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FIGURE 3 in Complete larval development of Thor amboinensis (De Man, 1888) (Decapoda: Thoridae) described from laboratory-reared material and identified by DNA barcoding
FIGURE 3. Thor amboinensis. Third zoea: A, total animal, lateral view; B, second maxilliped; C, first pereiopod; D, second pereiopod; E, third pereiopod; F, telson and uropods. Fourth zoea: G, antenna; H, maxillule; I, maxilla; J, second pereiopod; K, third pereiopod; L, telson and uropods. Fifth zoea: M, total animal, lateral view; N, antennule; O, third pereiopod; P, fourth and fifth pereiopods; Q, telson and uropods; Q', detail of telson. Scale bars: 0.5 mm (F, L, O, Q); 0.1 mm (A–E, G–K, M–N, P, Q').
FIGURE 1 in Complete larval development of Thor amboinensis (De Man, 1888) (Decapoda: Thoridae) described from laboratory-reared material and identified by DNA barcoding
FIGURE 1. Phylogenetic tree of representatives of the family Thoridae and one outgroup based on the mitochondrial cytochrome c oxidase I (COI) barcode gene sequences (658 bp). Sequences were aligned with those available in GenBank. The phylogenetic reconstruction was carried out with the Maximum Likelihood (ML) analysis, implemented in MEGA version 6.0 (Tamura et al. 2013). Numbers are support values for 10000 bootstraps.
FIGURE 5 in Complete larval development of Thor amboinensis (De Man, 1888) (Decapoda: Thoridae) described from laboratory-reared material and identified by DNA barcoding
FIGURE 5. Thor amboinensis. Eighth zoea: A, total animal, lateral view; B, antennule; C, antenna; D, mandibles; E, first pereiopod; E', detail of propodus and dactylus of first pereiopod; F, second pereiopod; G, third pereiopod; G', detail of propodus and dactylus of third pereiopod; H, fourth pereiopod; I, fifth pereiopod; J, first pleopod; K, second pleopod; L, third pleopod; M, fourth pleopod; N, fifth pleopod; O, telson and uropods. Scale bars: 0.5 mm (B, C, E–G, I–O); 0.1 mm (A, D, E', G', H).
FIGURE 2 in Complete larval development of Thor amboinensis (De Man, 1888) (Decapoda: Thoridae) described from laboratory-reared material and identified by DNA barcoding
FIGURE 2. Thor amboinensis. First zoea: A, total animal, lateral view; B, antennule; C, antenna; D, mandibles; E, maxillule; F, maxilla; G, first maxilliped; H, second maxilliped; I, third maxilliped; J, first pereiopod; K, telson. Second zoea: L, total animal, lateral view; M, antennule; N, antenna; O, first pereiopod; P, second pereiopod; Q, telson. Scale bars: 0.5 mm (A, K, Q); 0.1 mm (B–J, L–P).
FIGURE 4 in Complete larval development of Thor amboinensis (De Man, 1888) (Decapoda: Thoridae) described from laboratory-reared material and identified by DNA barcoding
FIGURE 4. Thor amboinensis. Sixth zoea: A, total animal, dorsal view; B, antenna; C, third pereiopod; D, fourth pereiopod; E, fifth pereiopod; F, telson and uropods. Seventh zoea: G, total animal, lateral view; H, detail of antennules exopod; I, maxillule; J, maxilla; K, first maxilliped; L, second maxilliped; M, third maxilliped; N, detail of dactylus of third pereiopod; O, fourth pereiopod; P, fifth pereiopod; Q, pleopods. Scale bars: 0.5 mm (B, D, E, F); 0.1 mm (A, C, G–M, O–Q).
FIGURES 30–38 in Identification of three morphologically indistinguishable Epicauta species (Coleoptera, Meloidae, Epicautini) through DNA barcodes and morphological comparisons
FIGURES 30–38. Male genitalia. Aedeagus (lateral view, A): dorsal hook (dh), endophallic hook (eh); tegmen (lateral view, B); tegmen (ventral view, C): parameral lobes (pl), phallobase (ph). 30–32, Epicauta sibirica; 33–36, E. dubia; 37–38, E. chinensis.
FIGURE 1. A in DNA barcodes unite two problematic taxa: the meiobenthic Boreohydra simplex is a life-cycle stage of Plotocnide borealis (Hydrozoa: Aplanulata)
FIGURE 1. A. ML topology for all publically available 18S sequences (n=519) of Hydroidolina, showing the positions of Plotocnide borealis and Protohydra leuckarti within Aplanulata. SH-like branch support values are shown at the nodes, as well as bootstrap indices if exceeding 60. Uncollapsed topologies are provided as Supplementary Figures at https://dx.doi.org/ 10.6084/m9.figshare.3406654.v3. B. SEM of the polyp stage previously known as Boreohydra simplex, the mouth is marked by (*). C. Live image of the medusa stage of Plotocnide borealis, tentacles contracted.
FIGURE 2 in DNA barcodes unite two problematic taxa: the meiobenthic Boreohydra simplex is a life-cycle stage of Plotocnide borealis (Hydrozoa: Aplanulata)
FIGURE 2. The egg of the polyp stage of Plotocnide borealis. A. SEM of the polyp with the egg, marked by (*). B. SEM of the egg, front view. C. Live image of the gastric region of the polyp with the egg. D. Transverse semi-thin section of the polyp stage stained with a mixture of toluidine blue and methylene blue clearly showing the egg. E, F. TEM of the oocyte wall, the invaginations of the outer membrane are marked by arrows.
FIGURE 8 in DNA barcoding the phyllosoma of Scyllarides squammosus (H. Milne Edwards, 1837) (Decapoda: Achelata: Scyllaridae)
FIGURE 8. Scyllarides squammosus, Stage XII-Final. A, ventral view; B, details of antennule and antenna; C, detail of maxillule; D, maxilla and first maxilliped; E, detail of abdomen and detail of 5th pereiopod; F, dorsal view of abdomen; G, detail of pleopods. Scale bar: A = 10 mm; B–F = 1mm.
FIGURE 9 in DNA barcoding the phyllosoma of Scyllarides squammosus (H. Milne Edwards, 1837) (Decapoda: Achelata: Scyllaridae)
FIGURE 9. Relationship between CW / TL ratio and TL using all Scyllarides squammosus larvae sampled in this study (n = 34, including stages VI and VII) and those present in the previous literature.
FIGURE 6. Scyllarides squammosus, Stage X. A in DNA barcoding the phyllosoma of Scyllarides squammosus (H. Milne Edwards, 1837) (Decapoda: Achelata: Scyllaridae)
FIGURE 6. Scyllarides squammosus, Stage X. A, ventral view; B, details of antennule and antenna; C, detail of maxillule; D, maxilla and first maxilliped; E, detail of abdomen and 5th pereiopod; F, 3rd maxilliped; G, 5th segment and dactyl of 1 st pereiopod. Scale bar: A = 10 mm; B, E = 1 mm; C, D = 0.5 mm.
FIGURE 5. Scyllarides squammosus, Stage IX. A in DNA barcoding the phyllosoma of Scyllarides squammosus (H. Milne Edwards, 1837) (Decapoda: Achelata: Scyllaridae)
FIGURE 5. Scyllarides squammosus, Stage IX. A, ventral view; B, details of antennule and antenna; C, detail of maxillule; D, maxilla and first maxilliped; E, detail of abdomen and 5th pereiopod. Scale bar: A = 10 mm; B, E = 1 mm; C, D = 0.5 mm.
FIGURE 2. Scyllarides squammosus, State VI. A in DNA barcoding the phyllosoma of Scyllarides squammosus (H. Milne Edwards, 1837) (Decapoda: Achelata: Scyllaridae)
FIGURE 2. Scyllarides squammosus, State VI. A, ventral view; B, details of antennule and antenna; C, detail of maxillule; D, maxilla and first maxilliped; E, detail of abdomen and 5th pereiopod. A scale bar = 1 mm; B = 0.5 mm; C–E = 0.1 mm.
FIGURE 4. Scyllarides squammosus, Stage VIII. A in DNA barcoding the phyllosoma of Scyllarides squammosus (H. Milne Edwards, 1837) (Decapoda: Achelata: Scyllaridae)
FIGURE 4. Scyllarides squammosus, Stage VIII. A, ventral view; B, details of antennule and antenna; C, detail of maxillule; D, maxilla and first maxilliped; E, detail of abdomen and 5th pereiopod. Scale bar: A = 10 mm; B = 1 mm; C–E = 0.1 mm.
FIGURE 1. Bayesian phylogenetic tree. Only posterior probability values above 80 in DNA barcoding the phyllosoma of Scyllarides squammosus (H. Milne Edwards, 1837) (Decapoda: Achelata: Scyllaridae)
FIGURE 1. Bayesian phylogenetic tree. Only posterior probability values above 80 are shown, and branch width is proportional to posterior values.
FIGURE 3. Scyllarides squammosus, Stage VII. A in DNA barcoding the phyllosoma of Scyllarides squammosus (H. Milne Edwards, 1837) (Decapoda: Achelata: Scyllaridae)
FIGURE 3. Scyllarides squammosus, Stage VII. A, ventral view; B, details of antennule and antenna; C, detail of maxillule; D, maxilla and first maxilliped; E, detail of abdomen and 5th pereiopod. Scale bar: A = 5 mm; B, E = 1 mm; C, D = 0.5 mm.
FIGURE 10 in Taxonomic note of Oberea fuscipennis (Chevrolat, 1852) based on morphological and DNA barcode data (Coleoptera, Cerambycidae, Lamiinae)
FIGURE 10. Holotype of Oberea infratestacea Pic, 1919. (a) Dorsal view. (b) Lateral view; (c) Label. Scale bar=5 mm.
FIGURE 9 in Taxonomic note of Oberea fuscipennis (Chevrolat, 1852) based on morphological and DNA barcode data (Coleoptera, Cerambycidae, Lamiinae)
FIGURE 9. Oberea diversipes male genitalia. (a) Tergite VIII. (b) Tegmen, dorsal view. (c) Tegmen, lateral view. (d) Lateral lobes, dorsal view. (e) Lateral lobes, ventral view. (f) Median lobe. (g) Sclerites in endophallus. Scale bar= 0.5 mm.
FIGURE 6 in Taxonomic note of Oberea fuscipennis (Chevrolat, 1852) based on morphological and DNA barcode data (Coleoptera, Cerambycidae, Lamiinae)
FIGURE 6. Oberea fuscipennis male genitalia. (a) Tergite VIII. (b) Tegmen, dorsal view. (c) Tegmen, lateral view. (d) Lateral lobes, dorsal view. (e) Lateral lobes, ventral view. (f) Median lobe. (g) Sclerites in endophallus. scale bar = 0.5 mm.
FIGURE 5 in Taxonomic note of Oberea fuscipennis (Chevrolat, 1852) based on morphological and DNA barcode data (Coleoptera, Cerambycidae, Lamiinae)
FIGURE 5. Holotype of Oberea hanoiensis Pic, 1923. (a) Dorsal view. (b) Lateral view. (c) Label. Scale bar = 5 mm.
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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.