Find research datasets worth reusing
Search datasets from major research repositories and use ShareScore to quickly assess how well each record supports discovery, access, and reuse.
102
datasets available to search
ShareScore release 0.9.0
Dataset results
102 results for “regional history”
FIGURES 6–27 in Taxonomy and natural history of the myrmecophilous genus Clinterocera Motschulsky, 1858 (Coleoptera: Scarabaeidae: Cetoniinae) from China and adjacent regions: revision of the C. jucunda species group
FIGURES 6–27. Setiferous punctures on the pronotum and elytron of Clinterocera. 6–7, Clinterocera brevifasciata new species (holotype); 8–9, C. davidis; 10–11, C. donckieri; 12–13, C. jucunda; 14–15, C. krikkeni new species (holotype); 16–17, C. nigra; 18–19, C. velutina new species (holotype); 20–21, C. vietnamensis new species (holotype); 22–23, C. yunnana; 24– 25, C. raui; 26–27, C. sinensis new species (holotype).
FIGURES 39–61 in Taxonomy and natural history of the myrmecophilous genus Clinterocera Motschulsky, 1858 (Coleoptera: Scarabaeidae: Cetoniinae) from China and adjacent regions: revision of the C. jucunda species group
FIGURES 39–61. Metatibia and metatarsi of Clinterocera (male and female). 39. Clinterocera bicolor; 40–41, C. brevifasciata new species (holotype and paratype); 42–43, C. davidis. 44–45; C. donckieri; 46–47, C. jucunda; 48–49, C. krikkeni new species (holotype and paratype); 50–51, C. nigra; 52–53, C. velutina new species (holotype and paratype); 54– 55, C. vietnamensis new species (holotype and paratype); 56–57, C. yunnana; 58–59, C. raui; 60–61, C. sinensis new species (holotype and paratype).
FIGURES 194–199 in Taxonomy and natural history of the myrmecophilous genus Clinterocera Motschulsky, 1858 (Coleoptera: Scarabaeidae: Cetoniinae) from China and adjacent regions: revision of the C. jucunda species group
FIGURES 194–199. Habitat and different stages of Clinterocera davidis. 194–196, Habitat, ant nest, and Crematogaster ants in Mount Mangdangshan, Fujian, China; 197–199, pupa and adult in artificial conditions (from Mount Shiwandashan, Guangxi, China).
FIGURES 236–241 in Taxonomy and natural history of the myrmecophilous genus Clinterocera Motschulsky, 1858 (Coleoptera: Scarabaeidae: Cetoniinae) from China and adjacent regions: revision of the C. jucunda species group
FIGURES 236–241. Habitat of Clinterocera yunnana. 236–237, Lindgren funnel trap installed at the edge of the forest in Mount Leigongshan, Guizhou, China; 238–239, an adult excavated from a rotten wood near Mount Gaoligonshan (Tengchong, Yunnan, China, photograph by Cong-Chao Dai); 240–241, an adult excavated from a nest of Lasius ants in Yuxian, Yunnan, China (photograph in artificial conditions).
FIGURES 112–135 in Taxonomy and natural history of the myrmecophilous genus Clinterocera Motschulsky, 1858 (Coleoptera: Scarabaeidae: Cetoniinae) from China and adjacent regions: revision of the C. jucunda species group
FIGURES 112–135. Male habitus of Clinterocera (typical form), dorsal and ventral view. 112–113, Clinterocera brevifasciata new species (holotype); 114–115, C. davidis (Fujian, China); 116–117, C. donckieri (Guizhou, China); 118–119, C. jucunda (Chiang Rai, Thailand); 120–121, C. krikkeni new species (holotype); 122–123, C. nigra (Taiwan); 124–125, C. velutina new species (holotype); 126–127, C. vietnamensis new species (holotype); 128–129, C. yunnana (Yunnan, China); 130–131, C. ishikawai (paratype); 132–133, C. raui (Hua Phan, Laos); 134–135, C. sinensis new species (holotype).
FIGURES 84–97 in Taxonomy and natural history of the myrmecophilous genus Clinterocera Motschulsky, 1858 (Coleoptera: Scarabaeidae: Cetoniinae) from China and adjacent regions: revision of the C. jucunda species group
FIGURES 84–97. Type specimens of Clinterocera. 84–85, Clinterocera bicolor, female holotype and labels (photograph by Joachim Willers); 86–88, C. davidis, male lectotype (greasy) and labels (photograph by Antoine Mantilleri); 89–90, C. donckieri, male holotype and labels (photograph by Max Barclay); 91–92, C. cervenkai, male holotype and labels; 93. C. jucunda, illustrations of a syntype from Westwood (1873); 94–95, Callynomes humeralis, male lectotype and labels; 96–97, C. nigra, male holotype and labels (photograph by Shuhei Nomura).
FIGURES 218–226 in Taxonomy and natural history of the myrmecophilous genus Clinterocera Motschulsky, 1858 (Coleoptera: Scarabaeidae: Cetoniinae) from China and adjacent regions: revision of the C. jucunda species group
FIGURES 218–226. Habitat and different stages of Clinterocera velutina new species. 218–219, Adult in ant nest and Anoplolepis gracilipes ant (Mount Diaoluoshan, Hainan, China). 220–223, habitat, ant nest, adult in the ant nest, and Crematogaster ant (Danzhou, Hainan, China); 224–226, larva, pupa, and adult in artificial conditions (from Mount Diaoluoshan, Hainan, China).
FIGURES 62–83 in Taxonomy and natural history of the myrmecophilous genus Clinterocera Motschulsky, 1858 (Coleoptera: Scarabaeidae: Cetoniinae) from China and adjacent regions: revision of the C. jucunda species group
FIGURES 62–83. Male genitalia of Clinterocera (apical and lateral view). 62–63, Clinterocera brevifasciata new species (holotype); 64–65, C. davidis; 66–67, C. donckieri; 68–69, C. jucunda; 70–71, C. krikkeni new species (holotype); 72–73, C. nigra; 74–75, C. velutina new species (holotype); 76–77, C. vietnamensis new species (holotype); 78–79, C. yunnana; 80–81, C. raui; 82–83, C. sinensis new species (holotype).
FIGURES 210–217 in Taxonomy and natural history of the myrmecophilous genus Clinterocera Motschulsky, 1858 (Coleoptera: Scarabaeidae: Cetoniinae) from China and adjacent regions: revision of the C. jucunda species group
FIGURES 210–217. Habitat and different stages of Clinterocera velutina new species. 210, Forest in Mount Diaoluoshan, Hainan, China (photograph by Xin-Ran Li); 211, a closer view of habitat in rotten root colonized by ants (photograph by Xin- Ran Li); 212–215, larvae, pupal cell, pupa, and adult excavated from the rotten root; 216, Anoplolepis gracilipes ant; 217, Nylanderia ant.
Regional climates shape the biogeographic history of a broadly distributed freshwater crab species complex
<p>Aim: The evolutionary importance of paleoclimate regimes has been noted in biogeographic studies. However, little is known about how paleoclimate differences shaped the biogeographic pattern and diversification history of the freshwater fauna in important zoogeographical boundary regions. Here, we aim to investigate how past regional climatic differences have shaped the biogeographic history of the inland aquatic fauna in China using an endemic freshwater crab species complex found on both sides of the Qinling Mountains–Huaihe River Line (QHL), a critical ecological boundary in eastern China, as a model system.</p> <p>Location: Eastern China, the Qinling Mountains–Huaihe River Line.</p> <p>Taxon: The <em>Sinopotamon yangtsekiense</em> species complex.</p> <p>Methods: A total of 482 individuals of <em>Sinopotamon yangtsekiense</em> sensu lato were collected from 34 localities throughout its entire distributional range. The phylogeographic analyses of population structure, morphological and genetic variations, and demographic dynamics were made based on multiple mtDNA and nuDNA loci and on morphological traits. Fine-tuned ecological niche modeling was used to reconstruct the location of climatically suitable areas that existed during the Last Glacial Maximum.</p> <p>Results: The divergence of two freshwater crab lineages across the QHL correlated with significant past variations in monsoon intensity and with the location of multiple refuges. The divergence time was broadly consistent with the timing of the critical paleoclimate transition event in the mid-Pleistocene (95% HPD, 0.48–1.06 Ma). Each freshwater crab lineage has evolved distinct male genital traits associated with their isolation in areas with different precipitation rates and temperatures in the past. The patterns of crab distribution observed today reflect past contractions of the two lineages in response to glacial and interglacial cycles during the Pleistocene, followed by their subsequent rapid expansion after the Last Glacial Maximum (~15 kya).</p> <p>Main conclusions: Populations of the widespread species <em>Sinopotamon yangtsekiense</em> s.l. experienced a deep division in the past that led to the phylogeographical isolation observed today. The two main drivers of genetic isolation in this taxon were (a) differences in the intensity of the monsoons on each side of the QHL boundary during the mid-Pleistocene, and (b) isolation of different populations of <em>S. yangtsekiense</em> s.l. in a number of separate refuges during the LGM.</p>
Figure 1 in Parasites Of The Brazilian Rock Cavy, Kerodon Rupestris: Revealing Their History In The Brazilian Semiarid Region
Figure 1. Accumulation curve of the parasite species found in Kerodon rupestris at Parque Nacional da Serra da Capivara, Piauı´, Brazil.
Heatmap of global collection units Any collection object in any museum can be categorized into only one of the 304 cells (19 collection types by 16 geographic regions).A "collection unit" is a single museum's holdings within a single cell. For 73 museums, there are 22,192 possible collection units. The heatmap shows the 1957 collection units with more than 10,000 objects. See supplementary materials for details and for a heatmap of the 242 collection units with more than 1 million objects. in A global approach for natural history museum collections
Heatmap of global collection units Any collection object in any museum can be categorized into only one of the 304 cells (19 collection types by 16 geographic regions).A "collection unit" is a single museum's holdings within a single cell. For 73 museums, there are 22,192 possible collection units. The heatmap shows the 1957 collection units with more than 10,000 objects. See supplementary materials for details and for a heatmap of the 242 collection units with more than 1 million objects.
Supplementary Data for Wueller et al. (2024): Geologic History of Deuteronilus Cavus in the Ismenius Lacus Region, Mars.
<p>Supplementary Data for Wueller et al. (2024): Geologic History of Deuteronilus Cavus in the Ismenius Lacus Region, Mars</p> <p>Data contains the georeferenced map plate of our geologic map that can be used in any geoinformation system (GIS).</p> <p><strong>If you use these data, please cite BOTH the Journal of Geophysical Research: Planets publication and the Zenodo dataset.</strong></p> <p>Wueller, L., Iqbal, W., Hiesinger, H., & Head III, J. W. (2024). Geologic History of Deuteronilus Cavus in the Ismenius Lacus Region, Mars. <em>Journal of Geophysical Research: Planets</em>, <em>129</em>(2), e2023JE008039. <a href="https://doi.org/10.1029/2023JE008039">https://doi.org/10.1029/2023JE008039</a></p> <p>Wueller, L., Iqbal, W., Hiesinger, H., & Head, J. (2023). Geologic History of Deuteronilus Cavus in the Ismenius Lacus Region, Mars. <em>Zenodo Dataset</em>. <a href="https://doi.org/10.5281/zenodo.8205276" target="_blank" rel="noopener">https://doi.org/10.5281/zenodo.8205276</a></p> <p>-----------------------------------------------------------------------------------------------------------------------------------------</p> <p>Mapping Scale is 1:200,000</p> <p>-----------------------------------------------------------------------------------------------------------------------------------------</p> <p>For further questions contact lwueller@uni-muenster.de</p> <p>Lukas Wueller, Institut für Planetologie, Universität Münster, Germany, January 2024</p>
Data from: Retroposed elements and their flanking regions resolve the evolutionary history of xenarthran mammals (armadillos, anteaters, and sloths)
Open the record for dataset details and reuse information.
Regional climates shape the biogeographic history of a broadly distributed freshwater crab species complex
Open the record for dataset details and reuse information.
Data from: Population genetic structure of the endemic rosewoods Dalbergia cochinchinensis and D. oliveri at a regional scale reflects the Indochinese landscape and life-history traits
Open the record for dataset details and reuse information.
Data from: Haplotype structure, adaptive history and associations with exploratory behaviour of the DRD4 gene region in four great tit (Parus major) populations
Open the record for dataset details and reuse information.
Data from: Nuclear microsatellite and mitochondrial DNA analyses reveal the regional genetic structure and phylogeographical history of a sanguivorous land leech, Haemadipsa japonica, in Japan
Open the record for dataset details and reuse information.
Data from: Inferences of evolutionary history of a widely distributed mangrove species, Bruguiera gymnorrhiza, in the Indo-West Pacific region
Open the record for dataset details and reuse information.
Life history genomic regions explain differences in Atlantic salmon marine diet specialization
Open the record for dataset details and reuse information.
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.