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35 results for “Pavlova”
Figure 1 from: Bannikova AA, Jenkins PD, Solovyeva EN, Pavlova SV, Demidova TB, Simanovsky SA, Sheftel BI, Lebedev VS, Fang Y, Dalen L, Abramov AV (2019) Who are you, Griselda? A replacement name for a new genus of the Asiatic short-tailed shrews (Mammalia, Eulipotyphla, Soricidae): molecular and morphological analyses with the discussion of tribal affinities. ZooKeys 888: 133-158. https://doi.org/10.3897/zookeys.888.37982
Figure 1 Sample localities of specimens used for molecular analyses 1 China, Gansu, Lingtan County (NHMUK 12.8.5.23, holotype of Blarinella griselda Thomas, 1912) 2 China, Gansu, Taizishan NR (ZMMU S-195179) 3 China, Sichuan, Ruoergai (Zoige) (ZMMU G17-87) 4 China, Sichuan, Songpan (ZMMU G18-252) 5 China, Shaanxi, Mt.Qinling (after He et al. 2018) 6 China, Gansu, Huixian (ZMMU G17-12) 7 China, Sichuan, Baoxing (type locality of Blarinella quadraticauda (Milne-Edwards, 1872)). Unnumbered localities based on the GenBank data.
Figure 2 from: Bannikova AA, Jenkins PD, Solovyeva EN, Pavlova SV, Demidova TB, Simanovsky SA, Sheftel BI, Lebedev VS, Fang Y, Dalen L, Abramov AV (2019) Who are you, Griselda? A replacement name for a new genus of the Asiatic short-tailed shrews (Mammalia, Eulipotyphla, Soricidae): molecular and morphological analyses with the discussion of tribal affinities. ZooKeys 888: 133-158. https://doi.org/10.3897/zookeys.888.37982
Figure 2 The phylogenetic relationships in Blarinella as reconstructed in MrBayes based on cytb data. Numbers above or below branches correspond to Bayesian posterior probabilities and ML bootstrap values (>50%) generated using fast bootstrap algorithm in IQTREE. The genera Blarina and Cryptotis are used as outgroups.
Figure 3 from: Bannikova AA, Jenkins PD, Solovyeva EN, Pavlova SV, Demidova TB, Simanovsky SA, Sheftel BI, Lebedev VS, Fang Y, Dalen L, Abramov AV (2019) Who are you, Griselda? A replacement name for a new genus of the Asiatic short-tailed shrews (Mammalia, Eulipotyphla, Soricidae): molecular and morphological analyses with the discussion of tribal affinities. ZooKeys 888: 133-158. https://doi.org/10.3897/zookeys.888.37982
Figure 3 MrBayes tree of Soricinae genera as inferred from the concatenation of four nuclear genes. Numbers above or below branches correspond to Bayesian posterior probabilities and ML bootstrap values (>50%) generated using fast bootstrap algorithm in IQTREE. Crocidura fuliginosa is used as outgroup.
Fig. 13 in New species of Pavlovophyceae (Haptophyta) and revision of the genera Exanthemachrysis, Rebecca and Pavlova
Fig. 13. Three Pavlova strains, details of the PY. A–E. TEM images. A. AC250, whole cell with a longitudinally sectioned C showing the E composed of osmiophilic clustered globules on its inner side and on the opposite side, the transversely sectioned campylotropous PY forming a slight hump on the cell surface and showing the narrow median space. (Fix 1). B. AC248, protruding campylotropous PY, longitudinally sectioned, completely surrounded by the C-membrane, bordered by periplastic ER on the cell surface and showing a narrow medial stromal space. (Fix 1). C. AC250, campylotropous PY, longitudinally sectioned emerging from the C towards the interior of the cell. (Fix 1). D. AC33, section of a palmelloid benthic cell surrounded by M with a cross sectioned campylotropous PY, in the middle of single cup-shaped parietal C, forming an ovoid bulge at the cell surface. (Original image, courtesy of C. Billard). E. AC248, detail of a cross section of the campylotropous pyrenoid attached to the plasma membrane (white arrows) showing the surrounding chloroplastic envelope lined on the inside by the periplastic ER (black arrows). (Fix 1). F. SEM image of AC248, postero-lateral view of a swimming cell with a complete F apparatus. PY bulging opposite the flagella with a tongue-like part projecting outwards from the cell. Scale bars: A = 1 µm; B = 20 nm; C = 0.5 µm; E = 200 nm; F = 2 µm.
Figure 1 from: Toshev A, Petkova-Gueorguieva E, Mihaylova A, Pavlova G, Parahuleva N, Balkanski S, Peikova L, Getova V, Madzharov V, Gueorguiev S (2024) Health Emergency Preparedness and Response Authority's (HERA) role in dealing with the monkeypox emergency in the European Union. Pharmacia 71: 1-6. https://doi.org/10.3897/pharmacia.71.e117944
Figure 1 Distribution of cases by month (January 2022-August 2022) for the six WHO regions.
Figure 2 from: Toshev A, Petkova-Gueorguieva E, Mihaylova A, Pavlova G, Parahuleva N, Balkanski S, Peikova L, Getova V, Madzharov V, Gueorguiev S (2024) Health Emergency Preparedness and Response Authority's (HERA) role in dealing with the monkeypox emergency in the European Union. Pharmacia 71: 1-6. https://doi.org/10.3897/pharmacia.71.e117944
Figure 2 Distribution of cases by month (January 2022-August 2023) for the six WHO regions.
Figure 7 from: Ilieva V, Kondeva-Burdina M, Georgieva T, Pavlova V (2019) Toxicity of cyanobacteria. Organotropy of cyanotoxins and toxicodynamics of cyanotoxins by species. Pharmacia 66(3): 91-97. https://doi.org/10.3897/pharmacia.66.e37035
Figure 7 BMAA structure.
Figure 5 from: Ilieva V, Kondeva-Burdina M, Georgieva T, Pavlova V (2019) Toxicity of cyanobacteria. Organotropy of cyanotoxins and toxicodynamics of cyanotoxins by species. Pharmacia 66(3): 91-97. https://doi.org/10.3897/pharmacia.66.e37035
Figure 5 Structure of Cylindrospermopsin.
Figure 3 from: Ilieva V, Kondeva-Burdina M, Georgieva T, Pavlova V (2019) Toxicity of cyanobacteria. Organotropy of cyanotoxins and toxicodynamics of cyanotoxins by species. Pharmacia 66(3): 91-97. https://doi.org/10.3897/pharmacia.66.e37035
Figure 3 Structure of anatoxin-a.
Figure 2 from: Ilieva V, Kondeva-Burdina M, Georgieva T, Pavlova V (2019) Toxicity of cyanobacteria. Organotropy of cyanotoxins and toxicodynamics of cyanotoxins by species. Pharmacia 66(3): 91-97. https://doi.org/10.3897/pharmacia.66.e37035
Figure 2 Structure of Nodularin- R.
Figure 6 from: Ilieva V, Kondeva-Burdina M, Georgieva T, Pavlova V (2019) Toxicity of cyanobacteria. Organotropy of cyanotoxins and toxicodynamics of cyanotoxins by species. Pharmacia 66(3): 91-97. https://doi.org/10.3897/pharmacia.66.e37035
Figure 6 Structure of Saxitoxins.
Figure 4 from: Ilieva V, Kondeva-Burdina M, Georgieva T, Pavlova V (2019) Toxicity of cyanobacteria. Organotropy of cyanotoxins and toxicodynamics of cyanotoxins by species. Pharmacia 66(3): 91-97. https://doi.org/10.3897/pharmacia.66.e37035
Figure 4 Structural similarity between acetylcholine and anatoxin.
Figure 1 from: Ilieva V, Kondeva-Burdina M, Georgieva T, Pavlova V (2019) Toxicity of cyanobacteria. Organotropy of cyanotoxins and toxicodynamics of cyanotoxins by species. Pharmacia 66(3): 91-97. https://doi.org/10.3897/pharmacia.66.e37035
Figure 1 Structure of microcystin-LR.
Figure 8 from: Bannikova AA, Jenkins PD, Solovyeva EN, Pavlova SV, Demidova TB, Simanovsky SA, Sheftel BI, Lebedev VS, Fang Y, Dalen L, Abramov AV (2019) Who are you, Griselda? A replacement name for a new genus of the Asiatic short-tailed shrews (Mammalia, Eulipotyphla, Soricidae): molecular and morphological analyses with the discussion of tribal affinities. ZooKeys 888: 133-158. https://doi.org/10.3897/zookeys.888.37982
Figure 8 The male karyotype of Parablarinella griselda (ZMMU S-195179) with 2n = 49; NFa = 50.
Fig. 14 in New species of Pavlovophyceae (Haptophyta) and revision of the genera Exanthemachrysis, Rebecca and Pavlova
Fig. 14. Key to the genera of the Pavlovales (+ = present, - = absent). Drawn by A. Defrance.
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