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30 results for “Chondracanthidae”
FIGURE 5. Acanthochondria alleni n in Acanthochondria cyclopsetta Pearse, 1952 and A. alleni n. sp. (Copepoda; Cyclopoida; Chondracanthidae) from flatfish hosts of the U. S. A., with comments on the taxonomic position of A. zebriae Ho, Kim & Kumar, 2000 and A. bicornis Shiino, 1955 and the validity of Pterochondria Ho, 1973
FIGURE 5. Acanthochondria alleni n. sp., adult female. (A) habitus, dorsal; (B) habitus, ventral; (C) genito-abdomen, lateral; (D) antennule, with enlarged view of apical armature, ventral; (E) antennule (armature elements omitted), anterior; (F) antenna, posterior. Scale bars: A–B, 1.00 mm; C, F, 50 µm; D–E, 100 µm.
FIGURE 4. Acanthochondria cyclopsetta Pearse, 1952 in Acanthochondria cyclopsetta Pearse, 1952 and A. alleni n. sp. (Copepoda; Cyclopoida; Chondracanthidae) from flatfish hosts of the U. S. A., with comments on the taxonomic position of A. zebriae Ho, Kim & Kumar, 2000 and A. bicornis Shiino, 1955 and the validity of Pterochondria Ho, 1973
FIGURE 4. Acanthochondria cyclopsetta Pearse, 1952, adult male. (A) maxilliped, posterior; (B) leg 1, anterior; (C) leg 2, anterior. Scale bars: A, 25 µm; B–C, 10 µm.
FIGURE 7. Acanthochondria alleni n in Acanthochondria cyclopsetta Pearse, 1952 and A. alleni n. sp. (Copepoda; Cyclopoida; Chondracanthidae) from flatfish hosts of the U. S. A., with comments on the taxonomic position of A. zebriae Ho, Kim & Kumar, 2000 and A. bicornis Shiino, 1955 and the validity of Pterochondria Ho, 1973
FIGURE 7. Acanthochondria alleni n. sp., adult male. (A) habitus, lateral; (B) genito-abdomen, ventral; (C) antennule, anteroventral; (D) antenna, posterior; (E) mandible, dorsal; (F) maxillule, ventral; (G) maxilla, posterior; (H) leg 1, posterior; (I) leg 2, inner. Scale bars: A, 100 µm; B, G, 25 µm; C–F, H–I, 10 µm.
Figure 3 in Redescription of Pseudacanthocanthopsis secunda (Yamaguti and Yamasu, 1960) (Copepoda: Chondracanthidae) parasitic on marine fishes from the Seto Inland Sea, Japan and the East China Sea off Japan and Korea
Figure 3. Pseudacanthocanthopsis secunda (Yamaguti and Yamasu, 1960), adult male. (A) Habitus, dorsal; (B) same, lateral; (C) genito-abdomen, ventral; (D) left antennule (arrowhead indicates aesthetasc), dorsal; (E) left antenna, posterior; (F) right mandible, ventral; (G) right maxillule, posterior; (H) right maxilla, posterior; (I) right maxilliped, lateral. Scale bars: A, B = 100 µm; C = 50 µm; D, I = 20 µm; E, H = 10 µm; F, G = 5 µm.
Figure 1 in Redescription of Pseudacanthocanthopsis secunda (Yamaguti and Yamasu, 1960) (Copepoda: Chondracanthidae) parasitic on marine fishes from the Seto Inland Sea, Japan and the East China Sea off Japan and Korea
Figure 1. Pseudacanthocanthopsis secunda (Yamaguti and Yamasu, 1960), adult female. (A) Habitus, dorsal; (B) same, ventral; (C) genito-abdomen, ventral; (D) left antennule, including enlarged view of distal end, ventral. Scale bars: A, B = 300 µm; C = 50 µm; D = 100 µm.
Figure 2 in Redescription of Pseudacanthocanthopsis secunda (Yamaguti and Yamasu, 1960) (Copepoda: Chondracanthidae) parasitic on marine fishes from the Seto Inland Sea, Japan and the East China Sea off Japan and Korea
Figure 2. Pseudacanthocanthopsis secunda (Yamaguti and Yamasu, 1960), adult female. (A) Left antenna, with enlarged view of distal end of atrophied tip and surface ornamentation on coxobasis and endopod, anterior; (B) labrum, ventral; (C) left mandible, dorsal; (D) right maxillule, dorsal; (E) right maxilla, posterior; (F) left maxilliped, posterior; (G) right leg 1, ventral; (H) left leg 2, ventral. Scale bars: A, B, E, F = 20 µm; C, D, H = 10 µm; G = 50 µm.
Figure 4 in Redescription of Pseudacanthocanthopsis secunda (Yamaguti and Yamasu, 1960) (Copepoda: Chondracanthidae) parasitic on marine fishes from the Seto Inland Sea, Japan and the East China Sea off Japan and Korea
Figure 4. Pseudacanthocanthopsis secunda (Yamaguti and Yamasu, 1960), adult male. (A) Right leg 1, anterior; (B) left leg 2, anterior. Scale bars: A, B = 20 µm.
FIGURE 3 in Using DNA barcoding to identify host-parasite interactions between cryptic species of goby (Coryphopterus: Gobiidae, Perciformes) and parasitic copepods (Pharodes tortugensis: Chondracanthidae, Cyclopoida)
FIGURE 3. Maximum likelihood tree derived from COI sequences of our copepod samples (labeled as P. tortugensis) plus voucher sequences from related copepods in the suborder Ergasilida (see Table 5 for a list). Sequences of copepods confamilial to P. tortugenis (Chondracanthidae) are labelled to species (and shaded blue in the online colour version), and members other taxa are labeled to family (and shaded pink in the colour online version). Support values for bipartitions are indicated, and divergence represented by dark blue scale bar = 3 %.
FIGURE 1 in Using DNA barcoding to identify host-parasite interactions between cryptic species of goby (Coryphopterus: Gobiidae, Perciformes) and parasitic copepods (Pharodes tortugensis: Chondracanthidae, Cyclopoida)
FIGURE 1. Maximum likelihood tree derived from COI sequences of our goby samples plus voucher sequences from all Coryphopterus species except C. punctipectophorus. Voucher sequences are identified by GenBank sequence ID. Sequences from several other goby species are included as outgroups (not all are identified in the figure; see Table 4 for a list). Support values for bipartitions are indicated, and divergence represented by scale bar = 6%.
FIGURE 2 in Using DNA barcoding to identify host-parasite interactions between cryptic species of goby (Coryphopterus: Gobiidae, Perciformes) and parasitic copepods (Pharodes tortugensis: Chondracanthidae, Cyclopoida)
FIGURE 2. Differences in body depth between goby species. A boxplot of body depth (as a % of body length in SL) for the three gobies, with sample sizes in parentheses. For the boxplot: box boundaries represent 25th and 75th percentiles respectively; line inside box indicates the median, lower and upper error lines indicate 10th and 90th percentiles respectively, and circles show data falling outside 10th and 90th percentiles.
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International Brain Laboratory public data
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OpenNeuro
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