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Fig. 5 in A new Cryptotermes (Blattodea (Isoptera): Kalotermitidae) from Honduras and known distribution of New World Cryptotermes species
Fig. 5. Distribution of Cryptotermes species in South America from the University of Florida termite collection and literature records. Only endemic records of C. brevis are shown.
Fig. 4 in A new Cryptotermes (Blattodea (Isoptera): Kalotermitidae) from Honduras and known distribution of New World Cryptotermes species
Fig. 4. Distribution of Cryptotermes species (Group 2) in the West Indies, and Caribbean Basin from the University of Florida termite collection and literature records.
Fig. 2 in A new Cryptotermes (Blattodea (Isoptera): Kalotermitidae) from Honduras and known distribution of New World Cryptotermes species
Fig. 2. Dorsal (A), anterodorsal (B), lateral (C), and ventral (D) views of Cryptotermes garifunae soldier head capsule. Arrows in lateral view of area near antennal fossa (E) point to frontal horn (FH) and genal horn (GH).
Fig. 3 in A new Cryptotermes (Blattodea (Isoptera): Kalotermitidae) from Honduras and known distribution of New World Cryptotermes species
Fig. 3. Distribution of Cryptotermes species (Group 1) in Florida, the West Indies, and Caribbean Basin from the University of Florida termite collection and literature records. "UF collection ALL" represents other collection locations in the University of Florida termite collection.
Fig. 1 in A new Cryptotermes (Blattodea (Isoptera): Kalotermitidae) from Honduras and known distribution of New World Cryptotermes species
Fig. 1. Dorsal (A) and lateral (B) views of the Cryptotermes garifunae female dealate (vertex of head capsule partially collapsed). Arrow of fore tarsus (C) points to arolium of dealate.
Fig. 1 in Unearthing the species diversity of a cryptozoic snake, Tantilla melanocephala, in its northern distribution with emphasis on the colonization of the Lesser Antilles
Fig. 1. (A) Tantilla melanocephala sample localities for this study (red circles) in the northern region of its distribution. (B) The distribution of Tantilla melanocephala in the Neotropics. Locality data are from VertNet and the GBIF databases, as well as the literature (Nogueira et al. 2019). Within the Lesser Antilles, Union Island and the Mustique islands are not shown. Red circles are T. melanocephala localities included in the phylogenetic analyses. The map suggests this species inhabits several different biomes.
Fig. 4 in Unearthing the species diversity of a cryptozoic snake, Tantilla melanocephala, in its northern distribution with emphasis on the colonization of the Lesser Antilles
Fig. 4. Bayesian time tree as inferred by BEAST for the data set of concatenated 12S and 16S rDNA, cytb, and c-mos sequences from Tantilla specimens (in red). Red values by nodes denote the median time estimates, whereas values in brackets denote 95% Highest Posterior Density ranges. Red and black nodes are posterior probabilities (1.00 and> 95–99%), respectively. Photo by J.C. Murphy.
Fig. 3 in Unearthing the species diversity of a cryptozoic snake, Tantilla melanocephala, in its northern distribution with emphasis on the colonization of the Lesser Antilles
Fig. 3. Best Maximum Likelihood tree based on the data set of concatenated 12S and 16S rDNA, cytb, and c-mos sequences. Red clade depicts the genus Tantilla. Values on the left and right sides of a slash (/), are the values indicated at nodes of Maximum Likelihood bootstraps (>70%) and Bayesian Posterior probability values (>95%), respectively. The Tantilla melanocephala pictured is from the western versant of the Occidental slopes in Ecuador (from the Rio Manduriacu Reserve). Photo by R. Maynard.
Fig. 2 in Unearthing the species diversity of a cryptozoic snake, Tantilla melanocephala, in its northern distribution with emphasis on the colonization of the Lesser Antilles
Fig. 2. Specimens of Tantilla melanocephala from (A) Tobago, Pigeon Point, (B) Trinidad, Bush Bush, Nariva Swamp, and (C) Venezuela, Caracas, Distrito Capital. Photos by J.C. Murphy (A–B) and L.A. Rodríguez (C).
Fig. 1 in More road-killed Caspian Whipsnakes (Dolichophis caspius): an update on the species distribution along the Danube, in Romania
Fig. 1. Dolichophis caspius distribution in southern Romania. Squares: previous records (after Cogălniceanu et al. 2013; Iftime and Iftime 2016, 2017), red dots: new records.
Fig. 7. The relationship between antenna 1 in The Distinctive Species Characteristics Of Metaprotella Sandalensis Mayer, 1898 (Crustacea: Amphipoda), Commonly Distributed Throughout The Tropical West Pacific Coasts
Fig. 7. The relationship between antenna 1 length and body length of Metaprotella sandalensis collected from coastal areas of Lifou Island.
Fig. 4 in The Distinctive Species Characteristics Of Metaprotella Sandalensis Mayer, 1898 (Crustacea: Amphipoda), Commonly Distributed Throughout The Tropical West Pacific Coasts
Fig. 4. Metaprotella sandalensis, female, 5.03 mm, AM P.87576, Pointe de Easo (= Easho), Baie de Sandal, Lifou Island. Scales for G1 and G2 represent 0.1 mm; A1, A2, and whole body represent 0.2 mm.
Fig. 3 in The Distinctive Species Characteristics Of Metaprotella Sandalensis Mayer, 1898 (Crustacea: Amphipoda), Commonly Distributed Throughout The Tropical West Pacific Coasts
Fig. 3. Metaprotella sandalensis, male, 8.87 mm, AM P.87572, Pointe de Easo (= Easho), Baie de Sandal, Lifou Island. Scales for ABD (L) and ABD (V) represent 0.05 mm; P3 and P4 represent 0.1 mm; P5 and P7 represent 0.2 mm.
Fig. 5 in The Distinctive Species Characteristics Of Metaprotella Sandalensis Mayer, 1898 (Crustacea: Amphipoda), Commonly Distributed Throughout The Tropical West Pacific Coasts
Fig. 5. Metaprotella sandalensis, female, 5.03 mm, AM P.87576, Pointe de Easo (= Easho), Baie de Sandal, Lifou Island. All scales represent 0.05 mm.
Fig. 6 in The Distinctive Species Characteristics Of Metaprotella Sandalensis Mayer, 1898 (Crustacea: Amphipoda), Commonly Distributed Throughout The Tropical West Pacific Coasts
Fig. 6. Metaprotella sandalensis, female, 5.03 mm, AM P.87576, Pointe de Easo (= Easho), Baie de Sandal, Lifou Island. Scales for ABD (L) and ABD (V) represent 0.05 mm; P3, P4, P5, P6, and P7 represent 0.1 mm.
Fig. 2 in The Distinctive Species Characteristics Of Metaprotella Sandalensis Mayer, 1898 (Crustacea: Amphipoda), Commonly Distributed Throughout The Tropical West Pacific Coasts
Fig. 2. Metaprotella sandalensis, male, 8.87 mm, AM P.87572, Pointe de Easo (= Easho), Baie de Sandal, Lifou Island. All scales represent 0.05 mm.
Fig. 1 in The Distinctive Species Characteristics Of Metaprotella Sandalensis Mayer, 1898 (Crustacea: Amphipoda), Commonly Distributed Throughout The Tropical West Pacific Coasts
Fig. 1. Metaprotella sandalensis, male, 8.87 mm, AM P.87572, Pointe de Easo (= Easho), Baie de Sandal, Lifou Island. Scales for A1, G1, and HD represent 0.1 mm; A2 and G2 represent 0.2 mm; whole body represents 0.5 mm.
Figure 1. - A in Integrating multiple lines of evidence to better understand the evolutionary divergence of humpback dolphins along their entire distribution range: a new dolphin species in Australian waters?
Figure 1. - A: Diplodus omanensis, 310 mm SL; B: Pagellus affinis, 183 mm SL. Both species were purchased at the West Wharf Fish Harbour, Karachi, Pakistan, 26 May 2012.
Fig. 2 in Wide geographic distribution of overlooked parasites: Rare Microsporidia in Gammarus balcanicus, a species complex with a high rate of endemism
Fig. 2. Bayesian phylogenetic reconstruction of Microsporidia based on partial small ribosomal subunit rDNA alignment (Supplementary data 1). Labels in bold and in blue frames are parasites of Gammarus balcanicus found in the present study. These labels show the name of the parasite (in case of described species) or in the case of undescribed taxa the name consist of: M. sp (= Microsporidium sp.) followed by clade number sensu Vossbrinck and Debrunner-Vossbrinck (2005), MOTU, haplogroup number (e.g. b01, b02), then the country where it was found (two letter ISO code, see Table S1), the number of infected populations (=pop.), and the total number of infected individuals (=ind.). Labels with accession numbers are parasite sequences taken from GenBank. These labels show the accession number, the parasite name given in the associated publication, the order of the host (except for amphipod hosts where the family is provided). Microsporidia clade numbers are as in Vossbrinck and Debrunner-Vossbrinck (2005). Branches are collapsed for the two genera Nosema and Dictyocoela (triangle sizes not reflecting actual size). Abbreviation: PP, Bayesian posterior probability. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
Fig. 1 in Wide geographic distribution of overlooked parasites: Rare Microsporidia in Gammarus balcanicus, a species complex with a high rate of endemism
Fig. 1. Gammarus balcanicus sampling sites. Sites are identified by black dots with numbers as in Table S1 (87). See Additional Table S1 for details (e.g. sampling sizes, GPS coordinates). Countries identified with ISO code. Map created by authors using Qgis 2.18.4 (QGIS Development Team 2009).
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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.