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44 results for “Paralichthyidae”
Fig. 8 in External morphology, postcranial and appendicular osteology of three southwestern Atlantic flatfishes (Paralichthys, Paralichthyidae), and comparisons with other congeneric species
Fig. 8. Relationships of interorbital width to head length in Paralichthys californicus, P. dentatus, P. lethostigma, P. oblongus, P. orbignyanus, P. squamilentus, P. triocellatus, P. tropicus and P. woolmani.
Fig. 3 in External morphology, postcranial and appendicular osteology of three southwestern Atlantic flatfishes (Paralichthys, Paralichthyidae), and comparisons with other congeneric species
Fig. 3. Skeleton of the precaudal vertebrae region of Paralichthys isosceles (a); P. orbignyanus (b and d); and P. patagonicus (c). See abbreviations in text. Scale bar indicates 1 mm.
Fig. 1 in External morphology, postcranial and appendicular osteology of three southwestern Atlantic flatfishes (Paralichthys, Paralichthyidae), and comparisons with other congeneric species
Fig. 1. Photographs of three flatfishes of Paralichthys from the Southwestern Atlantic: a. Paralichthys isosceles, b. Paralichthys orbignyanus, c. Paralichthys patagonicus. Scale bar indicates 5 cm.
Fig. 1 in First Japanese Records of the Flounders Pseudorhombus elevatus and P. quinquocellatus (Teleostei: Paralichthyidae) from Okinawa Island, Ryukyu Islands
Fig. 1. Preserved (A, B, D) and fresh (C) specimens of Pseudorhombus elevatus. A, KAUM–I. 55230, 118.4 mm SL, Okinawa Island, Japan; B, KAUM–I. 55656, 39.0 mm SL, Okinawa Island, Japan; C, KAUM–I. 105148, 110.5 mm SL, Terengganu, Malaysia; D, QM I.1569, holotype of P. elevatus, 120.5 mm SL, Queensland, Australia (photo by J. Johnson).
Fig. 4 in First Japanese Records of the Flounders Pseudorhombus elevatus and P. quinquocellatus (Teleostei: Paralichthyidae) from Okinawa Island, Ryukyu Islands
Fig. 4. Dorsal-fin origin (D), anterior (AN) and posterior (PN) nostrils on blind side of Pseudorhombus elevatus (A, B) and P. quinquocellatus (C) from Okinawa Island, Japan (B, C: schematic drawings). A, KAUM–I. 55230, 118.4 mm SL; B, KAUM–I. 55641, 41.1 mm SL; C, OCF-P 10720, 55.5 mm SL. Bars indicate 2 mm.
Fig. 3 in First Japanese Records of the Flounders Pseudorhombus elevatus and P. quinquocellatus (Teleostei: Paralichthyidae) from Okinawa Island, Ryukyu Islands
Fig. 3. Ocular-side first gill arches of Pseudorhombus elevatus (A, B) and P. quinquocellatus (C, D). A, KAUM–I. 55641, 41.1 mm SL, Okinawa Island, Japan; B, KAUM–I. 55235, 135.7 mm SL, Okinawa Island, Japan; C, KAUM–I. 55592, 46.3 mm SL, Okinawa Island, Japan; D, ZMA.PISC.112569, syntype of P. quinquocellatus, 150.1 mm SL, Madura Strait, Indonesia. A and C, alizarin red stained.
Fig. 6 in First Japanese Records of the Flounders Pseudorhombus elevatus and P. quinquocellatus (Teleostei: Paralichthyidae) from Okinawa Island, Ryukyu Islands
Fig. 6. Specimens of Pseudorhombus quinquocellatus (A–D) and P. megalops (E, F) in preserved (A, C–F) and fresh (B) conditions. Magnification of ocular-side pelvic fin of P. megalops (F), showing single dark blotch on 4th ray (indicated by arrow). A, KAUM–I. 55592, 46.3 mm SL, Okinawa Island, Japan; B, KAUM–I. 113356, 121.7 mm SL, Pingtung, Taiwan; C, ZMA.PISC.112569, syntype of P. quinquocellatus, 150.1 mm SL, Madura Strait, Indonesia; D, ZMA.PISC.109328, syntype of P. quinquocellatus, 153.5 mm SL, Madura Strait, Indonesia; E, F, HUMZ 90027, 203.8 mm SL, Andaman Sea.
Fig. 5 in First Japanese Records of the Flounders Pseudorhombus elevatus and P. quinquocellatus (Teleostei: Paralichthyidae) from Okinawa Island, Ryukyu Islands
Fig. 5. Schematic drawings of Japanese species of Pseudorhombus, including P. elevatus (A), P.arsius (B), P. cinnamoneus (C), P. levisquamis (D), P. oligodon (E), P. quinquocellatus (F), P. oculocirris (G), P. pentophthalmus (H), and P. dupliciocellatus (I), showing obvious markings and dark skin flaps along gill opening on ocular side. Based on: A, KAUM–I. 105148, 110.5 mm SL; B, KAUM–I. 169146, 327.0 mm SL; C, KAUM–I. 88590, 232.8 mm SL; D, KAUM–I. 42865, 341.4 mm SL; E, KAUM–I. 160254, 238.4 mm SL; F, KAUM–I. 113356, 121.7 mm SL and ZMA.PISC.109328, 153.5 mm SL; G, KAUM–I. 115224, 173.6 mm SL; H, KAUM–I. 75596, 136.6 mm SL; I, KAUM–I. 109946, 295.6 mm SL.
Fig. 2 in First Japanese Records of the Flounders Pseudorhombus elevatus and P. quinquocellatus (Teleostei: Paralichthyidae) from Okinawa Island, Ryukyu Islands
Fig. 2. Ocular-side teeth of Pseudorhombus elevatus (A, B) and P. quinquocellatus (C) from Okinawa Island, Japan (B, C: schematic drawings). A, KAUM–I. 55230, 118.4 mm SL; B, KAUM–I. 55641, 41.1 mm SL; C, KAUM–I. 55592, 46.3 mm SL. Bars indicate 2 mm.
Fig. 7 in First Japanese Records of the Flounders Pseudorhombus elevatus and P. quinquocellatus (Teleostei: Paralichthyidae) from Okinawa Island, Ryukyu Islands
Fig. 7. Head of preserved specimen of Pseudorhombus quinquocellatus, showing skin flaps (arrows) along gill opening. KAUM–I. 55592, 46.3 mm SL, Okinawa Island, Japan.
Fig. 10 in Reproductive biology of the flatfish Etropus crossotus (Pleuronectiformes: Paralichthyidae) in the Paranaguá Estuarine Complex, Paraná State, subtropical region of Brazil
Fig. 10. Monthly absolute frequency distribution of juveniles and adult individuals of Etropus crossotus in the shallow infralittoral areas of the Paranaguá Estuarine Complex. Total amostral N = 419. *Significant values (p <0.05) for chi-square test.
Fig. 8 in Reproductive biology of the flatfish Etropus crossotus (Pleuronectiformes: Paralichthyidae) in the Paranaguá Estuarine Complex, Paraná State, subtropical region of Brazil
Fig. 8. First maturation length for females (a) and males (b) of Etropus crossotus in the shallow infralittoral areas of the Paranaguá Estuarine Complex. L 50 = the shortest total length (Lt), in which 50% of the individuals sampled were adults. L 100 = the shortest total length (Lt), in which 100% of the individuals sampled were adults. Female amostral N = 171, and male amostral N = 218.
Fig. 6 in Reproductive biology of the flatfish Etropus crossotus (Pleuronectiformes: Paralichthyidae) in the Paranaguá Estuarine Complex, Paraná State, subtropical region of Brazil
Fig. 6. Monthly percentage frequency distribution of the gonadal maturation stages of females (a) and males (b) of Etropus crossotus in the shallow infralittoral areas of the Paranaguá Estuarine Complex. A = immature; B = maturation; C = mature; PS = partially spawned; D = spawned/emptied. The numbers indicated above the bars refer to absolute frequency.
Fig. 1 in Reproductive biology of the flatfish Etropus crossotus (Pleuronectiformes: Paralichthyidae) in the Paranaguá Estuarine Complex, Paraná State, subtropical region of Brazil
Fig. 1. Location of the sampling sites in the Paranaguá Estuarine Complex, Paraná State, subtropical region of Brazil.
Fig. 5 in Reproductive biology of the flatfish Etropus crossotus (Pleuronectiformes: Paralichthyidae) in the Paranaguá Estuarine Complex, Paraná State, subtropical region of Brazil
Fig. 5. Monthly variation of the mean GSI of females (a) and males (b) of Etropus crossotus in the shallow infralittoral areas of the Paranaguá Estuarine Complex. GSI = gonadosomatic index. The error bars correspond to the standard deviation. The numbers indicated above the error bars refer to absolute frequency.
Fig. 9 in Reproductive biology of the flatfish Etropus crossotus (Pleuronectiformes: Paralichthyidae) in the Paranaguá Estuarine Complex, Paraná State, subtropical region of Brazil
Fig. 9. Monthly sex ratio (a) per length class (b) of Etropus crossotus in the shallow infralittoral areas of the Paranaguá Estuarine Complex. (a) Female amostral N = 184, and male amostral N = 237; (b) Female amostral N = 184, male amostral N = 237, and unsexed amostral N = 5. *Significant values (p <0.05) for chi-square test.
Fig. 1 in Oxidative stress parameters in juvenile Brazilian flounder Paralichthys orbignyanus (Valenciennes, 1839) (Pleuronectiformes: Paralichthyidae) exposed to cold and heat shocks
Fig. 1. (TBARS), (GST) and (CAT) activity in the liver of Paralichthys orbignyanus juveniles exposed to different temperatures (17.1, 23.0 and 28.8ºC) as a function of time exposition (72 h). Values are expressed as means ± SEM, N=5. aLower case letters indicate significantly different at the different temperatures and same time (P <0.05), determined by two-way ANOVA and by Dunnet test. ACapital letters indicate significantly different at the same temperatures and different times (P <0.05), determined by two-way ANOVA and by Dunnet test.
Fig. 1 in Scientific Note Ambicolored specimens of the flounder Paralichthys orbignyanus (Pleuronectiformes: Paralichthyidae)
Fig. 1. Blind side of an ambicoloured specimen of Paralichthys orbignyanus caught in the arroyo Pando, Uruguay (ZVCP 6458 - SL 271 mm).
Fig. 11 in Reproductive and population dynamics of the Bay whiff Citharichthys spilopterus Günther, 1862 (Pleuronectiformes: Paralichthyidae) in the Mamanguá Inlet, Rio de Janeiro, Brazil
Fig. 11. Temporal variation of the mean values of the gonadosomatic relationship (GSR) of the Bay whiff in the Mamanguá Inlet. Bars= standard deviation.
Fig. 7 in Reproductive and population dynamics of the Bay whiff Citharichthys spilopterus Günther, 1862 (Pleuronectiformes: Paralichthyidae) in the Mamanguá Inlet, Rio de Janeiro, Brazil
Fig. 7. Bay whiff oocytes at different developmental stages: a)chromatin-nucleolar (CN), perinucleolar (PN), yolk vesicles and mature stages (M), H-E, 40 X; b) yolk vesicles and secondary yolk stage, and α and β atresia, H-E, 40 X; c) primary yolk stage and early β atresia, H-E, 40 X; d) high numbers of α and β atresia, H-E, 10 X; e) and f) post-ovulatory follicles (POF), H-E, 40 X.
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Annotated Behaviour and Observability Dataset (ABODe)
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