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Figs. 6–11 in Taxonomic Notes On The Species Of The Genus Malayepipona Giordani Soika (Hymenoptera: Vespidae: Eumeninae) From Northern Vietnam, With Description Of Three New Species
Figs. 6–11. Malayepipona clypeata, new species. Female: 6, vertex in dorsal view; 7, clypeus in frontal view; 8, mandibular teeth in frontal view; 9, left antenna; 10, propodeum in posterior view; 11, metasomal segments showing second sternum.
Figs. 1–5 in Taxonomic Notes On The Species Of The Genus Malayepipona Giordani Soika (Hymenoptera: Vespidae: Eumeninae) From Northern Vietnam, With Description Of Three New Species
Figs. 1–5. Malayepipona malickyi (Gusenleitner). Female: 1, vertex in dorsal view; 2, clypeus in frontal view; 3, mandibular teeth in frontal view; 4, right antenna; 5, metasomal segments showing second sternum.
FIG. 9 in Review of Myotis (Chiroptera, Vespertilionidae) from northern South America, including description of a new species
FIG. 9. Map of northeastern Colombia and northern Venezuela showing known distribution of Myotis handleyi (stars).
FIG. 8 in Review of Myotis (Chiroptera, Vespertilionidae) from northern South America, including description of a new species
FIG. 8. Dorsal, ventral and lateral views (scale bar = 5 mm) of the cranium and lateral view of the mandible of the holotype of Myotis handleyi (USNM 370932). See table 5 for measurements.
FIG. 7 in Review of Myotis (Chiroptera, Vespertilionidae) from northern South America, including description of a new species
FIG. 7. Dorsal (A) and ventral (B) views of the skin of the holotype of Myotis handleyi (USNM 370932; scale bar = 10 mm). On the right side enlarged views of the dorsal (C) and ventral (D) pelage, highlighting the contrast between bases and tips. See table 5 for measurements.
FIG. 6 in Review of Myotis (Chiroptera, Vespertilionidae) from northern South America, including description of a new species
FIG. 6. Dorsal (A–C) and ventral (D–F) views of skins of specimens from upper elevations in Venezuela (A and D—USNM 370891; subsequently assigned to M. handleyi), and Colombia (B and E—AMNH 461860; subsequently assigned to M. caucensis), and lower elevation in Venezuela (C and F—USNM 373925; M. nigricans). See table 4 for measurements.
FIG. 5 in Review of Myotis (Chiroptera, Vespertilionidae) from northern South America, including description of a new species
FIG. 5. Dorsal, ventral, and lateral views (scale bar = 5 mm) of skulls of specimens from A, upper elevations in Venezuela (USNM 370891; subsequently assigned to M. handleyi); B, Colombia (AMNH 32787; subsequently assigned to M. caucensis); and C, lower elevation in Venezuela (USNM 373929; M. nigricans). See table 4 for measurements.
FIG. 3 in Review of Myotis (Chiroptera, Vespertilionidae) from northern South America, including description of a new species
FIG. 3. UPGMA dendrogram of Mahalanobis distances between samples analyzed (localities in parentheses) in the present study. See methodology for description of localities.
FIG. 4. A in Review of Myotis (Chiroptera, Vespertilionidae) from northern South America, including description of a new species
FIG. 4. A. Plots of multivariate individual scores in the first two discriminant functions. B. Corresponding vector correlations (> ±0.29) of craniometric characters with the first two eigenvectors. Samples: (1) Valle del Cauca, Colombia, 975 m; (2) Nariño, Colombia, 250 m; (3) Carabobo, Venezuela, 25 m; (4) Amazonas, Venezuela, ca. 100 m; (5) Monagas, Venezuela, 1190 m; (6) Aragua, Venezuela, ca. 1100 m; and (7) Distrito Federal, Venezuela, ca. 2100 m. See Materials and Methods for variable abbreviations.
FIG. 1 in Review of Myotis (Chiroptera, Vespertilionidae) from northern South America, including description of a new species
FIG. 1. Map of part of South America illustrating localities of Myotis nigricans samples (sensu LaVal, 1973) used in morphometric analyses. Samples: (1) Cochabamba, Bolivia, 2000 m; (2) Mato Grosso do Sul, Brazil, 10 m; (3) Paraná, Brazil, sea level; (4) Seropédica, Rio de Janeiro, Brazil, 33 m; (5) Tinguá, Rio de Janeiro, Brazil, 33–100 m; (6) São Paulo, Brazil, sea level; (7) Valle del Cauca, Colombia, 975 m; (8) Nariño, Colombia, 250 m; (9) Esmeraldas, Ecuador, 18 m; (10) Zamora-Chinchipe, Ecuador, ca. 850–915 m; (11) Amazonas, Peru, 665 m; (12) Amazonas, Venezuela, ca. 100 m; (13) Aragua, Venezuela, ca. 1100 m; (14) Carabobo, Venezuela, 25 m; (15) Distrito Federal, Venezuela, ca. 2100 m; and (16) Monagas, Venezuela, 1190 m.
FIG. 4 in Description and Phylogenetic Relationships of a New Genus and Species of Lizard (Squamata, Gymnophthalmidae) from the Amazonian Rainforest of Northern Brazil
FIG. 4. Intergeneric variation of cloacal plate scales and precloacal pores: A, Marinussaurus curupira, INPA 19856; B, Arthrosaura reticulata, MPEG 19181; C, Colobosauroides cearensis, uncatalogued specimen from MPEG; D, Dryadosaura nordestina, MPEG 27738; E, Amapasaurus tetradactylus, MPEG 27370; F, Alopoglossus angulatus, MPEG 24372, a basal Gymnophthalmidae.
FIG. 3. Marinussaurus curupira, INPA 19856 in Description and Phylogenetic Relationships of a New Genus and Species of Lizard (Squamata, Gymnophthalmidae) from the Amazonian Rainforest of Northern Brazil
FIG. 3. Marinussaurus curupira, INPA 19856 (paratype). Drawing of the pericloacal region showing cloacal plate, precloacal and femoral pores. Scale bar = 5 mm.
FIG. 1 in Description and Phylogenetic Relationships of a New Genus and Species of Lizard (Squamata, Gymnophthalmidae) from the Amazonian Rainforest of Northern Brazil
FIG. 1. Marinussaurus curupira, in life, INPA 19856 (paratype). SVL = 56.2 mm. Photo by V.T. Carvalho.
FIG. 2. Marinussaurus curupira, INPA 19855 in Description and Phylogenetic Relationships of a New Genus and Species of Lizard (Squamata, Gymnophthalmidae) from the Amazonian Rainforest of Northern Brazil
FIG. 2. Marinussaurus curupira, INPA 19855 (holotype). Drawings of A, dorsal, B, lateral, and C, ventral views of the head. Scale bar = 5 mm.
FIG. 6 in Description and Phylogenetic Relationships of a New Genus and Species of Lizard (Squamata, Gymnophthalmidae) from the Amazonian Rainforest of Northern Brazil
FIG. 6. Phylogenetic trees inferred from parsimony (PAR) analyses. A, Strict consensus of three equally parsimonious trees from the analysis of the morphological characters, (L = 76, CI = 0.684, RI = 0.784). B, Single most parsimonious tree based on combined analyses of morphology and molecular partitions (L = 2634, CI = 0.525, RI = 0.481). Numbers above branches are bootstrap support values (BS) and numbers below branches are total Goodman-Bremer support values (GBS). Open diamonds represent Bayesian posterior probability values of 1.0 (PP; only shown for the Ecpleopodini clade). Node X represents incongruence among trees under PAR and Bayesian methods. Clades in node Y represent the tribe Ecpleopodini, sensu Pellegrino et al. (2001) and Rodrigues et al. (2005).
Figs. 7–12. Simlops species. 7. S in Simlops, A New Genus Of Goblin Spiders (Araneae: Oonopidae) From Northern South America
Figs. 7–12. Simlops species. 7. S. bodanus, male cephalothorax, anterolateral view. 8. Same, lateral view. 9. S. cachorro, male sternum, lateroventral view. 10. S. platnicki, male sternum, ventral view. 11. S. platnicki, male leg, detail of trichobothrium base. 12. S. platnicki, male leg tibia III, detail of trichobothrium and other cuticular organs.
Figs. 1–6. Simlops species. 1. S in Simlops, A New Genus Of Goblin Spiders (Araneae: Oonopidae) From Northern South America
Figs. 1–6. Simlops species. 1. S. pennai, male cephalothorax, lateral view. 2. S. pennai, female cephalothorax, dorsal view. 3. S. cachorro, male, anterior portion of cephalothorax, lateral view. 4. S. platnicki, male cephalothorax, anterior view. 5. S. platnicki, female cephalothorax, dorsal view. 6. S. platnicki, female eye region, anterior view.
Figs. 27–32. Simlops species. 27. S in Simlops, A New Genus Of Goblin Spiders (Araneae: Oonopidae) From Northern South America
Figs. 27–32. Simlops species. 27. S. platnicki, female tarsus, lateral view. III. 28. S. platnicki, female tarsus IV, lateral view. 29. S. pennai, female spinnerets, distal view 30. S. pennai, female anterior lateral spinnerets, distal view. 31. S. pennai, female posterior median spinnerets, distal view. 32. S. pennai, female posterior lateral spinneret, distal view.
FIG. 2 in A new partial skeleton of a palaeospinacid shark (Neoselachii, Synechodontiformes) from the Albian of northern France, with a review of the taxonomic history of Early Cretaceous species of Synechodus Woodward, 1888
FIG. 2. — Stratigraphy of the Saint-Pô Formation (middle Albian, Lower Cretaceous) as exposed on the Boulonnais beach between Escalles and Strouanne, northern France (after Robaszynski & Amédro 1986; Amédro 2009); the specimen of Synechodus sp. (IRScNB P.9895) was recovered from between phosphatic horizons P4 and P5.
FIG. 5 in A new partial skeleton of a palaeospinacid shark (Neoselachii, Synechodontiformes) from the Albian of northern France, with a review of the taxonomic history of Early Cretaceous species of Synechodus Woodward, 1888
FIG. 5. — Associated set of isolated dermal denticles of Synechodus sp. (IRScNB P.9895), Saint-Pô Formation (Albian, Lower Cretaceous), Boulonnais beach between Escalles and Strouanne (northern France): from presumed trunk (A-D), fin (E-G) and snout (H) areas, or preserved as cluster (I, J). Scale bars: A-H, 0.5 mm; I, J, 1 mm.
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
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.