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Fig. 1 in Striatoandricus sanchezi Cuesta-Porta & Melika & Nicholls & Stone & Pujade-Villar 2022, n. sp.
Fig. 1. Study area map showing (a) Location of Askot landscape in India and Uttarakhand; Digital Elevation Model (DEM) of (b) Askot landscape and (c) Johar Valley.
Fig. 1 in Striatoandricus sanchezi Cuesta-Porta & Melika & Nicholls & Stone & Pujade-Villar 2022, n. sp.
Fig. 1. Character identification of two species. a, O. evolans male; b, O. evolans female; c, Z. platypus male; and d, Z. platypus female. All morphological features for species identification were labeled using Arabic numerals and mentioned as follows. The mature male of O. evolans has: 1, 11–13 vertical greenish-blue stripes; 2, elongated pectoral fin; 3, independent pearl organs on the cheek and snout; 4, yellowish green caudal peduncle. The mature female of O. evolans has: 5, shorter vertical stripes; 6, usually grayish white snout tip. The mature male of Z. platypus has: 7, several vertical grayish-blue stripes and some of these stripes fuse into a wide bar; 8, medium length of pectoral fin; 9, aligned pearl organs on cheek and snout. The mature female of Z. platypus has: 10, a rather indistinct pale yellow or gray stripe; 11, usually orange red snout tip.
Fig. 4 in Striatoandricus sanchezi Cuesta-Porta & Melika & Nicholls & Stone & Pujade-Villar 2022, n. sp.
Fig. 4. Map showing intensity of resource selection probability of (a) Blue sheep (Output = 0.47 * Distance to escape terrain raster layer – 0.43 * Vegetation type raster layer) and (b) Livestock (Output = 0.55 * Distance to escape terrain raster layer – 1.29 * Elevation raster layer – 0.36 * Vegetation type raster layer).
Fig. 3 in Striatoandricus sanchezi Cuesta-Porta & Melika & Nicholls & Stone & Pujade-Villar 2022, n. sp.
Fig. 3. Coefficient plot of covariates used in the point process model of livestock. Table 3. Selection index (Wi values) of use vs availability for blue sheep and livestock
Fig. 2. Planotergum mirabile Balss, 1935. a, c, d, g–n in Ophiacantha scissionis Lee & Stöhr & Bae & Shin 2019, sp. nov.
Fig. 2. Planotergum mirabile Balss, 1935. a, c, d, g–n, female (7.7 × 10.1 mm) (ZRC 1985.130), Singapore; b, e, f, female (10.2 × 13.4 mm) (ZRC 1969.11.19.12), Java Sea: a and b, general dorsal view; c, left third maxilliped; d, right antenna (ventral view, dorsal covered by bryozoan); e, right antenna (dorsal view); f, left eye; g, i, l, n, P2–5 (dorsal views, setae intact); h, j, k, m, o, P2–5 (ventral views, setae denuded); k, P2, ventral view.
Fig. 4. Maximum Likelihood phylogenetic tree generated using N in The African buffalo parasite Theileria. sp. (buffalo) can infect and immortalize cattle leukocytes and encodes divergent orthologues of Theileria parva antigen genes
Fig. 4. Maximum Likelihood phylogenetic tree generated using N-terminal sequences of T. sp. (buffalo) and T. parva PIM antigen genes. Maximum composite likelihood trees were constructed using 1000 bootstrap replicates as implemented in MEGA5; the optimal nucleotide substitution model was identified using data monkey. The tree constructed with RAxML (Stamatakis et al., 2014) using a GTR/G/I model with 100 bootstrap iterations.
Fig. 1 in Cryptosporidium rubeyi n. sp. (Apicomplexa: Cryptosporidiidae) in multiple Spermophilus ground squirrel species
Fig. 1. Cryptosporidium sp. Sbey11c oocysts from California ground squirrels (S. beecheyi). Differential interference contrast (DIC) microscopy (1000×), bar = 10 Mm.
Fig. 2 in Cryptosporidium rubeyi n. sp. (Apicomplexa: Cryptosporidiidae) in multiple Spermophilus ground squirrel species
Fig. 2. Phylogenetic relationships of partial 18S rRNA gene sequences of Cryptosporidium sp. Sbey11c from California ground squirrels (S. beecheyi) and other Cryptosporidium spp. inferred by neighbor-joining analysis with 1000 bootstrapping replicates.
Fig. 3 in Cryptosporidium rubeyi n. sp. (Apicomplexa: Cryptosporidiidae) in multiple Spermophilus ground squirrel species
Fig. 3. Phylogenetic relationships of partial actin gene sequences of Cryptosporidium sp. Sbey11c from California ground squirrels (S. beecheyi) and other Cryptosporidium spp. inferred by neighbor-joining analysis with 1000 bootstrapping replicates.
Fig. 4 in Cryptosporidium rubeyi n. sp. (Apicomplexa: Cryptosporidiidae) in multiple Spermophilus ground squirrel species
Fig. 4. Phylogenetic relationships of partial HSP70 gene sequences of Cryptosporidium sp. Sbey11c from California ground squirrels (S. beecheyi) and other Cryptosporidium spp. inferred by neighbor-joining analysis with 1000 bootstrapping replicates.
Fig. 1 in Morphological and molecular characterization of Eimeria purpureicephali n. sp. (Apicomplexa:Eimeriidae) in a red-capped parrot (Purpureicephalus spurius, Kuhl, 1820) in Western Australia
Fig. 1. Nomarski interference-contrast photomicrographs of E. purpureicephali n. sp. oocysts showing spheroidal to subspheroidal sporocysts (scale bar = 20 Mm) (1—5) and line drawing of the sporulated oocyst of E. purpureicephali n. sp. Scale bar = 20 Mm (6).
Fig. 4 in Molecular identification of a new myxozoan, Myxobolus dermiscalis n. sp. (Myxosporea) infecting scales of Labeo rohita Hamilton in Harike Wetland, Punjab (India)
Fig. 4. Neighbour-Joining analysis of small subunit ribosomal DNA sequence of M. dermiscalis n.sp.in relation to 23 other sequenced members of the genus.
Fig. 1 in Molecular identification of a new myxozoan, Myxobolus dermiscalis n. sp. (Myxosporea) infecting scales of Labeo rohita Hamilton in Harike Wetland, Punjab (India)
Fig. 1. Agarose gel (1.8%) showing amplified 18S rDNA gene of M. dermiscalis n. sp. infecting scales of Labeo rohita. Lane 1: 1kb DNA Ladder Lane 2, 3: M. dermiscalis n. sp. (1597bp)
Fig. 3 in Molecular identification of a new myxozoan, Myxobolus dermiscalis n. sp. (Myxosporea) infecting scales of Labeo rohita Hamilton in Harike Wetland, Punjab (India)
Fig. 3. Photomicrographs of myxospores of M. dermiscalis n. sp. a) fresh under phase contrast microscope b) stained with Ziehl‾Neelson c) Line drawing d) stained with Ironhaematoxylin Scale bar = 10 Mm.
Fig. 5 in Molecular identification of a new myxozoan, Myxobolus dermiscalis n. sp. (Myxosporea) infecting scales of Labeo rohita Hamilton in Harike Wetland, Punjab (India)
Fig. 5. Estimates of evolutionary divergence between the sequences of M. dermiscalis and other Myxosporea available in GenBank.
Fig. 2 in Molecular identification of a new myxozoan, Myxobolus dermiscalis n. sp. (Myxosporea) infecting scales of Labeo rohita Hamilton in Harike Wetland, Punjab (India)
Fig. 2. Infected scales of L. rohita showing creamish white pseudocysts of M. dermiscalis n. sp scale bar = 1 cm.
Fig. 2 in Hepatozoon apri n. sp. (Adeleorina: Hepatozoidae) from the Japanese wild boar Sus scrofa leucomystax (Mammalia: Cetartiodactyla)
Fig. 2. Inflammatory lesion with released merozoites or gamonts in the femoral muscle of Japanese wild boar.
Fig. 2 in Camallanus emydidius n. sp. (Nematoda: Camallanidae) in Trachemys dorbigni (Dumeriĺ& Bibron, 1835) (Testudines: Emydidae) from Southern Brazil
Fig. 2. Lateral view of anterior extremity of Camallanus emydidius n. sp. cleared with lactophenol. The images show variation in the size of the median ridges situated between the dorsal and ventral groups (Bar = 100 Mm).
Fig. 4 in Camallanus emydidius n. sp. (Nematoda: Camallanidae) in Trachemys dorbigni (Dumeriĺ& Bibron, 1835) (Testudines: Emydidae) from Southern Brazil
Fig. 4. Female of Camallanus emydidius n. sp. cleared with lactophenol. A —Ventral view show the vulvar lip (Bar = 240 Mm). B — Lateral view show the vulvar lip (Bar = 260 Mm). C — Ventral view of tail, the arrow show the mucrons (Bar = 40 Mm).
Fig. 1. a–b in Hepatozoon apri n. sp. (Adeleorina: Hepatozoidae) from the Japanese wild boar Sus scrofa leucomystax (Mammalia: Cetartiodactyla)
Fig. 1. a–b) Gamonts of Hepatozoon apri n. sp. in the cytoplasm of neutrophils detected in the blood smear of a boar (ID: 28-11), showing acentric and rounded nuclei (arrows) and a small protrusion containing eosinophilic granules (arrowheads).
ScienceDex guides
Understand access before you commit
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.