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714 results for “neotype designation”
Figure 6 in Designation of a neotype for Synodontis schall (Bloch and Schneider, 1801) and description of two new species of Synodontis (Siluriformes: Mochokidae)
Figure 6. Scatterplots of (A) orbit diameter (OD % SL), (B) pectoral girdle width (PGW % SL), (C) prepectoral length (PPcL % SL) against SL (mm), and (D) caudal peduncle depth (CPD % HL) against orbit diameter (OD % HL) of the specimens different from S. schall sensu stricto (n524). ©5specimens from the Ogun (Nigeria), Oueme (Benin) and Mono (Togo) rivers, ‵5specimens from the Kogon River (Guinea),.5specimen from Fatala River.
Figure 5 in Designation of a neotype for Synodontis schall (Bloch and Schneider, 1801) and description of two new species of Synodontis (Siluriformes: Mochokidae)
Figure 5. PCA on the measurements of all specimens different from S. schall sensu stricto (23 variables, n521). ©5specimens from the Ogun (Nigeria), Oueme (Benin) and Mono (Togo) rivers, ‵5specimens from the Kogon River (Guinea).
Figure 7 in Designation of a neotype for Synodontis schall (Bloch and Schneider, 1801) and description of two new species of Synodontis (Siluriformes: Mochokidae)
Figure 7. Holotype of Synodontis ouemeensis MRAC 97-007-P-0012, Avagbodji (Benin), Oueme River, Coll. P. Vandewalle, 108 mm SL.
Figure 4 in Designation of a neotype for Synodontis schall (Bloch and Schneider, 1801) and description of two new species of Synodontis (Siluriformes: Mochokidae)
Figure 4. Scatterplot of the width of the premaxillary toothplate (PMW % SL) against SL (mm) for all examined S. schall specimens (n5105). Z5S. schall sensu stricto, m5all other specimens.
Figure 2 in Designation of a neotype for Synodontis schall (Bloch and Schneider, 1801) and description of two new species of Synodontis (Siluriformes: Mochokidae)
Figure 2. Schematic illustration of the measurements taken on each specimen (modified from Skelton and White 1992).
Figure 3 in Designation of a neotype for Synodontis schall (Bloch and Schneider, 1801) and description of two new species of Synodontis (Siluriformes: Mochokidae)
Figure 3. PCA on the measurements of all examined S. schall specimens (23 variables, n592). Z5S. schall sensu stricto, m5all other specimens.
Figure 8 in Designation of a neotype for Synodontis schall (Bloch and Schneider, 1801) and description of two new species of Synodontis (Siluriformes: Mochokidae)
Figure 8. Holotype of Synodontis kogonensis MRAC 92-059-P-1933: Ndyarendi (Guinea), Kogon River (11°219–14°309W), Coll. G. Teugels et al., 108 mm SL.
FIGURES 1–8 in The neotype designation for Podismopsis gynaemorpha Ikonnikov, 1911 (Orthoptera: Acrididae)
FIGURES 1–8. Podismopsis gynaemorpha, male (neotype). 1. Body, lateral view; 2. The same, dorsal view; 3. Head, frontal view; 4. Sternal plate, ventral view; 5. Apex of abdomen, lateral view; 6. The same, dorsal view; 7. Genitalia, lateral view; 8. The same, dorsal view.
FIGURES 12–19 in What is Baetis rhodani (Pictet, 1843) (Insecta, Ephemeroptera, Baetidae)? Designation of a neotype and redescription of the species from its original area
FIGURES 12–19. Larval structures of Baetis rhodani: 12: distal margin of abdominal tergum IV. 13: distal margin of abdominal tergum V. 14: distal margin of abdominal tergum VI. 15: distal margin of abdominal sternum IV. 16: gill IV. 17: dorsal margin of gill IV. 18: paraproct. 19: foreleg. 20: tarsal claw.
FIGURES 7–11 in What is Baetis rhodani (Pictet, 1843) (Insecta, Ephemeroptera, Baetidae)? Designation of a neotype and redescription of the species from its original area
FIGURES 7–11. Larval structures of Baetis rhodani: 7 – 9: labrum of different specimens. 10: detail of antenna (scape and pedicel). 11: tip of maxillary palp.
FIGURES 1–6 in What is Baetis rhodani (Pictet, 1843) (Insecta, Ephemeroptera, Baetidae)? Designation of a neotype and redescription of the species from its original area
FIGURES 1–6. Larval structures of Baetis rhodani: 1: labrum (left: ventral; right: dorsal). 2: hypopharynx. 3: right mandible. 4: left mandible. 5: left maxilla. 6: labium.
FIGURES 23–25 in What is Baetis rhodani (Pictet, 1843) (Insecta, Ephemeroptera, Baetidae)? Designation of a neotype and redescription of the species from its original area
FIGURES 23–25. Male imaginal structures of Baetis rhodani: 23: forewing. 24: hindwing. 25: genitalia.
FIGURES 14–20 in Ornithodoros brasiliensis Aragão (Acari: Argasidae): description of the larva, redescription of male and female, and neotype designation
FIGURES 14–20. Scanning electron microscopy of Ornithodoros brasiliensis male. 14. Capitulum, hypostome smaller than the female (arrowed). 15. Idiosoma dorsal view, the circle corresponds a disc of the tegument, dorsoventral groove distinct (arrowed). 16. A disc of the tegument increased 500x. 17. Idiosoma ventral view. 18. Four pairs of bulging lateral structures on supracoxal folds (arrowed). 19. Bulging lateral structure in focus. 20. Tarsus I, rounded and prominent dorsal humps present, large capsule of Haller's organ with numerous halleral setae (arrowed). Scale bars: 14, 500µm; 15, 1000µm; 16, 200µm; 17, 600µm; 18, 500µm; 19, 250µm; 20, 60µm.
FIGURES 7–13 in Ornithodoros brasiliensis Aragão (Acari: Argasidae): description of the larva, redescription of male and female, and neotype designation
FIGURES 7–13. Scanning electron microscopy of Ornithodoros brasiliensis female. 7. Capitulum. 8. Idiosoma dorsal view, dorsoventral groove distinct (arrowed). 9. Idiosoma ventral view. 10. Idiosoma lateral view, spiracular plate (arrowed). 11. Preanal, transverse postanal and medium postanal grooves (arrowed). 12. Tarsus I, with a pointed dorsal hump, anterior to Haller's organ, and 3 posterior rounded (arrowed). 13. Hallers' organ, with large capsule and distal hump (arrowed). Abbreviations: PA, preanal groove; Ph, post hypostomal setae; Tpa, transverse postanal groove; Mpa, medium postanal groove. Scale bars: 7–10– 12, 300µm; 8–9–11, 500µm; 13, 60µm.
FIGURES 1–6 in Ornithodoros brasiliensis Aragão (Acari: Argasidae): description of the larva, redescription of male and female, and neotype designation
FIGURES 1–6. Scanning electron microscopy of Ornithodoros brasiliensis larva. 1. Capitulum dorsal view, presence of short spines palpal article I (arrowed). 2. Capitulum ventral view. 3. Idiosoma dorsal view, dorsal plate (arrowed). 4. Idiosoma ventral view, mild transverse postanal groove present (arrowed). 5. Opisthosoma ventral view, presence of two posteromedian setae in one specimen (arrowed). 6. Capsule of Haller's organ open, numerous halleral spinose setae present (arrowed). Abbreviations: A, anal setae; C, dorsal central setae; CA, circumanal setae, DAL, dorsal anterolateral setae; DPL, dorsal posterolateral setae; Ph, post hypostomal setae; PM, posteromedian setae; ST (sternal setae), VPL, ventral posterolateral setae. Scale bars: 1, 90µm; 2, 60µm; 3–4, 300µm; 5, 40µm; 6, 30µm.
FIGURE 28 in Ornithodoros brasiliensis Aragão (Acari: Argasidae): description of the larva, redescription of male and female, and neotype designation
FIGURE 28. Phylogenetic tree based on 16 Argasidae ticks and Ixodes holocyclus (outgroup). The alignment was made with 631 characters (including gaps) of the 16S rRNA mitochondrial gene used in the analysis. The Bayesian support (posterior probabilities) values are derived from 500 replicates. The branch length scale is the number of substitutions per site. The species with similar morphology are in a grey box.
FIGURES 21–27 in Ornithodoros brasiliensis Aragão (Acari: Argasidae): description of the larva, redescription of male and female, and neotype designation
FIGURES 21–27. Tarsi of adults of Ornithodoros rostratus (Figures 21–25) and Ornithodoros brasiliensis (Figures 26–27). 21. Tarsus I of O. rostratus, the distal and proximal dorsal humps (arrowed). 22. Capsule of Haller's organ of O. rostratus. 23– 25. Tarsi II–IV of O. rostratus, distal and proximal humps present on figures 23–24 (arrowed), and the proximal hump on tarsus IV is absent on figure 25. 26. Tarsus III of O. brasiliensis, rounded dorsal humps present (arrowed). 27. Tarsus IV of O. brasiliensis, proximal and dorsal humps present. (arrowed) Scale bars: 21, 90µm; 22, 40µm; 23–25, 120µm; 26–27, 200µm.
FIGURE 6 in Redescription of Hexanchus nakamurai Teng 1962, (Chondrichthyes: Hexanchiformes: Hexanchidae), with designation of a neotype
FIGURE 6. Dorsal fin radial skeleton of Hexanchus nakamurai, FIGURE 7. Anal fin radial skeleton of Hexanchus immature male 482 mm TL (DAE 881504). nakamurai, immature male 482 mm TL (DAE 881504).
FIGURE 8 in Redescription of Hexanchus nakamurai Teng 1962, (Chondrichthyes: Hexanchiformes: Hexanchidae), with designation of a neotype
FIGURE 8. Cranium of Hexanchus nakamurai, immature male 482 mm TL (DAE 881504). Cranial terminology and measurement provided in Appendix 2. A. dorsal view. B. ventral view. C. lateral view..
FIG. 15 in New records, neotype designation and DNA sequences of three species of Chaetonotus (Gastrotricha: Chaetonotidae) from Brazil
FIG. 15. Phylogenetic relationships of Chaetonotidae inferred from a Maximum Likelihood analysis. Values near branches show bootstrap support, values below 95 are omitted.
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