真正紅藻綱 (Japanese Wikipedia)

Analysis of information sources in references of the Wikipedia article "真正紅藻綱" in Japanese language version.

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algaebase.org

  • Guiry, M.D. & Guiry, G.M. (2019) AlgaeBase. World-wide electronic publication, Nat. Univ. Ireland, Galway. http://www.algaebase.org; searched on 16 Septmber 2019.

doi.org

  • Watson, B. A. & Waaland, S. D. (1986). “Further biochemical characterization of a cell fusion hormone from the red alga, Griffithsia pacifica”. Plant and Cell Physiology 27: 1043-1050. doi:10.1093/oxfordjournals.pcp.a077187. 
  • Kim, G. H., Lee, I. K. & Fritz, L. (1995). “The wound‐healing responses of Antithamnion nipponicum and Griffithsia pacifica (Ceramiales, Rhodophyta) monitored by lectins”. Phycological Research 43: 161-166. doi:10.1111/j.1440-1835.1995.tb00020.x. 
  • Pueschel, C. M. & Cole, K. M. (1982). “Rhodophycean pit plugs: an ultrastructural survey with taxonomic implications”. American Journal of Botany 69: 703-720. doi:10.1002/j.1537-2197.1982.tb13310.x. 
  • Dawes, C. J., Scott, F. M. & Bowler, E. (1961). “A light‐and electron‐microscopic survey of algal cell walls. I. Phaeophyta and Rhodophyta”. American Journal of Botany 48: 925-934. doi:10.1002/j.1537-2197.1961.tb11732.x. 
  • Craigie, J. S., Correa, J. A. & Gordon, M. E. (1992). “Cuticles from Chondrus crispus (Rhodophyta)”. Journal of Phycology 28: 777-786. doi:10.1111/j.0022-3646.1992.00777.x. 
  • Gerwick, W. H. & Lang, N. J. (1977). “Structural, chemical and ecological studies of iridescence in Iridaea (Rhodophyta)”. J. Phycol. 13: 121–127. doi:10.1111/j.1529-8817.1977.tb02898.x. 
  • Takaichi, S., Yokoyama, A., Mochimaru, M., Uchida, H. & Murakami, A. (2016). “Carotenogenesis diversification in phylogenetic lineages of Rhodophyta”. Journal of Phycology 52: 329-338. doi:10.1111/jpy.12411. 
  • Shimonaga, T., Konishi, M., Oyama, Y., Fujiwara, S., Satoh, A., Fujita, N., Colleoni, C., Buléon, A., Putaux, J., Ball, S.G., Yokoyama, A., Hara, Y., Nakamura, Y. & Tsuzuki, M. (2008). “Variation in storage α-glucans of the Porphyridiales (Rhodophyta)”. Plant and Cell Physiology 49: 103-116. doi:10.1093/pcp/pcm172. 
  • Kamiya, M. & Kawai, H. (2002). “Dependence of the carposporophyte on the maternal gametophyte in three ceramiacean algae (Rhodophyta), with respect to carposporophyte development, spore production and germination success”. Phycologia 41: 107-115. doi:10.2216/i0031-8884-41-2-107.1. 
  • Wilce, R.T. & Sears, J.R. (1991). “Schmitzia sanctae-crucis, new species (Calosiphoniaceae, Rhodophyta) and a novel nutritive development to aid in zygote nucleus amplification”. Phycologia 30: 151–169. doi:10.2216/i0031-8884-30-2-151.1. 
  • Gonzalez, M. & Goff, L. (1989). “The red algal epiphytes Microcladia coulteri and M. californica (Rhodophyceae, Ceramiaceae). II: Basiphyte specificity”. Journal of Phycology 25: 558-567. doi:10.1111/j.1529-8817.1989.tb00262.x. 
  • Serio, D., Catra, M., Collodoro, D. & Nisi, A. (2011). “Ceramium cormacii sp. nov.(Ceramiaceae, Rhodophyta), a new Mediterranean species epizoic on loggerhead sea turtles (Caretta caretta)”. Botanica Marina 54: 545-550. doi:10.1515/BOT.2011.068. 
  • Koletić, N., Rimac, A., Alegro, A., Lajtner, J., Vuković, N. & Šegota, V. (2019). “Dynamics of epizoic populations of Thorea hispida (Thore) Desvaux (Thoreaceae, Rhodophyta) on aquatic gastropods in the carbonate stream in Croatia”. Nova Hedwigia 109 (1/2): 1-15. doi:10.1127/nova_hedwigia/2019/0546. 
  • Foster, M. S. (2001). “Rhodoliths: between rocks and soft places”. Journal of Phycology 37: 659-667. doi:10.1046/j.1529-8817.2001.00195.x. 
  • Amado-Filho, G. M., Moura, R. L., Bastos, A. C., Salgado, L. T., Sumida, P. Y., Guth, A. Z., ... & Bahia, R. G. (2012). “Rhodolith beds are major CaCO3 bio-factories in the tropical South West Atlantic”. PloS One 7: e35171. doi:10.1371/journal.pone.0035171. 
  • Littler, M. M., Littler, D. S., Blair, S. M. & Norris, J. N. (1986). “Deep-water plant communities from an uncharted seamount off San Salvador Island, Bahamas: distribution, abundance, and primary productivity”. Deep Sea Research Part A. Oceanographic Research Papers 33: 881-892. doi:10.1016/0198-0149(86)90003-8. 
  • Hay, M. E. & Fenical, W. (1988) Marine plant-herbivore interactions: the ecology of chemical defense. Annual Review of Ecology and Systematics 19: 111-145. https://doi.org/10.1146/annurev.es.19.110188.000551
  • Goff, L. J., Moon, D. A., Nyvall, P., Stache, B., Mangin, K. & Zuccarello, G. (1996). “The evolution of parasitism in the red algae: molecular comparisons of adelphoparasites and their hosts”. Journal of Phycology 32: 297–312. doi:10.1111/j.0022-3646.1996.00297.x. 
  • Blouin, N.A. & Lane, C.E. (2012). “Red algal parasites: models for a life history evolution that leaves photosynthesis behind again and again”. BioEssays 34: 226-235. doi:10.1002/bies.201100139. 
  • Goff, L. J. & Coleman, A. W. (1987). “Nuclear transfer from parasite to host: a new regulatory mechanism of parasitism”. Ann. NY Acad. Sci. 503: 402–423. doi:10.1111/j.1749-6632.1987.tb40626.x. 
  • Goff, L. J. & Zuccarello, G. (1994). “The evolution of parasitism in red algae: cellular interactions of adelphoparasites and their hosts”. Journal of Phycology 30: 695-720. doi:10.1111/j.0022-3646.1994.00695.x. 
  • 西澤 一俊 & 大野 正夫 (2004). “海藻由来の水溶性食物繊維の化学構造と薬理学的機能”. 日本食物繊維学会誌 8 (1): 1-12. doi:10.11217/jjdf2004.8.1. 
  • Saunders, G.W. & Hommersand, M.H. (2004) Assessing red algal supraordinal diversity and taxonomy in the context of contemporary systematic data. Am. J. Bot. 91: 1494-1507. https://doi.org/10.3732/ajb.91.10.1494
  • Muñoz-Gómez, S. A., Mejía-Franco, F. G., Durnin, K., Colp, M., Grisdale, C. J., Archibald, J. M. & Slamovits, C. H. (2017). “The new red algal subphylum Proteorhodophytina comprises the largest and most divergent plastid genomes known”. Current Biology 27: 1677-1684. doi:10.1016/j.cub.2017.04.054. 
  • Qiu, H., Yoon, H. S. & Bhattacharya, D. (2016). “Red algal phylogenomics provides a robust framework for inferring evolution of key metabolic pathways”. PLoS Currents 8. doi:10.1371/currents.tol.7b037376e6d84a1be34af756a4d90846. 
  • Le Gall, L. & Saunders, G. W. (2007). “A nuclear phylogeny of the Florideophyceae (Rhodophyta) inferred from combined EF2, small subunit and large subunit ribosomal DNA: establishing the new red algal subclass Corallinophycidae”. Molecular Phylogenetics and Evolution 43: 1118-1130. doi:10.1016/j.ympev.2006.11.012. 
  • Yang, E. C., Kim, K. M., Kim, S. Y., Lee, J., Boo, G. H., Lee, J. H., ... & Boo, S. M. (2015). “Highly conserved mitochondrial genomes among multicellular red algae of the Florideophyceae”. Genome Biology and Evolution 7: 2394-2406. doi:10.1093/gbe/evv147. 

env.go.jp

handle.net

hdl.handle.net

main.jp

natural-history.main.jp

  • 和名は「鈴木 雅大 (2019) 紅藻類. 日本産海藻リスト. 生きもの好きの語る自然誌.」より。
  • 鈴木雅大 (2010年). “原始紅藻綱は6綱に分けられた”. 生きもの好きの語る自然誌. 2022年1月20日閲覧。

nii.ac.jp

ci.nii.ac.jp

  • 松田伸也・富山卓子 (1988). “琉球列島の島棚上にみられる現生サンゴモ球に関する一考察”. 琉球大学教育学部紀要 3: 343-354. NAID 10016457409. 
  • 鈴木雅大 (2014). “激変する真正紅藻綱の分類”. 藻類 62 (3): 166-171. NAID 40020276073. 

sourui.org

tonysharks.com