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59 results for “Scorpaena”
FIGURE 1 in Redescription of the Indo-West Pacific scorpionfish (Scorpaenidae), Neomerinthe erostris (Alcock 1896), a senior synonym of Scorpaena gibbifrons Fowler 1938, N. rotunda Chen 1981, and N. bathyperimensis Zajonz & Klausewitz 2002
FIGURE 1. Specimens of Neomerinthe erostris. A, lectotype of Scorpaena erostris (ZSI-F 12977, 46.9 mm SL); B, paralectotype of S. erostris (ZSI-F 12978, 59.6 mm SL); C, holotype of S. gibbifrons (USNM 98900, 68.6 mm SL, photo by S. Raredon); D, holotype of Neomerinthe rotunda (CAS 42139, 87.4 mm SL, photo by CAS); E, holotype of N. bathyperimensis (SMF 29278, 64.7 mm SL); F, fresh specimen of N. erostris (KAUM–I. 39181, 51.8 mm SL).
FIGURE 1 in First report of Ceratomyxa scorpaeni (Cnidaria: Myxozoa) from Scorpaena porcus in the Black Sea
FIGURE 1 Ceratomyxa scorpaeni infecting the gall bladder of Scorpaena porcus: a disporogonic plasmodium; b transversely elongated mature spore; c crescent shaped mature spore; d the spore drawing.
FIGURE 43. Scorpaena hemilepidota Fowler 1938 in Checklist of the marine and estuarine fishes of New Ireland Province, Papua New Guinea, western Pacific Ocean, with 810 new records
FIGURE 43. Scorpaena hemilepidota Fowler 1938, St. CP4457-21, northnortheast of Lemus Island, Kavieng District, 133– 178 m depth (NTUM 12341) (photograph by Jhen-Nien Chen, taken immediately after collection).
FIGURE 5 in Redescription of the Indo-West Pacific scorpionfish Scorpaena neglecta Temminck & Schlegel, 1843, a senior synonym of four nominal species (Teleostei: Scorpaenidae)
FIGURE 5. Lateral view of head (A) and ontogenetic changes in lacrimal spines (B–D) of Scorpaena neglecta. A, KAUM–I. 20851, 296.4 mm SL; B, KAUM–I. 70019, 80.9 mm SL; C, KAUM–I. 64638, 130.4 mm SL; D, KAUM–I. 1321, male, 185.2 mm SL. ALS, anterior lacrimal spine; PLS, posterior lacrimal spine. Numerous small papillae and sensory pores on head not illustrated. Scale bars indicate 5 mm.
FIGURE 6 in Redescription of the Indo-West Pacific scorpionfish Scorpaena neglecta Temminck & Schlegel, 1843, a senior synonym of four nominal species (Teleostei: Scorpaenidae)
FIGURE 6. Relationships of A, head width; B, orbit diameter; C, maxilla depth; D, between ventral margin of orbit and suborbital ridge; E, occipital pit width; F, pelvic-fin spine length (all as % of standard length) to standard length in Scorpaena neglecta. Closed red, yellow, green, blue, and orange stars indicate type specimens of S. neglecta, S. fimbriata, S. izensis, S. hemilepidota, and S. armata, respectively.
FIGURE 3 in Redescription of the Indo-West Pacific scorpionfish Scorpaena neglecta Temminck & Schlegel, 1843, a senior synonym of four nominal species (Teleostei: Scorpaenidae)
FIGURE 3. Distributional records of Scorpaena neglecta based on a previous report from New Guinea (Fricke et al., 2014) and collected specimens examined in this study. Closed red, yellow, green, blue, and orange circles indicate type localities of S. neglecta, S. fimbriata, S. izensis, S. hemilepidota, and S. armata, respectively.
FIGURE 2 in Redescription of the Indo-West Pacific scorpionfish Scorpaena neglecta Temminck & Schlegel, 1843, a senior synonym of four nominal species (Teleostei: Scorpaenidae)
FIGURE 2. Primary type specimens of four nominal species identified herein as Scorpaena neglecta. A, MZS 1145, syntype of Scorpaena fimbriata, 115.8 mm SL; B, USNM 50909, holotype of Scorpaena izensis, 191.6 mm SL; C, USNM 98884, holotype of Scorpaena hemilepidota, 150.6 mm SL; D, USNM 98893, holotype of Scorpaenopsella armata, 65.7 mm SL.
FIGURE 1 in Redescription of the Indo-West Pacific scorpionfish Scorpaena neglecta Temminck & Schlegel, 1843, a senior synonym of four nominal species (Teleostei: Scorpaenidae)
FIGURE 1. Lectotype (A) and paralectotypes (B–F) of Scorpaena neglecta. A, S. neglecta, RMNH.PISC. 619, 187.4 mm SL; B, S. neglecta, RMNH.PISC. 618, 139.8 mm SL; C, S. miostoma, RMNH.PISC. 620; D, S. miostoma, RMNH.PISC. 621; E, S. miostoma, RMNH.PISC. 622; F, S. miostoma, RMNH.PISC. 623. All stuffed specimens.
FIGURE 4 in Redescription of the Indo-West Pacific scorpionfish Scorpaena neglecta Temminck & Schlegel, 1843, a senior synonym of four nominal species (Teleostei: Scorpaenidae)
FIGURE 4. Life stages of Scorpaena neglecta. A, KAUM–I. 57776, 64.0 mm SL; B, KAUM–I. 19113, male, 96.0 mm SL; C, KAUM–I. 9648, male, 149.1 mm SL; D, KAUM–I. 9227, male, 171.6 mm SL; E, KAUM–I. 54075, male, 198.2 mm SL; F, KAUM–I. 97664, 226.9 mm SL; G, KAUM–I. 20851, 296.4 mm SL.
FIGURE 2 in Scorpaena regina, a new scorpionfish (Teleostei: Scorpaenidae) from the east coast of Queensland, Australia
FIGURE 2. Distribution of Scorpaena regina sp. nov. Black arrowhead indicates type locality.
Data from: Contemporary genetic structure and postglacial demographic history of the black scorpionfish, Scorpaena porcus, in the Mediterranean and the Black Seas
Understanding the distribution of genetic diversity in the light of past demographic events linked with climatic shifts will help to forecast evolutionary trajectories of ecosystems within the current context of climate change. In this study, mitochondrial sequences and microsatellite loci were analysed using traditional population genetic approaches together with Bayesian dating and the more recent approximate Bayesian computation scenario testing. The genetic structure and demographic history of a commercial fish, the black scorpionfish, Scorpaena porcus, was investigated throughout the Mediterranean and Black Seas. The results suggest that the species recently underwent population expansions, in both seas, likely concomitant with the warming period following the Last Glacial Maximum, 20 000 years ago. A weak contemporaneous genetic differentiation was identified between the Black Sea and the Mediterranean Sea. However, the genetic diversity was similar for populations of the two seas, suggesting a high number of colonizers entered the Black Sea during the interglacial period and/or the presence of a refugial population in the Black Sea during the glacial period. Finally, within seas, an east/west genetic differentiation in the Adriatic seems to prevail, whereas the Black Sea does not show any structured spatial genetic pattern of its population. Overall, these results suggest that the Black Sea is not that isolated from the Mediterranean, and both seas revealed similar evolutionary patterns related to climate change and changes in sea level.
Fig. 2 in Scorpaena dabryi, a Junior Synonym of Scorpaena miostoma, with Notes on Morphological Ontogenetic Changes (Teleostei: Scorpaenidae)
Fig. 2. Distributional records of Scorpaena miostoma based on collected specimens examined in this study.
Fig. 4 in Scorpaena dabryi, a Junior Synonym of Scorpaena miostoma, with Notes on Morphological Ontogenetic Changes (Teleostei: Scorpaenidae)
Fig. 4. Relationships of A, body width; B, orbit diameter; C, postorbital length; D, occipital pit length; E, predorsal-fin length; F, pelvic-fin spine length (all as % of standard length) to standard length in Scorpaena miostoma. Closed red, green and blue stars indicate holotype of S. miostoma, and lectotype and paralectotype of S. dabryi, respectively.
Figure 3 in Feeding habits of Scorpaena notata (Scorpaenidae) from eastern Adriatic Sea
Figure 3. – Composition of Scorpaena notata diet among size-classes, based on the %IRI values of the major prey groups.
Figure 2 in Diet of the black scorpionfish Scorpaena porcus (Scorpaenidae) of the gulf of Annaba, Algeria
Figure 2. – Cumulative prey curves plotting number of prey categories and number of digestive tracts examined from total population of the black scorpionfish Scorpaena porcus of the eastern coast of Algeria.
Data from: Contemporary genetic structure and postglacial demographic history of the black scorpionfish, Scorpaena porcus, in the Mediterranean and the Black Seas
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FIGURE 81. Scorpaena maderensis Valenciennes 1833 in The marine ichthyofauna of Lebanon: an annotated checklist, history, biogeography, and conservation status
FIGURE 81. Scorpaena maderensis Valenciennes 1833, Selaata, 19 June 2006, AUBM (OS1336).
Figure 2 in Feeding habits of Scorpaena notata (Scorpaenidae) from eastern Adriatic Sea
Figure 2. – Length-frequency distribution of Scorpaena notata caught in the eastern Adriatic Sea.
FIGURE 2 in First report of Ceratomyxa scorpaeni (Cnidaria: Myxozoa) from Scorpaena porcus in the Black Sea
FIGURE 2. ML tree showing the phylogenetic relationships between isolate AO-62 (obtained in this study) and related Ceratomyxa species and specimens, obtained from NCBI (see Table 1). The tree is depending on 18S rDNA nucleotide sequences and bootstrap values (≥50%) obtained from ML, MP and NJ analyses have stated on each related node with the given order.
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