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34 results for “Scombridae”
FIGURES 7–11 in Caballerocotyla llewelyni n. sp. and Caballerocotyla neothunni (Yamaguti, 1968) (Monogenea; Capsalidae) parasites of Brazilian tunas (Scombridae)
FIGURES 7–11. Caballerocotyla neothunni (Yamaguti, 1968) Oliva, 1986. 7. Light micrograph. 8. Phase contrast microscopy of tegumental dorso lateral spine, 800 X. 9. Confocal scanning light micrograph of mouth aperture. 10. Confocal scanning light micrograph of genital pore (arrow), vaginal pore (arrowhead). 11. Confocal scanning light micrograph of haptor without papillae.
Fig. 4 in Variation in the Karyotype, Cytochrome b Gene, and 5S rDNA of Four Thunnus (Perciformes, Scombridae) Tunas
Fig. 4. (a) Neighbor-joining and (b) Maximum-likelihood trees constructed using 5S ribosomal DNA sequences from 4 Thunnus species and the outgroup, Scomber scombrus. NBT: T. orientalis, YFT: T. albacares, BET: T. obesus, LFT: T. alalunga. ◎indicates two subgroups of T. obesus.
Fig. 3 in Variation in the Karyotype, Cytochrome b Gene, and 5S rDNA of Four Thunnus (Perciformes, Scombridae) Tunas
Fig. 3. (a) Neighbor-joining and (b) Maximum-likelihood trees constructed with 17 cytochrome (Cyt) b gene sequences from 8 Thunnus species and the outgroup, Katsuwonus pelamis. NBT: T. orientalis, YFT: T. albacares, BET: T. obesus, LFT: T. alalunga.
Fig. 1 in Variation in the Karyotype, Cytochrome b Gene, and 5S rDNA of Four Thunnus (Perciformes, Scombridae) Tunas
Fig. 1. Sampling locations (ellipse) of Thunnus obesus, T. albacares, T. alalunga, and T. orientalis in Taiwanese waters.
Supplementary material 1 from: Zeng X-S, Sun C-H, Huang X-Y, Lao Y-L, Huang J-L, Li S, Zhang Q (2022) DNA barcoding of Scomberomorus (Scombridae, Actinopterygii) reveals cryptic diversity and misidentifications. ZooKeys 1135: 157-170. https://doi.org/10.3897/zookeys.1135.93631
DNA barcoding of Scomberomorus (Scombridae, Actinopterygii) reveals cryptic diversity and misidentifications
Data from: Evolutionary origin of the Scombridae (tunas and mackerels): members of a Paleogene adaptive radiation with 14 other pelagic fish families
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Figure 2. Neohexostoma gymnosardae n in Neohexostoma gymnosardae n. sp. (Monogenea, Hexostomatidae), a gill parasite of Gymnosarda unicolor (Valenciennes) (Teleostei, Scombridae) in the South China Sea
Figure 2. Neohexostoma gymnosardae n. sp. from gills of Gymnosarda unicolor. (A) Whole worm, ventral view (p, peduncle); (B) Reproductive system (MCO, male copulatory organ; vg, vagina; vgd, vaginal ducts; vdf, vas deferens; ov, ovary; vr, vitelline reservoir; gi, genitointestinal canal; u, uterus; te, testes); (C) Male copulatory organ; (D) Vagina; (E) Eggs; (F) Anchors; (G) Clamp with sclerites in front view.
Figure 5. – Scomber scombrus. A in Some data on the histological organization of bony tissues and teeth in the Mackerel, Scomber scombrus L. 1758 (Acanthopterygii, Perciformes, Scombridae)
Figure 5. – Scomber scombrus. A: MNHN-F-Histos 1951. Axial section of a caniniform tooth showing the cone of orthodentine with its external thin enameloid layer (En). The tooth base is surround- ed by an acellular bony tissue (Bo) that delimits an alveola. CO: odontoblastic canalicles, De: Dentine, PC: pulp cavity, VC: vascular canal or vascular cavity. B: MNHN–F-Histos 1959. Detail of the dentine of tooth No 7 (see Fig. 4D) showing the odontoblastic canaliculae (arrow-heads). Bo: bony tissue, De: dentine, En: Enameloid layer, PC: pulp cavity. Scale bars: A = 100 μm; B = 50 μm.
Figure 1. – Scomber scombrus. A in Some data on the histological organization of bony tissues and teeth in the Mackerel, Scomber scombrus L. 1758 (Acanthopterygii, Perciformes, Scombridae)
Figure 1. – Scomber scombrus. A: Left lateral view of the first four abdominal vertebrae. a and b respectively axis indicate the cross section of the first vertebra and the longitudinal section of the fourth vertebra. B: The external side of the right dentary. a and b axis respectively correspond to the section studies in Fig. 5 and Fig. 4. C: External side of the right ceratohyal: ch: ceratohyal, eh: epihyal, ih: interhyal. Scale bars = 5 mm. The black arrows on each figure indicate the front of the fish.
Figure 1 in Osteometry and size reconstruction of the Indian and Pacific Oceans' Euthynnus species, E. affinis and E. lineatus (Scombridae)
Figure 1. – General view of Euthynnus affinis (A) and Euthynnus lineatus (B) and some selected vertebrae: eight first precaudals (lateral vieuw) and nine first preurals (lateral and dorsal views).
Text-fig. 2. Vertebral profiles of Auxis thazard. VL, central length; VH, central height; VW, central width. in On The Morphology Of The Vertebral Column Of The Frigate Tuna, Auxis Thazard (Lacepedea, 1800) (Family: Scombridae) Collected From The Sea Of Oman
Text-fig. 2. Vertebral profiles of Auxis thazard. VL, central length; VH, central height; VW, central width.
Fig. 2 in Variation in the Karyotype, Cytochrome b Gene, and 5S rDNA of Four Thunnus (Perciformes, Scombridae) Tunas
Fig. 2. Karyotypes of (a) Thunnus obesus, (b) T. albacares, (c) T. alalunga, and (d) T. orientalis.
Table 2 in Neohexostoma gymnosardae n. sp. (Monogenea, Hexostomatidae), a gill parasite of Gymnosarda unicolor (Valenciennes) (Teleostei, Scombridae) in the South China Sea
<p><b>Table 2.</b> Estimates of evolutionary divergence between sequences (Kimura-2 parameter model), shown as percentages.</p><table><tbody><tr><th></th><th></th><th>1</th><th>2</th><th>3</th><th>4</th><th>5</th><th>6</th><th>7</th><th>8</th><th>9</th><th>10</th><th>11</th></tr></tbody><tbody><tr><th>1</th><td>MN242399 <i>N. gymnosardae</i></td><td></td><td></td><td></td><td></td><td></td><td></td><td></td><td></td><td></td><td></td><td></td></tr><tr><th>2</th><td>EF653383 <i>H. thynni</i></td><td>8.2</td><td></td><td></td><td></td><td></td><td></td><td></td><td></td><td></td><td></td><td></td></tr><tr><th>3</th><td>FJ432589 <i>D. sciaenae</i></td><td>23.0</td><td>21.1</td><td></td><td></td><td></td><td></td><td></td><td></td><td></td><td></td><td></td></tr><tr><th>4</th><td>AF382050 <i>C. branquialis</i></td><td>22.3</td><td>20.9</td><td>6.9</td><td></td><td></td><td></td><td></td><td></td><td></td><td></td><td></td></tr><tr><th>5</th><td>AF382039 <i>G. bivaginalis</i></td><td>18.6</td><td>18.9</td><td>27.4</td><td>25.8</td><td></td><td></td><td></td><td></td><td></td><td></td><td></td></tr><tr><th>6</th><td>AF382040 <i>G. secunda</i></td><td>20.4</td><td>20.2</td><td>26.8</td><td>25.5</td><td>5.0</td><td></td><td></td><td></td><td></td><td></td><td></td></tr><tr><th>7</th><td>AF382047 <i>D. denticulata</i></td><td>24.6</td><td>22.8</td><td>25.1</td><td>22.3</td><td>23.0</td><td>22.3</td><td></td><td></td><td></td><td></td><td></td></tr><tr><th>8</th><td>FJ432588 <i>U. nibae</i></td><td>25.6</td><td>22.6</td><td>27.6</td><td>25.1</td><td>23.2</td><td>22.8</td><td>13.6</td><td></td><td></td><td></td><td></td></tr><tr><th>9</th><td>MG591249 <i>H. bullardi</i></td><td>43.0</td><td>41.9</td><td>46.3</td><td>44.3</td><td>37.5</td><td>37.1</td><td>41.4</td><td>46.7</td><td></td><td></td><td></td></tr><tr><th>10</th><td>AF382035 <i>P. taeniurae</i></td><td>42.7</td><td>42.5</td><td>47.2</td><td>44.9</td><td>37.4</td><td>39.6</td><td>45.6</td><td>46.7</td><td>19.0</td><td></td><td></td></tr><tr><th>11</th><td>AF382064 <i>P. gallieni</i></td><td>62.3</td><td>57.2</td><td>65.1</td><td>62.2</td><td>51.5</td><td>51.8</td><td>62.5</td><td>59.4</td><td>60.9</td><td>56.9</td><td></td></tr></tbody></table>
Text-fig. 1. Vertebral column of Auxis thazard showing different regions in On The Morphology Of The Vertebral Column Of The Frigate Tuna, Auxis Thazard (Lacepedea, 1800) (Family: Scombridae) Collected From The Sea Of Oman
Text-fig. 1. Vertebral column of Auxis thazard showing different regions
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Allen Brain Atlas
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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
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