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Figure 3 in Reproductive biology of the greater lizardfish, Saurida tumbil (Bloch, 1795), in Bushehr coastal waters of Iran
Figure 3. Monthly variations in the sexual stages of male greater lizardfish (Saurida tumbil, Synodontidae).
Figure 1 in Reproductive biology of the greater lizardfish, Saurida tumbil (Bloch, 1795), in Bushehr coastal waters of Iran
Figure 1. Length frequency for greater lizardfish (Saurida tumbil, Synodontidae) collected in this study.
Figure 3 in Reproductive biology of pink cuttlefish Sepia orbignyana in the Aegean Sea (eastern Mediterranean)
Figure 3. Monthly average length and standard deviation distribution of S. orbignyana in the Aegean Sea.
Figure 3 in Some biological characteristics of Atlantic bonito (Sarda sarda Bloch, 1793) from Gallipoli Peninsula and Dardanelles (northeastern Mediterranean, Turkey)
Figure 3. The length–weight relationships for females, males, and all samples of S. sarda from Gallipoli Peninsula and Dardanelles.
Fig. 3 in Host biology and environmental variables differentially predict flea abundances for two rodent hosts in a plague-relevant system
Fig. 3. Cumulative distribution plots divided by year for (A) T. alpinus and (B) T. speciosus. For each species 2013 is shown in red, 2014 in teal, 2015 in pink. The x-axis represents each host individual, ordered from least to most flea infested, and the y-axis shows the cumulative proportion of total flea counts. The dotted line indicates individuals in the 90th percentile of flea abundances, illustrating that the top 10% most infected chipmunks usually account for close to 50% of all counted fleas. The proportion of individuals without fleas in each year is represented graphically as the proportion at which each colored line departs from the x-axis. (For interpretation of the references to color in this figure legend, the reader is referred to the Web version of this article.)
Fig. 4 in Host biology and environmental variables differentially predict flea abundances for two rodent hosts in a plague-relevant system
Fig. 4. Relationships between fecal glucocorticoid metabolite levels, sex, and flea abundance for (A) T. alpinus and (B) T. speciosus. Points show the mean ± S.E. number of fleas counted for female (white) and male (black) individuals within FGM categories (FGM values were rounded to the nearest 10). Lines of best fit (based on all raw data points) ± 95% confidence intervals are overlaid for each sex.
Fig. 2 in Host biology and environmental variables differentially predict flea abundances for two rodent hosts in a plague-relevant system
Fig. 2. Patterns of flea abundance across years, hosts, and flea species. Overall average flea abundances (A–B) and abundances of each flea species (C–D) in each year for T. alpinus (A, C) and T. speciosus (B, D). Abundances of each flea species on hosts of each sex (Males: closed circles, Females: open circles) on T. alpinus (E) and T. speciosus (F).
Fig. 5 in Host biology and environmental variables differentially predict flea abundances for two rodent hosts in a plague-relevant system
Fig. 5. Relationships between flea abundances and (A) the second principal component of temperature data; or (B) elevation for T. alpinus (white) and T. speciosus (black). Points show the mean ± S.E. number of fleas counted for a given study site in a given year. For each study site in each year, a mean ± S.E. temperature or elevation value is shown. Lines of best fit (based on all raw data points) ± 95% confidence intervals are overlaid for each species.
Fig. 1 in Host biology and environmental variables differentially predict flea abundances for two rodent hosts in a plague-relevant system
Fig. 1. Map showing study sites. Sites (see Supplementary Data S1 for more information) located in and around Yosemite National Park (green) were visited either in all three years (2013, 2014, and 2015; black), in two of the years (yellow), or in only one year (red). Yellow and black lines show significant roadways in the area. Lakes are shown in blue, including Mono Lake at top right. Inset shows Yosemite National Park (green) on a map of California. Site codes: AL: Arrowhead Lake; CL: Cathedral Lake (upper); GA: Glen Aulin; GL: Gaylor Lakes; HC: Hoffmann Creek; MA: Mammoth Lakes; ML: May Lake; PC: Porcupine Creek; SL: Saddlebag Lake; SLN: Saddlebag Lake, north-side (Greenstone and Steelhead Lakes); TM: Tuolumne Meadows. (For interpretation of the references to color in this figure legend, the reader is referred to the Web version of this article.)
Figure 1 in First report of Drupella cornus Röding, 1798 (Gastropoda: Muricidae), a biological indicator of coral reef habitat of Lakshadweep Archipelago, India
Figure 1. Drupella cornus Röding, 1798, collected at benthic coral reef habitat of Minicoy Island, Lakshadweep.
Text-fig. 2 Associate Professor RNDr. Václav Ziegler CSc. in Faculty of Education of Charles University at Prague during Trends in didactics of biology, conference on the 20th anniversary of the restoration activities of the Department of Biology and Environmental Studies at the Faculty of Education of Charles University in Prague 2. October 2014. (photo: author 2014) in Václav Ziegler Septagenarian
Text-fig. 2 Associate Professor RNDr. Václav Ziegler CSc. in Faculty of Education of Charles University at Prague during Trends in didactics of biology, conference on the 20th anniversary of the restoration activities of the Department of Biology and Environmental Studies at the Faculty of Education of Charles University in Prague 2. October 2014. (photo: author 2014)
Text-fig. 4. A – Alasia sp., pollen ornamentation, compared with B – extant Quercus castaneifolia C.A. Mey (courtesy of Natalia Naryshkina, Institute of Biology and Soil Science, Vladivostok), with similar verrucate – scabrate elements. Scale bar 1 µm. in In Situ Pollen Of Alasia, A Supposed Staminate Inflorescence Of Trochodendroides Plant
Text-fig. 4. A – Alasia sp., pollen ornamentation, compared with B – extant Quercus castaneifolia C.A. Mey (courtesy of Natalia Naryshkina, Institute of Biology and Soil Science, Vladivostok), with similar verrucate – scabrate elements. Scale bar 1 µm.
Figures 4-7 in Cocoon morphology of Bicyrtes variegatus (Oliver, 1789) (Hymenoptera: Crabronidae), with notes on habitat and biological interactions
Figures 4-7. Details of cocoon structures of Bicyrtes variegatus (Oliver). 4. Apical portion, internal view. 5. Basal portion, internal view, showing the fecal mass. 6. External surface, white arrows point the pores. 7. Internal domes of the pores, covered with light brownish silken threads. / Detalles de las estructuras del capullo de Bicyrtes variegatus (Oliver). 4. Porción apical, vista interna. 5. Porción basal, vista interna, que muestra la masa fecal. 6. Superficie externa, flechas señalan los poros. 7. Cúpulas internas de los poros cubiertas con hilos sedosos de color marrón claro.
Figures 50-57. 50 in The importance of biological collections for public health: The case of the Triatominae collection of the Museum of the Institute of Agricultural Zoology "Francisco Fernández Yépez", Venezuela
Figures 50-57. 50. Male of Triatoma maculata, 51. Female of Triatoma maculata, 52. Male of Triatoma nigromaculata, 53. Female of Triatoma nigromaculata, 54. Male of Triatoma patagonica, 55. Male of Triatoma platensis, 56. Female of Triatoma platensis, 57. Female of Triatoma protracta. Bar: 10 mm.
Figures 43-49.43 in The importance of biological collections for public health: The case of the Triatominae collection of the Museum of the Institute of Agricultural Zoology "Francisco Fernández Yépez", Venezuela
Figures 43-49.43. Female of Triatoma delpontei, 44. Male of Triatoma dimidiata, 45. Female of Triatoma dimidiata, 46. Female of Triatoma eratyrusiformis, 47. Female of Triatoma guasayana, 48. Male of Triatoma infestans, 49. Female of Triatoma infestans. Bar: 10 mm.
Figures 22-28. 22 in The importance of biological collections for public health: The case of the Triatominae collection of the Museum of the Institute of Agricultural Zoology "Francisco Fernández Yépez", Venezuela
Figures 22-28. 22. Male of Triatoma longipennis, 23. Female of Triatoma longipennis, 24. Male of Nesotriatoma confusa, 25. Female of Nesotriatoma confusa, 26. Male of Triatoma picturatus, 27. Male of Triatoma pallidipennis, 28. Female of Triatoma pallidipennis. Bar: 10 mm.
Figures 1-6. 1 in The importance of biological collections for public health: The case of the Triatominae collection of the Museum of the Institute of Agricultural Zoology "Francisco Fernández Yépez", Venezuela
Figures 1-6. 1. Female of Belminus pittieri, 2. Male of Belminus rugulosus, 3. Female of Belminus rugulosus, 4. Female of Cavernicola pilosa, 5. Male Psammolestes arthuri, 6. Female Psammolestes arthuri. Bar: 10 mm.
Figures 7-14. 7 in The importance of biological collections for public health: The case of the Triatominae collection of the Museum of the Institute of Agricultural Zoology "Francisco Fernández Yépez", Venezuela
Figures 7-14. 7. Male of Rhodnius brethesi, 8. Female of Rhodnius brethesi, 9. Male of Rhodnius neglectus, 10. Female of Rhodnius neglectus, 11. Male of Rhodnius neivai, 12. Female of Rhodnius neivai, 13. Fale of Rhodnius pictipes, 14. Female of Rhodnius pictipes. Bar: 10 mm.
Figs 2-7 in Morphology of the mature larva and pupa of Rhinusa bipustulata (Rossi, 1792) (Coleoptera: Curculionidae) with some remarks on its biology
Figs 2-7. Rhinusa bipustulata (Rossi), mature larva: 2 - habitus, 3 - lateral view of thoracic segments, 4 – lateral view of second abdominal segment, 5 – lateral view of abdominal segments VIII-X (prns – pronotal setae, dpls – dorsopleural s., vpls – ventropleural s., prs – prodorsal s., pds – postdorsal s., dls – dorsolateral s., as – alar s., ss – spiracular s., lsts – laterosternal s., msts – mesosternal s., sts – sternal s., ps – pleural s., ds – dorsal s.), 6 – spiracle of thorax, 7 – spiracle of second abdominal segment
Figure 1. a in Notes on the distribution and biology of northern brown shrimp Farfantepenaeus aztecus (Ives, 1891) in the eastern Mediterranean
Figure 1. a) Northern brown shrimp Farfantepenaeus aztecus (Ives, 1891); b) lateral view of armed rostrum; c) dorsal view of telson; d) dorsal view of grooved carapace; e) thelycum.
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.