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2,772 results for “Amphibia”
Aligned DNA sequence matrix for phylogenetic analyses in the article "A new glassfrog of the genus Centrolene (Amphibia: Centrolenidae) from the Subandean Kutukú Cordillera, eastern Ecuador"
<p>Aligned DNA sequence matrix for phylogenetic analyses of the article "A new glassfrog of the genus Centrolene (Amphibia: Centrolenidae) from the Subandean Kutukú Cordillera, eastern Ecuador"</p> <p>The matrix is in NEXUS format and has 6626 bp and 239 terminals.</p> <p>Partitions are as follows:</p> <div> <div>charset 12S = 1-967;</div> <div>charset 16S = 968-2130;</div> <div> </div> <div>charset BNDFcodonPos1 = 2133-2829\3;</div> <div>charset BNDFcodonPos2 = 2131-2830\3;</div> <div>charset BNDFcodonPos3 = 2132-2828\3;</div> <div> </div> <div> </div> <div>charset ND1codonPos1 = 2832-3786\3;</div> <div>charset ND1codonPos2 = 2833-3787\3;</div> <div>charset ND1codonPos3 = 2831-3788\3;</div> <div> </div> <div> </div> <div>charset CXCR4codonPos1 = 3790-4144\3;</div> <div>charset CXCR4codonPos2 = 3791-4142\3;</div> <div>charset CXCR4codonPos3 = 3789-4143\3;</div> <div> </div> <div> </div> <div>charset cmyccodonPos1 = 4145-4547\3;</div> <div>charset cmyccodonPos2 = 4146-4548\3;</div> <div>charset cmyccodonPos3 = 4147-4549\3;</div> <div> </div> <div> </div> <div>charset POMCcodonPos1 = 4551-5160\3;</div> <div>charset POMCcodonPos2 = 4552-5161\3;</div> <div>charset POMCcodonPos3 = 4550-5162\3;</div> <div> </div> <div> </div> <div>charset RAG1codonPos1 = 5163-5616\3;</div> <div>charset RAG1codonPos2 = 5164-5617\3;</div> <div>charset RAG1codonPos3 = 5165-5618\3;</div> <div> </div> <div> </div> <div>charset SLC8A1codonPos1 = 5620-6160\3;</div> <div>charset SLC8A1codonPos2 = 5621-6158\3;</div> <div>charset SLC8A1codonPos3 = 5619-6159\3;</div> <div> </div> <div> </div> <div> </div> <div>charset SLC8A3codonPos1 = 6162-6627\3;</div> <div>charset SLC8A3codonPos2 = 6163-6625\3;</div> <div>charset SLC8A3codonPos3 = 6161-6626\3;</div> </div> <p> </p>
Herbarium specimen image of Rorippa amphibia var. indivisa (DC.) Polozhij, part of the collection of Natural History Museum, University of Tartu
Part of a training dataset of scanned herbarium specimens. The data paper and a summary landing page will be published on Zenodo as it gets published.<br><br>Content of this deposition:<br><br>- A JSON-LD datafile listing the label data associated with this herbarium specimen. The Darwin and Dublin Core data standards are used for most values.<br>- A JPEG image file of the scanned herbarium sheet.<br>- A lossless TIFF image from which the JPEG image has been derived.
Appendix List of samples of deep frozen frog legs with purchase date, collection number, haplotype number, taxonomic identification, tibia length (TL) and estimated snout vent length (SVL). in Which frog's legs do froggies eat? The use of DNA barcoding for identification of deep frozen frog legs (Dicroglossidae, Amphibia) commercialized in France
Appendix List of samples of deep frozen frog legs with purchase date, collection number, haplotype number, taxonomic identification, tibia length (TL) and estimated snout vent length (SVL).
Fig. 2. Minimum spanning network depicting relationships among 16S in Which frog's legs do froggies eat? The use of DNA barcoding for identification of deep frozen frog legs (Dicroglossidae, Amphibia) commercialized in France
Fig. 2. Minimum spanning network depicting relationships among 16S haplotypes of Fejervarya cancrivora (Gravenhorst, 1829). The size of each circle is proportional to the haplotype frequency and the lengths of the connecting lines are proportional to the number of mutations. Colors refer to distinct regions (Indonesia: Java, Sumatra, Bali, Kalimantan, Bangka; Malaysia; Taiwan) and commercialized frogs of unknown origin are in black.
Fig. 3. Histograms. A in Which frog's legs do froggies eat? The use of DNA barcoding for identification of deep frozen frog legs (Dicroglossidae, Amphibia) commercialized in France
Fig. 3. Histograms. A. Snout vent length (in mm) in adult Fejervarya cancrivora (Gravenhorst, 1829) from samples collected for scientific purposes (Boulenger 1920) and collection specimens as mentioned in Material and methods. B. Snout vent length estimated from tibia length of genetically identified frog legs from French supermarkets (specimen list, see Appendix).
Fig. 1 in Which frog's legs do froggies eat? The use of DNA barcoding for identification of deep frozen frog legs (Dicroglossidae, Amphibia) commercialized in France
Fig. 1. Phylogeny of Indonesian species of Fejervarya and Limnonectes recovered by the Bayesian analysis (GTR + I + G model). Hoplobatrachus rugulosus (Wiegmann, 1834) and Occidozyga laevis (Günther, 1858) were used as outgroups. Numbers on nodes represent Bayesian posterior probabilities, * indicates a value higher than 0.98. Only values higher than 0.75 are represented. h01 to h18 indicate the 18 haplotypes from frozen frog legs recovered in this study.
Fig. 6 in A new minute species of Pristimantis (Amphibia: Anura: Craugastoridae) with a large head from the Yanachaga-Chemillén National Park in central Peru, with comments on the phylogenetic diversity of Pristimantis occurring in the Cordillera Yanachaga
Fig. 6. Paratypes of Pristimantis boucephalus sp. nov. in dorsal (upper row) and ventral (lower row) views. From left to right: ♀ (MUSM 24479), ♂ (MUSM 24477), ♂ (MUSM 24478), juvenile (MUSM 24474). Photos by E. Lehr.
Fig. 7 in A new minute species of Pristimantis (Amphibia: Anura: Craugastoridae) with a large head from the Yanachaga-Chemillén National Park in central Peru, with comments on the phylogenetic diversity of Pristimantis occurring in the Cordillera Yanachaga
Fig. 7. Type locality of Pristimantis boucephalus sp. nov. in the Yanachaga-Chemillén National Park. Photo by E. Lehr.
Fig. 4 in A new minute species of Pristimantis (Amphibia: Anura: Craugastoridae) with a large head from the Yanachaga-Chemillén National Park in central Peru, with comments on the phylogenetic diversity of Pristimantis occurring in the Cordillera Yanachaga
Fig. 4. Preserved holotype (MUSM 31102, SVL 14.1 mm) of Pristimantis boucephalus sp. nov. A. Dorsal view. B. Ventral view. Photos by E. Lehr.
Fig. 5 in A new minute species of Pristimantis (Amphibia: Anura: Craugastoridae) with a large head from the Yanachaga-Chemillén National Park in central Peru, with comments on the phylogenetic diversity of Pristimantis occurring in the Cordillera Yanachaga
Fig. 5. Pristimantis boucephalus sp. nov., holotype (MUSM 31102). A. Dorsal view of head. B. Lateral view of head. C. Ventral view of hand. D. Ventral view of foot. Drawings by J. Moravec.
Fig. 3 in A new minute species of Pristimantis (Amphibia: Anura: Craugastoridae) with a large head from the Yanachaga-Chemillén National Park in central Peru, with comments on the phylogenetic diversity of Pristimantis occurring in the Cordillera Yanachaga
Fig. 3. Live holotype (MUSM 31102, SVL 14.1 mm) of Pristimantis boucephalus sp. nov. A. Dorsal view. B. Dorsolateral view. C. Ventral view. Photos by E. Lehr.
Fig. 4 in A New Species of the Genus Zhangixalus (Amphibia: Rhacophoridae) from Vietnam
Fig. 4. Habitat of Zhangixalus franki sp. nov. at the type locality in Quan Ba District, Ha Giang Province, Vietnam.
Fig. 1 in A New Species of the Genus Zhangixalus (Amphibia: Rhacophoridae) from Vietnam
Fig. 1. BI tree from a 1085 bp sequence of mitochondrial 16S rRNA gene of Zhangixalus Li, Jiang, Ren & Jiang, 2019 and outgroup species. Numbers above and below branches are Bayesian posterior probabilities (BPP) and ML bootstrap values (only values above 60% are shown), respectively. For GenBank accession numbers, refer to Table 1.
Fig. 3 in A New Species of the Genus Zhangixalus (Amphibia: Rhacophoridae) from Vietnam
Fig. 3. Map showing the type locality of Zhangixalus franki sp. nov. (●) in Quan Ba District, Ha Giang Province, northern Vietnam and distribution of Z. burmanus (Andersson, 1939) (Ɨ), Z. duboisi (Ohler, Marquis, Swan & Grosjean, 2000) (▲) and Z. omeimontis (Stejneger, 1924) (*orange star).
Figure 2 in Improved local inventory and regional contextualization for anuran (Amphibia) diversity assessment at an endangered habitat in southeastern Brazil
Figure 2. Rarefaction curves based on Jackknife I species-richness estimator for records of adults, tadpoles and all life stages pooled for four canga lakes at the Quadrilátero Ferrífero region, southeastern Brazil.
Figure 6 in Rediscovery, natural history, and conservation status of Idiocranium russeli Parker, 1936 (Amphibia: Gymnophiona: Indotyphlidae)
Figure 6. Photograph showing appearance and colour variation of four Idiocranium russeli from Makamune, site 7 (locality 11, see Tables 1, 2) in life. Note the increasing demarcation of annular grooves posteriorly, colour variation among individuals, and presence of middorsal stripe. Total length of palest specimen shown here was 130 mm when freshly anaesthetized.
FIGURE 4 in A new species of Chthonerpeton (Amphibia: Gymnophiona: Typhlonectidae) from Bahia, Brazil
FIGURE 4. – Living specimen of Chthonerpeton noctinectes showing common resting posture during the day in the aquarium.
FIGURE 3 in A new species of Chthonerpeton (Amphibia: Gymnophiona: Typhlonectidae) from Bahia, Brazil
FIGURE 3. — Body terminus of a female (A) and male (B) showing detail of vent. Notice sexual size dimorphism relating to the terminus width, and the presence of disc papillae in both females and males.
FIGURE 2 in A new species of Chthonerpeton (Amphibia: Gymnophiona: Typhlonectidae) from Bahia, Brazil
FIGURE 2. — Holotype (MNRJ 10581) Chthonerpeton noctinectes: (A) Lateral view of the head and neck showing left side, (B) head dorsal, (C) head ventral, and (D) ventral view of body terminus showing detail of vent.
FIGURE 1 in A new species of Gegeneophis Peters (Amphibia: Gymnophiona: Caeciliidae) from southern Maharashtra, India, with a key to the species of the genus
FIGURE 1. Photographs of the holotype of Gegeneophis danieli (BNHS 4157). a) lateral view in life, b) ventral view of preserved specimen, c) ventral view of body terminus in preserved specimen. Scales in mm.
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Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.