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1,254 results for “PANs”
Figure 2 from: Pan Y, Yu Z, Yuan X (2022) Ultrastructure of androconia and surrounding scales of nine species of Hesperiidae (Lepidoptera). ZooKeys 1084: 65-81. https://doi.org/10.3897/zookeys.1084.78883
Figure 2 Ultrastructure of scales in and around the scent glands patches of H. taminataA Scent glands patches B and C Scales in the scent glands patches (S1: The first scale (androconium); S2: The second scale) D Ultrastructure of the first scale E Ultrastructure of the second scale F Scales around the scent glands patches.
Figure 3 from: Pan Y, Yu Z, Yuan X (2022) Ultrastructure of androconia and surrounding scales of nine species of Hesperiidae (Lepidoptera). ZooKeys 1084: 65-81. https://doi.org/10.3897/zookeys.1084.78883
Figure 3 Ultrastructure of scales in and around the scent glands patches of L. bifasciataA Scent glands patches B Type 1 scales (androconia) in the scent glands patches C Ultrastructure of type 1 scale in the scent glands patches D Type 2 scales (androconia) in the scent glands patches E Ultrastructure of type 2 scale in the scent glands patches F Type 1 scales around the scent glands patches G Ultrastructure of type 1 scale around the scent glands patches H Type 2 scales around the scent glands patches I Ultrastructure of type 2 scale around the scent glands patches.
Figure 7 from: Pan Y, Yu Z, Yuan X (2022) Ultrastructure of androconia and surrounding scales of nine species of Hesperiidae (Lepidoptera). ZooKeys 1084: 65-81. https://doi.org/10.3897/zookeys.1084.78883
Figure 7 Ultrastructure of scales in and around the scent glands patches of B. leechiA and B Scent glands patches C Scales in the scent glands patches D Ultrastructure of scale in the scent glands patches E Type 1 scales around the scent glands patches F Ultrastructure of type 1 scale around the scent glands patches G Type 2 scales around the scent glands patches H Ultrastructure of type 2 scale around the scent glands patches I Type 3 scales around the scent glands patches J Ultrastructure of type 3 scale around the scent glands patches K Type 4 scales around the scent glands patches L Ultrastructure of type 4 scale around the scent glands patches.
Figure 4 from: Pan Y, Yu Z, Yuan X (2022) Ultrastructure of androconia and surrounding scales of nine species of Hesperiidae (Lepidoptera). ZooKeys 1084: 65-81. https://doi.org/10.3897/zookeys.1084.78883
Figure 4 Ultrastructure of scales in and around the scent glands patches of P. alveusA Scent glands patches B Scales in the scent glands patches (S1: The first scale (androconium); S2: The second scale) C Ultrastructure of the first scale in the scent glands patches D Type 1 scales around the scent glands patches E Ultrastructure of type 1 scale around the scent glands patches F Type 2 scales around the scent glands patches G Ultrastructure of type 2 scale around the scent glands patches.
Figure 8 from: Pan Y, Yu Z, Yuan X (2022) Ultrastructure of androconia and surrounding scales of nine species of Hesperiidae (Lepidoptera). ZooKeys 1084: 65-81. https://doi.org/10.3897/zookeys.1084.78883
Figure 8 Ultrastructure of scales in and around the scent glands patches of T. leoninusA Scent glands patches B Scales (androconia) in the scent glands patches C Ultrastructure of androconium D Type 1 scales around the scent glands patches E Ultrastructure of type 1 scale around the scent glands patches F Type 2 scales around the scent glands patches.
Prey preference of the chimpanzee Pan troglodytes
<p class="MsoBodyText">Chimpanzees <i>Pan troglodytes </i>are the closest extant relative of modern humans, and are often used as a model organism to help understand prehistoric human behavior and ecology. Originally presumed herbivorous, chimpanzees have been observed hunting 24 species of birds, ungulates, rodents, monkeys, and other primates, using an array of techniques from tools to group cooperation. Using the literature on chimpanzee hunting behavior and diet from 13 studies, we aimed to determine the prey preferences of chimpanzees. We extracted data on prey-specific variables such as targeted species, their body weight, and their abundance within the prey community, and hunter-specific variables such as hunting method, and chimpanzee group size and sex ratio. We used these in a generalized linear model to determine what factors drive chimpanzee prey preference. We calculated a Jacobs' Index value for each prey species killed at two sites in Uganda and two sites in Tanzania. Chimpanzees prefer prey with a body weight of 7.6 ± 0.4 kg or less, which corresponds to animals such as juvenile bushbuck <i>Tragelaphus scriptus </i>and guereza colobus monkeys <i>Colobus guereza</i>. Sex ratio in chimpanzee groups appears to drive chimpanzee prey preference, where chimpanzees increasingly prefer prey when in male-dominated groups. Prey preference information from chimpanzee research can assist conservation management programs by identifying key prey species to manage, as well as contribute to a better understanding of the evolution of human hunting behavior.</p>
CryoGridLite: Model input for pan-Arctic simulations at 1° resolution from 1700 to 2020
<p><strong>CryoGridLite</strong> is a lightweight version of the more complex and process-rich <strong>CryoGrid Community model</strong> (<a href="https://gmd.copernicus.org/preprints/gmd-2022-127/">Westermann et al. 2022</a>).</p> <p>This archive contains the following input datasets which are required to run the model.</p> <p><code>./FORCING.zip</code> The meteorological forcing data.<br> <code>./PARA.zip</code> Parameter files describing the ground stratigraphies etc.</p> <p>The model code can be found here: <a href="https://zenodo.org/record/6619537">10.5281/zenodo.6619537</a></p> <p>Output data of pan-Arctic simulations can be found here: <a href="https://zenodo.org/record/6619260">10.5281/zenodo.6619260</a></p>
Pan-cancer analysis reveals the prognostic potential of THAP9/THAP9-AS1 Sense-Antisense gene pair in human cancer.
<p>Supplementary data & images.</p>
Supplementary material 1 from: Lin S-S, Li Y-H, Su H-L, Yi H, Pan Z, Sun Y-J, Zeng Z-C, Wang J (2022) Discovery of a new limestone karst-restricted odorous frog from northern Guangdong, China (Anura, Ranidae, Odorrana). ZooKeys 1120: 47-66. https://doi.org/10.3897/zookeys.1120.87067
Table S1
Figure 3 from: Shi W, Wen J, Zhao Y, Johnson G, Pan B (2017) Reproductive biology and variation of nuclear ribosomal ITS and ETS sequences in the Calligonum mongolicum complex (Polygonaceae). PhytoKeys 76: 71-88. https://doi.org/10.3897/phytokeys.76.10428
Figure 3 - Maximum likelihood tree for 43 (in-group) Calligonum nrITS and ETS sequences produced with RAxML. Numbers adjacent to (relevant) nodes represent maximum likelihood value and Bayesian posterior probabilities. Branches marked with an asterisk collapse on the maximum likelihood strict consensus tree of the same dataset. The branch marked with a number sign collapses on the Bayesian majority rule consensus tree of the same dataset.
Figure 4 from: Shi W, Wen J, Zhao Y, Johnson G, Pan B (2017) Reproductive biology and variation of nuclear ribosomal ITS and ETS sequences in the Calligonum mongolicum complex (Polygonaceae). PhytoKeys 76: 71-88. https://doi.org/10.3897/phytokeys.76.10428
Figure 4 - Neighbour-net analyses of the Calligonum mongolicum complex, Calligonum ebinuricum, Calligonum calliphysa and closely related taxa based on uncorrected p-distances. Numbers indicate bootstrap values over 1000 replicates.
Figure 2 from: Shi W, Wen J, Zhao Y, Johnson G, Pan B (2017) Reproductive biology and variation of nuclear ribosomal ITS and ETS sequences in the Calligonum mongolicum complex (Polygonaceae). PhytoKeys 76: 71-88. https://doi.org/10.3897/phytokeys.76.10428
Figure 2 - Equatorial view of pollen grains of the Calligonum mongolicum complex under SEM micrographs.1 Calligonum mongolicum 2 Calligonum chinense 3 Calligonum gobicum 4 Calligonum pumilum and 5. Calligonum zaidamense.
Figure 1 from: Shi W, Wen J, Zhao Y, Johnson G, Pan B (2017) Reproductive biology and variation of nuclear ribosomal ITS and ETS sequences in the Calligonum mongolicum complex (Polygonaceae). PhytoKeys 76: 71-88. https://doi.org/10.3897/phytokeys.76.10428
Figure 1 - The phenological phases of the Calligonum mongolicum complex. 1 Calligonum mongolicum 2 Calligonum chinense 3 Calligonum gobicum 4 Calligonum pumilum and 5 Calligonum zaidamense.
Figures 5 from: Yan C-C, Guo Q, Liu T, Guo W, Wang X-H, Pan B-P (2016) Review of the genus Harnischia Kieffer from China (Diptera, Chironomidae), with description of one new species. ZooKeys 634: 79-99. https://doi.org/10.3897/zookeys.634.10323
Figures 5 - Harnischia fuscimana. Pupae. A frontal apotome B sternite I C thorax, lateral view D basal ring E tergites I–VI F tergite VII–VIII and anal lobe.
Figures 10 from: Yan C-C, Guo Q, Liu T, Guo W, Wang X-H, Pan B-P (2016) Review of the genus Harnischia Kieffer from China (Diptera, Chironomidae), with description of one new species. ZooKeys 634: 79-99. https://doi.org/10.3897/zookeys.634.10323
Figures 10 - Harnischia sp.1. Pupae. A frontal apotome B sternite I C thorax, lateral view D basal ring E thorax horn F tergites I–VI G tergite VII–VIII and anal lobe.
Figures 4 from: Yan C-C, Guo Q, Liu T, Guo W, Wang X-H, Pan B-P (2016) Review of the genus Harnischia Kieffer from China (Diptera, Chironomidae), with description of one new species. ZooKeys 634: 79-99. https://doi.org/10.3897/zookeys.634.10323
Figures 4 - Harnischia curtilamellata. Pupae. A frontal apotome B sternite I C thorax, lateral view D basal ring E tergites I–VI F tergite VII–VIII and anal lobe.
Figure 4 from: Wang C, Qian L, Zhang C, Guo W, Pan T, Wu J, Wang H, Zhang B (2017) A new species of Rana from the Dabie Mountains in eastern China (Anura, Ranidae). ZooKeys 724: 135-153. https://doi.org/10.3897/zookeys.724.19383
Figure 4 A volar view of the left hand of the holotype in life (AHU2016R001, male) B volar view of the right hand of female paratype in preservative (AHU2016R010, famle) C thenar view of the right foot of the holotype in life (AHU2016R001, male) D thenar view of the right foot of the female paratype in preservative (AHU2016R010, famle).
Figure 1 from: Wang C, Qian L, Zhang C, Guo W, Pan T, Wu J, Wang H, Zhang B (2017) A new species of Rana from the Dabie Mountains in eastern China (Anura, Ranidae). ZooKeys 724: 135-153. https://doi.org/10.3897/zookeys.724.19383
Figure 1 Distribution of Rana dabieshanensis sp. n. in Dabie Mountains (Anhui, Hubei, and Henan provinces, central China). Occurrence record is marked with green mark.
Figure 2 from: Wang C, Qian L, Zhang C, Guo W, Pan T, Wu J, Wang H, Zhang B (2017) A new species of Rana from the Dabie Mountains in eastern China (Anura, Ranidae). ZooKeys 724: 135-153. https://doi.org/10.3897/zookeys.724.19383
Figure 2 The Bayesian consensus tree resulting from analysis of four mitochondrial genes (12S rRNA, 16S rRNA, ND2 and Cyt b genes) and three nuclear genes (Tyr, RAG1 and BDNF) dataset for Chinese Rana species. The new species is in bold. Number near the nodes are Bayesian posterior probabilities / Maximum Likelihood bootstrap values but only when values are ≥ 0.95 and ≥ 70, respectively.
Figure 3 from: Wang C, Qian L, Zhang C, Guo W, Pan T, Wu J, Wang H, Zhang B (2017) A new species of Rana from the Dabie Mountains in eastern China (Anura, Ranidae). ZooKeys 724: 135-153. https://doi.org/10.3897/zookeys.724.19383
Figure 3 Dorsal (A) and lateral view (B) of the holotype (AHU2016R001, male) of Rana dabieshanensis sp. n. in life.
ScienceDex guides
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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.