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173 results for “Syngnathidae”
FIGURE 1 in Taxonomic review of the pipefish genus Pseudophallus Herald, with the description of a new species (Syngnathiformes: Syngnathidae)
FIGURE 1. Schematic view of Pseudophallus indicating measurements taken in the present study. Male, lateral view: 1. standard length, 5. brood pouch length, 7. anal-ring depth, 8. body depth, 9. trunk depth, 12. snout depth and 15. head depth. Female, lateral view: 2. head length, 3. tail length, 4. dorsal-fin base length and 13. pectoral-fin length. Anterior part of body, lateral view: 11. snout length, 14. pectoral-fin base length and 16. orbital diameter. Female, anal-papillae region, ventral view: 6. body width and 10. anal-papillae length. In red, trunk rings. In green, tail rings. Hatched pattern: subdorsal rings.
FIGURE 5 in Taxonomic review of the pipefish genus Pseudophallus Herald, with the description of a new species (Syngnathiformes: Syngnathidae)
FIGURE 5. Distribution map of species of Pseudophallus occurring in drainages along the Pacific coast based on specimens examined in this study.
FIGURE 3 in Taxonomic review of the pipefish genus Pseudophallus Herald, with the description of a new species (Syngnathiformes: Syngnathidae)
FIGURE 3: Detail of anterior portion of body of species of the genus Pseudophallus A—Pseudophallus brasiliensis (paratype) USNM 212058, 69.1 mm SL, Igarapé Inó Furo de Panaquera, Rio Tocantins, Pará, Brazil. B—Pseudophallus elcapitanensis MCZ 88623, 110.6 mm SL, Río Picuro, Darien, Panama. C—Pseudophallus mindii (holotype) USNM 81770, 90.3 mm SL, Mindi Creek, Canal Zone, Panama. D—Pseudophallus starksii USNM 208365, 171.1 mm SL, upper tributary of Río Jaque, Província de Darien, Panama. E—Pseudophallus galadrielae. (holotype), FMNH 126156, 63.1 mm SL, Lago Izabal, Guatemala.
FIGURE 7 in Taxonomic review of the pipefish genus Pseudophallus Herald, with the description of a new species (Syngnathiformes: Syngnathidae)
FIGURE 7. Maps of distribution of specimens of Pseudophallus available for study. Left side: distribution of specimens examined for the morphological analysis in this study. Right side map: distribution of voucher specimens with genetic sequences on GenBank (as of April 2020).
FIGURE 4 in A new species of seahorse (Teleostei: Syngnathidae) from the South China Sea
FIGURE 4. Map generated by Surfer ® for Windows (Keckler, 1997) showing the sampling locations for the specimen of new seahorse species, H. casscsio sp. nov., along China’s coast. Holotype location indicated by triangle.
FIGURE 3 in A new species of seahorse (Teleostei: Syngnathidae) from the South China Sea
FIGURE 3. Neighbor-joining (NJ) trees based on cytb (a) and CR (b) from seahorses haplotypes of Hippocampus along China's coast.
Figure 3 in A spectacular new species of seadragon (Syngnathidae)
Figure 3. Comparison of the skeletonof the three species of seadragons.X-rayradiographs of (a)the leafy seadragon Phycodurus eques, SIO 04-28; (b) the common seadragon Phyllopteryx taeniolatus, SIO 84-300; (c) Phyllopteryx dewysea n. sp., holotype WAM P33223.002. Scale bars,1 cm.
Figure 1 in A spectacular new species of seadragon (Syngnathidae)
Figure 1. Distribution and phylogenetic relationships of the three seadragon species. The range of the leafy seadragon is shown in gold, the common seadragon in blue and the type locality of the new seadragon Phyllopteryx dewysea n. sp. is indicated by the red arrow. The red circle represents the collection sites of the three paratypes. The maximum-likelihood tree is based on the partitioned dataset (4416 bp). Numbers next to the nodes indicate bootstrap (top) and jackknife (bottom) values; full support is indicated by white circles.
Figure 2 in A spectacular new species of seadragon (Syngnathidae)
Figure 2. Holotype of the new seadragon Phyllopteryx dewysea n. sp. (a) On-deck shortly after being trawled; (b) preserved, with tip of tail and eggs removed for DNA extraction; pa pectoral area; ds facing dorsal spine;(c–f) three-dimensional scan generated by µCT; (c)outer bony plates,arrows pointing to different enlarged spines;(d)left halfof the plates removed toreveal parts of the skull,pectoral girdle and spine (in white); (e) ventral view of the enlarged pectoralarea;(f)detail of the trunk region.Scale bars,1 cm.
FIGURE 2 in A new species of seahorse (Teleostei: Syngnathidae) from the South China Sea
FIGURE 2. Comparison of morphological characteristics and body sizes among the three seahorses H. kuda, H. casscsio sp. nov., and H. mohinikei (a), and the principal components analysis (PCA) of the three species according to the morphological data (b).
FIGURE 2 in A new seahorse (Teleostei: Syngnathidae: Hippocampus) from south-western Australia
FIGURE 2. Radiographs of Hippocampus paradoxus holotype (A) and H. minotaur paratype AMS IA.3509 (B).
FIGURE 3 in A new seahorse (Teleostei: Syngnathidae: Hippocampus) from south-western Australia
FIGURE 3. Reconstruction of Hippocampus paradoxus skeleton from CT scan of holotype. Ventrolateral view, showing inferior trunk ridge remnants (A) and anal fin pterygiophores (B).
Figure 1 in A spectacular new species of seadragon (Syngnathidae)
Figure 1. Distribution and phylogenetic relationships of the three seadragon species. The range of the leafy seadragon is shown in gold, the common seadragon in blue and the type locality of the new seadragon Phyllopteryx dewysea n. sp. is indicated by the red arrow. The red circle represents the collection sites of the three paratypes. The maximum-likelihood tree is based on the partitioned dataset (4416 bp). Numbers next to the nodes indicate bootstrap (top) and jackknife (bottom) values; full support is indicated by white circles.
FIGURE 6 in Morphological and molecular evidence for the occurrence of three Hippocampus species (Teleostei: Syngnathidae) in Brazil
FIGURE 6. Hippocampus erectus: A. Hippocampus villosus Günther 1880, from Bahia, Brazil; holotype BMNH 1879.5.14.464 kindly provided by James Maclaine; B. from Florida, USA/Redpath Museum-Mc Gill University, kindly provided by Sara Lourie. C. H. erectus, couple from Brazil (Pernambuco); D. H. patagonicus; E. H. reidi from Brazil, couples of Rio Grande do Sul and Pernambuco States, respectively.
FIGURE 5. A in Morphological and molecular evidence for the occurrence of three Hippocampus species (Teleostei: Syngnathidae) in Brazil
FIGURE 5. A. Hippocampus erectus, male; B. Hippocampus reidi, female; from Figueiredo & Menezes (1980). C. Hippocampus patagonicus from Brazil, male 112 mm (Note: the dark diagonal streaks on the back of head and parallel streaks on the trunk and tail, and also the elongated dark spot at the top of the first dorsal fin rays described by Figueiredo & Menezes,1980 to H. erectus); D. H. patagonicus from Argentina, Holotype MACN 8808, kindly provided by Diego Luzzatto.
FIGURE 4 in Morphological and molecular evidence for the occurrence of three Hippocampus species (Teleostei: Syngnathidae) in Brazil
FIGURE 4. Neighbor-Joining tree of the Hippocampus species analyzed, using K2P distances. Bootstrap values>70 shown.
FIGURE 3 in Morphological and molecular evidence for the occurrence of three Hippocampus species (Teleostei: Syngnathidae) in Brazil
FIGURE 3. Hippocampus erectus: A. MCZ 35290; B. USNM161345; C. TCWC 7312.04; D. RMMU 2337a; E. PH 122e. Hippocampus reidi: F. MCZ 158435; G. USNM 131966a; H. USNM 131966b; I. MCZ 59348; J, PH 28r. Hippocampus patagonicus: K. MZUSP 51138; L. FURG 830206; M. RMMU 2859a; N. MCP 2687; O. PH 48p.
FIGURE 4 in A new species of seahorse (Teleostei: Syngnathidae) from the South China Sea
FIGURE 4. Map generated by Surfer® for Windows (Keckler, 1997) showing the sampling locations for the specimen of new seahorse species, H. casscsio sp. nov., along China's coast. Holotype location indicated by triangle.
FIGURE 4 in Syngnathus chihiroe, a new species of pipefish (Syngnathidae) from southern Japan
FIGURE 4. Preserved specimen of Syngnathus schlegeli, BSKU 47138 (1 of 9 specimens), 79.4 mm SL, East China Sea.
FIGURE 2 in Syngnathus chihiroe, a new species of pipefish (Syngnathidae) from southern Japan
FIGURE 2. Semi-schematic drawings of (A) lateral and (B) dorsal views of head; (C) lateral and (D) dorsolateral views of trunk-tail portion in holotype of Syngnathus chihiroe sp. nov., NSMT-P 106296, 92.0 mm SL. AR: anal ring; DE: dorsal-fin base end; DO: dorsal-fin base origin; ITAR: inferior tail ridge; ITR: inferior trunk ridge; LTAR: lateral tail ridge; LTR: lateral trunk ridge; STAR: superior tail ridge; STR: superior trunk ridge. Dorsal-fin not illustrated in (C) and (D), except for 1st and last rays in (D). Bars indicate 3 mm.
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Allen Brain Atlas
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International Brain Laboratory public data
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OpenNeuro
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