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FIGURE 3 in Description of a new species of glass knifefish genus Eigenmannia (Gymnotiformes: Sternopygidae) from the upper rio Paraná basin, based on anatomical, karyotypic, and molecular evidences
FIGURE 3 | Maxilla, suspensorium and opercular series of Eigenmannia catira, paratype, MZUSP 121047, inverted image, left side, medial view, anterior on left.
FIGURE 7 in Description of a new species of glass knifefish genus Eigenmannia (Gymnotiformes: Sternopygidae) from the upper rio Paraná basin, based on anatomical, karyotypic, and molecular evidences
FIGURE 7 | Branchial arches of Eigenmannia catira, paratype, MZUSP 121047. A. Dorsal view, anterior on top; B. Ventral view anterior on top.
FIGURE 6 in Description of a new species of glass knifefish genus Eigenmannia (Gymnotiformes: Sternopygidae) from the upper rio Paraná basin, based on anatomical, karyotypic, and molecular evidences
FIGURE 6 | Hyoid apparatus of Eigenmannia catira, paratype, MZUSP 121047. A. Urohyal, ventral view, anterior on top; B. Hyoid arch, inverted image, right side, lateral view anterior on left.
FIGURE 2 in Description of a new species of glass knifefish genus Eigenmannia (Gymnotiformes: Sternopygidae) from the upper rio Paraná basin, based on anatomical, karyotypic, and molecular evidences
FIGURE 2 | Jaws of Eigenmannia catira, paratype, MZUSP 121047. A. Premaxilla, right side, ventral view, anterior on top; B. Lower jaw, inverted image, left side, medial view, anterior on left.
FIGURE 1 in Description of a new species of glass knifefish genus Eigenmannia (Gymnotiformes: Sternopygidae) from the upper rio Paraná basin, based on anatomical, karyotypic, and molecular evidences
FIGURE 1 | Eigenmannia catira, holotype, MZUSP 129263, 132.7 mm LEA, São Paulo, Córrego do Schmidt, a tributary of the rio Grande, upper rio Paraná basin. A. Left lateral view of the head; B. Left lateral view of the body.
FIGURE 9 in Description of a new species of glass knifefish genus Eigenmannia (Gymnotiformes: Sternopygidae) from the upper rio Paraná basin, based on anatomical, karyotypic, and molecular evidences
FIGURE 9 | Map of southeastern South America shows the distribution of Eigenmannia catira (black star for type-locality) in the upper rio Paraná basin, Brazil.
FIGURE 5 in Description of a new species of glass knifefish genus Eigenmannia (Gymnotiformes: Sternopygidae) from the upper rio Paraná basin, based on anatomical, karyotypic, and molecular evidences
FIGURE 5 | Microcomputed tomography of head and body cavity of Eigenmannia catira, MZUSP 129263, holotype, left side, lateral view, anterior on left. Colors represent major subdivisions of bone complexes: jaws (purple), nasal, infrorbitals and extraexcapular (orange), suspensorium and opercular series (green), branchial and hyoid arches (red); neurocranium (garnet), Weberian apparatus (yellow), and pectoral girdle (blue).
FIGURE 8 in Description of a new species of glass knifefish genus Eigenmannia (Gymnotiformes: Sternopygidae) from the upper rio Paraná basin, based on anatomical, karyotypic, and molecular evidences
FIGURE 8 | Pectoral girdle and fin of Eigenmannia catira, paratype, MZUSP 121047, inverted image, right side, medial view, anterior on left.
FIGURE 4 in Description of a new species of glass knifefish genus Eigenmannia (Gymnotiformes: Sternopygidae) from the upper rio Paraná basin, based on anatomical, karyotypic, and molecular evidences
FIGURE 4 | Infraorbitals of Eigenmannia catira, paratype, MZUSP 121047, left side, lateral view, anterior on left.
Fig. 2 in Molecular evidence of the absence of Metagonimus yokogawai (Katsurada, 1912) in Europe: report of Metagonimus sp. in cyprinoid fish from the River Danube in Hungary
Fig. 2 Maximum likelihood tree of the samples of Metagonimus spp. from the present study (a: 28S rDNA, b: ITS region, c: coxI) in relation to other heterophyid and opisthorchiid sequences deposited in GenBank. Bootstrap values are indicated at the nodes; posterior probabilities for Bayesian inference are indicated after the bootstrap values. Samples from the present study are in bold. The scale bar indicates the expected number of substitutions per site
Fig. 1 a in Molecular evidence of the absence of Metagonimus yokogawai (Katsurada, 1912) in Europe: report of Metagonimus sp. in cyprinoid fish from the River Danube in Hungary
Fig. 1 a: Metagonimus sp. metacercaria embedded in the scales of chub (Squalius cephalus) b: released after artificial digestion c, Metagonimus sp. metacercaria in the scales of perch (Perca fluviatilis) d: and close up e: Metagonimus sp. adult recovered from a Syrian hamster experimentally infected with metacercariae in this study in ventral view f: dorsal view
FIG. 1 in Three new synonyms of Macromitrium japonicum Dozy & Molk. (Bryophyta, Orthotrichaceae) based on morphological and molecular evidence
FIG. 1. — Bayesian majority consensus tree calculated from the results of Bayesian analysis of the combined datasets of trnL-F, trnG and ITS2. The Bayesian posterior probabilities are labelled above the branches.
FIG. 3 in Three new synonyms of Macromitrium japonicum Dozy & Molk. (Bryophyta, Orthotrichaceae) based on morphological and molecular evidence
FIG. 3. — Macromitrium japonicum Dozy & Molk.: A-J, branch leaves; K, L, Q, S, upper cells of branch leaves; M-P, R, medial cells of branch leaves. A, K, from syntype of M. bathyodontum Cardot; B, R, from Noguchi 45186; C, S, from Noguchi 5436; D, Q, from Noguchi 22538; E, P, from Noguchi 49319; F, G, L, M, from lectotype of M. japonicum; H-J, N, O, from lectotype of M. insularum Sull. & Lesq. Figure modified from Noguchi 1989. Scale bars: A-J, 0.5 mm; K-S, 50 μm.
FIG. 6 in Three new synonyms of Macromitrium japonicum Dozy & Molk. (Bryophyta, Orthotrichaceae) based on morphological and molecular evidence
FIG. 6. — Macromitrium japonicum Dozy & Molk.: A-G, I-K, M, N, branch leaves; L, perichaetial leaves; H, O, capsules; P, Q, basal cells of branch leaves; R, medial cells of branch leaf; S, basal transverse section of branch leaf; T, upper transverse section of branch leaf; U, calyptra; V, basal cells near margin of branch leaf; W, peristome. All from syntype of M. polygonostomum Dixon & P. de la Varde (H-BR2572016). Scale bars: A-O, U, 0.44 mm; P-T, V, W, 44 μm.
FIG. 5 in Three new synonyms of Macromitrium japonicum Dozy & Molk. (Bryophyta, Orthotrichaceae) based on morphological and molecular evidence
FIG. 5. — Macromitrium japonicum Dozy & Molk.: A-C, branch leaves; D-F, perichaetial leaves; G, stem leaf; H-K, apices of branch leaves; L, M, base of branch leaf; N-P, secondary stem leaves; Q, medial cells of branch leaf; R, lower cells of branch leaf; S, basal cells near margin of branch leaf; T, basal cells of branch leaf; U, V, upper transverse sections of branch leaves; W, vaginula; X, capsules; Y, calyptra; Z, upper cells of perichaetial leaf; AA, medial cells of perichaetial leaf; AB, lower cells of perichaetial leaf; AC, basal cells of perichaetial leaf; AD, AF, peristome; AE, spore; AG, upper cells of stem leaf; AH, medial cells of stem leaf; AI, lower cells of stem leaf; AJ, basal cells of stem leaf. All from holotype of M. dickasonii E.B.Bartram (FH00213603). Scale bars: A-P, W-Y, 1 mm; AF, 200 μm; AD, 100 μm; Q-V, Z-AC, AE, AG-AJ, 67 μm.
FIG. 4 in Three new synonyms of Macromitrium japonicum Dozy & Molk. (Bryophyta, Orthotrichaceae) based on morphological and molecular evidence
FIG. 4. — Macromitrium japonicum Dozy & Molk.: A-F, branch leaves; G, spore; H, capsule; I, basal leaf cells; J, exostome; K, upper cells of branch leaf; L, medial cells of branch leaf; M, calyptra; N, upper transverse section of branch leaf; O, medial transverse section of branch leaf. All from holotype of M. japonicum var. makinoi (Broth.) Nog. (H-BR2572002). Scale bars: A-F, H, M, 0.44 mm; G, I-L, N, O, 44 μm.
Figs. 5–10 in Telenomus alecto (Crawford) (Hymenoptera: Scelionidae), parasitoid of Diatraea magnifactella Dyar (Lepidoptera: Crambidae) from Jalisco, Mexico: a study based on morphological and molecular evidence
Figs. 5–10. Telenomus alecto, female: (5) FSCA 00091198, mesosoma, dorsal view; (6) FSCA 00091198, mesosoma, lateral view; (7) FSCA 00091198, mesosoma, posterolateral view; (8) FSCA 00091198,mesosoma, ventrolateral view; (9) FSCA 00091197, T1–T2, anterolateral view; (10) FSCA 00091198, metasoma, dorsal view.
Figs. 2–4 in Telenomus alecto (Crawford) (Hymenoptera: Scelionidae), parasitoid of Diatraea magnifactella Dyar (Lepidoptera: Crambidae) from Jalisco, Mexico: a study based on morphological and molecular evidence
Figs. 2–4. Telenomus alecto, female: (2) FSCA 00091145, head, mesosoma, metasoma, dorsal view; (3) FSCA 00091497, head, anterior view; (4) FSCA 00091497, mouthparts, anteroventral view.
Figure 3. The maximum likelihood tree inferred from COX1 in Morphological and molecular evidences of Ascaridia galli in migratory quail Coturnix coturnix japonica from Baluchistan Pakistan
Figure 3. The maximum likelihood tree inferred from COX1 sequence (533 bp) of A. galli haplotypes and other Ascaridia species. Evolutionary analysis were conducted in MEGA 7. Scale bar shows genetic variation.
Figure 2 in Morphological and molecular evidences of Ascaridia galli in migratory quail Coturnix coturnix japonica from Baluchistan Pakistan
Figure 2. PCR (COX1) product of A. galli. L: 100 bp molecular marker; Lane-1: positive control; Lanes-2 and 3 partial COX1 amplified products; Lane-4: negative control Phylogenetic Tree.
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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.