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1,473 results for “Geographic distribution”
FIG. 4 in A new species of Gieysztoria Ruebush & Hayes, 1939 (Platyhelminthes, Rhabdocoela, Dalyelliidae) from Argentina with comments on geographical distribution of the genus in the Neotropical region
FIG. 4. — Graphic reconstruction of the genital system of Gieysztoria reta n. sp.: A, genital reconstruction using confocal microscopy images; B, penis stylet from the holotype, blue (s1), pink (s2), yellow (s3) and green (s4). Abbreviations: ag, accessory glands; b1, copulatory bursa cavity 1; b2, copulatory bursa cavity 2; c, cilia; cga, common genital atrium; cma, circular muscle fibers of common genital atrium; cmb1, circular muscles of the bursa cavity 1; cmb2, circular muscles of bursa cavity 2; e, egg; ed, ejaculatory duct; f, fenestra; gp, gonopore; ma, male genital atrium; lma, longitudinal muscles fibers of common genital atrium; lmb2, longitudinal muscle of bursa cavity 2; ov, ovary; pv, prostate vesicle; sfb1, strong muscle fiber of bursa cavity 1; scm, muscle fibers of gonopore sphincter; sv, seminal vesicle; s1, largest spine; s2, large spine; s3, group of fine short spines; s4, group of hollow spines; t, testes; ub, uterus bend; vd, vasa deferentia; vi, vitellaria. Scale bars: A, 50 μm; B, 20 μm.
Figures 9–17 in Geographical distribution and phenotypic variation of Anovia punica Gordon (Coleoptera: Coccinellidae: Noviini), a predatory ladybeetle of fluted scales (Hemiptera: Coccoidea: Monophlebidae)
Figures 9–17. Male genitalia of Anovia punica. Peru: 9–11) San Martin State. Colombia: 12–14) San Andres Island. 15–17) Magdalena State. 9), 12), 15) Tegmen in ventral view. 10), 13), 16) Tegmen in lateral view. 11), 14), 17) Sipho.
Figures 1–8 in Geographical distribution and phenotypic variation of Anovia punica Gordon (Coleoptera: Coccinellidae: Noviini), a predatory ladybeetle of fluted scales (Hemiptera: Coccoidea: Monophlebidae)
Figures 1–8. Morphological variation of Anovia punica. Peru. 1–2) San Martín State. Colombia: 3) San Andres Island. 4) Magdalena State. 5) Valle del Cauca State. 6–7) Antioquia State. 8) Atlantico State.
Figure 20 in The European centipedes hitherto referred to Eurygeophilus, Mesogeophilus, and Chalandea (Chilopoda, Geophilomorpha): taxonomy, distribution, and geographical variation in segment number
Figure 20. Elongation of antennal article XIV in representative specimens of E. pinguis (Brölemann, 1898). The ratio between the length of article XIV and the total length of the previous two articles is plotted against head width as a measure of the body size. A black circle marks the only specimen putativily representative of the nominal species Chalandea scheerpeltzi.
Figure 19 in The European centipedes hitherto referred to Eurygeophilus, Mesogeophilus, and Chalandea (Chilopoda, Geophilomorpha): taxonomy, distribution, and geographical variation in segment number
Figure 19. Geographical occurrence of Eurygeophilus multistiliger (Verhoeff, 1899) (white symbols) and Eurygeophilus Europe generally; (b) the Pyrenees; and (c) the Alps. Type localities are indicated with diamonds, other published Localities of the specimens directly examined by us are indicated with dotted symbols. All published records of E.
Figures 14–18 in The European centipedes hitherto referred to Eurygeophilus, Mesogeophilus, and Chalandea (Chilopoda, Geophilomorpha): taxonomy, distribution, and geographical variation in segment number
Figures 14–18. Eurygeophilus pinguis (Brölemann, 1898), female, 27 mm long, M. La Marzola (Alps). (14) Head, dorsal (right antenna and setae not drawn). (15) Head, ventral (antennae not drawn). (16) Forcipular segment, ventral. (17) Sternum of leg-bearing segment V, ventral. (18) Last leg-bearing segment and terminal segments, ventral (right telopodite and setae on the relevant coxopleuron not drawn).
Figures 5–8 in The European centipedes hitherto referred to Eurygeophilus, Mesogeophilus, and Chalandea (Chilopoda, Geophilomorpha): taxonomy, distribution, and geographical variation in segment number
Figures 5–8. Eurygeophilus multistiliger (Verhoeff, 1899), female, 32 mm long, Coimbra (Iberian Peninsula), holotype, mounted on a slide. (5) Forcipular segment, ventral. (6) Calyx inside the left forcipule, ventral. (7) Sternum of leg-bearing segment XII. (8) Last leg-bearing segment and terminal segments, ventral. Images from light microscopy. Scale bars: 200 Mm (5); 100 Mm (6, 8); 50 Mm (7).
Figures 9–13 in The European centipedes hitherto referred to Eurygeophilus, Mesogeophilus, and Chalandea (Chilopoda, Geophilomorpha): taxonomy, distribution, and geographical variation in segment number
Figures 9–13. Eurygeophilus multistiliger (Verhoeff, 1899), female, 24 mm long, Campu Omo (Sardinia). (9) Head, dorsal (right antenna and setae not drawn). (10) Head, ventral (antennae not drawn). (11) Forcipular segment, ventral. (12) Sternum of leg-bearing segment V, ventral. (13) Last leg-bearing segment and terminal segments, ventral (right telopodite and setae on the relevant coxopleuron not drawn).
Figures 1–4 in The European centipedes hitherto referred to Eurygeophilus, Mesogeophilus, and Chalandea (Chilopoda, Geophilomorpha): taxonomy, distribution, and geographical variation in segment number
Figures 1–4. (1–3) Eurygeophilus pinguis (Brölemann, 1898), female, 33 mm long, M. La Marzola (near Trento, Alps). (1) Distal articles of the left antenna, ventral. (2) Left claw of the second maxillae, ventral. (3) Right part of the forcipular coxosternum, ventral. (4) Geophilus linearis C. L. Koch, 1835, male, 34 mm long, Cologna Veneta (near Verona, Italy): right part of the forcipular coxosternum, ventral. Arrows indicate the putative position of the forcipular chitin-lines. Micrographs from ESEM Philips XL30. Scale bars: 20 Mm (1, 2); 50 Mm (3, 4).
Figure 3 in Intraspecific morphological tooth variability and geographical distribution: Application to the Savi's vole, Microtus (Terricola) savii (Rodentia, Arvicolinae)
Figure 3. Canonical discriminant analysis with the distribution of the centroids on the two first axes of 55 populations from the different regions of Italy.
Figure 4 in Intraspecific morphological tooth variability and geographical distribution: Application to the Savi's vole, Microtus (Terricola) savii (Rodentia, Arvicolinae)
Figure 4. Canonical discriminant analysis with the distribution of the centroids on the two first axes of 11 geographical groups.
Figure 6 in Survey of European mites from the suborder Uropodina: II. Morphology, geographical distribution, biology, and ecology of Trematurella elegans (Kramer, 1882)
Figure 6 Trematurella elegans – Male, dorsal side: A – General view; B – Dorsal setae and sculpture of central part; C – Posterior part of idiosoma; D – Lateral part of idiosoma.
Figure 15 in Survey of European mites from the suborder Uropodina: II. Morphology, geographical distribution, biology, and ecology of Trematurella elegans (Kramer, 1882)
Figure 15 Distribution ofTrematurella elegans in Poland: A – Localities whereTrematurella elegans specimens were found; B – All examined localities.
Figure 12 in Survey of European mites from the suborder Uropodina: II. Morphology, geographical distribution, biology, and ecology of Trematurella elegans (Kramer, 1882)
Figure 12 Trematurella elegans – Larva, dorsal side: A – General view; B – Anterior part of idiosoma; C – Central part of idiosoma; D – Posterior part of idiosoma; E – Marginal setae.
Figure 5 in Survey of European mites from the suborder Uropodina: II. Morphology, geographical distribution, biology, and ecology of Trematurella elegans (Kramer, 1882)
Figure 5 Trematurella elegans – Female, hypostome: h1-h4 – Hypostomal setae, an arrow indicates a pair of setae on the trochanters of palps.
Figure 2 in Survey of European mites from the suborder Uropodina: II. Morphology, geographical distribution, biology, and ecology of Trematurella elegans (Kramer, 1882)
Figure 2 Trematurella elegans – Female; A-B – Dorsal side, details of sculpture of central and marginal parts; C-E – Lateral view.
Figure 1 in Survey of European mites from the suborder Uropodina: II. Morphology, geographical distribution, biology, and ecology of Trematurella elegans (Kramer, 1882)
Figure 1 Trematurella elegans – Female, dorsal side: A – General view; B – Vertex; C – Dorsal shield, central part; D – Marginal shield, sculpture and setae on lateral part; E – Marginal shield, sculpture and setae on posterior part; ls – Lateral setae, ms – Marginal setae, ds – Dorsal setae.
Figure 16 in Survey of European mites from the suborder Uropodina: II. Morphology, geographical distribution, biology, and ecology of Trematurella elegans (Kramer, 1882)
Figure 16 The proportional distribution of individuals of Trematurella elegans in collected samples throughout the year.
Figure 9 in Survey of European mites from the suborder Uropodina: II. Morphology, geographical distribution, biology, and ecology of Trematurella elegans (Kramer, 1882)
Figure 9 Trematurella elegans – Deutonymph: A – Lateral view; B – Dorsal side, General view; C – Sternal region; D – Opisthosoma.
Figure 13 in Survey of European mites from the suborder Uropodina: II. Morphology, geographical distribution, biology, and ecology of Trematurella elegans (Kramer, 1882)
Figure 13 Trematurella elegans – Larva, ventral side: A – General view; B – Gnathosoma; C – Intercoxal region; D – Opisthosoma.
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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.