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Data from: Non-photosynthetic predators are sister to red algae
负责人:
关键词:
red algae;plastid;Rhodelphis marinus;Archaeplastida;Rhodelphis limneticus;phylogenomics
DOI:
doi:10.5061/dryad.tr6d8q2
摘要:
Rhodophyta (red algae) is one of three lineages of Archaeplastida, a supergroup that is united by the primary endosymbiotic origin of plastids
Data from: Three-dimensional preservation of cellular and subcellular structures reveal 1.6 billion-year-old probable crown-group red algae
负责人:
关键词:
Rhodophyta;Semri Group;Cellular preservation;Rafatazmia chitrakootensis;Ramathallus lobatus;Mesoproterozoic;Vindhyan;Palaeoproterozoic;Denaricion mendax
DOI:
doi:10.5061/dryad.gh221
摘要:
well-preserved fossils interpreted as crown-group rhodophytes (red algae). The filamentous form Rafatazmia chitrakootensis n.gen, n.sp. has uniserial rows
Data from: Functional traits for carbon access in macrophytes
负责人:
关键词:
Rhodophyta;Aquatic plant ecology;Chlorophyta;macrophyte;inorganic carbon acquisition;Seaweed;phylogeny;cosmopolitan family-level phylogenetic analysis;Ochrophyta;ancestral state reconstruction;carbon concentrating mechanism;Phaeophyceae
DOI:
doi:10.5061/dryad.6tq74
摘要:
. While analysis of CCMs as a continuous trait in 30 families within Phylum Rhodophyta showed a significant phylogenetic signal under a Brownian motion mod
Data from: Neofunctionalization within the Omp85 protein superfamily during chloroplast evolution
负责人:
关键词:
protein transport;Rhodophyta;beta-barrel proteins;Omp85;Arabidopsis;plastids;OEP80;Arabidopsis thaliana;Chlorophyta;Toc75;Physcomitrella patens;Cyanobacteria;Archaeplastida;Neofunctionalisation;chloroplast protein import;Viridiplantae
DOI:
doi:10.5061/dryad.r47q769s
摘要:
proteins, and both are essential in Arabidopsis plants with important roles throughout development. Toc75 forms the translocation channel of the TOC complex, which
Data from: Testing the effects of heterozygosity on growth rate plasticity in the seaweed Gracilaria chilensis (Rhodophyta)
负责人:
关键词:
growth rate plasticity;Gracilaria chilensis;Phenotypic Plasticity;Heterozygosity;ploidy
DOI:
doi:10.5061/dryad.r6b0q05
摘要:
lower growth rate plasticity than those exhibiting less heterozygosity, and (iii) diploid sporophytes from the population with higher heterozygosity
Data from: Shining light on benthic macroalgae: mechanisms of complementarity in layered macroalgal assemblages
负责人:
关键词:
Gross primary productivity;Action spectra;net primary productivity
DOI:
doi:10.5061/dryad.st1g8
摘要:
representatives from the chlorophyta, rhodophyta and phaeophyta) to use the total light resource, including different light wavelengths and examine the effect
Data from: Early photosynthetic eukaryotes inhabited low-salinity habitats
负责人:
关键词:
Cyanothece sp. PCC8801;Gloeomargarita lithophora;Volvox carteri nagariensis UTE2908;Fistulifera sp. JPCC DA0580;Pseudendoclonium akinetum;Pyramimonas parkeae;Precambrian;Anabaena cylindrica PCC7122;Photosynthetic eukaryotes;Cyanophora paradoxa;Prochlorococcus marinus str. MIT9515;Parachlorella kessleri;Synechococcus sp. WH8016;Synechococcus sp. PCC7002;Cyanidium caldarium;Cycas taitungensis;Pedinomonas minor;Chlamydomonas reinhardtii;Psilotum nudum;relaxed molecular clock.;Gloeobacter violaceus PCC7421;Prochloron didemni P2 Fiji;Anthoceros formosae;Mesoproterozoic;Thermosynechococcus elongatus BP1;Welwitschia mirabilis;Prasinoderma colonial;Pseudanabaena biceps PCC7429;Cyanothece sp. PCC7425;Angiopteris evecta;Cyanothece sp. PCC7424;Chlorokybus atmophyticus;Synechococcus sp. JA-3-3Ab;Coccomyxa sp. C169;Floydiella terrestris;Schizomeris leibleinii;Richelia intracellularis HH01;Microcystis aeruginosa NIES843 Micromonas sp. RCC299;Nodularia spumigena CCY9414;Porphyra purpurea;Adiantum capillus veneris;Buus microphylla;Calycanthus floridus;Nymphaea alba;Phaeodactylum tricornutum;Spinacia oleracea;Nodosilinea nodulosa PCC7104;Odontella sinensis;Chloroplast;Physcomitrella patens subsp patens;Great Oxidation Event;Aneura mirabilis;Cyanobacteria;Leptolyngbya sp. PCC7375;Synedra acus;Prochlorococcus marinus str. MIT9211;Cyanobium sp. PCC7001;Leptolyngbya sp. PCC7376;Verdigellas peltata;Bryopsis hypnoides;Gracilaria tenuistipitata;Synechococcus sp. RCC307;Ptilidium pulcherrimum;Prasinococcus sp. CCMP1194;Dunaliella salina;Nostoc azollae 0708;Ranunculus macranthus;Microcoleus vaginatus FGP2;Scenedesmus obliques;Synechococcus sp. PCC7335;Chaetosphaeridium globosum;Oscillatoria sp. PCC6506;Pseudanabaena sp. PCC7367;Raphidiopsis brookii D9;Richelia intracellularis HM01;Trichodesmium erythraeum IMS101;Prochloron didemni P3 Solomon;primary endosymbiotic event;Klebsormidium flaccidum;Acaryochloris marina MBIC11017;Arthrospira sp. PCC8005;Marchantia polymorpha;Staurastrum punctulatum;Coffea arabica;Porphyra yezoensis;Crocosphaera watsonii WH0003;Stigeoclonium helveticum;Pleurocapsa sp. PCC7327;Proterozoic;Gnetum parvifolium;Thalassiosira oceanica CCMP1005;Chara vulgaris;Leptosira terrestris;Cyanidioschyzon merolae strain 10D;Synechococcus sp. CB0101;Paulinella chromatophora;Nostoc punctiforme PCC73102;Pycnococcus provasolii;Illicium oligandrum;Prochlorococcus marinus str. AS9601;Nostoc sp. PCC7120;Fischerella sp. JSC11;Synechocystis sp. PCC6803;Cyanobium gracile PCC6307;Zygnema circumcarinatum;Microcoleus chthonoplastes PCC7420;Neoproterozoic;Pinus contorta;Calothrix sp. PCC6303;Ephedra equisetina;Synechococcus elongatus PCC6301;Amborella trichopoda;Cryptomeria japonica;Monomasti sp. OKE1;Pseudanabaena sp. PCC6802;phylogenomics;Lyngbya sp. PCC8106;Pre-Cambrian;Synechococcus sp. JA-2-3B'a(2-13);Oltmannsiellopsis viridis Oocystis solitaria SAG83 80;Syntrichia ruralis;Nephroselmis olivacea;Synechococcus sp. CC9605;Mesostigma viride;Ostreococcus tauri;Lyngbya majuscula 3L;Oedogonium cardiacum;Prochlorococcus marinus str. MIT9303;Cyanothece sp. CCY0110
DOI:
doi:10.5061/dryad.421p2
摘要:
, share a common ancestor that lived ?1.9 Bya. Whereas crown group Rhodophyta evolved in the Mesoproterozoic Era (1,600–1,000 Mya), crown groups Chlorophyta

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