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Figure 3 from: Wang J, Li G-D, Yang J-J, Shen B, Pu C-X, Zhu X-X (2021) Taxonomic studies on the genus Isotrema (Aristolochiaceae) from China III: I. pseudohei, a new species from Yunnan, Southwest China. PhytoKeys 186: 43-52. https://doi.org/10.3897/phytokeys.186.63543
Figure 3 Holotype of Isotrema pseudohei X.X.Zhu, Jun Wang bis & G.D.Li. (CSH-0157854).
Figure 7 from: Dong Z, Liu X, Mao C, He J, Li X (2022) Xenos yangi sp. nov.: A new twisted-wing parasite species (Strepsiptera, Xenidae) from Gaoligong Mountains, Southwest China. ZooKeys 1085: 11-27. https://doi.org/10.3897/zookeys.1085.76484
Figure 7 Distribution of the Xenos species from China.
Cluster investigation results from model-predicted mountain lion feeding sites and non-predicted sites in southwest Wyoming
<p class="MsoNormal">Global positioning system (GPS) receivers allow researchers to collect location data that provide information about fine-scale animal movements. For large carnivores, these data are routinely processed to identify clusters of GPS locations which are investigated to validate feeding sites, estimate prey species composition, and model the likelihood of predation events based on characteristics of GPS location data within clusters. Although developing predation models entails a high level of field effort, researchers are apprehensive in applying system-specific models to other systems both spatially and temporally. Our objectives were to apply and compare multiple predation models to predict and identify feeding events outside of the geographic areas where models were developed. Using our multi-model approach, we identified feeding sites and estimated kill rates and prey composition of mountain lions (<em>Puma concolor</em>) in southwest Wyoming, USA from 2017 to 2019. Our approach increased our field efficiency by reducing potential field site investigations by 63%. We provide results of estimated diet composition in our study area where mountain lion prey included relatively high proportions of pronghorn (12.3%) and smaller mammals, particularly coyotes (7.6%). We also provide a comparison of the predation models developed across unique ecoregions of North America, and how they performed when applied to our area. We believe a similar approach could be adopted for other large carnivore populations where multiple models have been developed to characterize feeding events.</p>
Figure 3 from: Yang F, Liu J-L, Li P-P, Wang H-C (2022) Silene vanchingshanensis (Caryophyllaceae) a new species from Southwest China. PhytoKeys 189: 155-162. https://doi.org/10.3897/phytokeys.189.79631
Figure 3 An isotype of Silene vanchingshanensis (YUKU 02074643).
Figure 4 in Construction and use of orb webs by jumping spiders (Araneae: Salticidae: Plexippina: Vailimia sp. indet.) in southwest India
Figure 4. Adult female Vailimia sp. indet. occupying the center of her orb web, at Sanoor, Dakshinakannada, Karnataka. 4,6, Detail of (3,5) respectively. The dorsal carapace of this spider may have lost its setae (rubbed). Photographs by Mr. Jithesh Pai, used with permission.
Figure 14 in Three new peacock spiders from the southeast and southwest of Australia (Araneae: Salticidae: Euophryini: Maratus)
Figure 14. Video analysis of sequential frames during rotation of the fan to one side (25 FPS). The position of the fan in individual frames between positions (47) and (48) as shown in Figure 13 is shown here. In 39 frames (1.56s) there were 14 lo amplitude up/down cycles (bobs) of the opisthosoma, a rate of 9/s. This bobbing was superimposed on a slow and discontinuous rotation of the fan toward the spider's right side (red circles), and low-amplitude twisting of the fan. Toward the end of this sequence the twisting movement synchronized and alternated with each cycle of up/down bobbing, at 9/s. In contrast each increment of rotation of the fan back toward a vertical position was slow but continuous without low-amplitude bobbing or twisting.
Figure 3 in Three new peacock spiders from the southeast and southwest of Australia (Araneae: Salticidae: Euophryini: Maratus)
Figure 3 (continued from previous page, continued on next page). Living adult male types for Maratus cuspis.
Figure 2 in Three new peacock spiders from the southeast and southwest of Australia (Araneae: Salticidae: Euophryini: Maratus)
Figure 2. Adult males representing the three Maratus species placed in the linnaei group. Note the dark middorsal figure and posterior truncation of the tapered opisthosoma (fan) of M. cuspis (1).
Figure 9 from: Zhao Q, Li S (2017) Callosa gen. n., a new troglobitic genus from southwest China (Araneae, Linyphiidae). ZooKeys 703: 109-128. https://doi.org/10.3897/zookeys.703.13641
Figure 9 - Type localities of new species Callosa ciliata sp. n. (1) and C. baiseensis sp. n. (2).
Coexistence mechanisms of carnivores revealed at a fine behavioral scale within the mountains of southwest China
<p><span>Understanding mechanisms of species coexistence is critical in biodiversity research, with behavior playing a key role as species respond to internal and external environments, revealing crucial insights into species interactions and coexistence mechanisms. Carnivore communities are integral components of ecosystems, regulating ecosystem structure and function. However, there is a lack of research from a behavioral ecology perspective on coexistence mechanisms within carnivore communities, leading to an incomplete understanding of their complex interspecies interactions. This study investigates behavioral strategy differences between top and secondary predators in the carnivore community of Xinlong, China. From March 2022 to June 2023, we surveyed behavioral changes of five carnivore species—leopard (<em>Panthera pardus</em>), wolf (<em>Canis lupus</em>), yellow-throated marten (<em>Mustela sibirica</em>), red fox (<em>Vulpes vulpes</em>), and leopard cat (<em>Prionailurus bengalensis</em>)—using infrared cameras. We analyzed habitat impacts on behavioral hierarchy using linear mixed-effects models.</span></p>
Figure 3 from: Hao G, Al-Shehbaz IA, Zhang L, Guo X, Bi H, Xu S, Liu J (2018) Eutrema nanum (Brassicaceae), a new species from Chola Shan, Southwest China. PhytoKeys 109: 17-25. https://doi.org/10.3897/phytokeys.109.27049
Figure 3 Geographical distribution of the sampled populations of Eutremananum and related species.
Figure 2 from: Hao G, Al-Shehbaz IA, Zhang L, Guo X, Bi H, Xu S, Liu J (2018) Eutrema nanum (Brassicaceae), a new species from Chola Shan, Southwest China. PhytoKeys 109: 17-25. https://doi.org/10.3897/phytokeys.109.27049
Figure 2 Holotype of Eutremananum.
Figure 1 from: Hao G, Al-Shehbaz IA, Zhang L, Guo X, Bi H, Xu S, Liu J (2018) Eutrema nanum (Brassicaceae), a new species from Chola Shan, Southwest China. PhytoKeys 109: 17-25. https://doi.org/10.3897/phytokeys.109.27049
Figure 1 Eutremananum. G.Q. Hao, J.Quan. Liu & Al-Shehbaz. A Plant B Fruit C Leaf trichomes.
Figure 1 from: Li Q, Li X-Y, Jackson SM, Li F, Jiang M, Zhao W, Song W-Y, Jiang X-L (2019) Discovery and description of a mysterious Asian flying squirrel (Rodentia, Sciuridae, Biswamoyopterus) from Mount Gaoligong, southwest China. ZooKeys 864: 147-160. https://doi.org/10.3897/zookeys.864.33678
Figure 1 Known localities of three species of Biswamoyopterus.
Figures 1- 2 from: Ji Q, Ren G (2019) Two new species of the genus Cyanopenthe Nikitsky, 1998 (Coleoptera, Tetratomidae) from southwest China. ZooKeys 874: 19-30. https://doi.org/10.3897/zookeys.874.34724
Figures 1- 2 Habitus of Cyanopenthe granulata sp. nov. 1 male 2 female.
Figure 24 from: Ji Q, Ren G (2019) Two new species of the genus Cyanopenthe Nikitsky, 1998 (Coleoptera, Tetratomidae) from southwest China. ZooKeys 874: 19-30. https://doi.org/10.3897/zookeys.874.34724
Figure 24 Habitat of Cyanopenthe hirtiscutellara sp. nov. Jialongba Village, Bomê County, Xizang.
Figure 70 from: Chang Z-M, Yang L, Long J-K, Chen X-S (2019) Three new species of the planthopper genus Sinonissus Wang, Shi & Bourgoin, 2018 from southwest China (Hemiptera, Fulgoromorpha, Issidae). ZooKeys 870: 117-135. https://doi.org/10.3897/zookeys.870.34417
Figure 70 Geographical distribution of Sinonissus.
Figure 3 in Rotifers of southwest Iran: a faunistic and biogeographical study
Figure 3. Drawings of Dicranophorus sp trophi. a) Dicranophorus sp1; b) Dicranophorus sp2.
Figure 2 from: Lin R, Wang J, Huang D, Zheng X (2013) A new species of Austrodecus Hodgson, 1907 (Arthropoda, Pycnogonida, Austrodecidae) from the Southwest Indian Ridge. ZooKeys 349: 73-79. https://doi.org/10.3897/zookeys.349.6170
Figure 2 - Austrodecus bamberi sp. n. male holotype. Photograph from dorsal view.
Figure 5 from: Zheng L-P, Chen X-Y, Yang J-X (2016) Molecular systematics of the Labeonini inhabiting the karst regions in southwest China (Teleostei, Cypriniformes). ZooKeys 612: 133-148. https://doi.org/10.3897/zookeys.612.9085
Figure 5 - Ventral view of the mouth morphology. A Sinigarra napoensis B Garra micropulvinus.
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.