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2,185 results for “Integrative taxonomy”
Fig. 16 in Integrative taxonomy supports two new species of Macrobiotus (Tardigrada: Eutardigrada: Macrobiotidae) allowing further discussion on the genus phylogeny
Fig. 16. Macrobiotus mileri sp. nov., images of claws (paratypes, ISEA PAS). A. Claws II with smooth lunulae (PCM, forma aporata). B. Claws IV with dentate lunulae (PCM, forma aporata). C. Dentate lunulae (PCM, forma aporata). D. Claws II with smooth lunulae, respectively (SEM, forma porata). E. Claws IV with dentate lunulae (SEM, forma porata). The empty arrow indicates a singular cuticular pore, filled indented arrowheads indicate shadowed extensions extending from the lunulae (under PCM), filled flat arrowheads indicate paired muscles attachments, and empty indented arrowheads indicate the horseshoe structure connecting the anterior and the posterior claw. Scale bars in μm.
Fig. 13 in Integrative taxonomy supports two new species of Macrobiotus (Tardigrada: Eutardigrada: Macrobiotidae) allowing further discussion on the genus phylogeny
Fig. 13. Macrobiotus mileri sp. nov., a schematic drawing of a specimen belonging to forma porata, showing the distribution of patches of cuticular pores, body and leg granulation as well as the gartershaped structures on legs I–III.
Fig. 14 in Integrative taxonomy supports two new species of Macrobiotus (Tardigrada: Eutardigrada: Macrobiotidae) allowing further discussion on the genus phylogeny
Fig. 14. Macrobiotus mileri sp. nov., PCM images of dense granulation patches and cuticular structures on legs (paratypes, ISEA PAS). A. Granulation on the external, proximal and internal surface of leg II. B. Garter-shaped structure and granulation on the external surface of leg II. C. Granulation on the internal surface of leg III. D. Granulation on the hind leg. The empty arrow indicates a cuticular pore, filled arrows indicate the garter-shaped structure. All photographs taken from specimens belonging to forma aporata; scale bars in μm.
Fig. 15 in Integrative taxonomy supports two new species of Macrobiotus (Tardigrada: Eutardigrada: Macrobiotidae) allowing further discussion on the genus phylogeny
Fig. 15. Macrobiotus mileri sp. nov., SEM images of dense granulation patches and cuticular structures on legs (paratypes, ISEA PAS). A. Granulation and garter-shaped structure on the external surface of leg I (forma porata). B. Granulation and garter-shaped structure on the external surface of leg II (forma aporata). C. Granulation on the internal surface of leg II (forma porata). D. Granulation on the hind leg (forma porata). Empty arrows indicate cuticular pores, filled arrows indicate the garter-shaped structure, empty flat arrowheads indicate the small cuticular bulge / fold, filled flat arrowheads indicate small pores in between granulation that are visible only under SEM. Scale bars in μm.
Fig. 12 in Integrative taxonomy supports two new species of Macrobiotus (Tardigrada: Eutardigrada: Macrobiotidae) allowing further discussion on the genus phylogeny
Fig. 12. Macrobiotus mileri sp. nov., SEM images of cuticular pores patches in two paratypes of forma porata (ISEA PAS). A, C. Patches II, III and IV. B, D. Dorsal view on the caudal body region with continuous patch V of pores. Scale bars in μm.
Fig. 8 in Integrative taxonomy supports two new species of Macrobiotus (Tardigrada: Eutardigrada: Macrobiotidae) allowing further discussion on the genus phylogeny
Fig. 8. Macrobiotus ovovittatus sp. nov., SEM images of eggs (ISEA PAS). A–B. Entire egg. C–D. Details of egg processes and the surface between them. E–F. Details of the terminal disc. The filled indented arrowheads indicate thickenings around the process bases and filled flat arrowheads indicate faintly visible pores. Scale bars in μm.
Fig. 2 in Integrative taxonomy supports two new species of Macrobiotus (Tardigrada: Eutardigrada: Macrobiotidae) allowing further discussion on the genus phylogeny
Fig. 2. Macrobiotus ovovittatus sp. nov., SEM images of body granulation and cuticular pores of a paratype (ISEA PAS). A. Body granulation and pores in the dorsal cuticle. B. Body granulation and pores in the ventral cuticle. Scale bars in μm.
Fig. 11 in Integrative taxonomy supports two new species of Macrobiotus (Tardigrada: Eutardigrada: Macrobiotidae) allowing further discussion on the genus phylogeny
Fig. 11. Macrobiotus mileri sp. nov., PCM images of cuticular pores patches in forma porata (paratype, ISEA PAS). A. Patches II, III and IV. B. Patches IV and V. Scale bars in μm.
Fig. 1 in Integrative taxonomy supports two new species of Macrobiotus (Tardigrada: Eutardigrada: Macrobiotidae) allowing further discussion on the genus phylogeny
Fig. 1. Macrobiotus ovovittatus sp. nov., PCM images of habitus, body granulation and cuticular pores of the holotype (GL.001.01, ISEA PAS). A. Habitus, dorso-ventral projection. B. Granulation in the dorsal cuticle. C. Granulation in the ventral body cuticle. D. Pores in the dorsal cuticle. E. Pores in the ventral cuticle. Scale bars in μm.
Fig. 7 in Integrative taxonomy supports two new species of Macrobiotus (Tardigrada: Eutardigrada: Macrobiotidae) allowing further discussion on the genus phylogeny
Fig. 7. Macrobiotus ovovittatus sp. nov., PCM images of the eggs (ISEA PAS) under ×1000 magnification. A, C, E. Egg surface with focus on egg processes and terminal discs. B, D, F. Egg surface, focus on the surface between processes. G–H. Midsections of egg processes. The filled indented arrowheads indicate thickenings around the process bases and filled flat arrowheads indicate faintly visible pores. Scale bars in μm.
Fig. 10 in Integrative taxonomy supports two new species of Macrobiotus (Tardigrada: Eutardigrada: Macrobiotidae) allowing further discussion on the genus phylogeny
Fig. 10. Macrobiotus mileri sp. nov., SEM images of body granulation and cuticular pores (paratype, ISEA PAS, forma aporata). A. Body granulation in the dorsal head region. B. Body granulation in the dorsal central body region. C. Body granulation in the dorsal caudal body region. D. General view of body granulation in the lateral caudal body region. E–F. Singular pores in the body cuticle. Scale bars in μm.
Fig. 6 in Integrative taxonomy supports two new species of Macrobiotus (Tardigrada: Eutardigrada: Macrobiotidae) allowing further discussion on the genus phylogeny
Fig. 6. Macrobiotus ovovittatus sp. nov., mouth opening and the oral cavity armature of a single paratype (ISEA PAS) seen under SEM from different angles. A. Dorsal view. B. Ventral view. The filled flat arrowheads indicate the first band of teeth, the empty flat arrowheads indicate the second band of teeth, and the filled indented arrowheads indicate the third band of teeth. Scale bars in μm.
Fig. 5 in Integrative taxonomy supports two new species of Macrobiotus (Tardigrada: Eutardigrada: Macrobiotidae) allowing further discussion on the genus phylogeny
Fig. 5. Macrobiotus ovovittatus sp. nov., PCM images of the buccal apparatus, A–D. Holotype (GL.001.01, ISEA PAS). E. Paratype (ISEA PAS). A. An entire buccal apparatus. B–C. The oral cavity armature, dorsal and ventral teeth, respectively. D–E. Placoid morphology, dorsal and ventral placoids respectively. The filled flat arrowheads indicate the first band of teeth, the empty flat arrowheads indicate the second band of teeth, the filled indented arrowheads indicate the third band of teeth, and the empty indented arrowheads indicate central and subterminal constrictions in the first and second macroplacoid, respectively. Scale bars in μm.
Fig. 3 in Integrative taxonomy supports two new species of Macrobiotus (Tardigrada: Eutardigrada: Macrobiotidae) allowing further discussion on the genus phylogeny
Fig. 3. Macrobiotus ovovittatus sp. nov., PCM (A, C, E) and SEM (B, D, F) images of dense granulation patches on legs of paratypes (ISEA PAS). A–B. Granulation on the external surface of leg III. C–D. Granulation on the internal surface of leg III and II, respectively. E–F. Granulation on the hind legs. The empty flat arrowheads indicate a single continuous cuticular bar above the claws, the filled flat arrowheads indicate a pulvinus-shaped cuticular bulge, and the filled indented arrowheads indicate shadowed extensions extending from the lunulae. Scale bars in μm.
Fig. 9 in Integrative taxonomy supports two new species of Macrobiotus (Tardigrada: Eutardigrada: Macrobiotidae) allowing further discussion on the genus phylogeny
Fig. 9. Macrobiotus mileri sp. nov., PCM images of habitus and body granulation. A. Dorso-ventral projection (holotype, IL.001.11, ISEA PAS, forma aporata). B. Granulation in the dorsal cuticle (paratype, ISEA PAS, forma aporata). C. Granulation in the dorsal body cuticle (paratype, ISEA PAS, forma porata). Scale bars in μm.
Figure 4 in Integrative taxonomy supports two new species of Macrobiotus (Tardigrada: Eutardigrada: Macrobiotidae) allowing further discussion on the genus phylogeny
Figure 4. Macrobiotus ovovittatus sp. nov., images of claws. A–C. PCM, holotype (GL.001.01, ISEA PAS). D–F. SEM, paratype (ISEA PAS). A. Claws II with smooth lunulae. B. Claws IV with dentate lunulae. C. Dentate lunulae. D–E. Claws II and III with smooth lunulae, respectively. F. Claws IV with dentate lunulae. The empty flat arrowheads indicate a single continuous cuticular bar above the claws, the filled indented arrowheads indicate shadowed extensions extending from the lunulae (under PCM) or the places where they should be expected (SEM), the filled flat arrowheads indicate paired muscles attachments, and the empty indented arrowheads indicate the horseshoe structure connecting the anterior and the posterior claw. Scale bars in μm.
Fig 10 in Correction: Integrated Taxonomy Reveals Hidden Diversity in Northern Australian Fishes: A New Species of Seamoth (Genus Pegasus)
Fig 10. Molecular species identification of Pegasus species using Genetic treeML trees. (A) sequences from the 16S gene; (B) sequences from the COI gene. Trees are based on the K2 evolutionary distance model and are shown here with mined Pegasus and Eurypegasus sequences from GenBank. The trees are shown here with an E. draconis outgroup. Bootstrap support values (following 1000 replicates) are shown above the nodes. https://doi.org/10.1371/journal.pone.0251680.g001
Figure 4 in Integrative taxonomy reveals cryptic diversity in North American Lasius ants, and an overlooked introduced species
Figure 4. Average thorax profile of Lasius ponderosae sp. nov. (a) and members of the Palearctic L. nigercomplex (b). Figures were created by image averaging (L. ponderosae sp. nov n = 35; Palearctic L. niger-complex n = 30 specimens). Frontal view of head and detail of clypeus of the Holotype worker of L. ponderosae sp. nov. (c) and a non-type worker of L. niger (d).
Figure 5. Principal component plot for the 4 in Integrative taxonomy reveals cryptic diversity in North American Lasius ants, and an overlooked introduced species
Figure 5. Principal component plot for the 4 most diagnostic morphometric variables (GUHL, dCLAN, MP6 and nSt) to distinguish individual specimens of Lasius ponderosae sp. nov. (n = 39) from those belonging to morphologically similar-looking Palearctic species (n = 49). For a definition of variables see Supplementary Table S3 and Fig. S1.
Figure 6 in Integrative taxonomy reveals cryptic diversity in North American Lasius ants, and an overlooked introduced species
Figure 6. Projected occurrence probability from ecological niche modeling for the Palearctic ant Lasius niger which has been introduced to Canada, based on 19 climatic and one land use variable. The intensity of blue colour indicates the probability of occurrence on a 0–1 scale based on 180 presences (black circles) and 182 absences (white circles) in the native range in the Old World (a). The model was then projected to North America to estimate areas of suitable habitat for this introduced species (b). These maps have been created using the free R-package "ggplot2" v3.3.5 (https://ggplot2.tidyverse.org) in R v4.1.1.
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