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106 results for “Carangidae”
FIGURE 6 in Indo-West Pacific species of Trachinotus with spots on their sides as adults, with description of a new species endemic to the Marquesas Islands (Teleostei: Carangidae)
FIGURE 6. Height of largest spot on mid-side of body plotted against head length in four species of Trachinotus.
FIGURE 2 in Indo-West Pacific species of Trachinotus with spots on their sides as adults, with description of a new species endemic to the Marquesas Islands (Teleostei: Carangidae)
FIGURE 2. Variation in shapes of vomer and palatine tooth patches in Trachinotus spp.: A, Trachinotus botla, CAS 16478, 231 mm FL; B, Trachinotus baillonii, CAS 16479, 226 mm FL.
FIGURE 11 in Indo-West Pacific species of Trachinotus with spots on their sides as adults, with description of a new species endemic to the Marquesas Islands (Teleostei: Carangidae)
FIGURE 11. Distributions of Trachinotus macrospilus and T. baillonii. Solid symbols indicate specimens examined; open symbols indicate acceptable literature or photographic records.
FIGURE 1 in Indo-West Pacific species of Trachinotus with spots on their sides as adults, with description of a new species endemic to the Marquesas Islands (Teleostei: Carangidae)
FIGURE 1. Anterior part of anal fin of Trachinotus macrospilus (ANSP 153724) with 3 pterygiophores in first interhemal space. Abbreviations: As, anal-fin spines; Apt1, first anal-fin pterygiophore; Hs, haemal spines; IHS1, first interhaemal space. Photograph by Zachary S. Randall.
FIGURE 21 in Indo-West Pacific species of Trachinotus with spots on their sides as adults, with description of a new species endemic to the Marquesas Islands (Teleostei: Carangidae)
FIGURE 21. Maximum parsimony phylogeny of 16 of 20 species of Trachinotus and out-group carangid taxa Lichia and Scomberoides. Numbers above branches are maximum parsimony bootstrap support calculated from 1000 pseudoreplications.
FIGURE 2 in Paradeontacylix godfreyi n. sp. (Digenea: Sanguinicolidae) from the heart of wild Seriola lalandi (Perciformes: Carangidae) in southern Australia
FIGURE 2. Large posterior tegumental spines (lpts) and medium posterior tegumental spines (mpts), ventral view of Australian Paradeontacylix species. A. Paradeontacylix godfreyi n. sp, holotype, showing clawlike large posterior tegumental spines arranged in 4 longitudinal rows each comprising 4 spines and medium posterior tegumental spines arranged in 2 to 3 longitudinal rows each comprising 4 spines on either side of large posterior tegumental spines. B. Paradeontacylix sp. (SAMA AHC 28912) showing pointed, slightly curved large posterior tegumental spines arranged in 4 longitudinal rows each comprising 3 spines and medium posterior tegumental spines arranged in 3 longitudinal rows each comprising 3 spines on either side of large posterior tegumental spines. Scale bars = 30 m.
FIGURE 1. Paradeontacylix godfreyi n in Paradeontacylix godfreyi n. sp. (Digenea: Sanguinicolidae) from the heart of wild Seriola lalandi (Perciformes: Carangidae) in southern Australia
FIGURE 1. Paradeontacylix godfreyi n. sp. A. Whole adult parasite, holotype, ventral view. B. Posterior portion, holotype, ventral view, showing testicular field and post–ovarian region. Abbreviations: ac, anterior caecum; c, cirrus; cs, cirrus sac; cv, common vitelline duct; e, egg; fgp, female genital pore; g, gland cells; lpts, large posterior tegumental spines; m, mouth; ma, margin; me, metraterm; Mg, Mehlis' gland; mgp, male genital pore; mpts, medium posterior tegumental spines; mts, marginal tegumental spines; o, ovary; oe, oesophagus; oo, oötype; ov, oviduct; pc, posterior caecum; sr, seminal receptacle; sv, seminal vesicle; t, testis; u, uterus; v, vitellarium; vd, vas deferens. Scale bars: A = 1,000 m; B = 250 m.
FIGURES 1–3. Stephanostomum talakitok n in Stephanostomum talakitok n. sp. (Digenea: Acanthocolpidae) from the golden trevalley, Gnathanodon speciosus (Perciformes: Carangidae), from Ningaloo Reef, Western Australia
FIGURES 1–3. Stephanostomum talakitok n. sp. 1. Ventral view of holotype, with uterus and cirrussac in outline only. 2. Anterior extremity showing circumoral and body spines. 3. Terminal genitalia, lateral view. Abbreviations: ej, ejaculatory duct; pp, pars prostatica; sv, seminal vesicle. Scalebars: 1, 1mm; 2, 3, 200 µ m.
Figure 4 in Factors linked to temporal and spatial variation in the metazoan parasite communities of green jack Caranx caballus (Günther 1868) (Pisces: Carangidae) from the Pacific coast of Mexico
Figure 4. Distinction of Caranx caballus stocks on the Pacific coast of Mexico using parasites as biological tags. (Inset: matrix of classification coefficient values for parasites of C. caballus that allow to differentiate stocks of this host; * indicates the importance of each species of parasite in distinguishing between locations). Dact, Dactylostomum winteri and Caro, Caligus robustus identified hosts from Zihuatanejo; this last copepod also differentiated fish from Puerto Vicente. Buce, Bucephalus varicus and Psca, Pseudopecoeloides carangi were the most important parasite species to identify hosts from Acapulco Bay. Allo, Allopyragraphorus caballeroi and Gnat = Gnathia sp. were the most important parasite species for assigning fish to Marquelia. Psse, Pseudomazocraes selene and Caal = Caligus alalongae allowed identification of the largest number of hosts from Zapotalito.
Figure 3 in Factors linked to temporal and spatial variation in the metazoan parasite communities of green jack Caranx caballus (Günther 1868) (Pisces: Carangidae) from the Pacific coast of Mexico
Figure 3. Graphic of multivariate discriminant analyses of Caranx caballus stocks, from Guerrero (Acapulco Bay, Marquelia, Puerto Vicente and Zihuatanejo), and Oaxaca (Zapotalito) Mexico. The symbols represent each one of the fish examined in each location. Centroid = mean group.
Figure 2 in Factors linked to temporal and spatial variation in the metazoan parasite communities of green jack Caranx caballus (Günther 1868) (Pisces: Carangidae) from the Pacific coast of Mexico
Figure 2. Scatter plot of principal component analysis (PCA) of factors that influence the species richness and diversity of the parasite infracommunities at Caranx caballus, from Mexican Pacific coast. Predictor variables: Size = host body size, Tcomponent = total number of component parasites, Rcomponent = species richness of component parasites, Feeding = variety of host diet, Year = sampling year, Location = sampling site. Dependent variables (infracommunity parameters): Load = total number of parasites per infracommunity, Diversity = Brillouin diversity index values, Richness = number of parasite species per infracommunity. Equitability = evenness of the parasite abundances.
Figure 1 in Factors linked to temporal and spatial variation in the metazoan parasite communities of green jack Caranx caballus (Günther 1868) (Pisces: Carangidae) from the Pacific coast of Mexico
Figure 1. Similarity percentages (Bray–Curtis index) for parasite communities of Caranx caballus between locations and sampling years.
Data from: "Complete mitochondrial and partial nuclear genomes for the jack species Caranx ignobilis (Forsskål, 1775) and C. melampygus (Cuvier, 1833) (Perciformes:Carangidae) from the High Hawaiian Islands" in Genomic Resources Notes accepted 1 October 2013 – 30 November 2013
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Figure 2 from: Zhang L, Zhang J, Song P, Liu S, Liu P, Liu C, Lin L, Li Y (2020) Reidentification of Decapterus macarellus and D. macrosoma (Carangidae) reveals inconsistencies with current morphological taxonomy in China. ZooKeys 995: 81-96. https://doi.org/10.3897/zookeys.995.58092
Figure 2 Minimum spanning tree for D. macarellus and D. macrosoma based on mitochondrial COI sequences.
Figure 3 from: Ruas C, Vaz-dos-Santos AM (2017) Age structure and growth of the rough scad, Trachurus lathami (Teleostei: Carangidae), in the Southeastern Brazilian Bight. Zoologia 34: 1-11. https://doi.org/10.3897/zoologia.34.e20475
Figure 3 - Trachurus lathami: external surface of a left otolith showing measurements (OL = otolith length and OH = otolith height) and ring analysis (M and L are rings formed before the first annual one; more details in the text). Scale bar: 1 mm.
Figures 8-11 from: Ruas C, Vaz-dos-Santos AM (2017) Age structure and growth of the rough scad, Trachurus lathami (Teleostei: Carangidae), in the Southeastern Brazilian Bight. Zoologia 34: 1-11. https://doi.org/10.3897/zoologia.34.e20475
Figures 8-11 - Trachurus lathami: space-time distribution of age groups in the Southeastern Brazilian Bight during (8) summer of 2008 (January-February), (9) spring of 2008 (November), (10) spring of 2009 (September-October) and (11) summer of 2010 (February–March).
Figure 2 from: Ruas C, Vaz-dos-Santos AM (2017) Age structure and growth of the rough scad, Trachurus lathami (Teleostei: Carangidae), in the Southeastern Brazilian Bight. Zoologia 34: 1-11. https://doi.org/10.3897/zoologia.34.e20475
Figure 2 - Map of the Southeastern Brazilian Bight (SEBB) showing the locations of fishing hauls with Trachurus lathami catches by period (n = 17, some points are overlapped in the map).
Figures 5-6 from: Ruas C, Vaz-dos-Santos AM (2017) Age structure and growth of the rough scad, Trachurus lathami (Teleostei: Carangidae), in the Southeastern Brazilian Bight. Zoologia 34: 1-11. https://doi.org/10.3897/zoologia.34.e20475
Figures 5-6 - Trachurus lathami: (5) Box plot of ring radius (whiskers = minimum and maximum, box = interquartile range, bar = mean). (6) Constancy graph showing the position of rings radius (R) against total length (TL) (n = 278).
Figure 7 from: Ruas C, Vaz-dos-Santos AM (2017) Age structure and growth of the rough scad, Trachurus lathami (Teleostei: Carangidae), in the Southeastern Brazilian Bight. Zoologia 34: 1-11. https://doi.org/10.3897/zoologia.34.e20475
Figure 7 - Trachurus lathami: von Bertalanffy growth curve fitted (line) to observed total lengths (points) by age (n = 278).
Figure 1 from: Ruas C, Vaz-dos-Santos AM (2017) Age structure and growth of the rough scad, Trachurus lathami (Teleostei: Carangidae), in the Southeastern Brazilian Bight. Zoologia 34: 1-11. https://doi.org/10.3897/zoologia.34.e20475
Figure 1 - Commercial landings of Trachurus lathami and Sardinella brasiliensis in the Southeastern Brazilian Bight (SEBB). Data of 2008, 2009 and 2010 are restricted to states of Paraná and São Paulo that representing 95% of the total landings. Data source: Valentini and Pezzutto 2006, MMA 2007a, b, 2008 UNIVALI 2009, 2010, 2011, Instituto de Pesca 2013.
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