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Figure 4 in Genetic and morphological studies of species status for poorly known endemic Trochulus phorochaetius (Bourguignat, 1864) (Gastropoda: Pulmonata: Hygromiidae), and its comparison with closely related taxa
Figure 4. Canonical discriminant analysis based on shell measurements of Trochulus hispidus, Trochulus plebeius, Trochulus phorochaetius, and the Coiserette specimens. Wilks' lambda = 0.0229, F30,664 = 58.009, P <0.00001.
Figure 8 in Genetic and morphological studies of species status for poorly known endemic Trochulus phorochaetius (Bourguignat, 1864) (Gastropoda: Pulmonata: Hygromiidae), and its comparison with closely related taxa
Figure 8. Canonical discriminant analysis based on genital measurements of Trochulus hispidus, Trochulus plebeius, Trochulus phorochaetius, and the Coiserette specimens. Wilks' lambda = 0.10933, F21,115 = 6.3833, P <0.00001.
Figure 1 in Genetic and morphological studies of species status for poorly known endemic Trochulus phorochaetius (Bourguignat, 1864) (Gastropoda: Pulmonata: Hygromiidae), and its comparison with closely related taxa
Figure 1. Geographical locations of the populations sampled (*) in France (A), Poland (B), Great Britain (C), and Germany (D); , main cities. See Table 1 for abbreviations.
Figure 7 in Genetic and morphological studies of species status for poorly known endemic Trochulus phorochaetius (Bourguignat, 1864) (Gastropoda: Pulmonata: Hygromiidae), and its comparison with closely related taxa
Figure 7. Correspondence analysis of qualitative data in Tochulus taxa and the Coiserette specimens.
Figure 3 in Genetic and morphological studies of species status for poorly known endemic Trochulus phorochaetius (Bourguignat, 1864) (Gastropoda: Pulmonata: Hygromiidae), and its comparison with closely related taxa
Figure 3. Shell traits: A, internal rib (ir) in Trochulus plebeius specimen from Zieleniec; B, band (b) in Trochulus hispidus specimen from Échallon; C, short hairs in T. plebeius specimen from Coiserette; D, long hairs in Trochulus phorochaetius specimen from Le Pont du Lac; E, very long hairs in Trochulus villosulus specimen from Wojtkowa, south-east Poland; F, very long hairs in Trochulus villosus specimen from Fützen, south Germany; G, short hairs in T. hispidus specimen from Buchenbach. Scale bars: A, B, 2.5 mm; C–G, 1 mm.
Figure 4 in Microgeographic differentiation among closely related species of Biomphalaria (Gastropoda: Planorbidae) from the Andean Altiplano
Figure 4. Spatial genetic structure obtained in GENELAND (setting K = 4) for Biomphalaria snails (the springs sampled in Salar de Carcote and Salar de Ascotán are numbered S1, etc.). A, posterior probabilities of population membership in clusters 1–4 (from left to right, respectively). Lighter shading indicates higher probabilities of population membership. B, summary of estimated cluster membership of the four clusters and their respective localities. The black dots correspond to the localities analysed in this study.
Figure 3 in Microgeographic differentiation among closely related species of Biomphalaria (Gastropoda: Planorbidae) from the Andean Altiplano
Figure 3. Molecular analyses among Biomphalaria populations (springs sampled in Salar de Carcote and Salar de Ascotán are numbered S1, etc.). A, tree obtained by maximum-likelihood (ML) analysis using mtDNA COI sequences. Identical topology was recovered in the maximum parsimony (MP) analysis. Numbers above the nodes indicate bootstrap values obtained under ML and MP analyses, respectively. The first number after the salt pan and species name indicates the specimen sampled. B, median-joining network of haplotypes obtained from Biomphalaria snails sampled in Salar de Carcote (C), Salar de Ascotán (A), and Isluga. The circle sizes are proportional to the number of observations of each haplotype. White circles represent missing haplotypes. The clades recovered by the phylogenetic analyses are also indicated.
Figure 1 in Microgeographic differentiation among closely related species of Biomphalaria (Gastropoda: Planorbidae) from the Andean Altiplano
Figure 1. Sampling sites of the Biomphalaria snails considered in the present study. Salar de Carcote and Salar de Ascotán are magnified. The springs sampled in each salt pan are labelled S1, S2,..., etc.
Figure 2 in Microgeographic differentiation among closely related species of Biomphalaria (Gastropoda: Planorbidae) from the Andean Altiplano
Figure 2. Radular morphology of Biomphalaria snails observed using scanning electron microscopy (SEM). A, general morphological appearance of the radula. B, C, and D, rachidian teeth of Biomphalaria costata (Salar de Carcote), Biomphalaria crequii (Salar de Ascotán), and Biomphalaria aymara (Isluga swamps), respectively.
Figure 15. Pocillopora meandrina. A in With eyes wide open: a revision of species within and closely related to the Pocillopora damicornis species complex (Scleractinia; Pocilloporidae) using morphology and genetics
Figure 15. Pocillopora meandrina. A, field appearance of P. meandrina (side view). B, skeleton of previous variation (MTQ-G65917). C and D, scanning electron micrographs of previous specimen. E, corallum of P. meandrina (side view) (MTQ-G66117). D, in situ appearance.
Figure 12 in With eyes wide open: a revision of species within and closely related to the Pocillopora damicornis species complex (Scleractinia; Pocilloporidae) using morphology and genetics
Figure 12. Field appearance of taxa in partial sympatry, when growing as mosaic colonies or in approximate distance to each other. α, P. damicornis; β, P. acuta; γ, P. verrucosa; x, P. bairdi sp. nov.; e, P. eydouxi; m, P. meandrina.
Figure 9. Pocillopora aliciae. A, field appearance. B in With eyes wide open: a revision of species within and closely related to the Pocillopora damicornis species complex (Scleractinia; Pocilloporidae) using morphology and genetics
Figure 9. Pocillopora aliciae. A, field appearance. B, skeleton of branch. C and D, scanning electron micrographs of corallite structure. E, corallum of holotype (MTQ-G65423) (Schmidt-Roach et al., 2013). F, typical growth from on reef slope.
Figure 7 in With eyes wide open: a revision of species within and closely related to the Pocillopora damicornis species complex (Scleractinia; Pocilloporidae) using morphology and genetics
Figure 7. Illustration of morphological plasticity of the corallum of Pocillopora damicornis in different environments and at different latitudes (side views). MTQ-sample numbers: A, G66102; B, G66131; C, G66126; D, G66136; E, G66109; F, G66107; G, G66095; H, G66127; I, G66134; J, G66123; K, G66097; L, G66103; M, n/a; N, G66098; O, G66099; P, G66100; Q, G66093; R, G66094; S, G66121; T, G66091; U, G66090.
Figure 8. Pocillopora acuta. A in With eyes wide open: a revision of species within and closely related to the Pocillopora damicornis species complex (Scleractinia; Pocilloporidae) using morphology and genetics
Figure 8. Pocillopora acuta. A, in situ appearance. B, skeleton of specimen. C and D, scanning electron micrographs of specimen (photos: Paul Muir). E, side view of corallum of holotype of Pocillopora acuta Lamarck, 1816 (photo: Michel Pichon). F, drawing by Esper (1791). G, P. acuta morph in situ. H, holotype of Pocillopora apiculata Ehrenberg, 1834. I, skeleton of compact morphology of P. acuta (MTQ-G66112).
Figure 13. P in With eyes wide open: a revision of species within and closely related to the Pocillopora damicornis species complex (Scleractinia; Pocilloporidae) using morphology and genetics
Figure 13. P. bairdi sp. nov. A, in situ appearance. B, skeleton of specimen. C and D, scanning electron micrographs of specimen. E, corallum of holotype (side view) (MTQ-G65918). F, corallum of paratype (side view) (MTQ-G65919). G, mosaic colony including holotype (left), P. meandrina (upper right), and P. damicornis (lower right). H, previous colony in situ.
Figure 5. A in With eyes wide open: a revision of species within and closely related to the Pocillopora damicornis species complex (Scleractinia; Pocilloporidae) using morphology and genetics
Figure 5. A, haplotype network based on ORF DNA sequence data and incorporating published Pocillopora sequence data from other locations across the Indian and Pacific Oceans (total alignment length 594 bp). B, geographical account of these lineages on a global scale based solely on genetic lineages.
Figure 3. A in With eyes wide open: a revision of species within and closely related to the Pocillopora damicornis species complex (Scleractinia; Pocilloporidae) using morphology and genetics
Figure 3. A, DAPC of gross morphological characters. Bi-plot indication of character (see Table 1 for explanation of characters) contribution is shown in blue. Individuals are represented by dots and groups by elipses. Box, cluster-based reassignment probabilities (dotted lines indicate probabilities if Type α is excluded from calculations). B, branch-based reassignment probabilities for each cluster; bars indicate genetic lineages [probability of reassignment of a branch (N = 133) (horizontal bars, y-axis) to a certain cluster (genetic lineage) (vertical bars, x-axis) is indicated by shades: white = 0, dark grey = 1]. Clusters: α, Pocillopora damicornis; β, P. acuta; e, P. eydouxi; m, P. meandrina; δ, P. aliciae; γ, P. verrucosa; x, P. bairdi sp. nov.
Figure 1 in With eyes wide open: a revision of species within and closely related to the Pocillopora damicornis species complex (Scleractinia; Pocilloporidae) using morphology and genetics
Figure 1. Schematic illustration of morphometric measurements taken of corallum (side view). Numbers refer to morphometric measurements taken from each colony (see Table 1).
FIG. 2 in Morphological and biological characterization of three closely related species of Pediobius Walker (Hymenoptera: Eulophidae)
FIG. 2. Thorax of Pediobius, dorsal aspect: (a) P. obscurus sp. nov.; (b) P. alaspharus; (c) P. planiventris. Scale: 100 Mm.
FIG. 1 in Morphological and biological characterization of three closely related species of Pediobius Walker (Hymenoptera: Eulophidae)
FIG. 1. Antennae of (a) P. obscurus sp. nov. female; (b) P. alaspharus female; (c) P. planiventris female; (d) P. obscurus sp. nov. male. Scale: 100 Mm.
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.