車軸藻類 (Japanese Wikipedia)

Analysis of information sources in references of the Wikipedia article "車軸藻類" in Japanese language version.

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algaebase.org

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cooncreekwd.org

doi.org

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  • Perez, W., Hall, J. D., McCourt, R. M. & Karol, K. G. (2014). “Phylogeny of North American Tolypella (Charophyceae, Charophyta) based on plastid DNA sequences with a description of Tolypella ramosissima sp. nov”. Journal of Phycology 50: 776-789. doi:10.1111/jpy.12219. 
  • Pérez, W., Hall, J. D., McCourt, R. M. & Karol, K. G. (2014). “Phylogeny of North American Tolypella (Charophyceae, Charophyta) based on plastid DNA sequences with a description of Tolypella ramosissima sp. nov”. Journal of Phycology 50: 776-789. doi:10.1111/jpy.12219. 
  • Cook, M. E., Graham, L. E., Botha, C. E. J. & Lavin, C. A. (1997). “Comparative ultrastructure of plasmodesmata of Chara and selected bryophytes: toward an elucidation of the evolutionary origin of plant plasmodesmata”. American Journal of Botany 84: 1169-1178. doi:10.2307/2446040. 
  • Cook, M. E., Graham, L. E. & Lavin, C. A. (1998). “Cytokinesis and nodal anatomy in the charophycean green algaChara zeylanica”. Protoplasma 203: 65-74. doi:10.1007/BF01280588. 
  • Michaux-Ferrière, N. & Soulié-Märsche, I. (1987). “The quantities of DNA in the vegetative nuclei of Chara vulgaris and Tolypella glomerata (Charophyta)”. Phycologia 26: 435-442. doi:10.2216/i0031-8884-26-4-435.1. 
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  • Delaux, P. M., Xie, X., Timme, R. E., Puech‐Pages, V., Dunand, C., Lecompte, E., ... & Séjalon‐Delmas, N. (2012). “Origin of strigolactones in the green lineage”. New Phytologist 195: 857-871. doi:10.1111/j.1469-8137.2012.04209.x. 
  • 西山智明 & 坂山英俊 (2018). “シャジクモのゲノムの解読が明かす陸上植物への道および独自の進化”. DBCLS. doi:10.7875/first.author.2018.077. 
  • McConnaughey, T. (1998). “Acid secretion, calcification, and photosynthetic carbon concentrating mechanisms”. Can. J. Bot. 76: 1119–1126. doi:10.1139/b98-066. 
  • Lucas, W. J. (1995). “Plasmodesmata: intercellular channels for macromolecular transport in plants”. Current Opinion in Cell Biology 7: 673-680. doi:10.1016/0955-0674(95)80109-X. 
  • Lucas, W. J., Brechignac, F., Mimura, T. & Oross, J. W. (1989). “Charasomes are not essential for photosynthetic utilization of exogenous HCO3 in Chara corallina”. Protoplasma 151: 106-114. doi:10.1007/BF01403447. 
  • Nishiyama, T., Sakayama, H., De Vries, J., Buschmann, H., Saint-Marcoux, D., Ullrich, K. K., ... & Vosolsobě, S. (2018). “The Chara genome: secondary complexity and implications for plant terrestrialization”. Cell 174: 448-464. doi:10.1016/j.cell.2018.06.033. 
  • Braun, M. & Wasteneys, G. O. (1998). “Reorganization of the actin and microtubule cytoskeleton throughout blue-light-induced differentiation of characean protonemata into multicellular thalli”. Protoplasma 202: 38-53. doi:10.1007/BF01280873. 
  • Pickett-Heaps, J. D. (1968). “Ultrastructure and differentiation in Chara fibrosa. IV. Spermatogenesis”. Australian Journal of Biological Sciences 21: 655-690. doi:10.1071/BI9680655. 
  • Takatori, S. & Imahori, K. (1971). “Light reactions in the control of oospore germination of Chara delicatula”. Phycologia 10: 221-228. doi:10.2216/i0031-8884-10-2-221.1. 
  • Stross, R. G. (1979). “Density and boundary regulations of the Nitella meadow in Lake George, New York”. Aquatic Botany 6: 285-300. doi:10.1016/0304-3770(79)90066-4. 
  • Andrews, M., Box, R., McInroy, S. & Raven, J. A. (1984). “Growth of Chara hispida: II. Shade adaptation”. The Journal of Ecology 72: 885-895. doi:10.2307/2259538. 
  • Frantz, T. C. & Cordone, A. J. (1967). “Observations on deepwater plants in Lake Tahoe, California and Nevada”. Ecology 48: 709-714. doi:10.2307/1933727. 
  • Kufel, L. & Kufel, I. (2002). “Chara beds acting as nutrient sinks in shallow lakes — a review”. Aquatic Botany 72: 249-260. doi:10.1016/S0304-3770(01)00204-2. 
  • Dugdale, T. M., Hicks, B. J., De Winton, M. & Taumoepeau, A. (2006). “Fish exclosures versus intensive fishing to restore charophytes in a shallow New Zealand lake”. Aquatic Conservation: Marine and Freshwater Ecosystems 16: 193-202. doi:10.1002/aqc.711. 
  • Schmieder, K., Werner, S. & Bauer, H. G. (2006). “Submersed macrophytes as a food source for wintering waterbirds at Lake Constance”. Aquatic Botany 84: 245-250. doi:10.1016/j.aquabot.2005.09.006. 
  • Kato, S., Kawai, H., Takimoto, M., Suga, H., Yohda, K., Horiya, K., ... & Sakayama, H. (2014). “Occurrence of the endangered species Nitellopsis obtusa (Charales, Charophyceae) in western Japan and the genetic differences within and among Japanese populations”. Phycological Research 62: 222-227. doi:10.1111/pre.12057. 
  • Wayne, R. (1994). “The excitability of plant cells: with a special emphasis on characean internodal cells”. The Botanical Review 60: 265-367. doi:10.1007/BF02960261. 
  • Woodhouse, F. G. & Goldstein, R. E. (2013). “Cytoplasmic streaming in plant cells emerges naturally by microfilament self-organization”. Proceedings of the National Academy of Sciences 110: 14132-14137. doi:10.1073/pnas.1302736110. 
  • Wickett, N.J., Mirarab, S., Nguyen, N., Warnow, T., Carpenter, E., Matasci, N., Ayyampalayam, S., Barker, M.S., Burleigh, J.G., Gitzendanner, M.A., et al. (2014). “Phylotranscriptomic analysis of the origin and early diversification of land plants”. Proc Natl. Acad. Sci. USA 111: E4859-4868. doi:10.1073/pnas.1323926111. 
  • Adl, S. M., Bass, D., Lane, C. E., Lukeš, J., Schoch, C. L., Smirnov, A., ... & Cárdenas, P. (2019). “Revisions to the classification, nomenclature, and diversity of eukaryotes.”. Journal of Eukaryotic Microbiology 66: 4-119. https://doi.org/10.1111/jeu.12691. 
  • Karol,K. G.,McCourt,R. M.,Cimino,M. T. & Delwiche,C. F. (2001). “The closest living relatives of land plants”. Science 294: 2351-2353. doi:10.1126/science.1065156. 
  • Wodniok, S., Brinkmann, H., Glöckner, G., Heidel, A. J., Philippe, H., Melkonian, M. & Becker, B. (2011). “Origin of land plants: do conjugating green algae hold the key?”. BMC Evolutionary Biology 11: 104. doi:10.1186/1471-2148-11-104. 
  • Timme, R. E., Bachvaroff, T. R. & Delwiche, C. F. (2012). “Broad phylogenomic sampling and the sister lineage of land plants”. PLoS One 7: e29696. doi:10.1371/journal.pone.0029696. 
  • Zhong, B., Xi, Z., Goremykin, V. V., Fong, R., Mclenachan, P. A., Novis, P. M., ... & Penny, D. (2013). “Streptophyte algae and the origin of land plants revisited using heterogeneous models with three new algal chloroplast genomes”. Molecular Biology and Evolution 31: 177-183. doi:10.1093/molbev/mst200. 
  • 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. 
  • Feist, M., Liu, J. & Tafforeau, P. (2005). “New insights into Paleozoic charophyte morphology and phylogeny”. American Journal of Botany 92: 1152-1160. doi:10.3732/ajb.92.7.1152. 
  • Karol, K. G., Skawinski, P. M., McCourt, R. M., Nault, M. E., Evans, R., Barton, M. E., ... & Hall, J. D. (2017). “First discovery of the charophycean green alga Lychnothamnus barbatus (Charophyceae) extant in the New World”. American Journal of Botany 104: 1108-1116. doi:10.3732/ajb.1700172. 

env.go.jp

harvard.edu

adsabs.harvard.edu

hi-ho.ne.jp

joy.hi-ho.ne.jp

keio.ac.jp

sci.keio.ac.jp

nies.go.jp

mcc.nies.go.jp

nih.gov

ncbi.nlm.nih.gov

nii.ac.jp

ci.nii.ac.jp

  • 森嶋秀治, 佐野郷美 & 野崎久義 (2002). “絶滅日本固有車軸藻テガヌマフラスコモ Nitella furcata var. fallosa (シャジクモ目) の千葉県手賀沼底泥からの回復”. 植物研究雑誌 77 (3): 139-142. NAID 40005445586. 

t-com.ne.jp

www2.tba.t-com.ne.jp