doi.org\/10.2108\/zs210063<\/p>\r\n<\/li>\r\n\t<li>\r\n<p>Kajihara H, Ganaha I, <span style=\"text-decoration: underline;\"><strong>Kohtsuka H<\/strong><\/span> (2022) Lineid Heteronemerteans (Nemertea: Pilidiophora) from Sagami Bay, Japan, with Some Proposals for the Family-Level Classification System. Zoolgical Science 39(1): 62\u201380. https:\/\/doi.org\/10.2108\/zs21005<\/p>\r\n<\/li>\r\n\t<li>\r\n<p>\u5c71\u7530\u548c\u5f66\uff0c<span style=\"text-decoration: underline;\"><strong>\u5e78\u585a\u4e45\u5178<\/strong><\/span>\uff0c\u5c71\u7530\u535a\u548c (2022) \u4e09\u6d66\u534a\u5cf6\u306b\u304a\u3051\u308b\u30ae\u30f3\u30bf\u30ab\u30cf\u30de\uff08\u8edf\u4f53\u52d5\u7269\u9580\uff0c\u8179\u8db3\u7db1\uff09\u306e\u751f\u606f\u72b6\u6cc1. \u89b3\u97f3\u5d0e\u81ea\u7136\u535a\u7269\u9928\u7814\u7a76\u5831\u544a \u305f\u305f\u3089\u306f\u307e (25): 35\u201336.<\/p>\r\n<\/li>\r\n\t<li>\r\n<p>\u5c71\u7530\u548c\u5f66\uff0c<span style=\"text-decoration: underline;\"><strong>\u5e78\u585a\u4e45\u5178<\/strong><\/span> (2022) \u76f8\u6a21\u6e7e\u3067\u63a1\u96c6\u3055\u308c\u305f\u30df\u30c4\u30ab\u30c9\u30dc\u30e9\uff08\u8edf\u4f53\u52d5\u7269\u9580\uff0c\u8179\u8db3\u7db1\uff09. \u89b3\u97f3\u5d0e\u81ea\u7136\u535a\u7269\u9928\u7814\u7a76\u5831\u544a \u305f\u305f\u3089\u306f\u307e 25: 37.<\/p>\r\n<\/li>\r\n\t<li>\r\n<p>Tsuyuki A, <span style=\"text-decoration: underline;\"><strong>Kohtsuka H<\/strong><\/span>, Hookabe N. Kajihara H (2022) First record of Bulaceros porcellanus Newman &amp; Cannon, 1996 (Platyhelminthes, Polycladida, Cotylea) from Japanese waters, with inference of the phylogenetic position of the genus in Pseudocerotidae. Plankton and Benthos Research 17(2): 147\u2013155. doi: 10. 3800\/pbr. 17. 147<\/p>\r\n<\/li>\r\n\t<li>\r\n<p>Ishida Y, <span style=\"text-decoration: underline;\"><strong>Kohtsuka H<\/strong><\/span>, Kiyomoto M. Fujita T (2022) Producing processes of the trace fossil Asteriacites lumbricalis revisited: different ophiuroid behaviors produce different trace forms. Paleontological Research 26(3): 270\u2013282. doi:10.2517\/PR200042<\/p>\r\n<\/li>\r\n\t<li>\r\n<p>Yamana Y, Solis-Marin F. A, Yamamoto M, Ota Y, <span style=\"text-decoration: underline;\"><strong>Kohtsuka H<\/strong><\/span>, Omori A, Iwasaki K, Setiamarga D. H. E (2022) Partial redescriptions of three \u201chook papillae\u201d holothurians (Echinodermata: Holothuroidea: Apodida: Chiridotidae: Taeniogyrinae): Taeniogyrus japonicus (Marenzeller, 1882), T. dendyi (Mortensen, 1925), Scoliorhapis theelii (Heding, 1928)\u201d holothurians: T. japonicus; T. dendyi (Mortensen, 1925); and Scoliorhapis theelii (Heding, 1928). Zootaxa 5138 (4): 351\u2013387. https:\/\/ doi.org\/ 10.11646 \/zootaxa. 5138.4.1<\/p>\r\n<\/li>\r\n\t<li>\r\n<p>Jimi N, Hasegawa N, Taru M, Oya Y, <span style=\"text-decoration: underline;\"><strong>Kohtsuka H<\/strong><\/span>, Tsuchida S, Fujiwara Y, Woo S. P (2022) Five new species of Flabelligera (Flabelligeridae: Annelida) from Japan. Species Diversity 27: 101\u2013111. DOI: 10. 12782 \/specdiv.27.101<\/p>\r\n<\/li>\r\n\t<li>\r\n<p>Hookabe N, Kajihara H, Chernyshev A. V, Jimi N, Hasegawa N, <span style=\"text-decoration: underline;\"><strong>Kohtsuka H<\/strong><\/span>, Okanishi M, Tani K, Fujiwara Y, Tsuchida S, Ueshima, R (2022) Molecular phylogeny of the genus Nipponnemertes (Nemertea: Monostilifera: Cratenemertidae): descriptions of 10 new species and insights into body-size reduction in a newly discovered clade. Frontiers in Marine Science 9: 906383. https:\/\/doi.org\/10.3389\/fmars.2022.906383<\/p>\r\n<\/li>\r\n\t<li>\r\n<p>Ariyama H. <span style=\"text-decoration: underline;\"><strong>Kohtsuka H<\/strong><\/span> (2022) Three new species of the family Aoridae collected from Sagami Bay, central Japan (Crustacea: Amphipoda). Zootaxa 5159 (3): 393-413. https:\/\/doi.org\/10.11646\/zootaxa.5159.3.5<\/p>\r\n<\/li>\r\n\t<li>\r\n<p>Ariyama H. <span style=\"text-decoration: underline;\"><strong>Kohtsuka H<\/strong><\/span> (2022) Metarhachotropis parva, a new genus and species of Eusiridae (Crustacea: Amphipoda) from Sagami Bay, central Japan. Zootaxa 5188(1): 095\u2013100. DOI: 10. 11646 \/ zootaxa. 5188.1.6.<\/p>\r\n<\/li>\r\n\t<li>\r\n<p>Kushida Y, Imahara Y, Fromont J, Wilson N, Gomez O, Kimura T, Tsuchida S, Fujiwara Y, Higashiji T, Nakano H, <span style=\"text-decoration: underline;\"><strong>Kohtsuka H<\/strong><\/span>, Fernandez-Silva I, Reimer J. D (2022) Exploring the trends of adaptation and evolution of sclerites with regards to habitat depth in sea pens. PeerJ 10:e13929 http : \/\/ dx. doi. Org \/10.7717\/peerj.13929<\/p>\r\n<\/li>\r\n\t<li>\r\n<p><span style=\"text-decoration: underline;\"><strong>Kohtsuka H<\/strong><\/span>, Kitazawa K, Oji T, Kogo I (2022) A deep-water comatulid, Chondrometra rugosa A. H. Clark, 1918 (Echinodermata, Crinoidea, Comatulida, Charitometridae), first record from Japan. Biogeography 24: 1\u20134.<\/p>\r\n<\/li>\r\n\t<li>\r\n<p><span style=\"text-decoration: underline;\"><strong>Kohtsuka H<\/strong><\/span>, Tanaka, H (2022) Pedinidae sea urchin, Caenopedina pulchella (Echinodermtata, Echinoidea), newly recorded from Japanese waters. Biogeography 24: 5 \u20138.<\/p>\r\n<\/li>\r\n\t<li>\r\n<p>Matsunami M, Watanabe D, Fujiwara K, Hayashi Y, Shigenobu S, <span style=\"text-decoration: underline;\"><strong>Miura T<\/strong><\/span>, Maekawa K (2022) Transcriptomics on social interactions in termites: Effects of soldier presence. Front Ecol Evol 10: in press. Doi: 10.3389\/fevo.2022.924151<\/p>\r\n<\/li>\r\n<\/ul>\r\n<ul>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>Otomo Y<\/strong><\/span>, <span style=\"text-decoration: underline;\"><strong>Shinji J<\/strong><\/span>, <span style=\"text-decoration: underline;\"><strong>Kohtsuka H<\/strong><\/span>, <span style=\"text-decoration: underline;\"><strong>Miura T<\/strong><\/span>(2022) Ontogenetic expressions of sexually dimorphic traits in a skeleton shrimp Caprella scaura (Crustacea: Amphipoda). Zool Sci 39: in press.<\/li>\r\n\t<li>Hayashi Y, <span style=\"text-decoration: underline;\"><strong>Oguchi K<\/strong><\/span>, <span style=\"text-decoration: underline;\"><strong>Nakamura M<\/strong><\/span>, Koshikawa S, <span style=\"text-decoration: underline;\"><strong>Miura T<\/strong><\/span> (2022) Construction of a massive genetic resource by transcriptome sequencing and genetic characterization of Megasyllis nipponica (Annelida: Syllidae). Genes Genet Syst 97: in press.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>Udagawa S<\/strong><\/span>, Ikeda T, <span style=\"text-decoration: underline;\"><strong>Oguchi K<\/strong><\/span>, <span style=\"text-decoration: underline;\"><strong>Kohtsuka H<\/strong><\/span>, <span style=\"text-decoration: underline;\"><strong>Miura T<\/strong><\/span> (2022) Hydrocoel morphogenesis forming the pentaradial body plan in a sea cucumber, Apostichopus japonicus. Sci Rep 12: in press.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>Oguchi K<\/strong><\/span>, Koshikawa S, <span style=\"text-decoration: underline;\"><strong>Miura T<\/strong><\/span> (2022) Hormone-related genes heterochronically and modularly regulate neotenic differentiation in termites. Dev Biol 485: 70-79.<\/li>\r\n\t<li>Jimi N, Fujimoto S, Fujiwara Y, <span style=\"text-decoration: underline;\"><strong>Oguchi K<\/strong><\/span>, <span style=\"text-decoration: underline;\"><strong>Miura T<\/strong><\/span> (2022) Four new species of Ctenodrilus, Raphidrilus, and Raricirrus (Cirratuliformia, Annelida) in Japanese waters, with notes on thier phylogenetic position. PeerJ 10: e13044.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>Miura T<\/strong><\/span>, <span style=\"text-decoration: underline;\"><strong>Oguchi K<\/strong><\/span>, <span style=\"text-decoration: underline;\"><strong>Ymaguchi H<\/strong><\/span>,<span style=\"text-decoration: underline;\"><strong> Nakamura M<\/strong><\/span>, <span style=\"text-decoration: underline;\"><strong>Sato D<\/strong><\/span>, <span style=\"text-decoration: underline;\"><strong>Kobayashi K<\/strong><\/span>, Kutsukake N, Miura K, Hayashi Y, Hojo M, Maekawa K, Shigenobu S, Kano T, Ishiguro A (2022) Understanding of superorganisms: collective behavior, differentiation and social organization. Artif Life and Robot 27: published online.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>Okanishi M<\/strong><\/span>, Mitsui S, Thuy B. Fossil lateral arm plates of\u00a0<em>Stegophiura sladeni<\/em> (Echinodermata: Ophiuroidea: Ophiurida) from the Middle Pleistocene of Japan. Paleontological Research. in press.\u00a0<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>Kimbara R<\/strong><\/span>, Kohtsuka H, Abe S, Oguchi K, <span style=\"text-decoration: underline;\"><strong>Miura T<\/strong><\/span> (2022) Sucker formation in a bigfin reef squid: Comparison between arms and tentacles. J Morphol 283: in press.<\/li>\r\n\t<li>Shigenobu S, Hayashi Y, Watanabe D, Tokuda G, Hojo MY, Toga K, Saiki R, Yaguchi H, Masuoka Y, Suzuki Y, Suzuki S, Kimura M, Matsunami M, Sugime Y, Oguchi K, Niimi T, Gotoh H, Mojo MK, Miyazaki S, Toyoda A, <span style=\"text-decoration: underline;\"><strong>Miura T<\/strong><\/span>, Maekawa K (2022) Genomic and transcriptomic analyses of the subterranean termite <em>Reticulitermes speratus<\/em>: gene duplication facilitates social evolution. Proc Natl Acad Sci USA 119: in press.<\/li>\r\n\t<li>Aguado MT, Ponz-Segrelles G, Glasby CJ, Ribeiro RP, <span style=\"text-decoration: underline;\"><strong>Nakamura M<\/strong><\/span>, Oguchi K, Omori A, <span style=\"text-decoration: underline;\"><strong>Kohtsuka H<\/strong><\/span>, Fisher C, Ise Y, Jimi N, <span style=\"text-decoration: underline;\"><strong>Miura T<\/strong> <\/span>(2022) <em>Ramisyllis kingghidorahi<\/em> n. sp., a new branching annelid from Japan. Org Div Evol 22: in press.<\/li>\r\n<\/ul>\r\n<hr \/>\r\n<p><span style=\"color: #0000ff;\"><strong>2021<\/strong><\/span><\/p>\r\n<ul>\r\n\t<li>Hookabe N, <span style=\"text-decoration: underline;\"><strong>Kohtsuka H<\/strong><\/span>., Kajihara, H. (2021) A histology-free description of <em>Tetrastemma cupido<\/em> sp. nov. (Nemertea: Eumonostilfera) from Sagami Bay, Japan. Marine Biology Research 17: 467-474.<\/li>\r\n\t<li>Ishida Y, <span style=\"text-decoration: underline;\"><strong>Kohtsuka H<\/strong><\/span>, Kiyomoto M, Fujita T. (2021) Producing processes of the trace fossil Asteriacites lumbricalis revisited: defferent ophiuroid behaviors produce different trace forms, Paleontological Research and Fossils. <strong>\u65e5\u672c\u53e4\u751f\u7269\u5b66\u4f1a2020\u5e74\u5ea6\u8ad6\u6587\u8cde<\/strong> <br \/>\r\nTsuyuki A, <span style=\"text-decoration: underline;\"><strong>Kohtsuka H<\/strong><\/span>, Kajihara H. (2021) Description of a new species of <em>Prosthiostomum<\/em> (Platyhelminthes: Polycladida) and its three known congeners from Misaki, Japan, with inference of their phylogenetic positions within Prosthiostomidae, Zoological Studies, 60: 29. 1\u201320. doi:10.6620\/ZS.2021.60-29<\/li>\r\n\t<li>\r\n<div><span style=\"text-decoration: underline;\"><strong>Ikenaga J,<\/strong><\/span> Kajihara H. <span style=\"text-decoration: underline;\"><strong>Yoshida<\/strong><strong> M<\/strong><\/span>, (2021) <i>Kulikovia alborostrata<\/i> and <i>Kulikovia fulva<\/i> comb. nov. (Nemertea: Heteronemertea ) are Sister Species with Prezygotic Isolating Barriers. 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Biogeograpy 22: 51\u201356.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u5e78\u585a\u4e45\u5178<\/strong><\/span>\uff0c\u5c71\u7530\u535a\u548c\uff0c\u5c71\u7530\u548c\u5f66\uff0c<span style=\"text-decoration: underline;\"><strong>\u5ca1\u897f\u653f\u5178<\/strong><\/span>\u00a0(2020) \u76f8\u6a21\u6e7e\u306e\u6f6e\u9593\u5e2f\u304b\u3089\u6f6e\u4e0b\u5e2f\u3067\u5f97\u3089\u308c\u305f4\u7a2e\u306e\u30a6\u30cb\u985e\uff08\u68d8\u76ae\u52d5\u7269\u9580: \u6d77\u80c6\u7db1\uff09. \u89b3\u97f3\u5d0e\u81ea\u7136\u535a\u7269\u9928\u7814\u7a76\u5831\u544a \u305f\u305f\u3089\u306f\u307e 24: 12\u201316.<\/li>\r\n\t<li>\u5c0f\u53e3\u6643\u5e73\uff0c<span style=\"text-decoration: underline;\"><strong>\u5e78\u585a\u4e45\u5178<\/strong><\/span>. (2020) \u7fa4\u4f53\u6027\u30d2\u30c9\u30ed\u866b\u985e\u30ae\u30f3\u30ab\u30af\u30e9\u30b2\u304a\u3088\u3073\u30ab\u30c4\u30aa\u30ce\u30a8\u30dc\u30b7\u306e\u8272\u5f69\u4fdd\u5b58\u6cd5\u306e\u78ba\u7acb. \u89b3\u97f3\u5d0e\u81ea\u7136\u535a\u7269\u9928\u7814\u7a76\u5831\u544a \u305f\u305f\u3089\u306f\u307e 24: 17\u201320.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u5e78\u585a\u4e45\u5178<\/strong><\/span>(2020) \u76f8\u6a21\u6e7e\u306b\u304a\u3051\u308b\u30aa\u30aa\u30a6\u30df\u30b7\u30c0\u306e\u653e\u7cbe\u30fb\u653e\u5375\u884c\u52d5\u306e\u89b3\u5bdf. \u89b3\u97f3\u5d0e\u81ea\u7136\u535a\u7269\u9928\u7814\u7a76\u5831\u544a \u305f\u305f\u3089\u306f\u307e 24: 38\u201340.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u5e78\u585a\u4e45\u5178<\/strong><\/span>\uff0c\u5c71\u7530\u548c\u5f66(2020) \u76f8\u6a21\u6e7e\u57ce\u30f6\u5cf6\u304b\u3089\u5f97\u3089\u308c\u305f\u30a2\u30ab\u30aa\u30cb\u30ac\u30bc \uff08\u68d8\u76ae\u52d5\u7269\u9580: \u6d77\u80c6\u7db1\uff09\u306e\u8a18\u9332. \u89b3\u97f3\u5d0e\u81ea\u7136\u535a\u7269\u9928\u7814\u7a76\u5831\u544a \u305f\u305f\u3089\u306f\u307e 24: 52\u201355.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u5e78\u585a\u4e45\u5178<\/strong><\/span>\uff0c\u5c71\u7530\u535a\u548c\uff0c\u5c71\u7530\u548c\u5f66 (2020) \u57ce\u30f6\u5cf6\u304b\u3089\u5f97\u3089\u308c\u305f\u76f8\u6a21\u6e7e\u7523\u30af\u30ed\u30a6\u30cb\uff08\u68d8\u76ae\u52d5\u7269\u9580: \u30a6\u30cb\u7db1\uff09\u306e\u8a18\u9332\uff0e\u65e5\u672c\u751f\u7269\u5730\u7406\u5b66\u4f1a\u4f1a\u5831 75: 65\u201367.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u5e78\u585a\u4e45\u5178<\/strong><\/span>\uff0c\u5712\u5c71\u8cb4\u4e4b (2020) \u5c71\u53e3\u770c\u65e5\u672c\u6d77\u6cbf\u5cb8\u3067\u5f97\u3089\u308c\u305f\u30a4\u30a4\u30b8\u30de\u30d5\u30af\u30ed\u30a6\u30cb\uff08\u68d8\u76ae\u52d5\u7269\u9580\uff0c\u30a6\u30cb\u7db1\uff0c\u30d5\u30af\u30ed\u30a6\u30cb\u76ee\uff09\u306e\u8a18\u9332. \u65e5\u672c\u751f\u7269\u5730\u7406\u5b66\u4f1a\u4f1a\u5831 75: 72\u201375.<\/li>\r\n\t<li>Li Y, <span style=\"text-decoration: underline;\"><strong>Omori A<\/strong><\/span>, Flores RL, Satterfield S, Nguyen C, Ota T, <span style=\"text-decoration: underline;\"><strong>Tsurugaya T<\/strong><\/span>, Ikuta T, Ikeo K, <span style=\"text-decoration: underline;\"><strong>Kikuchi M<\/strong><\/span>, Leong JCK, Reich A, Hao M, Wan W, Dong Y, Ren Y, Zhang C, Zeng T, Uesaka M, Uchida Y, Li X, <span style=\"text-decoration: underline;\"><strong>Shibata TF<\/strong><\/span>, Bino T, Ogawa K, Shigenobu S, <span style=\"text-decoration: underline;\"><strong>Kondo M<\/strong><\/span>, Wang F, Chen L, Wessel G, Saiga H, Cameron RA, Livingston B, Bradham C, Wang W, Irie N. 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(2019)\u3000A comprehensive taxonomic list of brittle stars (Echinodermata: Ophiuroidea) from submarine caves of the Ryukyu Islands, southwestern Japan, with a description of a rare species, <em>Dougaloplus echinatus<\/em> (Amphiuridae). <em>Zootaxa<\/em>\u00a04571(1): 73-98.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>Okanishi M<\/strong><\/span>, Ishida Y, Mistui S. (2019) Fossil gorgonocephalid basket stars (Echinodermata: Ophiuroidea: Euryalida) from the Middle Pleistocene of Japan; the first record from the Indo Pacific region. <em>Paleontological Research<\/em> 23(3): 179-185.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>Okanishi M<\/strong><\/span>, Oba Y, Fujita Y. (2019) Brittle stars from a submarine cave of Christmas Island, northwestern Australia, with description of a new species <em>Ophiopsila xmasilluminans<\/em> (Echinodermata: Ophiuroidea) and notes on its behavior. <em>Raffles Bulletin of Zoology <\/em>67: 421-439.<\/li>\r\n\t<li>Shindo M, Inui M, Kang W, Tamano M, Tingwei C, Takada S, Hibino T, <span style=\"text-decoration: underline;\"><strong>Yoshida M<\/strong><\/span>, Yoshida K, Okada H, Iwamoto T, Miyado K, Kawano N. (2019) Deletion of a seminal gene cluster reinforces a crucial role of SVS2 in male fertility. <em>International Journal of Molecular Sciences<\/em> 20(18): 4557. doi:10.3390\/ijms20184557<\/li>\r\n\t<li>Shono T, Thiery A, Cooper RL, <span style=\"text-decoration: underline;\"><strong>Kurokawa D<\/strong><\/span>, Britz R, Okabe M, Fraser GJ. (2019) Evolution and developmental diversity of skin spines in pufferishes. <em>iScience<\/em> 19: 1248-1259.<\/li>\r\n\t<li>Sugime Y, <span style=\"text-decoration: underline;\"><strong>Oguchi K<\/strong><\/span>, Gotoh H, Hayashi Y, Matsunami M, Shigenobu S, Koshikawa S, <span style=\"text-decoration: underline;\"><strong>Miura T<\/strong><\/span> (2019) Termite soldier mandibles are elongated by dachshund under hormonal and Hox gene controls. <em>Development<\/em> 146: dev171942.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>Togawa Y<\/strong><\/span>, Shinji J, Fukatsu T, Miura T (2019) Developmental process of cerata in the cladobranchian sea slug <em>Pteraeolidia semperi<\/em> (Mollusca: Gastropoda: Nudibranchia). <em>Zoological Science<\/em> 36(5): 387-394.<\/li>\r\n\t<li>Yamakawa S, Morino Y, <span style=\"text-decoration: underline;\"><strong>Kohtsuka H<\/strong><\/span>, Wada H (2019) Retinoic Acid Signaling Regulates the Metamorphosis of Feather Stars (Crinoidea, Echinodermata): Insight into the Evolution of the Animal Life Cycle. <em>Biomolecules<\/em> 10(1): 37.<\/li>\r\n<\/ul>\r\n<hr \/>\r\n<p><span style=\"color: #0000ff;\"><b>2018<\/b><\/span><\/p>\r\n<ul>\r\n\t<li>Arima H, Tsutsui H, Sakamoto A, <span style=\"text-decoration: underline;\"><strong>Yoshida M<\/strong><\/span>, Okamura Y (2018) Induction of divalent cation permeability by heterologous expression of a voltage sensor domain. <em>BBA \u2013 Biomembranes<\/em> 1860: 981-990. <a href=\"10.1016\/j.bbamem.2018.01.004\" target=\"_blank\" rel=\"noopener noreferrer\">doi: 10.1016\/j.bbamem.2018.01.004<\/a><\/li>\r\n\t<li>Baker AN, <span style=\"text-decoration: underline;\"><strong>Okanishi M<\/strong><\/span>, Pawson DL (2018) Euryalid brittle stars from the International Indian Ocean Expedition 1963\u201564 (Echinodermata: Ophiuroidea: Euryalida). <em>Zootaxa<\/em>\u00a04392(1):1-27. <a href=\"10.11646\/zootaxa.4392.1.1\" target=\"_blank\" rel=\"noopener noreferrer\">doi:10.11646\/zootaxa.4392.1.1<\/a><\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>Kohtsuka H<\/strong><\/span>, Tsuchiya Y, Nakano H (2018) First report of live <em>Balanometra balanoides<\/em> (Echinodermata: Crinoidea) with observation on its coloration, collected from Sagami Sea. <em>Biogeography<\/em> 20: 41-44.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u5e78\u585a\u4e45\u5178<\/strong><\/span>\u3001\u52a0\u85e4\u54f2\u54c9\u3001\u516b\u5dfb\u9b8e\u592a\u3001\u4f50\u3005\u6728\u7ae0\uff082018\uff09\u9e7f\u5150\u5cf6\u770c\u3068\u548c\u6b4c\u5c71\u770c\u3067\u5f97\u3089\u308c\u305f\u30de\u30ae\u30b5\u30f3\u30a6\u30df\u30b7\u30c0\uff08\u68d8\u76ae\u52d5\u7269\u9580: \u30a6\u30df\u30e6\u30ea\u7db1\uff09\u306e\u65b0\u7523\u5730\u8a18\u9332\uff0e<em>\u65e5\u672c\u751f\u7269\u5730\u7406\u5b66\u4f1a\u4f1a\u5831<\/em> 73: 169-172.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u5e78\u585a\u4e45\u5178<\/strong><\/span>\u3001\u5712\u5c71\u8cb4\u4e4b\uff082018\uff09\u6a19\u672c\u306b\u57fa\u3065\u304f\u30e6\u30ad\u30ec\u30f3\u30b2\u30a6\u30cb\uff08\u68d8\u76ae\u52d5\u7269\u9580\uff0c\u30a6\u30cb\u7db1\uff0c\u30db\u30f3\u30a6\u30cb\u76ee\uff09\u306e\u65e5\u672c\u6d77\u304b\u3089\u306e\u8a18\u9332\uff0e<em>\u65e5\u672c\u751f\u7269\u5730\u7406\u5b66\u4f1a\u4f1a\u5831<\/em> 73: 210\u2013214.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u5e78\u585a\u4e45\u5178<\/strong><\/span>\u3001\u5712\u5c71\u8cb4\u4e4b\uff082018\uff09\u6a19\u672c\u306b\u57fa\u3065\u304f\u30ea\u30e5\u30a6\u30aa\u30a6\u30a6\u30cb\uff08\u68d8\u76ae\u52d5\u7269\u9580\uff0c\u30a6\u30cb\u7db1\uff0c\u30aa\u30a6\u30b5\u30de\u30a6\u30cb\u76ee\uff09\u306e\u65e5\u672c\u6d77\u304b\u3089\u306e\u8a18\u9332\uff0e<em>\u65e5\u672c\u751f\u7269\u5730\u7406\u5b66\u4f1a\u4f1a\u5831<\/em> 73: 173\u2013176.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u5e78\u585a\u4e45\u5178<\/strong><\/span>\u3001\u52a0\u85e4\u54f2\u54c9\uff082018\uff09\u7d00\u4f0a\u534a\u5cf6\u6cbf\u5cb8\u3067\u5f97\u3089\u308c\u305f\u71b1\u5e2f\u30fb\u4e9c\u71b1\u5e2f\u6027\u30a6\u30df\u30b7\u30c0\u985e\u30c6\u30f3\u30b0\u30a6\u30df\u30b7\u30c0\uff08\u68d8\u76ae\u52d5\u7269\u9580: \u30a6\u30df\u30e6\u30ea\u7db1\uff09\u306b\u8a18\u9332\uff0e<em>\u5357\u7d00\u751f\u7269<\/em> 60(2): 174-177.<\/li>\r\n\t<li>Ogawa K, Kaji T, <span style=\"text-decoration: underline;\"><strong>Miura T<\/strong><\/span> (2018) Pheromone gland development and monoterpenoid synthesis specific to oviparous females in the pea aphid. <em>Zoological Letters<\/em> 4: 9. Doi:10.1186\/s40851-018-0092-0<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>Okanishi M<\/strong><\/span>, Fujita Y (2018) First finding of anchialine and submarine cave dwelling brittle stars from the Pacific Ocean, with descriptions of new species of <em>Ophiolepis<\/em> and <em>Ophiozonella<\/em> (Echinodermata: Ophiuroidea: Amphilepidida). <em>Zootaxa<\/em> 4377: 1-20. DOI:10.11646\/zootaxa.4377.1.1<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>Okanishi M<\/strong><\/span>, Fujita T (2018) A taxonomic review of the genus <em>Astrodendrum<\/em> (Echinodermata, Ophiuroidea, Euryalida, Gorgonocephalidae) with description of a new species from Japan. <em>Zootaxa<\/em> 4392(2): 289-310. 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Marine Sponge That Induce a Protrusion Phenotype in Cultured Mammalian Cells. <em>Journal of Natural Products<\/em> 81(4): 1108-1112. doi 10.1021\/acs.jnatprod.8b00101.<\/li>\r\n\t<li>Yamana Y, <span style=\"text-decoration: underline;\"><strong>Kohtsuka H<\/strong><\/span> (2018) <em>Dendrochirotid holothurians<\/em> (Echinodermata: Holothuroidea: Dendrochirotida) from offshore Misaki, with descriptions of four new species. <em>Zootaxa<\/em> 4455 (3): 429-453. doi:10.11646\/zootaxa.4455.3.<\/li>\r\n\t<li>Watanabe T, Shibata H, Ebine M, Tsuchikawa H, Matsumori N, Murata M, <span style=\"text-decoration: underline;\"><strong>Yoshida M<\/strong><\/span>, Morisawa M, Lin S, Yamauchi K, Sakai K, Oishi T (2018) Synthesis and complete structure determination of sperm activating and attracting factor Isolated from the ascidian <em>Ascidia sydneiensis<\/em>. <em>Journal of Natural Products<\/em> 81(4): 985-997. doi: 10.1021\/acs.jnatprod.7b01052<\/li>\r\n\t<li>Yoshida K, Shiba K, Sakamoto A, <span style=\"text-decoration: underline;\"><strong>Ikenaga J<\/strong><\/span>, Matsunaga S, Inaba K, <span style=\"text-decoration: underline;\"><strong>Yoshida M<\/strong><\/span> (2018) Ca2+ efflux via plasma membrane Ca2+-ATPase mediates chemotaxis in ascidian sperm. <em>Scientific Reports<\/em> 8: 16622. doi:10.1038\/s41598-018-35013-2. <a href=\"https:\/\/www.s.u-tokyo.ac.jp\/ja\/info\/6128\/\">\u30d7\u30ec\u30b9\u30ea\u30ea\u30fc\u30b9<\/a>, <a href=\"https:\/\/www.youtube.com\/watch?v=j6N3CGUyx0Y&amp;feature=youtu.be\">\u7814\u7a76\u5ba4\u306e\u6249<\/a>, <a href=\"https:\/\/academist-cf.com\/journal\/?p=9486\">academist journal<\/a><\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>Yoshida M<\/strong><\/span>, Yoshida K (2018) Modulation of sperm motility and function prior to fertilization in <em>Reproductive and Developmental Strategies: the Continuity of Life<\/em> (Eds. by K. Kobayashi, T. Kitano, Y. Iwao, &amp; M. Kondo) Springer, Tokyo Japan. pp437-462. doi:10.1007\/978-4-431-56609-0_21. ISBN: 978-4431566076.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>Yoshida M<\/strong><\/span>, Kawano N, Iwamoto T, Yoshida K (2018) Chapter 61:Seminal vesicle \u2013 structure \u2013 in <em>Encycropedia of Reproduction 2nd. Edition Vol. 1: Male Reproduction<\/em>\u00a0(Eds. by Skinner M, J\u00e9gou B) Elsevier pp.344-348. doi: 10.1016\/B978-0-12-801238-3.64599-3<\/li>\r\n<\/ul>\r\n\r\n<hr \/>\r\n<p><span style=\"color: #0000ff;\"><strong>2017<\/strong><\/span><\/p>\r\n<ul>\r\n\t<li>Gallego V, <span style=\"text-decoration: underline;\"><strong>Yoshida M<\/strong><\/span>, <span style=\"text-decoration: underline;\"><strong>Kurokawa D<\/strong><\/span>, Asturiano JF, Fraser GJ (2017) Embryonic development of the grass pufferfish (<em>Takifugu niphobles<\/em>): From egg to larvae. <em>Theriogenology<\/em> 90: 191-196.<\/li>\r\n\t<li>Gotoh H, Zinna RA, Ishikawa Y, Miyakawa H, Ishikawa A, Sugime Y, Emlen DJ, Lavine LC, <span style=\"text-decoration: underline;\"><strong>Miura T<\/strong><\/span> (2017) The function of appendage patterning genes in mandible development of the sexually dimorphic stag beetle. <em>Developmental Biology<\/em> 422: 24-32.<\/li>\r\n\t<li>Haramoto Y, Saijyo T, Tanaka T, Furuno N, Suzuki A, Ito Y, <span style=\"text-decoration: underline;\"><strong>Kondo M<\/strong><\/span>, Taira M, Takahashi S. (2017) Identification and comparative analyses of Siamois cluster genes in <em>Xenopus laevis<\/em> and tropicalis. <em>Developmental Biology<\/em> 426(2): 374-383. pii: S0012-1606(16) 30087-2. doi: 10.1016\/j.ydbio.2016.07.015.<\/li>\r\n\t<li>Hayashi Y, Maekawa K, Nalepa CA, <span style=\"text-decoration: underline;\"><strong>Miura T<\/strong><\/span>, Shigenobu S (2017) Transcriptome sequencing and estimation of DNA methylation level in the subsocial wood-feeding cockroach <em>Cryptocercus punctulatus<\/em> (Blattodea: Cryptocercidae). <em>Applied Entomology and Zoology<\/em> 52: 643-651.<\/li>\r\n\t<li>Hayashi Y, <span style=\"text-decoration: underline;\"><strong>Oguchi K<\/strong><\/span>, Yamaguchi K, Kitade O, Maekawa K, <span style=\"text-decoration: underline;\"><strong>Miura T<\/strong><\/span>, Shigenobu S (2017) Male-specific molecular genetic markers in the Japanese subterranean termite <em>Reticulitermes speratus<\/em> (Isoptera: Rhinotermitidae). <em>Insectes Sociaux<\/em> 64: 357-364.<\/li>\r\n\t<li>Itoyama T, Kawahara M, Fukui M, Sugahara Y, <span style=\"text-decoration: underline;\"><strong>Kurokawa D<\/strong><\/span>, Kawaguchi M, Kitamura S, Nakayama K, Murakami Y (2017) Nervous system disruption and swimming abnormality in early-hatched pufferfish (<em>Takifugu niphobles<\/em>) larvae caused by pyrene is independent of aryl hydrocarbon receptors. <em>Marine Pollution Bulletin<\/em> 124: 792-797.<\/li>\r\n\t<li>Kakui K, Suzuki A, Nakano H, <span style=\"text-decoration: underline;\"><strong>Kohtsuka H<\/strong><\/span> (2017) Habitat of tanaidacean <em>Apseudes nipponicus<\/em> Shino, 1937. <em>Bulletin of the Kitakyushu Museum of Natural History and Human History Series A (Natural History)<\/em> 15: 1-3.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u5e78\u585a\u4e45\u5178<\/strong><\/span>\u30fb<span style=\"text-decoration: underline;\"><strong>\u95a2\u85e4\u5b88<\/strong><\/span>\u30fb<span style=\"text-decoration: underline;\"><strong>\u5927\u68ee\u7d39\u4ec1<\/strong><\/span>\u30fb\u5ca1\u897f\u653f\u5178 \uff082017\uff09\u795e\u5948\u5ddd\u770c\u4e09\u5d0e\u3067\u5f97\u3089\u308c\u305f\u30bb\u30ce\u30c6\u30c5\u30eb\u30e2\u30c5\u30eb\u306e\u5e7c\u4f53\u306e\u8a18\u9332\uff0e<em>\u65e5\u672c\u751f\u7269\u5730\u7406\u5b66\u4f1a\u4f1a\u5831<\/em> 71: 229-235.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u5e78\u585a\u4e45\u5178<\/strong><\/span>\uff082017\uff09\u5cf6\u6839\u770c\u96a0\u5c90\u6d45\u6d77\u306b\u304a\u3051\u308b\u65e5\u672c\u6d77\u521d\u8a18\u9332\u306e\u30d2\u30b2\u30af\u30b7\u30a6\u30df\u30b7\u30c0\uff08\u68d8\u76ae\u52d5\u7269\u9580\uff0c\u30a6\u30df\u30e6\u30ea\u7db1\uff09. <em>\u65e5\u672c\u751f\u7269\u5730\u7406\u5b66\u4f1a\u4f1a\u5831<\/em> 71: 271-276.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u5e78\u585a\u4e45\u5178<\/strong><\/span>\u3001\u5712\u5c71\u8cb4\u4e4b\u3001\u79cb\u5409\u82f1\u96c4\u3001\u5e83\u6a4b\u6559\u8cb4 (2017) \u97ff\u7058\u304a\u3088\u3073\u96a0\u5c90\u304b\u3089\u5f97\u3089\u308c\u305f\u65e5\u672c\u6d77\u521d\u8a18\u9332\u306e\u30c8\u30b2\u30b7\u30e2\u30d5\u30ea\u30a6\u30df\u30b7\u30c0<em>Alisometrac owstoni<\/em>\uff08\u68d8\u76ae\u52d5\u7269\uff1a\u30a6\u30df\u30e6\u30ea\u7db1\uff09. <em>\u65e5\u672c\u751f\u7269\u5730\u7406\u5b66\u4f1a\u4f1a\u5831<\/em> 71: 173-177.<\/li>\r\n\t<li>Komai T, <span style=\"text-decoration: underline;\"><strong>Kohtsuka H<\/strong><\/span> (2017) A new deep-sea species of the caridean genus <em>Bresilia Calman<\/em>, 1896 (Crustacea: Decapoda: Bresijiidae) from Sagami Bay, central Japan. <em>Zootaxa<\/em> 4299(3): 405-414. https:\/\/doi.org\/10.11646\/zootaxa.4299.3.6<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>Kondo M<\/strong><\/span>, Yamamoto T, Takahashi S, Taira M (2017) Comprehensive analyses of Hox gene expression in <em>Xenopus laevis<\/em> embryos and adult tissues. <em>Development, Growth &amp; Differentiation<\/em> 59: 526-539. doi:10.1111\/dgd.12382<\/li>\r\n\t<li>Mawaribuchi S, Takahashi S, Wada M, Uno Y, Matsuda Y, <span style=\"text-decoration: underline;\"><strong>Kondo M<\/strong><\/span>, Fukui A, Takamatsu N, Taira M, Ito M. 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(2016) Seminal vesicle proteins SVS3 and SVS4 facilitate SVS2 effect on sperm capacitation. <em>Reproduction<\/em> 152: 313-321. doi:10.1530\/REP-15-0551.<\/li>\r\n\t<li>Kang W, Kawano N, Yamatoya K, Yoshida K, <span style=\"text-decoration: underline;\"><strong>Yoshida M<\/strong><\/span>, Miyado K. Critical roles of seminal plasma on sperm migration in the female reproductive tract. <em>Journal of Reproduction Engineering<\/em> 18: 5-10.<\/li>\r\n\t<li>Session A, Uno Y, Kwon T,\u2026. <span style=\"text-decoration: underline;\"><strong>Kondo M<\/strong><\/span>\uff0874\u540d\u4e2d10\u756a\u76ee\uff09, \u2026., Harland R, Taira M, and Rokhsar D (2016) Genome evolution in the allotetraploid frog <em>Xenopus laevis<\/em>. <em>Nature<\/em> 538(7625): 336-343. doi: 10.1038\/nature19840<\/li>\r\n\t<li>Watanabe M, Yasuoka Y, Mawaribuchi S, Kuretani A, Ito M, <span style=\"text-decoration: underline;\"><strong>Kondo M<\/strong><\/span>, Ochi H, Ogino H, Fukui A, Taira M, Kinoshita T. (2016) Conservatism and variability of gene expression profiles among homeologous transcription factors in <em>Xenopus laevis<\/em>. <em>Developmental Biology<\/em> 426(2): 301-324. pii: S0012-1606(16) 30053-7. doi: 10.1016\/j.ydbio.2016.09.017.<\/li>\r\n\t<li>Yamana Y, <span style=\"text-decoration: underline;\"><strong>Kohtsuka H<\/strong><\/span> (2016) Rediscovery of <em>Plesiocolochirus inornatus<\/em> (Marenzeller, 1881) (Echinodermata: Holothuroidea: Dendrochirotida: Cucumariidae) in Japan and new information on its external and ossicle morphology. <em>Plankton and Benthos Research<\/em>\u00a011(2): 57-70. http:\/\/doi.org\/10.3800\/pbr.11.57<\/li>\r\n<\/ul>\r\n\r\n<hr \/>\r\n<p><span style=\"color: #0000ff;\"><strong>2015<\/strong><\/span><\/p>\r\n<ul>\r\n\t<li>Agostini S, Wada S, Kon K, <span style=\"text-decoration: underline;\"><strong>Omori A<\/strong><\/span>, <span style=\"text-decoration: underline;\"><strong>Kohtsuka H<\/strong><\/span>, Fujimura H, Tsuchiya Y, Sato T, Shinagawa H, Yamada Y, Inaba K (2015) Geochemistry of two shallow CO2 seeps in Shikine Island (Japan) and their potential for ocean acidification research. <em>Regional Studies in Marine Science<\/em> 2: 45-53.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>Araki N<\/strong><\/span>, Trencsenyi G, Krasznai ZT, Nizsaloczki E, Sakamoto A, Kawano N, Miyado K, Yoshida K, <span style=\"text-decoration: underline;\"><strong>Yoshida M<\/strong><\/span>. 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Shiba, K, Miyashita T, Baba, S., <span style=\"text-decoration: underline;\"><strong>Yoshida M<\/strong><\/span>, Kamimura S (2015) Chemotactic response with a constant delay-time mechanism in <em>Ciona<\/em> spermatozoa revealed by a high time resolution analysis of flagellar motility. <em>Biology Open<\/em> 4: 109-118.<\/li>\r\n\t<li>Nakano H, Kakui K, Kajihara H, Shimomura M, Jimi N, Tomioka S, Tanaka H, Yamasaki H, Tanaka M, Izumi T, <span style=\"text-decoration: underline;\"><strong>Okanishi M<\/strong><\/span>, Yamada Y, Shinagawa H, Sato T, Tsuchiya Y, <span style=\"text-decoration: underline;\"><strong>Omori A<\/strong><\/span>, <span style=\"text-decoration: underline;\"><strong>Sekifuji M<\/strong><\/span>, <span style=\"text-decoration: underline;\"><strong>Kohtsuka H<\/strong><\/span> (2015) JAMBIO coastal organism joint surveys reveals undiscovered biodiversity around Sagami Bay. <em>Regional Studies in Marine Science<\/em> 2: 77-81.<\/li>\r\n\t<li>Nonaka MI, Zsigmond E, Kudo A, Kawakami H, Yoshida K, <span style=\"text-decoration: underline;\"><strong>Yoshida M<\/strong><\/span>, Kawano N, Miyado K, Nonaka M, Wetsel RA (2015) Epididymal C4b-binding protein is processed and degraded during transit through the duct and is not essential for fertility. <em>Immunobiology<\/em> 220: 467-475.<\/li>\r\n\t<li>Obuchi M, <span style=\"text-decoration: underline;\"><strong>Omori A<\/strong><\/span>\u00a0(2015) A new genus and new species of family Antedonidae (Echinodermata: Crinoidea) from southern Japan. <em>Zootaxa<\/em> 3972(3): 441-449.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>Ono C<\/strong><\/span>, <span style=\"text-decoration: underline;\"><strong>Yoshida M<\/strong><\/span>, Kawano N, Miyado K, Umezawa A (2015) <em>Staphylococcus epidermidis<\/em> is involved in a mechanism for female reproduction in mice. <em>Regenerative Therapy<\/em> 1: 11-17.<\/li>\r\n\t<li>Reich A, Dunn C, <span style=\"text-decoration: underline;\"><strong>Akasaka K<\/strong><\/span>, Wessel G (2015) Phylogenomic snalyses of Echinodermata support the sister groups of Asterozoa and Echinozoa. <em>PLoS ONE<\/em> 10: e0119627. doi:10.1371\/journal.pone.0119627<\/li>\r\n\t<li>Takana M, Yu R, <span style=\"text-decoration: underline;\"><strong>Kurokawa D<\/strong><\/span> (2015) Anterior migration of lateral plate mesodermal cells during embryogenesis of the pufferfish <em>Takifugu niphobles<\/em>. <em>Journal of Anatomy<\/em> 227: 81-88.<\/li>\r\n\t<li>Yoshida M, Kajikawa E, <span style=\"text-decoration: underline;\"><strong>Kurokawa D<\/strong><\/span>, Tokunaga T, Ohnishi A, Yonemura S, Kobayashi K, Kiyonari H, Aizawa S (2015) Conserved and divergent expression patterns of markers of axial development in eutherian mammals. <em>Developmental Dynamics<\/em> 245: 67-86.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>Yoshida M<\/strong><\/span>, Inaba K (2015) Sperm Chemotaxis in Urochordates. in <em>Flagellar Mechanics and Sperm Guidance<\/em> (Ed. by Cosson J), Bentham Science Publishers, Sharjah, UAE pp.183-207. ISBN 978-1-68108-129-8 <br \/>\r\ndoi:10.2174\/97816810812811150101<\/li>\r\n<\/ul>\r\n\r\n<hr \/>\r\n<p><span style=\"color: #0000ff;\"><strong>2014<\/strong><\/span><\/p>\r\n<ul>\r\n\t<li>Gallego V, P\u00e9rez L, Asturiano JF, <span style=\"text-decoration: underline;\"><strong>Yoshida M<\/strong><\/span> (2014) Sperm motility parameters and spermatozoa morphometric characterization in marine species: a study of swimmer and sessile species. <em>Theriogenology<\/em> 82: 668-676.<\/li>\r\n\t<li>Hiradate Y, Inoue H, Kobayashi N, Shirakata Y, Suzuki Y, Goto A, Roh S, Uchida T , Katoh K, <span style=\"text-decoration: underline;\"><strong>Yoshida M<\/strong><\/span>, Sato E, Tanemura K (2014) Neurotensin enhances sperm capacitation and the acrosome reaction. <em>Biology of Reproduction<\/em> 91(2): Article 53, 1-9.<\/li>\r\n\t<li>Kawano N, Araki N, Yoshida K, Hibino T, Ohnami N, Makino M, Kanai S, Hasuwa H, <span style=\"text-decoration: underline;\"><strong>Yoshida M<\/strong><\/span>, Miyado K, Umezawa A (2014) Seminal vesicle protein SVS2 is required for sperm survival in the uterus. <em>Proceedings of the National Academy of Sciences of the United States of America<\/em> 111: 4145-4150.<\/li>\r\n\t<li>Kogure Y, <span style=\"text-decoration: underline;\"><strong>Kohtsuka H<\/strong><\/span> (2014) A new ophidiasterid sea star (Echinodermata, Asteroidea), <em>Copidaster japonicus<\/em>, from Japan. <em>Biogeography<\/em> 16: 41-46\uff0e<\/li>\r\n\t<li>Sakamaki K, Shimizu K, Iwata H, Imai K, Satou Y, Funayama N, Nozaki M, Yajima M, Nishimura O, Higuchi M, Chiba K, Yoshimoto M, Kimura H, Gracey AY, Shimizu T, Tomii K, Gotoh O, <span style=\"text-decoration: underline;\"><strong>Akasaka K<\/strong><\/span>, Sawasaki T, Miller DJ (2014) The apoptotic initiator caspase-8: its functional ubiquity and genetic diversity during animal evolution. Molecular Biology and Evolution 31: 3282-3301.<\/li>\r\n\t<li>Sugahara Y, Kawaguchi M, Itoyama T, <span style=\"text-decoration: underline;\"><strong>Kurokawa D<\/strong><\/span>, Tosa Y, Kitamura S, Handoh IC, Nakayama K, Murakami Y. (2014) Pyrene induces a reduction in midbrain size and abnormal swimming behavior in early-hatched pufferfish larvae. <em>Marine Pollution Bulletin<\/em> 85:479-486.<\/li>\r\n\t<li>Yazaki I, Tsurugaya T, Santella L, Chun JT, Amore G, Kusunoki S, Asada A, Togo T, <span style=\"text-decoration: underline;\"><strong>Akasaka K<\/strong><\/span>. (2014) Ca2+ influx-linked protein kinase C activity regulates the \u03b2-catenin localization, micromere induction signaling and the oral-aboral axis formation in early sea urchin embryo. <em>Zygote<\/em> 9: 1-21.<\/li>\r\n<\/ul>\r\n\r\n\r\n<hr \/>\r\n<p><span style=\"color: #0000ff;\"><strong>2013<\/strong><\/span><\/p>\r\n<ul>\r\n\t<li>Imae Y, Takada K, Okada S, <span style=\"text-decoration: underline;\"><strong>Ise Y<\/strong><\/span>, Morii Y, Yoshimura H, Matsunaga S (2013) Isolation of Ciliatamide D from a Marine Sponge <em>Stelletta<\/em> sp. and a reinvestigation of the Configuration of Ciliatamide A. <em>Journal of Natural Products<\/em> 76: 755-758.<\/li>\r\n\t<li>Gallego V, P\u00e9rez L, Asturiano JF, <span style=\"text-decoration: underline;\"><strong>Yoshida M<\/strong><\/span> (2013) Study of puffer fish (<em>Takifugu niphobles<\/em>) sperm: development of methods for short-term storage, effect of different activation role of intracellular changes in Ca2+ and K+ in the initiation motility. <em>Aquaculture<\/em> 414-415: 82-91.<\/li>\r\n\t<li>Gallego V, P\u00e9rez L, Asturiano JF, <span style=\"text-decoration: underline;\"><strong>Yoshida M<\/strong><\/span> (2013) Relationship between spermatozoa motility parameters, sperm\/egg ratio, fertilization success and hatching rates in the puffer fish (<em>Takifugu niphobles<\/em>). <em>Aquaculture<\/em> 416-417: 238-243.<\/li>\r\n\t<li>Matsumori N, Hiradate Y, Shibata H, Oishi T, Simma S, Toyoda M, Hayashi F, <span style=\"text-decoration: underline;\"><strong>Yoshida M<\/strong><\/span>, Murata M, <span style=\"text-decoration: underline;\"><strong>Morisawa M<\/strong><\/span> (2013) A Novel Sperm-Activating and Attracting Factor (SAAF) from the Ascidian <em>Ascidia sydneiensis<\/em>. <em>Organic Letters<\/em> 15: 294-297.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>Yoshida M<\/strong><\/span>, Hiradate Y, Sensui N, Cosson J, <span style=\"text-decoration: underline;\"><strong>Morisawa M<\/strong><\/span> (2013) Species-specificity of sperm motility activation and chemotaxis: a study on ascidian species. <em>Biological Bulletin<\/em> 224: 56-165.<\/li>\r\n<\/ul>\r\n\r\n<hr \/>\r\n<p><span style=\"color: #0000ff;\"><strong>2012<\/strong><\/span><\/p>\r\n<ul>\r\n\t<li>Inoue F, <span style=\"text-decoration: underline;\"><strong>Kurokawa D<\/strong><\/span>, Takahashi M, Aizawa S (2012) Gbx2 directly restricts Otx2 expression to forebrain-midbrain, competing with Class III POU factors. <em>Molelecular and Cell Biology<\/em> 32: 2618-2627.<\/li>\r\n\t<li>Kimura M, Wakimoto T, Egami Y, Co Tan K, <span style=\"text-decoration: underline;\"><strong>Ise Y<\/strong><\/span>, Abe I (2012) Calyxamides A and B, Cytotoxic Cyclic Peptides from the Marine Sponge <em>Discodermia calyx<\/em>. <em>Journal of Natural Products<\/em> 75: 290\u2013294.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u5e78\u585a\u4e45\u5178<\/strong><\/span>\uff0c\u5c0f\u90f7\u4e00\u4e09 (2012) \u96a0\u5c90\u8af8\u5cf6\u6d45\u6d77\u57df\u304b\u3089\u5f97\u3089\u308c\u305f\u65e5\u672c\u6d77\u521d\u8a18\u9332\u7a2e\u306e\u30a6\u30df\u30b7\u30c0\u985e\uff08\u68d8\u76ae\u52d5\u7269\uff1a\u30a6\u30df\u30e6\u30ea\u7db1\uff09 <em>\u65e5\u672c\u751f\u7269\u5730\u7406\u5b66\u4f1a\u4f1a\u5831<\/em>\uff0c 67: 231-236\uff0e<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u5e78\u585a\u4e45\u5178<\/strong><\/span>\uff0c\u52a0\u85e4\u54f2\u54c9 (2012)\u00a0 \u7d00\u4f0a\u534a\u5cf6\u6cbf\u5cb8\u3067\u5f97\u3089\u308c\u305f\u71b1\u5e2f\u30fb\u4e9c\u71b1\u5e2f\u6027\u30a6\u30df\u30b7\u30c0\u985e\u30b3\u30c6\u30f3\u30b0\u30a6\u30df\u30b7\u30c0\uff08\u68d8\u76ae\u52d5\u7269\u9580\uff1a\u30a6\u30df\u30e6\u30ea\u7db1\uff09\u306e\u8a18\u9332\uff0c<em>\u65e5\u672c\u751f\u7269\u5730\u7406\u5b66\u4f1a\u4f1a\u5831<\/em>\uff0c67: 265-270\uff0e<\/li>\r\n\t<li>Kogure Y, <span style=\"text-decoration: underline;\"><strong>Kohtsuka H<\/strong><\/span>, Kiyomoto S (2012) First record of the ophidiasterid sea star, <em>Ophidiaster multispinus<\/em> (Echinodermata, Asteroidea), from Japan, with reference to the wide intraspecific variations in external features. <em>Biogeography<\/em>\u00a014: 133-138\uff0e<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>Kondo M<\/strong><\/span>, <span style=\"text-decoration: underline;\"><strong>Akasaka K<\/strong><\/span>. (2012). Current Status of Echinoderm Genome Analysis &#8211; What do we Know? <em>Current Genetics<\/em> 13(2): 134-143.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>Kurokawa D<\/strong><\/span>, Ohmura T, <span style=\"text-decoration: underline;\"><strong>Akasaka K<\/strong><\/span>, Aizawa S. (2012) A lineage specific enhancer drives Otx2 expression in teleost organizer tissues. <em>Mechanisms Development<\/em> 128: 653-661.<\/li>\r\n\t<li>Suzuki M, Ueoka R, Takada K, Okada S, Otsuka S, <span style=\"text-decoration: underline;\"><strong>Ise Y<\/strong><\/span>, Matsunaga S. (2012) Isolation of Spirastrellolides A and B from a Marine Sponge <em>Epipolasis<\/em> sp. and their Cytotoxic Activities. <em>Journal of Natural Products<\/em> 75: 1192\u20131195.<\/li>\r\n\t<li>Winslow D\u2019AL, Radke DW, Utecht T, Kaneko T, <span style=\"text-decoration: underline;\"><strong>Akasaka K<\/strong><\/span>. (2012) Sea urchin coelomocyte arylsulfatase: a modulator of the echinoderm clotting pathway. <em>Integrative Zoology<\/em> 7:61\u201373.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>Yoshida M<\/strong><\/span>. (2012) Regulation of sperm chemotaxis in the ascidian, Ciona intestinalis. in <em>Sperm Cell Research in the 21st Century: Historical Discoveries to New Horizons<\/em> (Ed. by M Morisawa), Adthree Publishing Co., Tokyo, Japan. pp.157-162. ISBN: 978-4-904419-37-3<\/li>\r\n<\/ul>\r\n<hr \/>\r\n<p><span style=\"color: #0000ff;\"><strong>2011<\/strong><\/span><\/p>\r\n<ul>\r\n\t<li>Hitora Y, Takada K, Okada S, <span style=\"text-decoration: underline;\"><strong>Ise Y<\/strong><\/span>, Matsunaga S (2011) Ent-duryne and its homologues, cytotoxic acetylenes from a marine sponge <em>Petrosia<\/em> sp. <em>Journal of Natural Products<\/em> 74(5): 1262\u20131267.<\/li>\r\n\t<li>Imae Y, Takada K, Murayama S, Okada S, <span style=\"text-decoration: underline;\"><strong>Ise Y<\/strong><\/span>, Matsunaga S (2011) Jasisoquinolines A and B, Architecturally New Isoquinolines, from a Marine Sponge <em>Jaspis<\/em> sp. <em>Organic Letters<\/em> 13: 4798\u20134801.<\/li>\r\n\t<li>Kambara Y, Shiba K, <span style=\"text-decoration: underline;\"><strong>Yoshida M<\/strong><\/span>, Sato C, Kitajima K, Shingyoji C. (2011) Mechanism regulating Ca2+-dependent mechanosensory behaviour in sea urchin spermatozoa. <em>Cell Structure and Function<\/em> 36: 69-82.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u5e78\u585a\u4e45\u5178<\/strong><\/span> (2011)\u30c8\u30b2\u30d0\u30cd\u30a6\u30df\u30b7\u30c0<em>Antedon serrata<\/em> (\u68d8\u76ae\u52d5\u7269\u9580\uff1a\u30a6\u30df\u30e6\u30ea\u7db1)\u306e\u5e7c\u751f\u306f\u30ab\u30b8\u30e1\u3068\u30a2\u30e9\u30e1\u306e\u4eee\u6839\u90e8\u306b\u7740\u5e95\u3059\u308b\uff0e<em>\u30bf\u30af\u30b5 \u65e5\u672c\u52d5\u7269\u5206\u985e\u5b66\u4f1a\u8a8c<\/em>\uff0c31: 13-18.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u5e78\u585a\u4e45\u5178<\/strong><\/span>\u3001\u9577\u7530\u4fe1\u4eba\u3001\u9580\u8107\u6167\u53f2\uff082011\uff09\u9577\u5d0e\u770c\u5e73\u6238\u306e\u6f01\u6e2f\u5185\u3067\u5f97\u3089\u308c\u305f\u6d45\u6d77\u6027\u30a6\u30df\u30b7\u30c0\u985e\uff0e<em>\u65e5\u672c\u751f\u7269\u5730\u7406\u5b66\u4f1a\u4f1a\u5831<\/em>\uff0c66: 79-84.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>Omori A<\/strong><\/span>, <span style=\"text-decoration: underline;\"><strong>Akasaka K<\/strong><\/span>, <span style=\"text-decoration: underline;\"><strong>Kurokawa D<\/strong><\/span>, Amemiya S. (2011) Gene expression analysis of Six3, Pax6, and Otx in the early development of the stalked crinoid <em>Metacrinus rotundus.<\/em> Gene Expr. Patterns 11: 48-56.<\/li>\r\n\t<li>Ohtsuka S, Hanashima A, <span style=\"text-decoration: underline;\"><strong>Kubokawa K<\/strong><\/span>, Bao Y, Tando Y, Kohmaru J, Nakaya H, Maruyama K, Kimura S (2011) Amphioxus Connectin Exhibits Merged Structure as Invertebrate Connectin in I-Band Region and Vertebrate Connectin in A-Band Region. <em>Journal of Molecular Biology<\/em>\u00a0409: 415-426.<\/li>\r\n\t<li>Shono T, <span style=\"text-decoration: underline;\"><strong>Kurokawa D<\/strong><\/span>, Miyake T, Okabe M. (2011) Acquisition of glial cells missing 2 enhancers contributes to a diversity of ionocytes in zebrafish. <em>PLoS ONE<\/em>\u00a06(8): e23746.<\/li>\r\n\t<li>Terada K, Muranishi Y, Inoue T, Katoh K, Tsujii T, Sanuki R, <span style=\"text-decoration: underline;\"><strong>Kurokawa D<\/strong><\/span>, Aizawa S, Tamaki Y, Furukawa T (2011) An essential role for Rax homeoprotein and Notch-Hes signaling in Otx2 expression in embryonic retinal photoreceptor cell fate determination. <em>Journal of Neuroscience<\/em> 31: 16792-16807.<\/li>\r\n\t<li>Ueoka R, <span style=\"text-decoration: underline;\"><strong>Ise Y<\/strong><\/span>, Okada S, Matsunaga S (2011) Cell differentiation inducers from a Marine Sponge <em>Biemna<\/em> sp. Tetrahedron 67: 6679\u20136681.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>Yoshida M<\/strong><\/span>, Yoshida K. (2011) Sperm chemotaxis and regulation of flagellar movement by Ca2+. <em>Molecular Human Reproduction<\/em>. 17: 457-465.<\/li>\r\n<\/ul>\r\n<hr \/>\r\n<p><span style=\"color: #0000ff;\"><strong>2010<\/strong><\/span><\/p>\r\n<ul>\r\n\t<li>Dennisson JD, Tandoh Y, Ogasawara M, <span style=\"text-decoration: underline;\"><strong>Kubokawa K<\/strong><\/span>, Sato N, Obinata T (2010) Functional characteristics of amphioxus troponin in regulation of muscle contraction. <em>Zoological Science<\/em> 27: 461-469.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>Ise Y<\/strong><\/span>, Vacelet J (2010) New carnivorous sponges of the genus <em>Abyssocladia<\/em> (Demospongiae, Poecilosclerida, Cladorhizidae) from Myojin Knoll, Izu-Ogasawara Arc, southern Japan. <em>Zoological Science<\/em> 27: 888\u2013894.<\/li>\r\n\t<li>Katsu Y, Taniguchi E, Urushitani H, Miyagawa S, Takase M, <span style=\"text-decoration: underline;\"><strong>Kubokawa K<\/strong><\/span>, Tooi O, Oka T, Santo N, Myburgh J, Matsuno A, Iguchi T (2010) Molecular cloning and characterization of ligand- and species-specificity of amphibian estrogen receptors. <em>General and Comparative Endocrnology<\/em> 168: 220-230.<\/li>\r\n\t<li>Katsu Y, <span style=\"text-decoration: underline;\"><strong>Kubokawa K<\/strong><\/span>, Urushitani H, Iguchi T (2010) Estrogen-dependent transactivation of amphioxus steroid hormone receptor via both estrogen- and androgen-response elements. <em>Endocrinology<\/em> 151: 639-648.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>Kawano N<\/strong><\/span>, <span style=\"text-decoration: underline;\"><strong>Ito J<\/strong><\/span>, Kashiwazaki N, <span style=\"text-decoration: underline;\"><strong>Yoshida M<\/strong><\/span>. (2010) Phosphorylation of the MAPK pathway has an essential role in the acrosome reaction in miniature pig sperm. <em>Reproduction in Domestic Animals<\/em> 45: 263-268.<\/li>\r\n\t<li>Koito T, <span style=\"text-decoration: underline;\"><strong>Kubokawa K<\/strong><\/span>, Tanabe S, Miyazaki N (2010) Phylogenetic analyses in cetacean species of the family Delphinidae using a short wabelength sensitive opsin gene sequence. <em>Fisheries Science<\/em> 76: 571-576.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>Kondo M<\/strong><\/span>, <span style=\"text-decoration: underline;\"><strong>Akasaka K<\/strong><\/span>. (2010) Regeneration in crinoids. <em>Development, Growth &amp; Differentiation<\/em> 52:57-68.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>Kubokawa K<\/strong><\/span>., Tando Y, Roy S (2010) Evolution of the reproductiveendocrine system in chordates. <em>Integrative and Comparative Biology<\/em> 50: 53-62.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>Kurokawa D<\/strong><\/span>*, Ohmura T*, Ogino H, Takeuchi M, Inoue A, Inoue F, Suda Y. Aizawa S (2010) (*These two authors contributed equally to this work.) Evolutionary origin of the Otx2 enhancer for its expression in visceral endoderm. <em>Developmental Biology<\/em> 342: 110-120.<\/li>\r\n\t<li>Nishijima M, Lindsay DJ, Hata J, Nakamura A, Kasai H, <span style=\"text-decoration: underline;\"><strong>Ise Y<\/strong><\/span>, Fisher CR, Fujiwara Y, Kawato M, Maruyama T (2010) Association of thioautotrophic bacteria with deep-sea sponges. <em>Marine Biotechnology<\/em> 12: 253\u2013260.<\/li>\r\n\t<li>Sakurai Y*, <span style=\"text-decoration: underline;\"><strong>Kurokawa D<\/strong><\/span>*, Kiyonari H, Kajikawa E, Suda Y. Aizawa S (*These two authors contributed equally to this work.) (2010) Otx2 and Otx1 protect diencephalon and mesencephalon from caudalization into metencephalon during early brain regionalization. <em>Developmental Biology<\/em> 347: 392-403.<\/li>\r\n\t<li>Ueoka R, <span style=\"text-decoration: underline;\"><strong>Ise Y<\/strong><\/span>, Otsuka S, Okada S, Yamori T, Matsunaga S (2010) Yaku&#8217;amides A and B, Cytotoxic Linear Peptides Rich in Dehydro-Amino Acids from the Marine Sponge <em>Ceratopsion<\/em> sp. <em>Journal of the American Chemical Society<\/em> 132: 17692\u201317694.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>Yoshida K<\/strong><\/span>, Iwamoto T, <span style=\"text-decoration: underline;\"><strong>Yoshida M<\/strong><\/span> (2010) Effects of the seminal plasma proteins semenogelin (SEMG)\/seminal vesicle secretion 2 (SVS2) on sperm fertility. in <em>Human Spermatozoa: Maturation, Capacitation and Abnormalities<\/em> (Eds. by T. Lejeune and P. Delvaux), Nova Science Publishers, Inc., Hauppauge NY, pp.205-220. ISBN: 978-1-60876-401-3.<\/li>\r\n<\/ul>\r\n<hr \/>\r\n<h5><span style=\"color: #000000;\"><strong>\u548c\u6587\u7dcf\u8aac\u30fb\u66f8\u7c4d<\/strong><\/span><\/h5>\r\n<ul>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u5e78\u585a\u4e45\u5178<\/strong><\/span>\uff0c\u5c0f\u6728\u66fd\u6b63\u9020\uff0c\u4e2d\u91ce\u88d5\u662d (2020) \u80fd\u767b\u6cbf\u5cb8\u3067\u5b9f\u65bd\u3055\u308c\u305fJAMBIO\u6cbf\u5cb8\u751f\u7269\u5408\u540c\u8abf\u67fb\u3067\u5f97\u3089\u308c\u305f\u30a6\u30cb\u985e\uff08\u68d8\u76ae\u52d5\u7269\u9580\uff1a\u30a6\u30cb\u7db1\uff09\uff0c\u306e\u3068\u6d77\u6d0b\u3075\u308c\u3042\u3044\u30bb\u30f3\u30bf\u30fc\u7814\u7a76\u5831\u544a, (26): 1\u201311.<\/li>\r\n\t<li>\u8429\u539f\u6e05\u53f8\uff0c<span style=\"text-decoration: underline;\"><strong>\u5e78\u585a\u4e45\u5178<\/strong><\/span> (2021) \u4e09\u6d66\u534a\u5cf6\u304b\u3089\u5f97\u3089\u308c\u305f\u30a4\u30c3\u30b5\u30a4\u30d5\u30b7\u30a8\u30e9\u30ac\u30a4\u3068\u30df\u30ab\u30c9\u30a6\u30df\u30a6\u30b7\u306e\u8a18\u9332\uff0c\u6a2a\u9808\u8cc0\u5e02\u535a\u7269\u9928\u7814\u7a76\u5831\u544a\uff08\u81ea\u7136\uff09\uff0c(68): 29\u201330.<\/li>\r\n\t<li>\u592a\u7530\u60a0\u9020\uff0c<strong><span style=\"text-decoration: underline;\">\u5e78\u585a\u4e45\u5178<\/span><\/strong>\uff0c\u5c71\u540d\u88d5\u4ecb (2021) \u65e5\u672c\u6d77\u5357\u897f\u90e8\u9ce5\u53d6\u770c\u6cbf\u5cb8\u57df\u53ca\u3073\u5468\u8fba\u6d77\u57df\u304b\u3089\u5f97\u3089\u308c\u305f\u68d8\u76ae\u52d5\u7269\u201d\uff0c\u30db\u30b7\u30b6\u30ad\u30b0\u30ea\u30fc\u30f3\u8ca1\u56e3\u7814\u7a76\u5831\u544a\uff0c(24): 111\u2013159.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u5e78\u585a\u4e45\u5178<\/strong><\/span>\uff0c\u5712\u5c71\u8cb4\u4e4b (2021) \u5c71\u53e3\u770c\u97ff\u7058\u3067\u5f97\u3089\u308c\u305f\u30b5\u30f3\u30ea\u30af\u30aa\u30aa\u30d0\u30d5\u30f3\u30a6\u30cb\uff08\u68d8\u76ae\u52d5\u7269\u9580\uff0c\u6d77\u80c6\u7db1\uff09\u306e\u8a18\u9332\u201d\uff0c \u30db\u30b7\u30b6\u30ad\u30b0\u30ea\u30fc\u30f3\u8ca1\u56e3\u7814\u7a76\u5831\u544a\uff0c(24): 281\u2013286. \u4f50\u3005\u6728\u731b\u667a\uff0c<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u5e78\u585a\u4e45\u5178<\/strong><\/span>\uff082020\uff09\u6587\u4eac\u533a\u6559\u80b2\u30bb\u30f3\u30bf\u30fc\u5c55\u793a \u76f8\u6a21\u6e7e\u306e\u52d5\u7269. \u6771\u4eac\u5927\u5b66\u7dcf\u5408\u7814\u7a76\u535a\u7269\u9928\u30cb\u30e5\u30fc\u30b9 Ouroboros\uff0c24(2): 10\u201311.<\/li>\r\n\t<li>\u4e2d\u91ce\u88d5\u662d\uff0c<span style=\"text-decoration: underline;\"><strong>\u5e78\u585a\u4e45\u5178<\/strong><\/span>. \uff082020\uff09\u30a6\u30df\u30e6\u30ea\u985e\u306e\u767a\u751f\u306b\u95a2\u3059\u308b\u3053\u308c\u307e\u3067\u306e\u7814\u7a76\u3068\u4eca\u5f8c\u306e\u8ab2\u984c. \u6d77\u6d0b\u3068\u751f\u7269\uff0c249, 42 (4): 370\u2013377.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u5e78\u585a\u4e45\u5178<\/strong><\/span>\u00a0(2020) \u304a\u3082\u306a\u5b9f\u9a13\u6d77\u7523\u7121\u810a\u690e\u52d5\u7269\u306e\u7e41\u6b96\u671f. \u7406\u79d1\u5e74\u8868 2021\uff08\u673a\u4e0a\u7248\uff09\uff0c\u4ee4\u548c3\u5e74, \u7b2c94\u518a\uff0cpp. 1072, \u4e38\u5584\u51fa\u7248\u682a\u5f0f\u4f1a\u793e.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u5e78\u585a\u4e45\u5178<\/strong><\/span>\u00a0(2020) \u304a\u3082\u306a\u7121\u810a\u690e\u52d5\u7269\u306e\u7523\u5375\u671f. \u7406\u79d1\u5e74\u8868 2021\uff08\u673a\u4e0a\u7248\uff09\uff0c\u4ee4\u548c3 \u5e74, \u7b2c94 \u518a\uff0cpp. 1073, \u4e38\u5584\u51fa\u7248\u682a\u5f0f\u4f1a\u793e\uff0e<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u5e78\u585a\u4e45\u5178<\/strong><\/span>\uff0c\u5ddd\u7aef\u7f8e\u5343\u4ee3 (2020) \u6771\u4eac\u5927\u5b66\u4e09\u5d0e\u81e8\u6d77\u5b9f\u9a13\u6240\u306e\u65b0\u6559\u80b2\u68df\u306e\u7ae3\u5de5\u306b\u4f34\u3046\u696d\u52d9\u306e\u8a18\u9332. \u81e8\u6d77\u30fb\u81e8\u6e56\uff0c37: 22\u201333.<\/li>\r\n\t<li>\u5bcc\u6c38\u82f1\u4e4b\uff0c<span style=\"text-decoration: underline;\"><strong>\u5e78\u585a\u4e45\u5178<\/strong><\/span>\u00a0(2021) \u30a6\u30df\u30b7\u30c0\u306b\u4ed8\u7740\u3059\u308b\u30b3\u30de\u30c1\u30af\u30e2\u30d2\u30c8\u30c7. \u3046\u307f\u3046\u3057\u901a\u4fe1\uff0c109: 4\u20136.<\/li>\r\n\t<li>\u3068\u3082\u306a\u304c\u305f\u308d, \u306a\u304b\u306e\u3072\u308d\u307f, \u76e3\u4fee \u7530\u4e2d\u98af, <span style=\"text-decoration: underline;\"><strong>\u5e78\u585a\u4e45\u5178<\/strong><\/span>(2021) \u305f\u3093\u3051\u3093\u3000\u30a6\u30cb\u3059\u3044\u305e\u304f\u304b\u3093. \u30a2\u30ea\u30b9\u9928\uff0e<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>Yoshida M<\/strong><\/span>, Astriano J.\u00a0 (2020) eds. Reproduction in Aquatic Animals: From Basic Biology to Aquaculture Technology Springer-Nature, pp. 379.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u5ca1\u897f\u653f\u5178 <\/strong><\/span>(2020) \u65b0\u7a2e\u306e\u767a\u898b\u3000\u898b\u3064\u3051\u3001\u540d\u3065\u3051\u3001\u7cfb\u7d71\u3065\u3051\u308b\u52d5\u7269\u7cfb\u7d71\u5206\u985e\u5b66\u3002\u4e2d\u516c\u65b0\u66f82589\uff0e\u4e2d\u592e\u516c\u8ad6\u65b0\u66f8.\u00a0 pp. 252.<\/li>\r\n\t<li>\u4f0a\u52e2\u6238\u5fb9\uff0c<span style=\"text-decoration: underline;\"><strong>\u5ca1\u897f\u653f\u5178<\/strong><\/span>(16\u4eba\u4e2d2\u756a\u76ee)&#8230;\u795e\u4fdd\u5b87\u55e3 (2019) \u300c\u82e5\u624b\u5206\u985e\u5b66\u8005\u306e\u96c6\u3044\u300d\u306e10\u5e74\uff0e\u30bf\u30af\u30b5. \u65e5\u672c\u52d5\u7269\u5206\u985e\u5b66\u4f1a\u8a8c.\u00a0 47: 30-38.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u5ca1\u897f\u653f\u5178 <\/strong><\/span>(2019) \u7409\u7403\u5217\u5cf6\u306e\u6d77\u5e95\u6d1e\u7a9f\u304b\u3089\u5f97\u3089\u308c\u305f\u30af\u30e2\u30d2\u30c8\u30c7\u985e\u306b\u3064\u3044\u3066. \u30bf\u30af\u30b5\uff0e\u65e5\u672c\u52d5\u7269\u5206\u985e\u5b66\u4f1a\u8a8c.\u00a0 46:22-27.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u5409\u7530\u3000\u5b66<\/strong><\/span>\uff0c\u4f50\u85e4\u8ce2\u4e00\uff0c\u539f\u5c71\u3000\u6d0b (2019) \u7b2c5\u7ae0\u3000\u53d7\u7cbe\u301c\u500b\u4f53\u767a\u751f\u306e\u306f\u3058\u307e\u308a\u767a\u751f\u751f\u7269\u5b66\u301c\u57fa\u790e\u304b\u3089\u5fdc\u7528\u5c55\u958b\u301c\uff0e\u5869\u5c3b\u4fe1\u7fa9\u30fb\u5f25\u76ca\u606d\u30fb\u52a0\u85e4\u5bb9\u5b50\u30fb\u52a0\u91ce\u6d69\u4e00\u90ce\u30fb\u4e2d\u5c3e\u5553\u5b50\uff08\u7de8\uff09\u57f9\u98a8\u9928\uff0epp.38-46. ISBN 978-4-563-7823-2<\/li>\r\n\t<li>\u5409\u7530\u3000\u85ab\uff0c<span style=\"text-decoration: underline;\"><strong>\u5409\u7530\u3000\u5b66<\/strong><\/span> (2019) \u53d7\u7cbe\u6642\u306b\u898b\u3089\u308c\u308b\u7cbe\u5b50\u904b\u52d5\u8abf\u7bc0\uff0e\u7d30\u80de 51(5): 253-255.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u5409\u7530\u3000\u5b66<\/strong><\/span> (2018) \u7b2c7\u7ae0\u3000\u97ad\u6bdb\u7e4a\u6bdb\u904b\u52d5\u306e\u5236\u5fa1\u2212\u7d30\u80de\u3092\u52d5\u304b\u3059\u5fae\u5c0f\u306a\u88c5\u7f6e.\u52d5\u7269\u5b66\u306e\u767e\u79d1\u4e8b\u5178 (\u65e5\u672c\u52d5\u7269\u5b66\u4f1a\u76e3\u4fee)\u3000\u4e38\u5584\uff0epp.406-407. ISBN:978-4-621-30309-2<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u5409\u7530\u3000\u5b66<\/strong><\/span> (2018) \u7b2c7\u7ae0\u3000\u7cbe\u5b50\u904b\u52d5\u3068\u7cbe\u5b50\u6d3b\u6027\u5316. \u9b5a\u985e\u5b66\u306e\u767e\u79d1\u4e8b\u5178 (\u65e5\u672c\u9b5a\u985e\u5b66\u4f1a\u76e3\u4fee)\uff0e\u4e38\u5584\uff0e pp.360-361. ISBN:978-4621303177<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u5ca1\u897f\u653f\u5178<\/strong><\/span> <span style=\"text-decoration: underline;\">(<\/span>2017)\u30af\u30e2\u30d2\u30c8\u30c7\u7db1\uff08\u68d8\u76ae\u52d5\u7269\u9580\uff09\u306e\u7cfb\u7d71\u5206\u985e\u306e\u73fe\u72b6(3). \u3046\u307f\u3046\u3057\u901a\u4fe1. 95: 10-12.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u8d64\u5742\u7532\u6cbb<\/strong><\/span> (2017) \u65b0\u3057\u3044\u6559\u990a\u306e\u305f\u3081\u306e\u751f\u7269\u5b66\uff0e\u88f3\u83ef\u623f\uff0eISBN:978-4785352345<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u8d64\u5742\u7532\u6cbb<\/strong><\/span> (2015) \u7b2c4\u7ae0 \u6d77\u6d0b\u6559\u80b2\u306e\u610f\u7fa9\u3068\u8ab2\u984c-\u6d77\u6d0b\u751f\u7269\u5b66\u306e\u89b3\u70b9\u304b\u3089 \u300c\u6d77\u6d0b\u6559\u80b2\u306e\u30ab\u30ea\u30ad\u30e5\u30e9\u30e0\u958b\u767a\u2212\u7814\u7a76\u3068\u5b9f\u8df5\u2212\u300d\uff08\u6771\u4eac\u5927\u5b66\u6d77\u6d0b\u30a2\u30e9\u30a4\u30a2\u30f3\u30b9\u6d77\u6d0b\u6559\u80b2\u4fc3\u9032\u7814\u7a76\u30bb\u30f3\u30bf\u30fc\u7de8\uff09\u65e5\u672c\u6559\u80b2\u65b0\u805e\u793e\uff0epp.51-66. ISBN:978-4890553174<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u5e78\u585a\u4e45\u5178<\/strong><\/span>\uff082014\uff09\u6771\u4eac\u5927\u5b66\u4e09\u5d0e\u81e8\u6d77\u5b9f\u9a13\u6240\u306b\u304a\u3051\u308b\u6280\u8853\u8077\u54e1\u306e\u5f79\u5272 \u301c\u6280\u8853\u8077\u54e1\u306b\u3088\u308b\u7814\u7a76\u6210\u679c\u301c\uff0e\u65e5\u672c\u52d5\u7269\u5206\u985e\u5b66\u4f1a\u8a8c \u30bf\u30af\u30b5\u300036: 24-32.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u4f0a\u52e2\u512a\u53f2<\/strong><\/span> (2012) 8.1.\u6d77\u7dbf\u52d5\u7269\u9580.\uff08\u7de8\uff09\u65e5\u672c\u9032\u5316\u5b66\u4f1a: \u5dcc\u4f50 \u5eb8\u30fb\u9060\u85e4\u4e00\u4f73\u30fb\u5927\u5cf6\u6cf0\u90ce\u30fb\u6cb3\u7530\u96c5\u572d\u30fb\u5009\u8c37 \u6ecb\u30fb\u658e\u85e4\u6210\u4e5f\u30fb\u585a\u8c37\u88d5\u4e00\u30fb\u9577\u8c37\u5ddd\u771e\u7406\u5b50\u30fb\u758b\u7530 \u52aa\u30fb\u6df1\u6d25\u6b66\u99ac\u30fb\u4e09\u4e2d\u4fe1\u5b8f\u30fb\u77e2\u539f\u5fb9\u4e00. \u9032\u5316\u5b66\u8f9e\u5178. \u5171\u7acb\u51fa\u7248\u682a\u5f0f\u4f1a\u793e. pp.234-235.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u4f0a\u52e2\u512a\u53f2<\/strong><\/span> (2012) \u7b2c5\u7ae0 \u6d77\u7dbf\u52d5\u7269\u9580.\uff08\u7de8\uff09\u85e4\u5009\u514b\u5247, \u5965\u8c37\u55ac\u53f8, \u4e38\u5c71\u6b63. \u6f5c\u6c34\u8abf\u67fb\u8239\u304c\u89b3\u305f\u6df1\u6d77\u751f\u7269\u2015\u6df1\u6d77\u751f\u7269\u7814\u7a76\u306e\u73fe\u5728\uff08\u7b2c2\u7248\uff09. \u6771\u6d77\u5927\u5b66\u51fa\u7248\u4f1a. p.95.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u4f0a\u52e2\u512a\u53f2<\/strong><\/span> (2012) \u7b2c15\u7ae0 \u6d77\u7dbf\u52d5\u7269\u9580.\uff08\u7de8\uff09\u85e4\u5009\u514b\u5247, \u5965\u8c37\u55ac\u53f8, \u4e38\u5c71\u6b63. \u6f5c\u6c34\u8abf\u67fb\u8239\u304c\u89b3\u305f\u6df1\u6d77\u751f\u7269\u2015\u6df1\u6d77\u751f\u7269\u7814\u7a76\u306e\u73fe\u5728\uff08\u7b2c2\u7248\uff09. \u6771\u6d77\u5927\u5b66\u51fa\u7248\u4f1a. p.215-227.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u4f0a\u52e2\u512a\u53f2<\/strong><\/span>. (2013) \u895f, \u895f\u7d30\u80de, \u6d77\u7dbf\u8cea\u7e4a\u7dad, \u6d77\u7dbf\u52d5\u7269, \u9593\u5145\u30b2\u30eb, \u786c\u9aa8\u6d77\u7dbf\u985e, \u8ef8\u7cf8, \u5c0b\u5e38\u6d77\u7dbf\u985e, \u6c34\u6e9d\u7cfb, \u77f3\u7070\u6d77\u7dbf\u985e, \u76ae\u5c64, \u516d\u653e\u6d77\u7dbf\u985e, \u751f\u7269\u5206\u985e\u8868\uff1a\u6d77\u7dbf\u52d5\u7269\u9580.\uff08\u7de8\uff09\u5dcc\u4f50 \u5eb8\u30fb\u5009\u8c37 \u6ecb\u30fb\u658e\u85e4\u6210\u4e5f\u30fb\u585a\u8c37\u88d5\u4e00. \u5ca9\u6ce2\u751f\u7269\u5b66\u8f9e\u5178 \u7b2c5\u7248. \u5ca9\u6ce2\u66f8\u5e97.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u5e78\u585a\u4e45\u5178<\/strong><\/span>\uff0c<span style=\"text-decoration: underline;\"><strong>\u8d64\u5742\u7532\u6cbb <\/strong><\/span>(2012) \u201c\u30a6\u30cb\u201d\uff0c\u7814\u7a76\u8005\u304c\u6559\u3048\u308b\u52d5\u7269\u98fc\u80b2 \u7b2c3\u5dfb \u30a6\u30cb\uff0c\u30ca\u30de\u30b3\u304b\u3089\u810a\u690e\u52d5\u7269\u3078\uff0e\uff08\u91dd\u5c71\u5b5d\u5f66\u30fb\u5c0f\u67f3\u5149\u6b63\u30fb\u5b09\u6b63\u52dd\u30fb\u59b9\u5c3e\u572d\u53f8\u30fb\u5c0f\u6cc9\u4fee\u30fb\u65e5\u672c\u6bd4\u8f03\u751f\u7406\u751f\u5316\u5b66\u4f1a \u7de8\u96c6\uff09\uff0cpp.1-8\uff0c\u5171\u7acb\u51fa\u7248\uff0e<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u5e78\u585a\u4e45\u5178<\/strong><\/span>\uff0c<span style=\"text-decoration: underline;\"><strong>\u8d64\u5742\u7532\u6cbb <\/strong><\/span>(2012) \u201c\u30a6\u30df\u30b7\u30c0\uff08\u30a6\u30df\u30e6\u30ea\u7db1\uff09\u201d\uff0c\u7814\u7a76\u8005\u304c\u6559\u3048\u308b\u52d5\u7269\u98fc\u80b2\uff0e\u7b2c3\u5dfb \u30a6\u30cb\uff0c\u30ca\u30de\u30b3\u304b\u3089\u810a\u690e\u52d5\u7269\u3078\uff0c\uff08\u91dd\u5c71\u5b5d\u5f66\u30fb\u5c0f\u67f3\u5149\u6b63\u30fb\u5b09\u6b63\u52dd\u30fb\u59b9\u5c3e\u572d\u53f8\u30fb\u5c0f\u6cc9\u4fee\u30fb\u65e5\u672c\u6bd4\u8f03\u751f\u7406\u751f\u5316\u5b66\u4f1a \u7de8\u96c6\uff09\uff0epp.9-16\uff0c\u5171\u7acb\u51fa\u7248\uff0e<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u4f0a\u52e2\u512a\u53f2<\/strong><\/span> (2013) \u5206\u985e\u5b66\u306b\u57fa\u3065\u3044\u305f\u52d5\u7269\u5b66 \u2212 \u6d77\u7dbf\u52d5\u7269\u3092\u4f8b\u306b, \u201c\u6d77\u7dbf\u52d5\u7269\u9580\u7b2c4\u306e\u7db1\uff1a\u540c\u9aa8\u6d77\u7dbf\u7db1\u201d\uff0e\u30bf\u30af\u30b5\u2013\u65e5\u672c\u52d5\u7269\u5206\u985e\u5b66\u4f1a\u8a8c 34: 18-24.<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u7aaa\u5ddd\u304b\u304a\u308b<\/strong><\/span> \u7de8 (2010) \u6d77\u306e\u30d7\u30ed\u30d5\u30a7\u30c3\u30b7\u30e7\u30ca\u30eb\uff0e\u6d77\u6d0b\u5b66\u3078\u306e\u62db\u5f85\u72b6\uff0e\u6771\u6d77\u5927\u5b66\u51fa\u7248\u4f1a\uff0e173\u9801\u3000ISBN 978-4-4860-1881-0<\/li>\r\n\t<li><span style=\"text-decoration: underline;\"><strong>\u8d64\u5742\u7532\u6cbb<\/strong><\/span> \u7de8\u30fb\u8457 (2010) \u65b0\u7248\u30fb\u751f\u7269\u5b66\u3068\u4eba\u9593\uff0e\u88f3\u83ef\u623f\uff0e228\u9801\uff0eISBN978-4-7853-5221-<\/li>\r\n<\/ul>\r\n<!-- \/wp:post-content -->","protected":false},"excerpt":{"rendered":"<p>Peer-reviewed Original Research Paper in press &amp; accepted 2023 Nakamura M,\u00a0Oguchi K,\u00a0Sato DS, Kato S,\u00a0Okan&hellip; <\/p>\n<p><a class=\"moretag\" href=\"https:\/\/www.mmbs.s.u-tokyo.ac.jp\/wp-en\/%e6%9c%80%e8%bf%91%e3%81%ae%e6%a5%ad%e7%b8%be\">\u5168\u6587\u3092\u8aad\u3080<\/a><\/p>\n","protected":false},"author":2,"featured_media":0,"parent":0,"menu_order":0,"comment_status":"closed","ping_status":"closed","template":"","meta":{"footnotes":""},"class_list":["post-173","page","type-page","status-publish","hentry"],"_links":{"self":[{"href":"https:\/\/www.mmbs.s.u-tokyo.ac.jp\/wp-en\/wp-json\/wp\/v2\/pages\/173","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/www.mmbs.s.u-tokyo.ac.jp\/wp-en\/wp-json\/wp\/v2\/pages"}],"about":[{"href":"https:\/\/www.mmbs.s.u-tokyo.ac.jp\/wp-en\/wp-json\/wp\/v2\/types\/page"}],"author":[{"embeddable":true,"href":"https:\/\/www.mmbs.s.u-tokyo.ac.jp\/wp-en\/wp-json\/wp\/v2\/users\/2"}],"replies":[{"embeddable":true,"href":"https:\/\/www.mmbs.s.u-tokyo.ac.jp\/wp-en\/wp-json\/wp\/v2\/comments?post=173"}],"version-history":[{"count":61,"href":"https:\/\/www.mmbs.s.u-tokyo.ac.jp\/wp-en\/wp-json\/wp\/v2\/pages\/173\/revisions"}],"predecessor-version":[{"id":1518,"href":"https:\/\/www.mmbs.s.u-tokyo.ac.jp\/wp-en\/wp-json\/wp\/v2\/pages\/173\/revisions\/1518"}],"wp:attachment":[{"href":"https:\/\/www.mmbs.s.u-tokyo.ac.jp\/wp-en\/wp-json\/wp\/v2\/media?parent=173"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}