緑藻植物門 (Japanese Wikipedia)

Analysis of information sources in references of the Wikipedia article "緑藻植物門" 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 28 Feb. 2020.

doi.org

  • Li, L., Wang, S., Wang, H., Sahu, S. K., Marin, B., Li, H., ... & Reder, T. (2020). “The genome of Prasinoderma coloniale unveils the existence of a third phylum within green plants”. Nature Ecology & Evolution 4: 1220–1231. doi:10.1038/s41559-020-1221-7. 
  • Tsekos, I. (1999). “The sites of cellulose synthesis in algae: Diversity and evolution of cellulose-synthesizing enzyme complexes”. Journal of Phycology 35: 635–655. doi:10.1046/j.1529-8817.1999.3540635.x. 
  • Blanc, G., Duncan, G., Agarkova, I., Borodovsky, M., Gurnon, J., Kuo, A., ... & Salamov, A. (2010). “The Chlorella variabilis NC64A genome reveals adaptation to photosymbiosis, coevolution with viruses, and cryptic sex”. The Plant Cell 22: 2943-2955. doi:10.1105/tpc.110.076406. 
  • Igamberdiev, A.U. & Lea, P.J. (2002). “The role of peroxisomes in the integration of metabolism and evolutionary diversity of photosynthetic organisms”. Phytochemistry 60: 651-674. doi:10.1016/S0031-9422(02)00179-6. 
  • Fink, R.C. & Scandalios, J.G. (2002). “Molecular evolution and structure-function relationships of the superoxide dismutase gene families in angiosperms and their relationship to other eukaryotic and prokaryotic superoxide dismutases”. Arch Biochem Biophys 399: 19-36. doi:10.1006/abbi.2001.2739. 
  • Schwender, J., Gemünden, C. & Lichtenthaler, H. K. (2001). “Chlorophyta exclusively use the 1-deoxyxylulose 5-phosphate/2-C-methylerythritol 4-phosphate pathway for the biosynthesis of isoprenoids”. Planta 212: 416-423. doi:10.1007/s004250000409. 
  • Matsuzaki, R., Kawai-Toyooka, H., Hara, Y. & Nozaki, H. (2015). “Revisiting the taxonomic significance of aplanozygote morphologies of two cosmopolitan snow species of the genus Chloromonas (Volvocales, Chlorophyceae)”. Phycologia 54: 491-502. doi:10.2216/15-33.1. 
  • Muggia, L., Leavitt, S. & Barreno, E. (2018). “The hidden diversity of lichenised Trebouxiophyceae (Chlorophyta)”. Phycologia 57: 503-524. doi:10.2216/17-134.1. 
  • Suutari, M., Majaneva, M., Fewer, D. P., Voirin, B., Aiello, A., Friedl, T., ... & Blomster, J. (2010). “Molecular evidence for a diverse green algal community growing in the hair of sloths and a specific association with Trichophilus welckeri (Chlorophyta, Ulvophyceae)”. BMC Evolutionary Biology 10: 86. https://doi.org/10.1186/1471-2148-10-86. 
  • Letsch, M. R., Muller‐Parker, G., Friedl, T. & Lewis, L. A. (2009). “Elliptochloris marina sp. nov.(Trebouxiophyceae, Chlorophyta), symbiotic green alga of the temperate pacific sea anemones Anthopleura xanthogrammica and A. elegantissima (Anthozoa, Cnidaria)”. Journal of Phycology 45: 1127-1135. doi:10.1111/j.1529-8817.2009.00727.x. 
  • Lewis, L. A. & McCourt, R. M. (2004). “Green algae and the origin of land plants”. American Journal of Botany 91: 1535-1556. doi:10.3732/ajb.91.10.1535. 
  • Friedl, T. (1995). “Inferring taxonomic positions and testing genus level assignments in coccoid green lichen algae: a phylogenetic analysis of 18S ribosomal RNA sequences from Dictyochloropsis reticulata and from members of the genus Myrmecia (Chlorophyta, Trebouxiophyceae cl. nov.)”. Journal of Phycology 31: 632-639. doi:10.1111/j.1529-8817.1995.tb02559.x. 
  • Lemieux, C., Otis, C. & Turmel, M. (2014). “Six newly sequenced chloroplast genomes from prasinophyte green algae provide insights into the relationships among prasinophyte lineages and the diversity of streamlined genome architecture in picoplanktonic species”. BMC Genomics 15: 857. doi:10.1186/1471-2164-15-857. 
  • Lemieux, C., Turmel, M., Otis, C. & Pombert, J. F. (2019). “A streamlined and predominantly diploid genome in the tiny marine green alga Chloropicon primus”. Nature Communications 10: 1-13. doi:10.1038/s41467-019-12014-x. 
  • Ruggiero, M. A., Gordon, D. P., Orrell, T. M., Bailly, N., Bourgoin, T., Brusca, R. C., ... & Kirk, P. M. (2015). “Correction: a higher level classification of all living organisms”. PLoS One 10: e0130114. doi:10.1371/journal.pone.0130114. 
  • Viprey, M., Guillou, L., Ferréol, M. & Vaulot, D. (2008). “Wide genetic diversity of picoplanktonic green algae (Chloroplastida) in the Mediterranean Sea uncovered by a phylum‐biased PCR approach”. Environmental Microbiology 10: 1804-1822. doi:10.1111/j.1462-2920.2008.01602.x. 
  • dos Santos, A. L., Pollina, T., Gourvil, P., Corre, E., Marie, D. et al. (2017). “Chloropicophyceae, a new class of picophytoplanktonic prasinophytes”. Scientific Reports 7: 14019. doi:10.1038/s41598-017-12412-5. 
  • Marin, B. (2012). “Nested in the Chlorellales or independent class? Phylogeny and classification of the Pedinophyceae (Viridiplantae) revealed by molecular phylogenetic analyses of complete nuclear and plastid-encoded rRNA operons”. Protist 163: 778-805. doi:10.1016/j.protis.2011.11.004. 
  • O.T.P.T.I. [= One Thousand Plant Transcriptomes Initiative] (2019). “One thousand plant transcriptomes and the phylogenomics of green plants”. Nature 574: 679-685. doi:10.1038/s41586-019-1693-2. 
  • Yang, T., Liao, X., Yang, L., Liu, Y., Mu, W., Sahu, S. K., ... & Liu, H. (2019). “Comparative analyses of 3654 chloroplast genomes unraveled new insights into the evolutionary mechanism of green plants”. bioRxiv: 655241. doi:10.1101/655241. 

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sourui.org

  • 半田信司「気生藻類」『21世紀初頭の藻学の現況』2002年、81–84頁。 

wikipedia.org

en.wikipedia.org

  • 近年のゲノムレベルの系統解析からは緑藻植物とストレプト植物の分岐前に他と分かれたことが示唆されており、プラシノデルマ植物門 (Prasinodermophyta) として他と分けることが提唱されている[1]