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81 results for “Lutjanidae”
Fig. 1 in Multiloci analyses suggest synonymy among Rhomboplites, Ocyurus and Lutjanus and reveal the phylogenetic position of Lutjanus alexandrei (Lutjanidae: Perciformes)
Fig. 1. Phylogenetic relationships in Lutjaninae species from the Western Atlantic estimated by Bayesian (BI), maximum likelihood (ML) and a Species Tre analyses inferences based on a data matrix (4.4 kb) comprising mitochondrial (16S rRNA, COI, cyt b, and ND-4) and nuclear (Rhodopsin, TMO4C4 and RAG-1) markers. The BI topology is presented with the posterior probability (BI and Species Tree) and bootstrap (ML) values. The letters in the nodes refer to the clades discussed in the text.
Fig. 5 in Distributional Range Extension of the Pale Ornate Jobfish Pristipomoides amoenus (Teleostei: Perciformes: Lutjanidae) in the Western Pacific Ocean, with Notes on Newly Recognized Diagnostic Coloration
Fig. 5. Live individuals of Pristipomoides argyrogrammicus collected from Motobu, Okinawa-jima island, Japan, and reared at Okinawa Churaumi Aquarium (photos by A. Kaneko). A, B, 200 m depth, 26 September 2019; C, 105 mm TL, juvenile, 150 m depth, 1 March 2020.
Fig. 4 in Distributional Range Extension of the Pale Ornate Jobfish Pristipomoides amoenus (Teleostei: Perciformes: Lutjanidae) in the Western Pacific Ocean, with Notes on Newly Recognized Diagnostic Coloration
Fig. 4. Distributional records of Pristipomoides amoenus. Stars and circles represent localities of specimens examined in the present and previous studies, respectively. Open symbol indicates type locality.
Fig. 3 in Distributional Range Extension of the Pale Ornate Jobfish Pristipomoides amoenus (Teleostei: Perciformes: Lutjanidae) in the Western Pacific Ocean, with Notes on Newly Recognized Diagnostic Coloration
Fig. 3. Live individual of Pristipomoides amoenus collected from Tsuken-jima island, Okinawa Islands, Japan, 300 m depth, 14 December 2019, and reared at Okinawa Churaumi Aquarium (photos by A. Kaneko). A, Lateral view; B, dorsal view.
Fig. 2 in Distributional Range Extension of the Pale Ornate Jobfish Pristipomoides amoenus (Teleostei: Perciformes: Lutjanidae) in the Western Pacific Ocean, with Notes on Newly Recognized Diagnostic Coloration
Fig. 2. Preserved specimens of (A–D) Pristipomoides amoenus and (E–H) P. argyrogrammicus. A, KAUM–I. 156091, 177.3 mm SL, Amamioshima island, Kagoshima, Japan; B, D, KAUM–I. 113361, 184.7 mm SL, Dong-gang, Pingtung, Taiwan; C, KAUM–I. 156091, 221.2 mm SL, Amami-oshima island, Kagoshima, Japan; E, KAUM–I. 139296, 141.7 mm SL, Amami-oshima island, Kagoshima, Japan; F, H, KAUM–I. 108166, 210.9 mm SL, Amami-oshima island, Kagoshima, Japan; G, KAUM–I. 51137, 277.6 mm SL, Tokara Islands, Kagoshima, Japan; D, H: dorsal view.
Fig. 1 in Distributional Range Extension of the Pale Ornate Jobfish Pristipomoides amoenus (Teleostei: Perciformes: Lutjanidae) in the Western Pacific Ocean, with Notes on Newly Recognized Diagnostic Coloration
Fig. 1. Fresh specimens of (A–C) Pristipomoides amoenus and (D–F) P. argyrogrammicus. A, KAUM–I. 156091, 177.3 mm SL, Amami-oshima island, Kagoshima, Japan; B, KAUM–I. 113361, 184.7 mm SL, Dong-gang, Pingtung, Taiwan; C, KAUM–I. 156091, 221.2 mm SL, Amami-oshima island, Kagoshima, Japan; D, KAUM–I. 139296, 141.7 mm SL, Amami-oshima island, Kagoshima, Japan; E, KAUM–I. 108166, 210.9 mm SL, Amami-oshima island, Kagoshima, Japan; F, KAUM–I. 51137, 277.6 mm SL, Tokara Islands, Kagoshima, Japan.
FIGURE 5 in Diversity, seasonal and diel distribution of snappers (Lutjanidae: Perciformes) in a tropical coastal inlet in the southwestern Gulf of Mexico
FIGURE 5 | Number of individuals captured of the two most abundant species, Lutjanus griseus and L. synagris, according to a salinity gradient.
FIGURE 4 in Diversity, seasonal and diel distribution of snappers (Lutjanidae: Perciformes) in a tropical coastal inlet in the southwestern Gulf of Mexico
FIGURE 4 | Canonical Correspondence Analysis tri-plot of species, samples (months represented by numbers; letters "a" and "b" represent night and twilight samples, respectively, and the absence of letter represents daytime samples) and environmental variables (arrows). Diel periods were considered to be in a light-dark gradient in an ordinal scale with values of 2 (day), 1 (twilight), and 0 (night).
FIGURE 3 in Diversity, seasonal and diel distribution of snappers (Lutjanidae: Perciformes) in a tropical coastal inlet in the southwestern Gulf of Mexico
FIGURE 3 | Mean number and standard error of Lutjanus griseus abundance by hour of day at the inlet of La Mancha lagoon.
FIGURE 2 in Diversity, seasonal and diel distribution of snappers (Lutjanidae: Perciformes) in a tropical coastal inlet in the southwestern Gulf of Mexico
FIGURE 2 | Monthly variation of: A. Mean and standard error values of the three most abundant lutjanid species, and B. Values of the main environmental conditions studied in the study area.
FIGURE 8 in Genetic connectivity in the spotted rose snapper Lutjanus guttatus (Lutjaniformes: Lutjanidae) between Mexico and Panama throughout the Tropical Eastern Pacific
FIGURE 8 | Mantel test of correlation between genetic (y-axis) and geographic distances (x-axis) among sampled locations. The black line represents the central tendency among the dots in the scatterplot.
FIGURE 7 in Genetic connectivity in the spotted rose snapper Lutjanus guttatus (Lutjaniformes: Lutjanidae) between Mexico and Panama throughout the Tropical Eastern Pacific
FIGURE 7 | STRUCTURE-like plot illustrating cluster membership for all admixed individuals having <0.5 probability of membership to any group. Sampled locations include La Paz (LAP), Colima (COL), Oaxaca (OAX), Chiriquí (CHI), and Port of Panama (PP).
FIGURE 2 in Genetic connectivity in the spotted rose snapper Lutjanus guttatus (Lutjaniformes: Lutjanidae) between Mexico and Panama throughout the Tropical Eastern Pacific
FIGURE 2 | Genetic diversity in Lutjanus guttatus from five sampled locations. Numbers of alleles (NA), effective alleles (NEA), and private alleles (NPA) and observed (HO) and unbiased expected heterozygosities (uHE).
FIGURE 1 in Genetic connectivity in the spotted rose snapper Lutjanus guttatus (Lutjaniformes: Lutjanidae) between Mexico and Panama throughout the Tropical Eastern Pacific
FIGURE 1 | Sampling sites for adult Lutjanus guttatus along the Tropical Eastern Pacific. La Paz (PAZ), Colima (COL), and Oaxaca (OAX) are in Mexican waters and Chiriquí (CHI) and Panama Port (PAN) are in Panama.
FIGURE 5 in Genetic connectivity in the spotted rose snapper Lutjanus guttatus (Lutjaniformes: Lutjanidae) between Mexico and Panama throughout the Tropical Eastern Pacific
FIGURE 5 | Discriminant Analysis of Principal Components (DAPC) of Lutjanus guttatus from five sampled sites based on 12 microsatellite loci, 80 PCs, and four DA eigenvalues. Sampled locations include La Paz (LAP), Colima (COL), Oaxaca (OAX), Chiriquí (CHI), and Port of Panamá (PP).
FIGURE 4 in Genetic connectivity in the spotted rose snapper Lutjanus guttatus (Lutjaniformes: Lutjanidae) between Mexico and Panama throughout the Tropical Eastern Pacific
FIGURE 4 | UPGMA dendrogram of Lutjanus guttatus from five sampled locations along the Pacific coast of Mexico (La Paz, Colima, Oaxaca) and Panama (Chiriquí, Port of Panama) based on Nei's genetic distance (1972). Numbers on the nodes indicate the percent of times the illustrated topology was found with 10,000 bootstrap replicates.
FIGURE 6 in Genetic connectivity in the spotted rose snapper Lutjanus guttatus (Lutjaniformes: Lutjanidae) between Mexico and Panama throughout the Tropical Eastern Pacific
FIGURE 6 | STRUCTURE-like plot with estimated cluster memberships for all individuals derived from the DAPC. Sampled locations include La Paz (LAP), Colima (COL), Oaxaca (OAX), Chiriquí (CHI), and Port of Panama (PP).
Fig. 2 in The Pelagic Larva of the Midnight Snapper, Macolor macularis (Teleostei: Lutjanidae)
Fig. 2. Relationship between standard length and ratio of length of dorsal-fin spine 2 to that of dorsal-fin spine 3 in larvae and settled individuals of Macolor macularis and M. niger. Spine length ratio for only one settled M. macularis from Leis (2007) is plotted because the other specimens did not have intact second dorsal-fin spines.
Fig. 4 in Feeding ecology of Lutjanus analis (Teleostei: Lutjanidae) from Abrolhos Bank, Eastern Brazil
Fig. 4. Contribution of the food item Fish to the Lutjanus analis diet, from Abrolhos Bank coral reefs, Eastern Brazil, between June 2005 and March 2007. The larger the bubble, the greater the percent participation of volume. J = juveniles; SA = subadults; A = adults.
Fig. 3 in Feeding ecology of Lutjanus analis (Teleostei: Lutjanidae) from Abrolhos Bank, Eastern Brazil
Fig. 3. Contribution of the food item Decapoda to Lutjanus analis diet, from Abrolhos Bank coral reefs, Eastern Brazil, between June 2005 and March 2007. The larger the bubble, the greater the percent participation of volume. J = juveniles; SA = sub-adults; A = adults.
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