RCC references

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Ota S, Vaulot D, Le Gall F, Yabuki A, Ishida K.  2009.  Partenskyella glossopodia gen. et sp. nov., the first report of chlorarachniophyte that lacks pyrenoid. Protist. 160:137–150.PDF icon Ota et al_2009_Partenskyella glossopodia gen.pdf (1.74 MB)
Lepelletier F, Karpov SA, Le Panse S, Bigeard E, Skovgaard A, Jeanthon C, Guillou L.  2014.  Parvilucifera rostrata sp. nov., a novel parasite in the phylum Perkinsozoa that infects the toxic dinoflagellate Alexandrium minutum (Dinophyceae). Protist. 165:31–49.PDF icon Lepelletier et al_2014_Parvilucifera rostrata sp.pdf (17.84 MB)
Lepelletier F, Karpov SA, Le Panse S, Bigeard E, Skovgaard A, Jeanthon C, Guillou L.  2014.  Parvilucifera rostrata sp. nov., a novel parasite in the phylum Perkinsozoa that infects the toxic dinoflagellate Alexandrium minutum (Dinophyceae). Protist. 165:31–49.PDF icon Lepelletier et al_2014_Parvilucifera rostrata sp.pdf (17.84 MB)
Kettler G, Martiny AC, Huang K, Zucker J, Coleman ML, Rodrigue S, Chen F, Lapidus A, Ferriera S, Johnson J et al..  2007.  Patterns and implications of gene gain and loss in the evolution of Prochlorococcus. PLoS genetics. 3:e231.PDF icon Kettler et al_2007_Patterns and implications of gene gain and loss in the evolution of.pdf (664.09 KB)
Bowler C, Allen AE, Badger JH, Grimwood J, Jabbari K, Kuo A, Maheswari U, Martens C, Maumus F, Otillar RP et al..  2008.  The Phaeodactylum genome reveals the evolutionary history of diatom genomes. Nature. 456:239–244.PDF icon Bowler et al_2008_The Phaeodactylum genome reveals the evolutionary history of diatom genomes.pdf (436.19 KB)
Bowler C, Allen AE, Badger JH, Grimwood J, Jabbari K, Kuo A, Maheswari U, Martens C, Maumus F, Otillar RP et al..  2008.  The Phaeodactylum genome reveals the evolutionary history of diatom genomes. Nature. 456:239–244.PDF icon Bowler et al_2008_The Phaeodactylum genome reveals the evolutionary history of diatom genomes.pdf (436.19 KB)
Bowler C, Allen AE, Badger JH, Grimwood J, Jabbari K, Kuo A, Maheswari U, Martens C, Maumus F, Otillar RP et al..  2008.  The Phaeodactylum genome reveals the evolutionary history of diatom genomes. Nature. 456:239–244.PDF icon Bowler et al_2008_The Phaeodactylum genome reveals the evolutionary history of diatom genomes.pdf (436.19 KB)
Bowler C, Allen AE, Badger JH, Grimwood J, Jabbari K, Kuo A, Maheswari U, Martens C, Maumus F, Otillar RP et al..  2008.  The Phaeodactylum genome reveals the evolutionary history of diatom genomes. Nature. 456:239–244.PDF icon Bowler et al_2008_The Phaeodactylum genome reveals the evolutionary history of diatom genomes.pdf (436.19 KB)
Bowler C, Allen AE, Badger JH, Grimwood J, Jabbari K, Kuo A, Maheswari U, Martens C, Maumus F, Otillar RP et al..  2008.  The Phaeodactylum genome reveals the evolutionary history of diatom genomes. Nature. 456:239–244.PDF icon Bowler et al_2008_The Phaeodactylum genome reveals the evolutionary history of diatom genomes.pdf (436.19 KB)
Bowler C, Allen AE, Badger JH, Grimwood J, Jabbari K, Kuo A, Maheswari U, Martens C, Maumus F, Otillar RP et al..  2008.  The Phaeodactylum genome reveals the evolutionary history of diatom genomes. Nature. 456:239–244.PDF icon Bowler et al_2008_The Phaeodactylum genome reveals the evolutionary history of diatom genomes.pdf (436.19 KB)
Blanco-Ameijeiras S, Lebrato M, Stoll HM, Iglesias-Rodriguez D, Müller MN, Méndez-Vicente A, Oschlies A.  2016.  Phenotypic variability in the coccolithophore emiliania huxleyi.. PloS one. 11:e0157697.PDF icon Blanco-Ameijeiras et al_2016_Phenotypic variability in the coccolithophore emiliania huxleyi.pdf (1 MB)
Noordally ZB, Hindle MM, Martin SF, Seaton DD, T Simpson I, Le Bihan T, Millar AJ.  2023.  A phospho-dawn of protein modification anticipates light onset in the picoeukaryote \textit{O. tauri. Journal of Experimental Botany. :erad290.PDF icon Noordally et al. - 2023 - A phospho-dawn of protein modification anticipates.pdf (2.81 MB)
Gerecht A.C., Šupraha L., Edvardsen B., Langer G., Henderiks J..  2015.  Phosphorus availability modifies carbon production in Coccolithus pelagicus (Haptophyta). Journal of Experimental Marine Biology and Ecology. 472:24–31.PDF icon Gerecht et al_2015_Phosphorus availability modifies carbon production in Coccolithus pelagicus.pdf (850.49 KB)
Partensky F, Hoepffner N, Li WKW, Ulloa O, Vaulot D.  1993.  Photoacclimation of Prochlorococcus sp. (Prochlorophyta) strains isolated from the North Atlantic and the Mediterranean Sea. Plant Physiology. 101:295–296.PDF icon Partensky et al_1993_Photoacclimation of Prochlorococcus sp.pdf (1.16 MB)
Lacour T, Larivière J, Ferland J, Morin P-I, Grondin P-L, Donaher N, Cockshutt A, Campbell DA, Babin M.  2022.  Photoacclimation of the polar diatom Chaetoceros neogracilis at low temperature. PLOS ONE. 17:e0272822.PDF icon Lacour et al_2022_Photoacclimation of the polar diatom Chaetoceros neogracilis at low temperature.pdf (2.08 MB)
Lacour T, Larivière J, Ferland J, Morin P-I, Grondin P-L, Donaher N, Cockshutt A, Campbell DA, Babin M.  2022.  Photoacclimation of the polar diatom Chaetoceros neogracilis at low temperature. PLOS ONE. 17:e0272822.PDF icon Lacour et al_2022_Photoacclimation of the polar diatom Chaetoceros neogracilis at low temperature.pdf (2.08 MB)
Six C, Sherrard R, Lionard M, Roy S, Campbell DA.  2009.  Photosystem II and pigment dynamics among ecotypes of the green alga Ostreococcus. Plant Physiology. 151:379–390.PDF icon Six et al_2009_Photosystem II and pigment dynamics among ecotypes of the green alga.pdf (286.12 KB)
Carrigee LA, Frick JP, Liu X, Karty JA, Trinidad JC, Tom IP, Yang X, Dufour L, Partensky F, Schluchter WM.  2022.  The phycoerythrobilin isomerization activity of MpeV in Synechococcus sp. WH8020 is prevented by the presence of a histidine at position 141 within its phycoerythrin-I β-subunit substrate. Frontiers in Microbiology. 13:1011189.PDF icon Carrigee et al_2022_The phycoerythrobilin isomerization activity of MpeV in Synechococcus sp.pdf (5.76 MB)
Liu F, Gledhill M, Tan Q-G, Zhu K, Zhang Q, Salaün P, Tagliabue A, Zhang Y, Weiss D, Achterberg EP et al..  2022.  Phycosphere pH of unicellular nano- and micro- phytoplankton cells and consequences for iron speciation. The ISME Journal. 16:2329–2336.PDF icon Liu et al_2022_Phycosphere pH of unicellular nano- and micro- phytoplankton cells and.pdf (1.5 MB)
Cho A, Tikhonenkov DV, Lax G, Prokina KI, Keeling PJ.  2023.  Phylogenomic position of genetically diverse phagotrophic stramenopile flagellates in the sediment-associated MAST-6 lineage and a potentially halotolerant placididean. Molecular Phylogenetics and Evolution. :107964.PDF icon Cho et al. - 2023 - Phylogenomic position of genetically diverse phago.pdf (2.71 MB)
Stawiarski B, Buitenhuis ET, Le Quéré C.  2016.  The physiological response of picophytoplankton to temperature and its model representation. Fronitiers in Marine Science. 3:1–13.PDF icon Stawiarski et al_2016_The physiological response of picophytoplankton to temperature and its model.pdf (1.34 MB)
Decelle J, Romac S, Stern RF, Bendif EMahdi, Zingone A, Audic S, Guiry MD, Guillou L, Tessier D, Le Gall F et al..  2015.  PhytoREF: a reference database of the plastidial 16S rRNA gene of photosynthetic eukaryotes with curated taxonomy. Molecular Ecology Resources. 15:1435–1445.PDF icon Decelle et al_2015_PhytoREF.pdf (739.73 KB)
Le Gall F, Rigaut-Jalabert F, Marie D, Garczareck L, Viprey M, Godet A, Vaulot D.  2008.  Picoplankton diversity in the south-east pacific ocean from cultures. Biogeosciences. 5:203–214.
Latasa M, Scharek R, Le Gall F, Guillou L, Le Gall F.  2004.  Pigment suites and taxonomic groups in Prasinophyceae. Journal of Phycology. 40:1149–1155.PDF icon Latasa et al_2004_Pigment suites and taxonomic groups in Prasinophyceae.pdf (32 KB)

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