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85 results for “Puma”
Puma diet in a high Andean ecosystem, 2012-2022
We analyzed 45 puma scats collected between 2012 and 2022, identified in the field based on size, shape, and hair content. Scats were dissected, and prey remains (bones, teeth, claws) were soaked in soapy water, rinsed, air-dried, and stored with silica gel to prevent fungal or bacterial contamination. All processed material was deposited in the Ichnology Collection of the Colecciones Biológicas de la Universidad CES (CBUCES-J), Medellín. Prey remains were photographed with a Canon EOS T7i camera and macro lens, using focus stacking in Helicon Focus 8.2.3 to produce fully focused composite images. Specimens were identified to the lowest possible taxonomic level by comparison with reference material housed at CBUCES, the Museo de Ciencias Naturales de La Salle (CNS), the Museum of Southwestern Biology (MSB), and the Colección Teriológica de la Universidad de Antioquia (CTUA). Diet was quantified using frequency of occurrence (FO) and relative biomass consumed (RBC). RBC was used to estimate the proportion of total prey biomass represented by each species. Published mean adult body masses were assigned to prey species, while unidentified sigmodontine rodents were estimated using dental allometry. Statistical analyses was used to evaluate sample completeness, and Kruskal–Wallis tests to assess variation across three time bins (2012–2016, 2018–2020, 2021–2022). Diet breadth was measured using Levins’ standardized niche breadth (Bsta). Diet similarity between study sites and previous research was assessed using Jaccard distance. Mean human disturbance values were extracted from raster data to derive effects of anthropogenic pressure.
Data from: "Mapping opportunities and barriers for coexistence between people and pumas in the Argentine Dry Chaco"
<p>Data from: "Mapping opportunities and barriers for coexistence between people and pumas in the Argentine Dry Chaco"</p><p>====================================================</p><p>Datasets include: </p><p>1. .csv file with puma occurrence data in 149 sites and analyzed covariates (pumadata.csv)</p><p>2. .txt file with puma occupancy modelling scripts (pumascript.txt).</p><p>3. .txt. file with interview data (intdataf.txt).</p><p>4. .txt file with scripts for conflict risk modelling and mapping (confscript.txt).</p><p>5. three zip files with .tiff of the three covariates used for conflict risk mapping (goat.zip, disturbedpr.zip,</p><p>pue1km.zip).</p><p>6. .csv file with protected area data: number of pixels for each landscape type within all protected areas,</p><p>strict protected areas and multiple-use protected areas (PAchaco.csv).<br>7. Read me file with more information on datasets (README.txt)</p><p> </p>
Draft de novo genome assembly of the elusive jaguarundi, Puma yagouaroundi
<p>The Puma lineage within the family Felidae consists of three species that last shared a common ancestor around 4.9 million years ago. Whole-genome sequences of two species from the lineage were previously reported: the cheetah (<em>Acinonyx jubatus</em>) and the mountain lion (<em>Puma concolor</em>). The present report describes a whole-genome assembly of the remaining species, the jaguarundi (<em>Puma yagouaroundi</em>). We sequenced the genome of a male jaguarundi with 10X Genomics linked reads and assembled the whole-genome sequence. The assembled genome contains a series of scaffolds that reach the length of chromosome arms and is similar in scaffold contiguity to the genome assemblies of cheetah and puma, with a contig N50 = 100.2 kbp and a scaffold N50 = 49.27 Mbp. We assessed the assembled sequence of the jaguarundi genome using BUSCO, aligned reads of the sequenced individual and another published female jaguarundi to the assembled genome, annotated protein-coding genes, repeats, genomic variants and their effects with respect to the protein-coding genes, and analyzed differences of the two jaguarundis from the reference mitochondrial genome. The jaguarundi genome assembly and its annotation were compared in quality, variants and features to the previously reported genome assemblies of puma and cheetah. Computational analyzes used in the study were implemented in transparent and reproducible way to allow their further reuse and modification.</p>
PUMA IV: CO(2-1) channel maps
<p>CO(2-1) channel maps of the 25 ULIRGs systems (38 individual nuclei) of the <em>Physics of ULIRGs with MUSE and ALMA</em> (PUMA) sample (Perna et al., 2021; Pereira-Santaella et al., 2021). These figures are an extended appendix to the paper Lamperti et al (2022), published in A&A (arXiv:2209.03380).</p>
FIG. 3 in Human-puma (Puma concolor (Linnaeus, 1771)) relations in the Dry Chaco of Córdoba, Argentina
FIG. 3. — Depiction of a hunting sequence. A, puma (Puma concolor (Linnaeus, 1771)) track; B, trap used in hunting; C, dogs (Canis lupus familiaris (Linnaeus, 1758)), the nonhuman companions, after a boar (Sus scrofa Linnaeus, 1758) hunting party. Credits: Jessica Manzano-García.
FIG. 2 in Human-puma (Puma concolor (Linnaeus, 1771)) relations in the Dry Chaco of Córdoba, Argentina
FIG. 2. — Puma's (Puma concolor (Linnaeus, 1771)) body parts. A, as nourishment waiting to be butchered; B, as ornamental skin for the domestic household; C, the skull, as ornament in a local farm cottage. Photos credits: Jessica Manzano-García.
FIG. 5 in Human-puma (Puma concolor (Linnaeus, 1771)) relations in the Dry Chaco of Córdoba, Argentina
FIG. 5. — Skeletal remains of Puma concolor (Linnaeus, 1771) and anthropic traces. A, Humerus displaying cuts (anterior view); B, tibia exhibiting cuts (medial view); C, pelvis with cut marks (posterior view); D, thoracic vertebrae exhibiting sawing traces (lateral view). Scale bars: bones, 2 cm; anthropic traces, 2 mm (except C, left trace, 5 mm). Credits: Julian Mignino.
FIG. 4. — A in Human-puma (Puma concolor (Linnaeus, 1771)) relations in the Dry Chaco of Córdoba, Argentina
FIG. 4. — A, caprine livestock in local corral; B, the fat of the predator prepared for medicinal usage. Credits: Jessica Manzano-García.
Dataset: Puma Biotechnology, Inc. (PBYI) Stock Performance
This dataset provides historical stock market performance data for specific companies. It enables users to analyze and understand the past trends and fluctuations in stock prices over time. This information can be utilized for various purposes such as investment analysis, financial research, and market trend forecasting.
Fig. 87. Sanogasta puma, n in The Spider Subfamily Amaurobioidinae (Araneae, Anyphaenidae): A Phylogenetic Revision At The Generic Level
Fig. 87. Sanogasta puma, n. sp., epigyne, ventral view (Buenos Aires, Paraná de Las Palmas). A. Anterior pouch. B. Copulatory openings.
Fig. 2 in Description of Babesia coryicola sp. nov. from Florida pumas (Puma concolor coryi) from southern Florida, USA
Fig. 2. Genetic relationships of Babesia coryicola sp. nov. from Florida pumas (Puma concolor coryi) compared with other Babesia spp. based on near full length 18S rRNA gene sequences. The text in bold blue in the figure represents specimens analyzed in this study. Sequences in light blue are species that have been primarily associated with felid hosts. Green lineages are predominately associated with canid hosts but have been reported in felids. Several sequences derived from domestic cats (i.e., MW578972, PP151898, and PP151899) and wild felids (i.e., HQ187782 and HQ187782) were not included in the analysis because the sequences were short.
Fig. 1 in Description of Babesia coryicola sp. nov. from Florida pumas (Puma concolor coryi) from southern Florida, USA
Fig. 1. Photomicrographs of Babesia coryicola sp. nov., type-material in blood smears from FP222 Florida puma (Puma concolor coryi) (A–C) showing ring and amoeboid trophozoites and FP93 (D) showing a compact ring form.
Fig. 4 in Description of Babesia coryicola sp. nov. from Florida pumas (Puma concolor coryi) from southern Florida, USA
Fig. 4. Genetic relationships of Babesia coryicola sp. nov. from Florida pumas (Puma concolor coryi) compared with other Babesia spp. based on partial cytb gene sequences. The text in bold in the figure represents specimens analyzed in this study.
Fig. 6 in Description of Babesia coryicola sp. nov. from Florida pumas (Puma concolor coryi) from southern Florida, USA
Fig. 6. Genetic relationships of Babesia coryicola sp. nov. from Florida pumas (Puma concolor coryi) compared with other Babesia spp. based on partial COX3 gene sequences. The text in bold in the figure represents specimens analyzed in this study.
Fig. 5 in Description of Babesia coryicola sp. nov. from Florida pumas (Puma concolor coryi) from southern Florida, USA
Fig. 5. Genetic relationships of Babesia coryicola sp. nov. from Florida pumas (Puma concolor coryi) compared with other Babesia spp. based on partial COI gene sequences. The text in bold in the figure represents specimens analyzed in this study.
Fig. 3 in Description of Babesia coryicola sp. nov. from Florida pumas (Puma concolor coryi) from southern Florida, USA
Fig. 3. Genetic relationships of Babesia coryicola sp. nov. from Florida pumas (Puma concolor coryi) compared with other Babesia spp. based on partial β-tubulin gene sequences. The text in bold in the figure represents specimens analyzed in this study.
Puma concolor occurrence points (filtered data)
<p>Puma concolor occurrence points (duplicates removed) in Canada until December 2021. Used in Maxent habitat suitability model (performed in R).</p>
Data from: Residential development reduces black bear (Ursus americanus) opportunity to scavenge cougar (Puma concolor) killed prey
Open the record for dataset details and reuse information.
Draft de novo genome assembly of the elusive jaguarundi, Puma yagouaroundi
Open the record for dataset details and reuse information.
Figure 4. Species accumulation curve for species richness and a in Food habits of the Cougar Puma concolor (Carnivora: Felidae) in the Central Andes of the Colombian Coffee Region
Figure 4. Species accumulation curve for species richness and a non-parametric estimator of species richness Chao 2 at several sectors of the Central Andes of the Coffee Region in Colombia. The species accumulation curve indicates that the sampling shows 100% of the species consumed by the cougar in this area.
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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.