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16 results for “spider monkeys”
Fig. 5 in Helminth parasites of howler and spider monkeys in Mexico: Insights into molecular diagnostic methods and their importance for zoonotic diseases and host conservation
Fig. 5. Phylogenetic trees based on 28S (left) and cox1 (right) sequences of Strongyloides eggs. Sequences obtained from the eggs are bold type and indicated with an *. Numbers at the nodes represent posterior probabilities from Bayesian inference.
Fig. 2 in Helminth parasites of howler and spider monkeys in Mexico: Insights into molecular diagnostic methods and their importance for zoonotic diseases and host conservation
Fig. 2. Egg morphotypes found in the faeces of Mexican primates. A) Trypanoxyuris sp., B) Controrchis biliophilus, arrow pointing to the two eyespot remnants; C) trematode, diagnosed as C. biliophilus by molecular data; D) unidentified ancylostomatid; E) Strongyloides sp.; F) unidentified ascarid. Scale bar is equal to 15 Mm.
Fig. 4 in Helminth parasites of howler and spider monkeys in Mexico: Insights into molecular diagnostic methods and their importance for zoonotic diseases and host conservation
Fig. 4. Phylogenetic tree based on 28S sequences of Controrchis biliophilus. Sequences obtained from the eggs are bold type and indicated with an *. Numbers at the nodes represent posterior probabilities from Bayesian inference. Host species are indicated within parenthesis.
Fig. 1 in Helminth parasites of howler and spider monkeys in Mexico: Insights into molecular diagnostic methods and their importance for zoonotic diseases and host conservation
Fig. 1. Surveyed sites for parasites in Mexican primates. Dots indicate sampling sites, black: Alouatta palliata; white: A. pigra; and grey: Atetes geoffroyi. Polygons indicate the primate distribution range in Mexico, diagonal lines: A. palliata; dashes: A. pigra; and grey: A. geoffroyi.
Fig. 3 in Helminth parasites of howler and spider monkeys in Mexico: Insights into molecular diagnostic methods and their importance for zoonotic diseases and host conservation
Fig. 3. Phylogenetic trees based on 28S (left) and cox1 (right) sequences of Trypanoxyuris sp. Sequences obtained from the eggs are bold type and indicated with an *. Numbers at the nodes represent posterior probabilities from Bayesian inference.
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.
Dietary ethanol ingestion by free-ranging spider monkeys (Ateles geoffroyi)
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Seed traits of seed within spider monkey, howler monkey feces, and dung beetles' dung balls
<p>These data files contain seed traits from three sources, 1) seed traits from "Seeds of Amazonian Plants", 2) Royal Botanic Gardens Kew Seed Information Database, and 3) seeds dissected from field collections of primate feces and dung balls from dung beetles. The dataset was used in the article published in Biotropica entitled "<em>Seed size and pubescence facilitate secondary dispersal by dung beetles</em>". The data mostly describes seed traits of morphospecies within the feces of brown-headed spider monkeys (<em>Ateles fusciceps</em>) and mantled howler monkeys (<em>Alouatta palliata</em>). Traits included in the data set are size, surface, length, width, shape, color, and dispersal by mammals. </p>
Seed traits of seed within spider monkey, howler monkey feces, and dung beetles' dung balls
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Data from: Not just females: the socio-ecology of social interactions between spider monkey males
<p class="MsoNormal"><span>Male-male relationships are mostly characterized by competition. However, males also cooperate with one another if socio-ecological conditions are suitable. Due to their male philopatry, need for cooperation in home range defence and high degree of fission-fusion dynamics, spider monkeys provide an opportunity to investigate how male-male interactions are associated with socio-ecological factors, such as the presence of potentially receptive females, the degree of food availability and the likelihood of home range defence. We tested predictions about changes in social interactions between wild spider monkey males in relation to these factors. First, males did not change their interaction patterns when potentially receptive females were in the subgroup compared to when they were absent. Second, males tended to be less tolerant of one another when feeding, but spent more time grooming, in contact and proximity with one another when food availability was lower than when it was higher. Third, males exchanged fewer embraces, spent less time grooming, in proximity and in contact with one another, and spent more time vigilant at the home range boundary area than at other locations. Our findings contribute to the understanding of social flexibility and the importance of considering males in socio-ecological models of any group-living species.</span></p>
On following pages 14 Brown-headed Spıder Monkey (Ateles fuscıceps) 15 Black Spider Monkey (Areias chamekl. 16 Red-faced Black Spıder Monkey (Areias paniscus) 17 Whne-wmskered Spodev Monkey (Areias margmatus) 18 Whıtebellıed Spıdeı Monkey (Areias belzeburh), 19 Vanegated Spıder Monkey (Areias hybndus) in Atelidae
On following pages 14 Brown-headed Spıder Monkey (Ateles fuscıceps) 15 Black Spider Monkey (Areias chamekl. 16 Red-faced Black Spıder Monkey (Areias paniscus) 17 Whne-wmskered Spodev Monkey (Areias margmatus) 18 Whıtebellıed Spıdeı Monkey (Areias belzeburh), 19 Vanegated Spıder Monkey (Areias hybndus)
Dataset from The effect of visitors on stress-related behaviour of zoo-housed red-faced spider monkeys (Ateles Paniscus) compared in the inside and outside compartment of the enclosure
<p>Animals held in captivity often endure more stress than wild congeners do, which might be harmful for their health and wellbeing. This stress is often expressed by showing stereotypic behaviour. Previous studies showed that visitors can have a negative impact on the stress levels of zoo-housed animals, referred to by the term ‘visitor effect’. The visitor effect is found to be strong in arboreal primate species, such as spider monkeys.</p> <p>The current study examined the effect of visitors on the stress-related behaviour of red-faced spider monkeys (<em>Ateles Paniscus</em>) housed at ARTIS Amsterdam Royal Zoo. Two visitor variables were assessed; number of visitors and sound volume. Additionally, this study examined whether there was a difference in visitor effect in the inside and outside compartment of the enclosure since these exhibits differ strongly in design.</p> <p>Behavioural observations were conducted for 3 weeks daily, during which all behaviour displayed by the spider monkeys was noted, along with the number of visitors present, the level of sound (in decibel) and the location of observation.</p> <p>This study demonstrated that an increase in average level of decibel led to an increase in stereotypic behaviour. Additionally, spider monkeys were found to display more stereotypic behaviour in the outside compartment of their enclosure. However, this study did not find the number of visitors to have an influence on the stress-related behaviour. These results suggest that visitor noise can have a negative effect on the stress levels of red-faced spider monkeys and that this effect is dependent on the exhibit design.</p> <p>This study hopefully provides more insight into the visitor effect by assessing the influence of two important visitor variables. These insights might improve future designs of zoo enclosures, thus enhancing animal welfare. However, future research is needed to further assess the cause of stress in zoo-housed animals. </p>
Data from: The effect of roads on spider monkeys’ home range and mobility in a heterogeneous regenerating forest
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Data from: Not just females: the socio-ecology of social interactions between spider monkey males
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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)
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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.