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637 results for “Monkeys”
Fig. 2. T in Nasal vaccination of six squirrel monkeys (Saimiri sciureus): Improved immunization protocol against Toxoplasma gondii with a nanoparticle-born vaccine
Fig. 2. T-cell immune response analyzed by IFN-γ ELISPOT on PBMC from 6 Saimiris. The results are presented as Spot Forming Units for 106 PBMC (left), before the immunization (T0), one month after the prime, 5 months after the 1st boost and 2 months after the 2nd boost. A representative picture of the ELISPOT plate after the 2nd boost is presented (right). Only 4 animals were analyzed by ELISPOT after the 2nd boost due to blood coagulation in the sampling tubes. Statistical analyses were made by KruskalWallis test, * p <0.05, ** p <0.01.
Fig. 3 in Nasal vaccination of six squirrel monkeys (Saimiri sciureus): Improved immunization protocol against Toxoplasma gondii with a nanoparticle-born vaccine
Fig. 3. Humoral immune response analyzed by ELISA on serum for each Saimiri. The results are presented as optical density (OD) before the immunization (T0), and 2 months after the 2nd boost. Serum from one seropositive and three seronegative humans were used as positive and negative controls, respectively. Cut-off was determined at each dilution, as the mean + 2.5xSD of the negative controls.
Fig. 1 in Molecular characterization of Dipetalonema yatesi from the black-faced spider monkey (Ateles chamek) with phylogenetic inference of relationships among Dipetalonema of Neotropical primates
Fig. 1. Macroscopic observation of Dipetalonema yatesi on the capsule of the left kidney (A) and on the parietal peritoneum (B) at the post-mortem examination of a black-faced spider monkey (Ateles chamek).
Fig. 2 in Molecular characterization of Dipetalonema yatesi from the black-faced spider monkey (Ateles chamek) with phylogenetic inference of relationships among Dipetalonema of Neotropical primates
Fig. 2. Phylogenetic relationships among species of Dipetalonema spp. infecting non-human primates (i.e., Ateles spp., Cebus spp., Lagothrix poeppigii, and Saimiri sciureus) using a concatenated dataset of 1615 base pairs including the 18S of the nuclear ribosomal DNA, 12S of the ribosomal RNA, and cytochrome c oxidase subunit 1 (cox1) of the mitochondrial DNA. The taxa Acanthocheilonema viteae, Litomosoides sigmodontis, and Wuchereria bancrofti were used as outgroups. At each branch, the nodal support is represented by the maximum likelihood percentage above and the Bayesian posterior probability below (the hyphen indicates when support is missing).
Fig. 3 in Molecular characterization of Dipetalonema yatesi from the black-faced spider monkey (Ateles chamek) with phylogenetic inference of relationships among Dipetalonema of Neotropical primates
Fig. 3. Phylogenetic relationships among species of Dipetalonema using a dataset of 586 base pairs including the partial cytochrome c oxidase subunit 1 (cox1) of the mitochondrial DNA. The black silhouettes of the monkey, tamarin, and camelid indicate the hosts from which the filarioid nematodes were isolated. The taxa Acanthocheilonema viteae, Litomosoides sigmodontis, and Wuchereria bancrofti were used as outgroups. At each branch, the nodal support is represented by the maximum likelihood percentage above and the Bayesian posterior probability below.
Fig. 4. A in Reproduction And Infant Pelage Colouration Of The Banded Leaf Monkey (Mammalia: Primates: Cercopithecidae) In Singapore
Fig. 4. A, Infant banded leaf monkey from Singapore (red arrow) separated from carrying adult (pink arrow); B, Banded leaf monkey infant being carried by an adult.
Fig. 1 in Reproduction And Infant Pelage Colouration Of The Banded Leaf Monkey (Mammalia: Primates: Cercopithecidae) In Singapore
Fig. 1. Distribution of Presbytis femoralis. Presbytis f. robinsoni is found in north Malay Peninsula, P. f. percura in east-central Sumatra, and P. f. femoralis in Johor and Singapore.
Fig. 2 in Possible predation attempt by a marbled cat on a juvenile Phayre's leaf monkey
Fig. 2. Marbled cat standing, looking at the spot where it had bitten a juvenile Phayre's leaf monkey at 06:30 (Photograph by: Surachest Dtubpraserit©).
Fig. 1 in Possible predation attempt by a marbled cat on a juvenile Phayre's leaf monkey
Fig. 1. Marbled cat sitting, facing the spot where it had bitten a juvenile Phayre's leaf monkey at 06:30. Note the long tail covering the front paws (Photograph by: Surachest Dtubpraserit©).
Fig. 3. Land use and land cover data for 2014 in Population trends and conservation status of proboscis monkeys (Nasalis larvatus) in the face of habitat change in the Klias Peninsula, Sabah, Borneo, Malaysia
Fig. 3. Land use and land cover data for 2014/2015 within the 1-km buffer distance from surveyed rivers, overlaid with proboscis monkey sightings from the 2004/2005 and 2014 surveys, Protected Areas, and Production Forest Reserve boundaries.
Fig. 2 in Population trends and conservation status of proboscis monkeys (Nasalis larvatus) in the face of habitat change in the Klias Peninsula, Sabah, Borneo, Malaysia
Fig. 2. Boxplots illustrating the variation in vegetation variables, with each point representing the values for vegetation plot in each site.
Fig. 1 in Population trends and conservation status of proboscis monkeys (Nasalis larvatus) in the face of habitat change in the Klias Peninsula, Sabah, Borneo, Malaysia
Fig. 1. Map showing the Klias Peninsula region in western Sabah, in the northern part of Borneo (inset), Malaysia, and the research sampling sites in riverine, mangrove, and mixed mangrove-riverine forests along rivers in Padang Teratak Bird Sanctuary, Padas Damit Forest Reserve, Menumbok Forest Reserve, Binsulok Forest Reserve, Klias Forest Reserve, Kg. Hindian Forest Reserve, and Nabahan Forest Reserve, where the river surveys of the sleeping sites of proboscis monkeys were conducted.
Fig. 2. Full length d in Low Genetic Variability In The Recovering Urban Banded Leaf Monkey Population Of Singapore
Fig. 2. Full length d- loop of Presbytis melalophos (1.08kbp) and target region of d-loop (variable site for P. femoralis is position 190). The complete mitochondrial genome of this specimen is published under Sterner et al. (2006), and the specimen is identified as P. melalophos following Groves (2001) and Brandon-Jones et al. (2004).
FIG. 1. — A-F in Fossil Old World monkeys (Primates, Cercopithecidae) from the Pliocene of Dorkovo, Bulgaria
FIG. 1. — A-F, lower and upper teeth of Dolichopithecus ruscinensis Depéret, 1889; A, left male C1 (DKV 482), lingual view; B, left male c1 (DKV 79), lingual view; C, right M3? (DKV 483), occlusal view; D, left m1? (DKV 82), occlusal view; E, right m3 in fragment of corpus (DKV 78), E1 occlusal view, E2 lingual view; F, left male p3 (DKV 484), buccal view; G, upper molar of Mesopithecus monspessulanus (Gervais, 1849), left M3? (DKV 480), occlusal view. Scale bars: A, B, 1 cm; C-G, 2 cm.
Fig. 1 in Estimating body mass in New World ''monkeys'' (Platyrrhini, Primates), with a consideration of the Miocene platyrrhine, Chilecebus carrascoensis
Fig. 1. Cladogram from molecular phylogenies (Canavez et al., 1999; von Dornum and Ruvolo, 1999) of platyrrhine primates used in the phylogenetically corrected regressions of body mass on morphometric variables. This cladogram is a synthetic topology of these two phylogenetic analyses. The topologies for the two analyses were congruent for overlapping taxa, with two exceptions. First the Callicebus/Cacjao/ Chiropotes/Pitehca clade was basal to all other Platyrrhini in von Dornum and Ruvolo (1999), but was allied with the Ateles/Bachyteles/Lagothrix/Allouata clade in Canavez et al. (1999). Second, Aotus was allied with Saimiri and Cebus in Canvez et al. (1999), but left in an unresolved polytomy in von Dornum and Ruvolo (1999). Therefore both nodes are conservatively left in polytomies here.
Figure 6 in The radiation of red colobus monkeys (Primates, Colobinae): morphological evolution in a clade of endangered African primates
Figure 6. Males. Scatter plots of the first discriminant axes (DFs) of species using shape (first 30 principal components; percentages of variance explained by DF in parentheses).
Figure 4 in The radiation of red colobus monkeys (Primates, Colobinae): morphological evolution in a clade of endangered African primates
Figure 4. Males. Scatter plots of the first principal components of shape variables. See Figure 3 for the key.
Figure 1 in The radiation of red colobus monkeys (Primates, Colobinae): morphological evolution in a clade of endangered African primates
Figure 1. Distribution of red colobus taxa (modified from Colyn, 1991). (I) Piliocolobus badius (Kerr, 1792) (western Tropical Africa): (1) Piliocolobus badius ssp. temminckii (Kuhl, 1820), (2) Piliocolobus badius ssp. badius (Kerr, 1792), and (3) Piliocolobus badius ssp. waldroni (Hayman, 1936); (II) Procolobus pennantii (Waterhouse, 1838) (western equatorial Africa): (4) Procolobus pennantii ssp. epieni Grubb and Powell, 1999, (5) Procolobus pennantii ssp. pennantii (Waterhouse, 1838), (6) Procolobus pennantii ssp. preussi (Matschie, 1900), (7) Procolobus pennantii ssp. bouvieri (Rochebrune, 1887); (III) Central African assemblage: (8) Piliocolobus sp. tholloni, (9) Piliocolobus sp. oustaleti, (10) Piliocolobus sp. parmentieri Colyn & Verheyen, 1987, (11) Piliocolobus sp. lulindicus Matschie, 1914 and Piliocolobus sp. foai (de Pousargues, 1899), (12) Piliocolobus sp. langi (Allen, 1925) and Piliocolobus sp. ellioti (Dollman, 1909), (13) Piliocolobus sp. tephrosceles (Elliot, 1907); (IV) Eastern African species: (14) Piliocolobus gordonorum Matschie, 1900, (15) Piliocolobus rufomitratus, (16) Piliocolobus kirkii Gray, 1868. Grey areas are putative Pleistocenic mountain refugia, taken from Mayr & O'Hara (1986).
Figure 3 in The radiation of red colobus monkeys (Primates, Colobinae): morphological evolution in a clade of endangered African primates
Figure 3. Females. Scatter plots of the first principal components (PCs) of shape variables (percentages of variance explained in parentheses). Shape changes at positive extremes of the axes are illustrated using surface rendering with a two-fold magnification (the same magnification is used in all figures). The average shape (origin of the PCA axes) is shown by the upper right corner of the scatter plots in this and other figures. (a) PC1 vs. PC2. (b) PC3 vs. PC4.
Figure 5 in The radiation of red colobus monkeys (Primates, Colobinae): morphological evolution in a clade of endangered African primates
Figure 5. Females. Scatter plots of the first discriminat axes (DAs) of species using shape (first 35 principal components; percentages of variance explained by DA in parentheses). Shape changes predicted by regressing shape coordinates onto DA are illustrated using surface rendering for positive extremes of the axes.
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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.