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Figure 1 in Inter-oceanic comparison of planktonic copepod ecology (vertical distribution, abundance, community structure, population structure and body size) between the Okhotsk Sea and Oyashio region in autumn
Figure 1. Location of the sampling stations in the Okhotsk Sea and Oyashio region from September to December in 1996–1998. ○: closing net sampling, ●: closing net and IONESS sampling.
Dataset for research article: Inluence of socio-economic, demographic and climate factors on the regional distribution of dengue in the United States and Mexico
<p>R project folder, Spatial dataset and R code for research article <em>Influence of socio-economic, demographic and climate factors on the regional distribution of dengue in the United States and Mexico: </em><a href="https://ij-healthgeographics.biomedcentral.com/">International Journal of Health Geographics</a></p>
Supplementary material 1 from: Liu J, Jiang R, Zhang G (2020) Number and distribution of large old ginkgos in east China: Implications for regional conservation. Nature Conservation 42: 71-87. https://doi.org/10.3897/natureconservation.42.59284
The large old ginkgos in Jiangsu Province, east China
Data from: Phylogeography of Chinese house mice (Mus musculus musculus/castaneus): distribution, routes of colonization and geographic regions of hybridization
Here, we present a comprehensive analysis of the biogeographic history of Chinese house mice based on data from mtDNA control region sequences and 10 microsatellite loci in 535 individuals sampled from 29 localities. Phylogenetic analyses revealed two distinct evolutionary lineages corresponding to M. m. castaneus in the South and M. m. musculus in the North, with the Yangtze River roughly representing the boundary between these subspecies. More detailed analyses using published sequence data from mice sampled in neighboring countries revealed the migration routes of the two subspecies into China: M. m. castaneus appears to have migrated through a southern route (Yunnan and Guangxi), while M. m. musculus entered China from Kazakhstan through the northwest border (Xinjiang). Bayesian analyses of mitochondrial sequences indicated rapid population expansions in both subspecies, approximately 4,650-9,300 years ago for M. m. castaneus and approximately 7,150-14,300 years ago for M. m. musculus. Interestingly, the migration routes of Chinese house mice coincide with the colonization routes of modern humans into China, and the expansion times of house mice are consistent with the development of agriculture in southern China and northern China respectively. Finally, our study confirmed the existence of a hybrid zone between M. m. castaneus and M. m. musculus near the Yangtze River. Further study of this hybrid zone will provide a useful counterpart to the well-studied hybrid zone between M. m. musculus and M. m. domesticus in central Europe.
Data from: A melanin-based trait is more strongly related to body size in the tropics than in temperate regions in the globally distributed barn owl family
Life history traits differ between organisms living in the tropics, northern and southern hemispheres, and sexual selection is thought to be stronger close to the equator than in temperate regions. Although birds are often supposed to be more brightly coloured in the tropics, the current evidence of geographic variation in the intensity of sexual selection and sex-specific natural selection is equivocal. Whether sex-specific traits signal aspects of individual quality better in the tropics than in the temperate regions of the northern and southern hemispheres therefore remains an open question. We examined predictions of this hypothesis in the Tytonidae family (barn owls and their relatives) because females, on average, display larger black spots on the tip of their ventral body feathers than males, and this trait is associated with aspects of individual quality. We measured the size of melanic spots and the wing length of 7893 Tytonidae skins collected worldwide and preserved in natural history museums. The covariation between spot size and wing length was stronger in females than in males, in large- than small-spotted Tyto taxa and close to the equator than in temperate regions. This suggests that selection for spot size, which can be used by owls as an additional cue to assess individual body size and other aspects of phenotypic quality, is stronger in females than in males, particularly near the equator.
FIGURE 1 in Taxonomy and distribution of the genus Eurydice Leach, 1815 (Crustacea, Isopoda, Cirolanidae) from the Arabian region, including three new species
FIGURE 1. Map of the Arabian region showing collection locations for Eurydice species.
FIGURE 15 in The genus Macrostemum Kolenati 1859 (Trichoptera: Hydropsychidae) in the Neotropical Region: Description of two new species, taxonomic notes, distributional records and key to males
FIGURE 15. Macrostemum ulmeri (Banks 1913), right fore- and hind wings, dorsal view. A–B, variants.
FIGURE 296 in Review of Gonatocerus (Hymenoptera: Mymaridae) in the Palaearctic region, with notes on extralimital distributions
FIGURE 296. Gonatocerus (Cosmocomoidea) oxypygus Ƥ (Lake Kerkini, Greece): wings.
FIGURE 312 in Review of Gonatocerus (Hymenoptera: Mymaridae) in the Palaearctic region, with notes on extralimital distributions
FIGURE 312. Gonatocerus (Cosmocomoidea) tremulae Ƥ (lectotype): body and wings.
FIGURE 260 in Review of Gonatocerus (Hymenoptera: Mymaridae) in the Palaearctic region, with notes on extralimital distributions
FIGURE 260. Gonatocerus (Cosmocomoidea) kikimora Ƥ (holotype): wings.
FIGURES 307, 308 in Review of Gonatocerus (Hymenoptera: Mymaridae) in the Palaearctic region, with notes on extralimital distributions
FIGURES 307, 308. Gonatocerus (Cosmocomoidea) rogersi Ƥ (holotype): 307, wings; 308, metasoma.
FIGURES 199, 200 in Review of Gonatocerus (Hymenoptera: Mymaridae) in the Palaearctic region, with notes on extralimital distributions
FIGURES 199, 200. Gonatocerus (Lymaenon) vidanoi Ƥ (holotype): 199, antenna; 200, fore wing.
FIGURE 136 in Review of Gonatocerus (Hymenoptera: Mymaridae) in the Palaearctic region, with notes on extralimital distributions
FIGURE 136. Gonatocerus (Lymaenon) litoralis Ƥ (lectotype of Alaptus fuscus Förster): slide.
FIGURES 123, 124 in Review of Gonatocerus (Hymenoptera: Mymaridae) in the Palaearctic region, with notes on extralimital distributions
FIGURES 123, 124. Gonatocerus (Lymaenon) krasavchik Ƥ (holotype): 123, fore wing; 124, hind wing.
FIGURES 180, 181 in Review of Gonatocerus (Hymenoptera: Mymaridae) in the Palaearctic region, with notes on extralimital distributions
FIGURES 180, 181. Gonatocerus (Lymaenon) svat Ƥ (holotype): 180, head; 181, antenna.
FIGURE 119 in Review of Gonatocerus (Hymenoptera: Mymaridae) in the Palaearctic region, with notes on extralimital distributions
FIGURE 119. Gonatocerus (Lymaenon) komarik Ƥ (holotype): wings.
FIGURES 103–105 in Review of Gonatocerus (Hymenoptera: Mymaridae) in the Palaearctic region, with notes on extralimital distributions
FIGURES 103–105. Gonatocerus (Lymaenon) karlik Ƥ (holotype): 103, antenna; 104, body; 105, wings.
FIGURES 129–131 in Review of Gonatocerus (Hymenoptera: Mymaridae) in the Palaearctic region, with notes on extralimital distributions
FIGURES 129–131. Gonatocerus (Lymaenon) kum Ƥ (holotype): 129, antenna; 130, body; 131, wings.
FIGURE 94 in Review of Gonatocerus (Hymenoptera: Mymaridae) in the Palaearctic region, with notes on extralimital distributions
FIGURE 94. Gonatocerus (Lymaenon) cunctator Ƥ (holotype): habitus.
FIGURES 91–93 in Review of Gonatocerus (Hymenoptera: Mymaridae) in the Palaearctic region, with notes on extralimital distributions
FIGURES 91–93. Gonatocerus (Lymaenon) cunctator Ƥ (holotype): 91, slide; 92, antennae; 93, wings.
ScienceDex guides
Understand access before you commit
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.