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538 results for “Eastern Atlantic”
Figure 6 in Calanoides natalis Brady, 1914 (Copepoda: Calanoida: Calanidae): identity and distribution in relation to coastal oceanography of the eastern Atlantic and western Indian Oceans
Figure 6. Calanoides natalis female: (a) quadrithek antennule, ancestral segments I–XIX; (b) quadrithek antennule, ancestral segments XX–XXVIII; (c) quadrithek antennule, ancestral segments X–XI; (d) quadrithek antennule, ancestral segments XXVII–XXVIII; (e) trithek antennule segments I–XI; (f) trithek antennule, ancestral segment XXIII; (g) antenna. a – aesthetacs; pa – pseudoannulate seta; va – vestigial aesthetasc. Scale bars represent 0.1 mm.
Figure 7 in Calanoides natalis Brady, 1914 (Copepoda: Calanoida: Calanidae): identity and distribution in relation to coastal oceanography of the eastern Atlantic and western Indian Oceans
Figure 7. Calanoides natalis female: (a) mandible; (b) maxillule; (c) maxilla; (d) maxilliped. Scale bar represents 0.1 mm.
Figure 5 in Calanoides natalis Brady, 1914 (Copepoda: Calanoida: Calanidae): identity and distribution in relation to coastal oceanography of the eastern Atlantic and western Indian Oceans
Figure 5. Calanoides natalis female: (a) dorsal view; (b) lateral view; (c) antennule; (d) genital doublesomite, lateral view; (e) genital double somite, dorsal view; (f) genital operculum (go) and left seminal receptacle (sr); (g) caudal ramus ventral view; (h) anterior head, ventral view. Scale bars represent 1.0 mm on figures (a–c) and 0.1 mm on the rest.
Figure 3. Calanoides male leg 5 in Calanoides natalis Brady, 1914 (Copepoda: Calanoida: Calanidae): identity and distribution in relation to coastal oceanography of the eastern Atlantic and western Indian Oceans
Figure 3. Calanoides male leg 5 indicating the measurements made, from which the ratios in Table 4 were calculated. (A) Length of distal spine on right exopod segment 3; (B) length of right exopod segment 3 measured along inner border; (b) width of right exopod segment 3 measured at its widest part; (C) length of right exopod segment 2 measured along inner border; (D) length of right exopod segment 1 measured along inner border; (E) total length of right endopod; (A') length of terminal spine on left exopod segment 3; (B') length of left exopod segment 3 measured along inner border; (b') width of left exopod segment 3 measured at its widest part; (C') length of left exopod segment 2 measured along inner border; (c') width of left exopod segment 2 measured at its widest part; (F) length of left exopod segment 3 measured along outer border; (G) length of outer distal spine on left exopod segment 2; (H) distance between proximal border of left exopod 3 and base of lateroproximal spine of exopod segment 3.
Figure 9 in Calanoides natalis Brady, 1914 (Copepoda: Calanoida: Calanidae): identity and distribution in relation to coastal oceanography of the eastern Atlantic and western Indian Oceans
Figure 9. Calanoides natalis male: (a) dorsal view; (b) lateral view – note specimen laterally compressed c.f. Figure 8; (c) antennule; (d) anterior head, lateral view; (e) left caudal ramus, dorsal view; (f) leg 5, posterior view; (g) left leg 5 exopod segment 3. Scale mark 1.0 mm on figures a–d, 0.1 mm on rest.
Figure 4 in Calanoides natalis Brady, 1914 (Copepoda: Calanoida: Calanidae): identity and distribution in relation to coastal oceanography of the eastern Atlantic and western Indian Oceans
Figure 4. Bayesian tree obtained from COI molecular data. Individuals are collapsed to species. Values at nodes indicate posterior probability. Monophyletic Neocalanus spp. and Mesocalanus tenuicornis were included as topology constraints. All species described in this paper were recovered as monophyletic.
Figure 2 in Calanoides natalis Brady, 1914 (Copepoda: Calanoida: Calanidae): identity and distribution in relation to coastal oceanography of the eastern Atlantic and western Indian Oceans
Figure 2. Location diagram of samples examined or mentioned in the test (see Table 1). □ – Calanoides acutus; ◊ – Calanoides brevicornis; ♦ – Calanoides carinatus s.s.; ○ – Calanoides natalis; ■ – Calanoides patagoniensis; ● – Calanoides philippinensis.
Figure 8 in Calanoides natalis Brady, 1914 (Copepoda: Calanoida: Calanidae): identity and distribution in relation to coastal oceanography of the eastern Atlantic and western Indian Oceans
Figure 8. Calanoides natalis female: (a) Leg 1 coxa, basis and endopod; (b) leg 1 exopod; (c) leg 2, anterior surface; (d) leg 3, posterior surface; (e) leg 4, posterior surface; (f) leg 5, anterior surface. Scale bar represents 0.1 mm.
Figure 1 in Calanoides natalis Brady, 1914 (Copepoda: Calanoida: Calanidae): identity and distribution in relation to coastal oceanography of the eastern Atlantic and western Indian Oceans
Figure 1. Photomicrographs of whole female (a–d) specimens in lateral view with antennules removed, and male (e) of: (a) Calanoides brevicornis (= Calanoides macrocarinatus) from 250–500 m, 42.41° S, 174.03° E; (b) Calanoides carinatus from 0–10 m, 43.67° S, 64.97° W; (c) Calanoides natalis from surface waters, Arabian Sea, 20.22° N, 58.75° E; (d) Calanoides philippinensis lateral view, Aru Basin, about 6° S, 133.5° E; (e) C. natalis from the Arabian Sea 20.22° N, 58.75° E. The Calanoides carinatus photo was made available by Drs Georgina Cepeda and Marina Sabatini (Consejo Nacional de Investgaciones Cientificas y Tecnicas, Argentina). Scale bar represents 0.5 mm.
Figure 2 in Population dynamics, seasonality and sex ratio of twig-girdling beetles (Coleoptera: Cerambycidae: Lamiinae: Onciderini) of an Atlantic rain forest in south-eastern Brazil
Figure 2. Mean (± SE) number of adult beetles of the tribe Onciderini found at the Serra do Japi during the period of adult activity (between October and May) from 2002 to 2006. (A) Species with peak abundance between December and February. (B) Species with peak abundance between January and March. (n = 5). An asterisk indicates significance among monthly abundances after Bonferroni correction (Friedman's ANOVA; p ≤ 0.013).
Figure 1 in Population dynamics, seasonality and sex ratio of twig-girdling beetles (Coleoptera: Cerambycidae: Lamiinae: Onciderini) of an Atlantic rain forest in south-eastern Brazil
Figure 1. Rank-abundance pattern of adult beetles of the tribe Onciderini found at the Serra do Japi between December 2002 and December 2006. (n = 1113 individuals).
Figure 3 in Population dynamics, seasonality and sex ratio of twig-girdling beetles (Coleoptera: Cerambycidae: Lamiinae: Onciderini) of an Atlantic rain forest in south-eastern Brazil
Figure 3. (A) Population fluctuation (number of individuals) of adult beetles of the tribe Onciderini found at the Serra do Japi between December 2002 and December 2006 (n = 1113 individuals). (B) Climate diagram for the Biological Reserve of the Serra do Japi at the same time period (data from a meteorological station approximately 8 km from the study site). The mean monthly temperature (◦ C) and rainfall (mm) are scaled to represent the potential evapotranspiration. Values inside each diagram indicate mean temperature (◦C) and total rainfall (mm) for each sampling year. Dry months are represented by dotted areas; humid months by the vertical lines and months with rain in excess of 100 mm are in solid black.
Figure 7. Therenia peristomata n in Revision of the north-eastern Atlantic and Mediterranean species of the genera Herentia and Therenia (Bryozoa: Cheilostomata)
Figure 7. Therenia peristomata n. sp. Holotype, NHM 2007.10.9.3, off Madeira. (A) General aspect of zooecia at the colony growth margin; (B) early astogenetic zooecia showing a rather flared peristome; note that the ancestrula has been covered by the lowermost zooecia; (C) close-up of autozooecium orifice and avicularium; (D) ovicellate zooecium; note slight differences in condyle morphology to orifice of autozooecium. Scale bars 200 mm (A, B); 50 mm (C, D).
Figure 2. Herentia majae n in Revision of the north-eastern Atlantic and Mediterranean species of the genera Herentia and Therenia (Bryozoa: Cheilostomata)
Figure 2. Herentia majae n. sp. Holotype, CNHM Inv.br. 30, Adriatic Sea. (A) General aspect of an unbleached colony; note the long avicularian mandibles; (B) autozooecia and ovicellate zooecia; (C) close-up of autozooecium orifice and avicularia; (D) close-up of aperture of ovicellate zooecium; note the different shapes of sinus and condyles compared to orifice of autozooecium; the thickened frontal rim of calcification has not commenced to grow. Scale bars: 200 mm (A); 100 mm (B); 50 mm (C, D).
Figure 6. Therenia rosei n in Revision of the north-eastern Atlantic and Mediterranean species of the genera Herentia and Therenia (Bryozoa: Cheilostomata)
Figure 6. Therenia rosei n. sp. Holotype, NHM 1975.1.12.17A, Aegean Sea. (A) Autozooecia; (B) ovicellate zooecia; (C) close-up of autozooecium orifice and avicularium; (D) close-up of ovicellate zooecium; note difference in condyle morphology compared to orifice of autozooecium. Scale bars: 200 mm (A, B); 50 mm (C, D).
Figure 5. Therenia cryptooecium n in Revision of the north-eastern Atlantic and Mediterranean species of the genera Herentia and Therenia (Bryozoa: Cheilostomata)
Figure 5. Therenia cryptooecium n. sp. Holotype, NHM 1972.1.2.16A, Ghana, off Tema. (A) General aspect of colony; note the presence of three ovicellate zooecia (arrows); (B) autozooecia at the colony margin; note differences in condyle length between orifices; (C) close-up of autozooecium orifice and avicularium; (D) close-up of ovicellate zooecium, which is characterized by a slightly larger aperture and shorter condyles. Scale bars: 200 mm (A); 100 mm (B, D); 50 mm (C).
Figure 4 in Revision of the north-eastern Atlantic and Mediterranean species of the genera Herentia and Therenia (Bryozoa: Cheilostomata)
Figure 4. Herentia thalassae David and Pouyet, 1978. MNHN 7619, off NW Spain; note that the vertical component in these perpendicular views is greatly understated, the distal parts of the zooecia and ooecia are distinctly raised. (A) General aspect of colony; (B) close-up of ovicellate zooecium; (C) close-up of autozooecium. Scale bars: 400 mm (A); 100 mm (B, C).
Figure 8 in Revision of the north-eastern Atlantic and Mediterranean species of the genera Herentia and Therenia (Bryozoa: Cheilostomata)
Figure 8. Geographic distribution of Herentia and Therenia species in the North Atlantic and Mediterranean Sea. Note the co-occurrence of three species (H. hyndmanni, H. andreasi n. sp. and T. peristomata n. sp.) at Madeira, and the wide range of H. hyndmanni.
Figure 1 in Mitogenomics of the endangered Mediterranean monk seal (Monachus monachus) reveals dramatic loss of diversity and supports historical gene-flow between Atlantic and eastern Mediterranean populations
Figure 1. Sampling sites (number of specimens per location in brackets) with the current Mediterranean monk seal distribution range in green.
Figure 3 in Mitogenomics of the endangered Mediterranean monk seal (Monachus monachus) reveals dramatic loss of diversity and supports historical gene-flow between Atlantic and eastern Mediterranean populations
Figure 3. Mitochondrial genome clades sequenced in our study. A, female monk seal with its pup on Desertas Islands (Madeira); photo credit: Rosa Pires. B, Bayesian phylogeny using the complete mtDNA. Black dots indicate posterior probability values ≥ 0.95. (*) indicates historical specimens. The colours of the bars match the colours used on the network analyses and maps in Figure 2.
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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)
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DANDI Archive for NWB datasets
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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.