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392 results for “mayflies”
FIGURES 32–35 in Mayflies of the Caucasus Mountains. II. Description of the first representative of the subgenus Helvetoraeticus Bauernfeind & Soldán, 2012 (Heptageniidae: Ecdyonurus)
FIGURES 32–35. Ecdyonurus (Helvetoraeticus) adjaricus sp. nov., larva: 32, lateral projection of pronotum (dorsally); 33−35, tergalii shape (dorsally), roman numbers belongs to the respective tergalius pairs.
FIGURES 6–8 in Mayflies of the Caucasus Mountains. II. Description of the first representative of the subgenus Helvetoraeticus Bauernfeind & Soldán, 2012 (Heptageniidae: Ecdyonurus)
FIGURES 6–8. Ecdyonurus (Helvetoraeticus) adjaricus sp. nov., larva, paratype, dorsally: 6, head and thorax; 7, color pattern of abdominal terga; 8, general view.
FIGURES 16–21 in Mayflies of the Caucasus Mountains. II. Description of the first representative of the subgenus Helvetoraeticus Bauernfeind & Soldán, 2012 (Heptageniidae: Ecdyonurus)
FIGURES 16–21. Ecdyonurus (Helvetoraeticus) adjaricus sp. nov., larva: 16, glossa and paraglossa of labium; 17, labrum, ventrally; 18, outer margin of metafemur; 19, inner margin of metafemur; 20, femoral setae (surface of metafemur, proximally); 21, femoral setae (surface of metafemur, centrally).
FIGS 6-8 in New reports of mayflies (Insecta: Ephemeroptera) from Tunisia
FIGS 6-8 Habrophlebia consiglioi. (6) Overall view of the egg. (7) Detail of chorionic surface of egg with costae showing pores. (8) Detail of micropyle (Mp)
The acclimatory response of the mayfly Neocloeon triangulifer to dilute conditions is linked to the plasticity of sodium transport
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Data from: Distribution and population genetic variation of cryptic species of the Alpine mayfly Baetis alpinus (Ephemeroptera: Baetidae) in the Central Alps
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Data from: Anchored phylogenomics of burrowing mayflies (Ephemeroptera) and the evolution of tusks
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Data from: Cryptic lineages of a common alpine mayfly show strong life-history divergence
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Fig. 2 in Re-description and range extension of the Afrotropical mayfly Cloeon perkinsi (Ephemeroptera, Baetidae)
Fig. 2. Reported localities for Cloeon perkinsi. Approximated previously reported localities (orange; star indicates type locality), collecting sites for the present study (yellow), and photograph-based localities (green). Map originated from Google Maps.
Fig. 5. Cloeon perkinsi, nymph. A in Re-description and range extension of the Afrotropical mayfly Cloeon perkinsi (Ephemeroptera, Baetidae)
Fig. 5. Cloeon perkinsi, nymph. A. Antennal scape, pedicel and first flagellomeres. B. Labrum (left, ventral; right, dorsal). C. Left mandible (typical molar tooth enlarged). D. Right mandible. E. Hypopharynx. F. Maxilla. G. Labium (left, ventral; right, dorsal). All mouthparts scaled.
Fig. 6. Cloeon perkinsi, nymph. A. Foreleg. B. Tarsal claw. C. Gill I. D. Gill IV. E. Gill VII. F. Abdominal tergum V in Re-description and range extension of the Afrotropical mayfly Cloeon perkinsi (Ephemeroptera, Baetidae)
Fig. 6. Cloeon perkinsi, nymph. A. Foreleg. B. Tarsal claw. C. Gill I. D. Gill IV. E. Gill VII. F. Abdominal tergum V, surface and distal margin. G. Lateral abdominal margins (segments VI, VII, VIII, IX). H. Paraproct plate.
Fig. 1 in Re-description and range extension of the Afrotropical mayfly Cloeon perkinsi (Ephemeroptera, Baetidae)
Fig. 1. Cloeon perkinsi adult female in vivo. A–B. Photos taken near Johannesburg, South Africa by Pieter Kotzee. C. Photo taken in Gaborone, Botswana by Christine Sydes. (C published on www.iNaturalist.org)
Figure 5 from: Taylor CL, Barker NP, Barber-James HM, Villet MH, Pereira-da-Conceicoa LL (2020) Habitat requirements affect genetic variation in three species of mayfly (Ephemeroptera, Baetidae) from South Africa. ZooKeys 936: 1-24. https://doi.org/10.3897/zookeys.936.38587
Figure 5 Median-joining networks of D. natalensis and D. capensis based on COI haplotypes generated in this study. The network was estimated using the median-joining algorithm in PoPArt v.1.7 with epsilon = 0. Each circle represents a different haplotype and the size of a circle correlates with number of individuals belonging to that given haplotype. Only haplotypes found in more than one sample are numbered. Colours indicate the geographic origin of sequences; black dots indicate unsampled or extinct haplotypes.
Figure 3 from: Taylor CL, Barker NP, Barber-James HM, Villet MH, Pereira-da-Conceicoa LL (2020) Habitat requirements affect genetic variation in three species of mayfly (Ephemeroptera, Baetidae) from South Africa. ZooKeys 936: 1-24. https://doi.org/10.3897/zookeys.936.38587
Figure 3 Median-joining network of A. sudafricanum based on COI haplotypes generated in this study. The network was estimated using the median-joining algorithm in PoPArt v.1.7 with epsilon = 0. Each circle represents a different haplotype and the size of a circle correlates with the number of individuals assigned to that haplotype. Only haplotypes found in more than one sample are numbered. Colours indicate the geographic origin of sequences; black dots indicate unsampled or extinct haplotypes.
Figure 2 from: Taylor CL, Barker NP, Barber-James HM, Villet MH, Pereira-da-Conceicoa LL (2020) Habitat requirements affect genetic variation in three species of mayfly (Ephemeroptera, Baetidae) from South Africa. ZooKeys 936: 1-24. https://doi.org/10.3897/zookeys.936.38587
Figure 2 Bayesian inference phylogram of Demoreptus spp for the COI gene marker. Support for major nodes is shown in the order Bayesian Inference / Maximum Parsimony / Maximum Likelihood (BI/ML/MP). Bars next to clades refer to distinct clades that are colour-coded according to the study areas found within that clade (see colour legend). Baetis rhodani Pictet was used as the outgroup.
Figure 4 from: Taylor CL, Barker NP, Barber-James HM, Villet MH, Pereira-da-Conceicoa LL (2020) Habitat requirements affect genetic variation in three species of mayfly (Ephemeroptera, Baetidae) from South Africa. ZooKeys 936: 1-24. https://doi.org/10.3897/zookeys.936.38587
Figure 4 Distribution of A. sudafricanum, D. natalensis and D. capensisCOI haplotypes across the study area. The map shows the study areas defined in Table 1, and the pie charts indicate the haplotype composition of the population from each area. Each colour represents a shared haplotype found across the study area; private haplotypes (singletons found in the samples from one particular population and are absent in the samples from other populations) are represented as clear sections within the pie charts.
Figure 1 from: Taylor CL, Barker NP, Barber-James HM, Villet MH, Pereira-da-Conceicoa LL (2020) Habitat requirements affect genetic variation in three species of mayfly (Ephemeroptera, Baetidae) from South Africa. ZooKeys 936: 1-24. https://doi.org/10.3897/zookeys.936.38587
Figure 1 Bayesian inference phylograms of A. sudafricanum for gene markers COI (left) and COI + 16S (right). Support for major nodes shown in the order Bayesian Inference / Maximum Parsimony / Maximum Likelihood (BI/ML/MP). Bars next to clades refer to distinct clades that are colour-coded according to the study areas found within that clade (see colour legend), except for the widespread grade which is designated by a solid black line. Branches bearing outgroups have been omitted to save space and their position is depicted by a dashed line.
Supplementary material 1 from: Taylor CL, Barker NP, Barber-James HM, Villet MH, Pereira-da-Conceicoa LL (2020) Habitat requirements affect genetic variation in three species of mayfly (Ephemeroptera, Baetidae) from South Africa. ZooKeys 936: 1-24. https://doi.org/10.3897/zookeys.936.38587
List of GenBank sequence accession numbers for each sample
Figure 4 from: Vilenica M, Kerovec M, Pozojević I, Mihaljević Z (2020) Mayfly response to different stress types in small and mid-sized lowland rivers. ZooKeys 980: 57-77. https://doi.org/10.3897/zookeys.980.54805
Figure 4 Scatterplot of mayfly species richness (S), abundance (N) and local diversity (Shannon index) against ratios of areas with intensive agriculture (CLC_I.A.) present in the catchment area of each study site.
Figure 3 from: Vilenica M, Kerovec M, Pozojević I, Mihaljević Z (2020) Mayfly response to different stress types in small and mid-sized lowland rivers. ZooKeys 980: 57-77. https://doi.org/10.3897/zookeys.980.54805
Figure 3 F1×F2 plane of the Canonical correspondence analysis (CCA) based on 21 mayfly taxa and 14 environmental variables. For the abbreviations of the taxa codes (blue triangle symbols) see Table 2. Legend: Environmental variables (red arrow symbols): Tw – water temperature (°C), Oxy – dissolved oxygen content (mg/L), Con – conductivity (μS/cm), pH – pH, NH4+ – ammonium (mgN/L), NO3- – nitrates (mgN/L), TN – total nitrogen (mgN/L), PO43− – orthophosphates (mgP/L), TOC – total organic carbon (mg/L), BOD5 – biological oxygen demand (mgO2/L), CODMn – chemical oxygen demand (mgO2/L), vegetation – aquatic vegetation/phytal, fine sediment – silt, mud and sand, lithal – stones and gravel.
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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.