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918 results for “oceanic islands”
Fig. 5 in A new Pipistrelle bat from the oceanic Island of Príncipe (Western Central Africa)
Fig. 5.—(A) Dorsal; (B) lateral; (C) ventral; (D) apical (above), and basal (bellow) views of the baculum of the paratype Pseudoromicia principis sp. nov. (EBD 17358M). Photographs by Laura Torrent.
Fig. 6 in A new Pipistrelle bat from the oceanic Island of Príncipe (Western Central Africa)
Fig. 6.—(A) Detail of the upper incisors (top left) and drawings of the (a) lower incisors and (b) upper incisors (bottom) of the holotype of Pseudoromicia principis sp. nov. (EBD 17475M). Photograph by Joxerra Aihartza and drawings by Joaquín López-Rojas. (B) Details of the rhinarium of (c) the holotype of P. principis sp. nov. (EBD 17475M) and of (d) Nycticeinops happoldorum (ZFMK-MAM-2009.0029), from Hutterer et al. (2019). Photograph by Laura Torrent. (C) Drawing of the tragi of: (e) P. principis sp. nov. (EBD 17358M, paratype); (f) P. brunnea from Van Cakenberghe and Happold (2013) and (g) P. brunnea (DM13229) from Monadjem et al. (2013) and (D) dorsal and ventral views (from left to right) of bacula of: (h) P. principis sp. nov. (EBD 17358M, paratype); (i) P. rendalli from Hill and Harrison (1987); and (j) P. brunnea (DM13229) from Monadjem et al. (2013). Drawings of P. principis sp. nov. baculum by Joaquín López-Rojas.
Fig. 4 in A new Pipistrelle bat from the oceanic Island of Príncipe (Western Central Africa)
Fig. 4.—Skull and mandible of the holotype of Pseudoromicia principis sp. nov. (EBD 17475M) in dorsal, ventral, lateral, front and back views as well as mandible top view. Photographs by Joxerra Aihartza.
Fig. 2 in A new Pipistrelle bat from the oceanic Island of Príncipe (Western Central Africa)
Fig. 2.—Bayesian phylogenetic reconstruction based on the mitochondrial gene cytochrome b (Cytb). Values above branches represent Bayesian posterior probabilities and values below branches are bootstrap values of maximum likelihood (support values <50 are not shown). The right column presents sequences GenBank accession numbers. The sequence JQ956446 is listed in GenBank as Pseudoromicia tenuipinnis but it was probably misidentified. See Table 1 for a complete list of the specimens used and main text for details of the molecular analyses.
F I G U R E 4 in Phylogeography of Solomon Islands blossom bats reflects oceanic divides and Pleistocene connections
F I G U R E 4 (a) Phylogenetic tree of Tribe Melonycterini blossom bats produced using the quartet-based method implemented in SVDǪUARTETS, and (b) phylogenetic network of Nesonycteris blossom bats created using SPLITSTREE.
F I G U R E 2 in Phylogeography of Solomon Islands blossom bats reflects oceanic divides and Pleistocene connections
F I G U R E 2 Phylogeographic relationships among Melonycterini blossom bats (a) the Solomon Islands archipelago with bathymetric depths less than 120 m (ETOPO1, Amante & Eakins, 2009) shaded in dark grey to indicate possible land bridge connections during the Last Glacial Maximum. Islands shaded in colour represent those sampled for this study, samples were unavailable for islands shaded in light grey (EPSG: 4326–WGS 84). (b) Phylogenetic tree made using maximum likelihood methods in RAXML depicting relationships among all Nesonycteris and Melonycteris samples. Values indicate maximum likelihood bootstrap support and black circles on nodes denote values = 100. (c) Representation of the taxonomic treatment of Nesonycteris prior to this study comprising two species; (d) Alternate taxonomic treatment of Nesonycteris from the results of this study comprising four species (N. far = N. fardoulisi, N. mac = N. maccoyi); The results of STRUCTURE analyses for various datasets are presented as (e) Dataset 1, a single run, k = 4; (f) Dataset 2, a single run, k = 2; (g) Dataset 3, a single run, k = 3; and (h) Dataset 4 (five runs R1–R5, k = 4). In STRUCTURE results (e–h), each bar indicates the probability of assignment to different genetic clusters.
F I G U R E 3 in Phylogeography of Solomon Islands blossom bats reflects oceanic divides and Pleistocene connections
F I G U R E 3 Pairwise Nei's genetic distances for Melonycteris and Nesonycteris blossom bats from the Solomon Islands and Bismarck archipelagos. Nei's genetic distance was calculated using the R package StAMPP. Values surrounded by a yellow or green rectangle are pairwise distances between samples from New Georgia group islands, and Greater Bukida islands, respectively.
Fig. 7 in Two new incertae sedis syllids (Annelida: Syllidae) from Brazilian oceanic islands
Fig. 7. Westheidesyllis splendida sp. nov., non-type specimen (MNRJP), SEM. A–B. Falciger chaetae, anterior body. C–D. Dorsal simple chaetae, anterior body. E–F. Falciger chaetae, midbody. G. Dorsal simple chaeta, midbody. H–J. Falciger chaetae, posterior body. K. Dorsal simple chaeta, posterior body. Scale bars: A, C, F = 5 µm; B, D, G, I–K = 2 µm; E, H = 10 µm.
Fig. 3 in Two new incertae sedis syllids (Annelida: Syllidae) from Brazilian oceanic islands
Fig. 3. Westheidesyllis splendida sp. nov., paratype (MZUSP 6099). Anterior body, dorsal view. Scale bar = 0.22 mm.
Fig. 6 in Two new incertae sedis syllids (Annelida: Syllidae) from Brazilian oceanic islands
Fig. 6. Westheidesyllis splendida sp. nov., paratype (MZUSP 6099). A–C. Falciger chaetae, anterior, mid- and posterior body, respectively. D–F. Dorsal simple chaetae, anterior, mid- and posterior body, respectively. G. Acicula. Scale bar = 6 µm.
Fig. 5 in Two new incertae sedis syllids (Annelida: Syllidae) from Brazilian oceanic islands
Fig. 5. Westheidesyllis splendida sp. nov., non-type specimen (MNRJP), SEM. A. Anterior body, dorsal view. B. Details of prostomium, peristomium, and nuchal organs, dorsal view. C. Anterior body of specimen with retracted nuchal organs, dorsal view. D. Anterior end, dorsal view. E–F. Details of retracted ciliated nuchal organs. G. Anterior segments showing details of ciliary pits, dorsal view. H. Posterior end, dorsal view. Red arrows pointing to ciliated nuchal organs, white arrows pointing to ciliary pits. Scale bars: A, C = 50 µm; B, G = 10 µm; D, H = 20 µm; E = 2 µm; F = 5 µm.
Fig. 1 in Two new incertae sedis syllids (Annelida: Syllidae) from Brazilian oceanic islands
Fig. 1. Brevicirrosyllis paulolanai sp. nov., holotype (MZUSP 6096). A. Anterior body, dorsal view. B–C, E. Falciger chaetae, anterior, mid- and posterior body, respectively. D. Acicula. F–H. Dorsal simple chaetae, anterior, mid- and posterior body, respectively. Scale bars: A = 0.17 mm; B–H = 10 µm.
Fig. 2 in Two new incertae sedis syllids (Annelida: Syllidae) from Brazilian oceanic islands
Fig. 2. Westheidesyllis splendida sp. nov., paratype (MZUSP 6099). A. Whole body of methyl green stained specimen, dorsal view. B. Midbody of methyl green stained specimen, white arrows showing parapodial glands, black arrows showing digestive tube content. C. Midbody parapodial glands on a not stained specimen. Scale bars: A = 0.22 mm; B = 0.15 mm; C = 0.1 mm.
Fig. 4 in Two new incertae sedis syllids (Annelida: Syllidae) from Brazilian oceanic islands
Fig. 4. Westheidesyllis splendida sp. nov., paratype (MZUSP 6099). A. Anterior body, ventral view. B. Midbody parapodium, with dorsal cirrus and parapodial glands, dorso-lateral view. C–D. Midbody and posterior end, dorsal view. Scale bars: A, C–D = 0.2 mm; B = 15 µm.
Figure 6 in Sphaeromopsis jayaraji sp. nov. (Crustacea: Isopoda), a new species of intertidal Sphaeromatidae from the Andaman Islands, northern Indian Ocean
Figure 6. Sphaeromopsis jayaraji sp. nov., holotype male (2.9 mm) (PUMB 35104). A, pleopod 1; B, pleopod 2; C, pleopod 3; D, pleopod 4; E, pleopod 5.
Figure 5 in Sphaeromopsis jayaraji sp. nov. (Crustacea: Isopoda), a new species of intertidal Sphaeromatidae from the Andaman Islands, northern Indian Ocean
Figure 5. Sphaeromopsis jayaraji sp. nov., holotype male (2.9 mm) (PUMB 35104). A, pereopod 1; B, pereopod 2; C, pereopod 4; D, pereopod 6; E, pereopod 7.
Figure 2 in Sphaeromopsis jayaraji sp. nov. (Crustacea: Isopoda), a new species of intertidal Sphaeromatidae from the Andaman Islands, northern Indian Ocean
Figure 2.Sphaeromopsis jayaraji sp. nov., holotype male (2.9 mm) (PUMB 35104). A, dorsal view; B, lateral view; C, frontal lamina; D, pleotelson; E, uropods.
Figure 3 in Sphaeromopsis jayaraji sp. nov. (Crustacea: Isopoda), a new species of intertidal Sphaeromatidae from the Andaman Islands, northern Indian Ocean
Figure 3. Sphaeromopsis jayaraji sp. nov., holotype male (2.9 mm) (PUMB 35104). A, ventral view of pleotelson; B, antennula; C, antenna; D, penes.
Figure 4 in Sphaeromopsis jayaraji sp. nov. (Crustacea: Isopoda), a new species of intertidal Sphaeromatidae from the Andaman Islands, northern Indian Ocean
Figure 4. Sphaeromopsis jayaraji sp. nov., holotype male (2.9 mm) (PUMB 35104). A, maxilliped; B, mandible; C, mandible palp; D, maxillula; E, maxilla.
Fig. 1 in Typification and nomenclature of the western Indian Ocean islands ferns and lycophytes described in Linnaeus filius's Supplementum plantarum
Fig. 1. – Manuscript list in Linnaeus filius's hand dated 20 February 1780 associated with Thouin's numbering entitled "Plantae missae Sonneratii" including the seven new fern and two lycophyte species from the western Indian Ocean islands described by Linnaeus f. in Supplementum plantarum. [MS 2081, p. 23 front and back; © Muséum national d'Histoire naturelle, Bibliothèque centrale, Paris]
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.