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Figure 3 from: Costa WJEM, Amorim PF, Mattos JLO (2018) Cryptic species diversity in the Hypsolebias magnificus complex, a clade of endangered seasonal killifishes from the São Francisco River basin, Brazilian Caatinga (Cyprinodontiformes, Aplocheilidae). ZooKeys 777: 141-158. https://doi.org/10.3897/zookeys.777.25058
Figure 3 Localities of specimens belonging to species of the Hypsolebiasmagnificus complex used in this study: black dot, H.hamadryades; white dot, H.magnificus; red dot, H.gardneri; yellow dot, H.harmonicus; blue dot, H.picturatus.
Figure 2 from: Costa WJEM, Amorim PF, Mattos JLO (2018) Cryptic species diversity in the Hypsolebias magnificus complex, a clade of endangered seasonal killifishes from the São Francisco River basin, Brazilian Caatinga (Cyprinodontiformes, Aplocheilidae). ZooKeys 777: 141-158. https://doi.org/10.3897/zookeys.777.25058
Figure 2 Hypsolebiasgardneri sp. n. A live holotype, UFRJ 11859, male, 36.9 mm SLB live paratype, UFRJ 6797, female, 30.0 mm SL. Photographs by WJEM Costa.
Figure 1 from: Costa WJEM, Amorim PF, Mattos JLO (2018) Cryptic species diversity in the Hypsolebias magnificus complex, a clade of endangered seasonal killifishes from the São Francisco River basin, Brazilian Caatinga (Cyprinodontiformes, Aplocheilidae). ZooKeys 777: 141-158. https://doi.org/10.3897/zookeys.777.25058
Figure 1 Bayesian phylogeny used to delimit species of the Hypsolebiasmagnificus complex inferred by using sequences of the mitochondrial gene cytochrome b, 463 bp. Numbers above nodes are posterior probability values above 95 %; numbers before species names are catalogue numbers for specimens.
Figure 5 from: Costa WJEM, Amorim PF, Mattos JLO (2018) Cryptic species diversity in the Hypsolebias magnificus complex, a clade of endangered seasonal killifishes from the São Francisco River basin, Brazilian Caatinga (Cyprinodontiformes, Aplocheilidae). ZooKeys 777: 141-158. https://doi.org/10.3897/zookeys.777.25058
Figure 5 Caudal fin of live males of the Hypsolebiasmagnificus species complex. AH.harmonicus, holotype, UFRJ 6696, 29.4 mm SLBH.gardneri sp. n., paratype, UFRJ 6797, 34.4 mm SLCH.hamadryades Costa sp. n., paratype, UFRJ 6895, 24.8 mm SLDH.magnificus, specimen from Gado Bravo, UFRJ 4959, 31.2 mm SLEH.magnificus, topotype not preserved, about 25 mm SLFH.picturatus. Paratype, UFRJ 5053, 38.6 mm SL. Photographs by WJEM Costa.
Figure 4 from: Mammola S, Isaia M (2018) Day–night and seasonal variations of a subterranean invertebrate community in the twilight zone. Subterranean Biology 27: 31-51. https://doi.org/10.3897/subtbiol.27.28909
Figure 4 Interaction plot showing the effect of the interaction between seasonality and the day–night cycle on the abundance of trogloxenes.
Figure 3 from: Mammola S, Isaia M (2018) Day–night and seasonal variations of a subterranean invertebrate community in the twilight zone. Subterranean Biology 27: 31-51. https://doi.org/10.3897/subtbiol.27.28909
Figure 3 Boxplots showing the difference between relative humidity values during the day (white boxes) and at night (grey boxes) in the four seasons. Significant differences are highlighted by asterisks (Signif. codes: *** p<0.001, ** p<0.01).
Figure 2 from: Mammola S, Isaia M (2018) Day–night and seasonal variations of a subterranean invertebrate community in the twilight zone. Subterranean Biology 27: 31-51. https://doi.org/10.3897/subtbiol.27.28909
Figure 2 Temperature variation in the study area. Data refer to record of temperature and relative humidity measured every 12 h (one measurement at midday and one at midnight). Top panel: annual trends of temperatures measured at the entrance (0 m; orange line) and inside the mine (10 and 20 m; purple and blue lines, respectively). Bottom panel: mean of monthly positive and negative temperature deviations at night, with respect to the daily temperature recorded during the same period.
Figure 1 from: Mammola S, Isaia M (2018) Day–night and seasonal variations of a subterranean invertebrate community in the twilight zone. Subterranean Biology 27: 31-51. https://doi.org/10.3897/subtbiol.27.28909
Figure 1 Map of the study area and groundplan of the Seinera mine, with indication of sampling plots and dataloggers.
Figure 5 from: Mammola S, Isaia M (2018) Day–night and seasonal variations of a subterranean invertebrate community in the twilight zone. Subterranean Biology 27: 31-51. https://doi.org/10.3897/subtbiol.27.28909
Figure 5 Predicted values (filled lines) and 95% confidence intervals (dotted lines) of the effect of distance from the main entrance in interaction with the sampling season on the abundance of troglophiles derived from the generalized linear mixed model (GLMM). Day and night trends are shown.
Data for paper in JGR-Atmospheres: The role of internal variability in 21st century projections of the seasonal cycle of Northern Hemisphere surface temperature
<p>Datasets for reproducing the results in our study submitted to JGR-Atmospheres.</p>
Figure 1 from: Costa WJEN, Amorim PF, Mattos JLO (2018) Diversity and conservation of seasonal killifishes of the Hypsolebias fulminantis complex from a Caatinga semiarid upland plateau, São Francisco River basin, northeastern Brazil (Cyprinodontiformes, Aplocheilidae). Zoosystematics and Evolution 94(2): 495-504. https://doi.org/10.3897/zse.94.29718
Figure 1 Bayesian phylogeny used to delimit species endemic to the upper Carnaíba de Dentro River drainage, inferred by using sequences of the mitochondrial gene cytochrome b, 416 bp. Posterior probability values below 95% are not depicted; asterisk above nodes represents maximum value of posterior probability (100 %); numbers before species names are catalogue numbers for voucher specimens.
Figure 4 from: Costa WJEN, Amorim PF, Mattos JLO (2018) Diversity and conservation of seasonal killifishes of the Hypsolebias fulminantis complex from a Caatinga semiarid upland plateau, São Francisco River basin, northeastern Brazil (Cyprinodontiformes, Aplocheilidae). Zoosystematics and Evolution 94(2): 495-504. https://doi.org/10.3897/zse.94.29718
Figure 4 Geographical distribution of species of the Hypsolebias J'-clade in the upper Carnaíba de Dentro River drainage (yellow, H.fulminantis; red, H.splendissimus; black, H.carlettoi) and H.shibattai (white); stars indicate type localities.
Figure 2 from: Costa WJEN, Amorim PF, Mattos JLO (2018) Diversity and conservation of seasonal killifishes of the Hypsolebias fulminantis complex from a Caatinga semiarid upland plateau, São Francisco River basin, northeastern Brazil (Cyprinodontiformes, Aplocheilidae). Zoosystematics and Evolution 94(2): 495-504. https://doi.org/10.3897/zse.94.29718
Figure 2 Hypsolebiassplendissimus Costa sp. n., live holotype, UFRJ 6909, male, 42.7 mm SL. Photograph by W.J.E.M. Costa.
Figure 3 from: Costa WJEN, Amorim PF, Mattos JLO (2018) Diversity and conservation of seasonal killifishes of the Hypsolebias fulminantis complex from a Caatinga semiarid upland plateau, São Francisco River basin, northeastern Brazil (Cyprinodontiformes, Aplocheilidae). Zoosystematics and Evolution 94(2): 495-504. https://doi.org/10.3897/zse.94.29718
Figure 3 Hypsolebiassplendissimus Costa sp. n., live paratype, UFRJ 6779, female, 28.5 mm SL. Photograph by W.J.E.M. Costa.
Figure 4 from: Rohner PT, Haenni J-P, Giesen A, Busso JP, Schäfer MA, Püchel-Wieling F-W, Blanckenhorn WU (2019) Temporal niche partitioning of Swiss black scavenger flies in relation to season and substrate age (Diptera, Sepsidae). Alpine Entomology 3: 1-10. https://doi.org/10.3897/alpento.3.28366
Figure 4 Number of individuals of seven common sepsid species as a function of dung age (in hours (h)). While S.cynipsea, flavimana and orthocnemis are disproportionally often observed on fresh dung, S.duplicata and Saltellasphondylii gain in relative abundance over time. (Note the different scaling of the y-axes; data from Püchel 1993; S.duplicata data only qualitative.)
Figure 3 from: Rohner PT, Haenni J-P, Giesen A, Busso JP, Schäfer MA, Püchel-Wieling F-W, Blanckenhorn WU (2019) Temporal niche partitioning of Swiss black scavenger flies in relation to season and substrate age (Diptera, Sepsidae). Alpine Entomology 3: 1-10. https://doi.org/10.3897/alpento.3.28366
Figure 3 Non-metric multidimensional scaling (NMDS) visualizing seasonal variation in species composition as well as differences between cattle pastures (triangles) and dung piles (circles). The smaller the distance between two samples, the greater their similarity.
Figure 2 from: Rohner PT, Haenni J-P, Giesen A, Busso JP, Schäfer MA, Püchel-Wieling F-W, Blanckenhorn WU (2019) Temporal niche partitioning of Swiss black scavenger flies in relation to season and substrate age (Diptera, Sepsidae). Alpine Entomology 3: 1-10. https://doi.org/10.3897/alpento.3.28366
Figure 2 Seasonal patterns of species diversity, expressed by the first three Hill indices, for sepsid communities captured by sweep netting on cow pastures, dung piles or Malaise capturing in a peat bog. 0D equals species richness, 1D represents the exponential Shannon entropy (evenness) that can be interpreted as the number of typical species, while 2D resembles the reciprocal form of the Gini-Simpson Index that relates to the number of highly abundant species. We only plotted samples with 20 or more individuals (all years combined). The size of the points is proportional to the number of individuals present in the sample.
Figure 1 from: Rohner PT, Haenni J-P, Giesen A, Busso JP, Schäfer MA, Püchel-Wieling F-W, Blanckenhorn WU (2019) Temporal niche partitioning of Swiss black scavenger flies in relation to season and substrate age (Diptera, Sepsidae). Alpine Entomology 3: 1-10. https://doi.org/10.3897/alpento.3.28366
Figure 1 Relative abundance of males of different sepsid species across the season on pastures (all years pooled). Patterns are indicated separately for high (blue) and low (green) altitude sites. Species trapped in a Malaise trap are shown in black. Point size is proportional to the total number of males contained in the respective sample.
Figure 8 from: Ali H, Alqarni AS, Iqbal J, Owayss AA, Raweh HS, Smith BH (2019) Effect of season and behavioral activity on the hypopharyngeal glands of three honey bee Apis mellifera L. races under stressful climatic conditions of central Saudi Arabia. Journal of Hymenoptera Research 68: 85-101. https://doi.org/10.3897/jhr.68.29678
Figure 8 - Seasonal variations in lipofuscin accumulation between summer and winter bees of the same race. Asterisks (*) in the graph represent significant differences between the groups (LSD test at p ≤ 0.05).
Figure 7 from: Ali H, Alqarni AS, Iqbal J, Owayss AA, Raweh HS, Smith BH (2019) Effect of season and behavioral activity on the hypopharyngeal glands of three honey bee Apis mellifera L. races under stressful climatic conditions of central Saudi Arabia. Journal of Hymenoptera Research 68: 85-101. https://doi.org/10.3897/jhr.68.29678
Figure 7 - Inter-race comparison of lipofuscin accumulation A summer bees B winter bees. Graph bars headed by the same letter represent non-significant differences between the groups (LSD test at p ≤ 0.05).
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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.