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FIG. 1 in Molecular identifications and descriptions of the tadpoles of Rhacophorus kio Ohler & Delorme, 2006 and Rhacophorus rhodopus Liu & Hu, 1960 (Amphibia: Anura: Rhacophoridae)
FIG. 1. — Known distributions of Rhacophorus kio Ohler & Delorme, 2006 and Rhacophorus rhodopus Liu & Hu, 1960. Symbols:, type locality of R. kio;, type locality of R. rhodopus; ■, and hatched areas: localities and areas where R. kio has been found; ●, and grey squared areas: localities and areas where R. rhodopus has been found;, localities where both species have been encountered. Note that both species are present in the type locality of each species. Data from Sarkar & Sanyal 1985; Yang 1991; Nguyen & Ho 1996; Fei 1999; Fei et al. 2009; Inger et al. 1999; Ohler et al. 2000, 2002; Tordoff et al. 2000; Ziegler 2002; Chan-ard 2003; Stuart 2005; Inthara et al. 2005; Wilkinson et al. 2005; Ohler & Delorme 2006; Bordoloi et al. 2007; Nguyen et al. 2008; Nguyen et al. 2009; Grosjean et al. 2015.
FIG. 2 in Molecular identifications and descriptions of the tadpoles of Rhacophorus kio Ohler & Delorme, 2006 and Rhacophorus rhodopus Liu & Hu, 1960 (Amphibia: Anura: Rhacophoridae)
FIG. 2. — Drawings and scanning electron micrographs of the tadpole of Rhacophorus kio Ohler & Delorme, 2006, MNHN 2010.1072, stage 36: A, dorsal view; B, lateral view; C, oral disc; D, some keratodonts of the row A3 of the tadpole MNHN 2010.1142, stage 40. Scale bars: A, B, 10 mm; C, 1 mm; D, 10 µm.
Figure 2. Majority rule consensus tree for the 16S in Genus Baseodiscus (Nemertea: Heteronemertea): Molecular identification of a new species in a phylogenetic context
Figure 2. Majority rule consensus tree for the 16S rRNA data resulting from the Bayesian analysis (model GTR+G+I), 1,000,000 generations. Numbers refer to posterior probabilities.
Figure 1 in Genus Baseodiscus (Nemertea: Heteronemertea): Molecular identification of a new species in a phylogenetic context
Figure 1. Parsimony tree based on the 16S rRNA data with bootstrap support values from 5000 replicates (heuristic search, random additions, five replicates).
Figure 11 in Molecular identification, description, and phylogenetic implications of the tadpoles of 11 species of Malagasy treefrogs, genus Boophis
Figure 11. Drawings of the tadpole of Boophis viridis (ZSM 574/2004). (a) Dorsal view; (b) lateral view; (c) oral disc.
Figure 10 in Molecular identification, description, and phylogenetic implications of the tadpoles of 11 species of Malagasy treefrogs, genus Boophis
Figure 10. Drawings of the tadpole of Boophis tasymena (ZSM 527/2004). (a) Dorsal view; (b) lateral view; (c) oral disc.
Figure 7 in Molecular identification, description, and phylogenetic implications of the tadpoles of 11 species of Malagasy treefrogs, genus Boophis
Figure 7. Drawings of the tadpole of Boophis sibilans (ZSM 557/2004). (a) Dorsal view; (b) lateral view; (c) oral disc.
Figure 3 in Molecular identification, description, and phylogenetic implications of the tadpoles of 11 species of Malagasy treefrogs, genus Boophis
Figure 3. Drawings of the tadpole of Boophis madagascariensis (ZSM 519/2004). (a) Dorsal view; (b) lateral view; (c) oral disc.
Figure 4 in Molecular identification, description, and phylogenetic implications of the tadpoles of 11 species of Malagasy treefrogs, genus Boophis
Figure 4. Drawings of the tadpole of Boophis albilabris (ZSM 588/2004). (a) Dorsal view; (b) lateral view; (c) oral disc.
Figure 5 in Molecular identification, description, and phylogenetic implications of the tadpoles of 11 species of Malagasy treefrogs, genus Boophis
Figure 5. Drawings of the tadpole of Boophis pyrrhus (ZSM 580/2004). (a) Dorsal view; (b) lateral view; (c) oral disc.
Figure 6 in Molecular identification, description, and phylogenetic implications of the tadpoles of 11 species of Malagasy treefrogs, genus Boophis
Figure 6. Drawings of the tadpole of Boophis marojezensis (ZSM 523/2004). (a) Dorsal view; (b) lateral view, note that the hindlimb has been removed from the specimen for better visibility of structures; (c) oral disc.
Figure 1 in Molecular identification, description, and phylogenetic implications of the tadpoles of 11 species of Malagasy treefrogs, genus Boophis
Figure 1. Drawings of the tadpole of Boophis boehmei (ZSM 534/2004). (a) Dorsal view; (b) lateral view; (c) oral disc.
Figure 2 in Molecular identification, description, and phylogenetic implications of the tadpoles of 11 species of Malagasy treefrogs, genus Boophis
Figure 2. Drawings of the tadpole of Boophis reticulatus (ZSM 525/2004). (a) Dorsal view; (b) lateral view; (c) oral disc.
Figure 2 in Molecular identification of Haemaphysalis sulcata (Acari: Ixodidae) larval stages collected using the Berlese funnel in Northern Iran
Figure 2. Phylogenetic tree generated based on ITS2 sequence data of the Haemaphysalis species of this study and sequences retrieved from GenBank database constructed using Bayesian Inference method. The main clade of tree separated by a yellow rectangular box. The taxa were defined with a name and GenBank accession number and taxa of the present study is bold. Posterior probability values inserted in the place of nodes. Branch lengths are proportional to the evolutionary changes.
Fig. 2 in First record of the Vietnam Flying Frog, Rhacophorus calcaneus Smith, 1924, from Khanh Hoa Province, including the first molecular identification and morphological description of larval stages
Fig. 2. Drawings of the preserved tadpole (VNMN 6318) of Rhacophorus calcaneus from Hon Ba Nature Reserve in Gosner Stage 32: lateral view (A), dorsal view (B) (scale bar = 1 cm); oral apparatus (C) (scale bar = 0.5 mm).
Fig. 3 in First record of the Vietnam Flying Frog, Rhacophorus calcaneus Smith, 1924, from Khanh Hoa Province, including the first molecular identification and morphological description of larval stages
Fig. 3. Drawings of the preserved tadpoles of Rhacophorus calcaneus from Hon Ba Nature Reserve in advanced Gosner stages. (A) Stage 36. (B) Stage 37. (C) Stage 41 and (D) Stage 42 (scale bar = 1 cm).
Fig. 1 in First record of the Vietnam Flying Frog, Rhacophorus calcaneus Smith, 1924, from Khanh Hoa Province, including the first molecular identification and morphological description of larval stages
Fig. 1. Maximum-likelihood (ML) and Bayesian inference (BI) tree based on the partial 16S rRNA mitochondrial gene. Numbers above and under branches are ML bootstrap values and Bayesian posterior probabilities.
Fig. 3. Maximum likelihood tree estimated from the 215 in Morphological and Molecular Identification of Isospora sepetibensis (Chromista: Miozoa: Eimeriidae) from a New Host, Trichothraupis melanops (Passeriformes: Thraupidae: Tachyphoninae) in South America
Fig. 3. Maximum likelihood tree estimated from the 215 bp long cox1 sequences. Numbers at nodes represent bootstrap support (1,000 replicates; only values> 50% shown) for Neighbor-Joining and Maximum Likelihood, respectively. The scale-bar represents the number of nucleotide substitutions per site.
Fig. 2. Maximum likelihood tree estimated from the cox1 in Morphological and Molecular Identification of Isospora sepetibensis (Chromista: Miozoa: Eimeriidae) from a New Host, Trichothraupis melanops (Passeriformes: Thraupidae: Tachyphoninae) in South America
Fig. 2. Maximum likelihood tree estimated from the cox1 sequences. Numbers at nodes represent bootstrap support (1,000 replicates; only values> 50% shown) for Neighbor-Joining and Maximum Likelihood, respectively. The scale-bar represents the number of nucleotide substitutions per site.
Fig. 1 in Morphological and Molecular Identification of Isospora sepetibensis (Chromista: Miozoa: Eimeriidae) from a New Host, Trichothraupis melanops (Passeriformes: Thraupidae: Tachyphoninae) in South America
Fig. 1. Photomicrographs of sporulated oocysts of Isospora sepetibensis, a coccidium species recovered from the black-goggled tanager Trichothraupis melanops. Note the inner (il) and outer (ol) layer of the oocyst wall, nucleus (n), polar granule (pg), Stieda body (sb), sub- Stieda body (ssb), sporocyst residuum (sr), striations (str) and the refractile body (rb). Sheather's sugar solution. Scale-bar: 10 µm.
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Allen Brain Atlas
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DANDI Archive for NWB datasets
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International Brain Laboratory public data
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OpenNeuro
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