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184 results for “Pandas”
Gut microbiota in reintroduction of Giant Panda
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Data from: Walking in a heterogeneous landscape: dispersal, gene-flow and conservation implications for the giant panda in the Qinling Mountains
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Data from: Transcriptome-derived tetranucleotide microsatellites and their associated genes from the giant panda (Ailuropoda melanoleuca)
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Data from: Red panda fine-scale habitat selection along a Central Himalayan longitudinal gradient
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Data from: Significant genetic boundaries and spatial dynamics of giant pandas occupying fragmented habitat across southwest China
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Data from: Genetic structuring and recent demographic history of red pandas (Ailurus fulgens) inferred from microsatellite and mitochondrial DNA
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Giant icons and lesser kin: Chinese public perception of panda welfare at Chengdu Research Base of Giant Panda Breeding
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Data from: Inbreeding and inbreeding avoidance in wild giant pandas
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Data from: Atmospheric deposition exposes Qinling pandas to toxic pollutants
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Data from: Population genetics reveals high connectivity of giant panda populations across human disturbance features in key nature reserve
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Data from: Plant diversity in giant panda habitat
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Comparative skeletal anatomy of neonatal ursids and the extreme altriciality of the giant panda
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Figure 4 from: He X, Hsu WH, Hou R, Yao Y, Xu Q, Jiang D, Wang L, Wang H (2020) Comparative genomics reveals bamboo feeding adaptability in the giant panda (Ailuropoda melanoleuca). ZooKeys 923: 141-156. https://doi.org/10.3897/zookeys.923.39665
Figure 4 The GO enrichment analysis of giant panda positive selection gene. The abscissa is the pair value of the corrected p value, and the corrected p < 0.05 is taken as the threshold value.
Figure 3 from: He X, Hsu WH, Hou R, Yao Y, Xu Q, Jiang D, Wang L, Wang H (2020) Comparative genomics reveals bamboo feeding adaptability in the giant panda (Ailuropoda melanoleuca). ZooKeys 923: 141-156. https://doi.org/10.3897/zookeys.923.39665
Figure 3 The KEGG enrichment analysis of the giant panda expansion gene family. The abscissa is the pair value of the corrected p value, and the corrected p < 0.05 is taken as the threshold value.
Figure 2 from: He X, Hsu WH, Hou R, Yao Y, Xu Q, Jiang D, Wang L, Wang H (2020) Comparative genomics reveals bamboo feeding adaptability in the giant panda (Ailuropoda melanoleuca). ZooKeys 923: 141-156. https://doi.org/10.3897/zookeys.923.39665
Figure 2 Analysis of the evolution of giant panda gene family. The number of points represent the time of divergence, in millions of years (Myr). The numbers on the branches represent the number of genes, - for contraction, + for expansion.
Figure 1 from: He X, Hsu WH, Hou R, Yao Y, Xu Q, Jiang D, Wang L, Wang H (2020) Comparative genomics reveals bamboo feeding adaptability in the giant panda (Ailuropoda melanoleuca). ZooKeys 923: 141-156. https://doi.org/10.3897/zookeys.923.39665
Figure 1 The enrichment analysis of shared genes between the giant panda and mammalian species with different feeding habits. Giant pandas have the characteristics of both carnivores and herbivores. Studies show that it is close to carnivores in perception and close to herbivores in physiological functions. The abscissa is the pair value of the corrected p value, and the corrected p < 0.05 is taken as the threshold value. a shared genes between the giant panda and other mammalian species with different feeding habits b gene enrichment analysis of the giant panda and carnivores c gene enrichment analysis of the giant panda and herbivores.
Data from: Climate change and landscape-use patterns influence recent past distribution of giant pandas
<p>Climate change is one of the most pervasive threats to biodiversity globally, yet the influence of climate relative to other drivers of species depletion and range contraction remain difficult to disentangle. Here, we examine climatic and non-climatic correlates of giant panda (<i>Ailuropoda melanoleuca</i>) distribution using a large-scale 30-year dataset to evaluate whether a changing climate has already influenced panda distribution. We document several climatic patterns, including increasing temperatures, and alterations to seasonal temperature and precipitation. We found that while climatic factors were the most influential predictors of panda distribution, their importance diminished over time, while landscape variables have become relatively more influential. We conclude that the panda's distribution has been influenced by changing climate, but conservation intervention to manage habitat is working to increasingly offset these negative consequences.</p>
Data from: Why is the giant panda black and white?
Although the external appearances of most mammals are drab browns and grays used to match their backgrounds, certain species stand out as exceptions, perhaps the most notable being the giant panda. Using a comparative phylogenetic approach, we examined associations between different pelage regions and socioecological variables across carnivores and ursid subspecies to shed light on the giant panda's black and white pelage coloration. Analyses of fur color and background environments suggest that the giant panda's white face, nape, dorsum, flank, belly, and rump are adapted for crypsis against a snowy background, whereas its black shoulders and legs are adapted for crypsis in shade. Dark markings on the head are not used in crypsis, however, but in communication: Dark ears may be involved with signaling intent about ferocity whereas dark eye marks may serve in individual recognition. There is no compelling support for their fur color being involved in temperature regulation, disrupting the animal's outline, or in reducing eye glare. We infer that the giant panda's unique pelage coloration serves a constellation of functions that enable it to match its background in different environments and to communicate using facial features.
Distribution and habitat attributes associated with the Himalayan red panda in the westernmost distribution range
<p><span><span>The Himalayan red panda (<i>Ailurus fulgens</i>), a recently confirmed distinct species in the red panda genus, is distributed in Nepal, India, Bhutan and south Tibet. Nepal represents the western most distribution of the Himalayan red panda. </span>This study aim to determine important habitat features influencing the distribution of red panda and recommend possible habitat corridors. <span>This manuscript described current potential habitat of 3,222 km<sup>2</sup> with the relative abundance of 3.34 signs/km in Nepal. Aspect, canopy cover, bamboo cover and distance to water were the important habitat attributes. It suggested five potential corridors in western Nepal. Overall, the study has important implications for conservation of the Himalayan red panda in western distribution range.</span></span></p>
Red Panda in Ailuridae
Red Panda
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Allen Brain Atlas
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DANDI Archive for NWB datasets
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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.