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35 results for “multigene analysis”
FIG. 11. — Russula shoreae D.Chakr., A.Ghosh, K in Three new species of genus Russula Pers. from Sal dominated forests of tropical India based on morphotaxonomy and multigene phylogenetic analysis
FIG. 11. — Russula shoreae D.Chakr., A.Ghosh, K.Das & Buyck, sp. nov. (from holotype): A-C, fresh and dissected basidiomata in the field and basecamp; D, E, transverse section through pileipellis showing elements; F, transverse section through lamellae showing basidia; G, H, transverse section through lamellae showing hymenial cystidia near the lamellae edges; I-M, transverse section through lamellae showing hymenial cystidia near the lamellae sides. Scale bars: A, B, 20 mm; D, 20 μm; E-M, 10 μm.
FIG. 9. — Russula pseudoflavida A in Three new species of genus Russula Pers. from Sal dominated forests of tropical India based on morphotaxonomy and multigene phylogenetic analysis
FIG. 9. — Russula pseudoflavida A.Ghosh, Hembrom, I.Bera & Buyck, sp. nov. (from holotype): A, basidiospore; B, basidia; C, hymenial gloeocystidia near the lamellae edges; D, hymenial gloeocystidia near the lamellae sides; E, marginal cells; F, elements of the pileipellis near the pileus margin: hyphal terminations; G, elements of the pileipellis near the pileus centre: hyphal terminations; H, doubtfull primordial hyphae. Scale bars: 10 µm.
FIG. 4 in Three new species of genus Russula Pers. from Sal dominated forests of tropical India based on morphotaxonomy and multigene phylogenetic analysis
FIG. 4. — Phylogram generated by Maximum Likelihood analysis based on nrITS sequence data of Russula boddingii Hembrom, D.Chakr., A.Ghosh & K.Das, sp. nov. and allied species. Maximum Likelihood bootstrap support values (MLbs) ≥ 70% are shown on the left of "/" and Bayesian Posterior Probabilities (BPP) ≥ 0.95 are shown on the right above or below the branches at nodes. Russula boddingii Hembrom, D.Chakr., A.Ghosh & K.Das, sp. nov. is placed in red font to highlight its phylogenetic position in the tree.
FIG. 2 in Three new species of genus Russula Pers. from Sal dominated forests of tropical India based on morphotaxonomy and multigene phylogenetic analysis
FIG. 2. — SEM micrographs of basidiospores: A, B, Russula boddingii Hembrom, D.Chakr., A.Ghosh & K.Das, sp. nov.; C, D, R. pseudoflavida A.Ghosh, Hembrom, I.Bera & Buyck, sp. nov.; E, F, R. shoreae D.Chakr., A.Ghosh, K.Das & Buyck, sp. nov. Scale bars: A-C, E, F, 2 μm; D, 1 μm.
FIG. 6 in Three new species of genus Russula Pers. from Sal dominated forests of tropical India based on morphotaxonomy and multigene phylogenetic analysis
FIG. 6. — Russula boddingii Hembrom, D.Chakr., A.Ghosh & K.Das, sp. nov. (from holotype): A, basidiospore; B, hymenial gloeocystidia near the lamellae edges; C, elements of the pileipellis near the pileus centre: hyphal terminations; D, basidia; E, hymenial gloeocystidia near the lamellae sides; F, elements of the pileipellis near the pileus margin: hyphal terminations. Scale bars: 10 µm.
FIG. 8. — Russula pseudoflavida A in Three new species of genus Russula Pers. from Sal dominated forests of tropical India based on morphotaxonomy and multigene phylogenetic analysis
FIG. 8. — Russula pseudoflavida A.Ghosh, Hembrom, I.Bera & Buyck, sp. nov. (from holotype): A-C, fresh and dissected basidiomata in the field and basecamp; D-F, transverse section through pileipellis showing elements; G, primordial hyphae in carbolfuchsine; H-J, transverse section through lamellae showing hymenial gloeocystidia near the lamellae sides; K, transverse section through lamellae showing hymenial gloeocystidia near the lamellae edges. Scale bars: A, B, 20 mm; D, E, G, 20 μm; F, H-K, 10 μm.
FIG. 10 in Three new species of genus Russula Pers. from Sal dominated forests of tropical India based on morphotaxonomy and multigene phylogenetic analysis
FIG. 10. — Phylogram generated by Maximum Likelihood analysis based on nrITS sequence data of Russula shorae D.Chakr., A.Ghosh, K.Das & Buyck, sp. nov. and their allied species. Maximum Likelihood bootstrap support values (MLbs) ≥ 70% are shown on the left of "/" and Bayesian Posterior Probabilities (BPP) ≥ 0.95 are shown on the right above or below the branches at nodes. Russula shorae D.Chakr., A.Ghosh, K.Das & Buyck, sp. nov. is placed in red font to highlight their phylogenetic positions in the tree.
FIG. 1 in Three new species of genus Russula Pers. from Sal dominated forests of tropical India based on morphotaxonomy and multigene phylogenetic analysis
FIG. 1. — Distributional map and habitat of Russula boddingii Hembrom, D.Chakr., A.Ghosh & K.Das, sp. nov., R. pseudoflavida A.Ghosh, Hembrom, I.Bera & Buyck, sp. nov. and R. shoreae D.Chakr., A.Ghosh, K.Das & Buyck, sp. nov. in India.
FIG. 7 in Three new species of genus Russula Pers. from Sal dominated forests of tropical India based on morphotaxonomy and multigene phylogenetic analysis
FIG. 7. — Phylogram generated by Maximum Likelihood analysis based on nrITS sequence data of Russula pseudoflavida A.Ghosh, Hembrom, I.Bera & Buyck, sp. nov. and allied species. Maximum Likelihood bootstrap support values (MLbs) ≥ 70% are shown on the left of "/" and Bayesian Posterior Probabilities (BPP) ≥ 0.95 are shown on the right above or below the branches at nodes. Russula pseudoflavida A.Ghosh, Hembrom, I.Bera & Buyck, sp. nov. is placed in red font to highlight its phylogenetic position in the tree.
FIG. 12. — Russula shoreae D.Chakr., A.Ghosh, K in Three new species of genus Russula Pers. from Sal dominated forests of tropical India based on morphotaxonomy and multigene phylogenetic analysis
FIG. 12. — Russula shoreae D.Chakr., A.Ghosh, K.Das & Buyck, sp. nov. (from holotype): A, basidiospore; B, elements of the pileipellis near the pileus margin: hyphal terminations and pileocystidia; C, hymenial cystidia near the lamellae sides; D, basidia; E, hymenial cystidia near the lamellae edges; F, elements of the pileipellis near the pileus centre: hyphal terminations and pileocystidia. Scale bars: 10 µm.
FIG. 3 in Three new species of genus Russula Pers. from Sal dominated forests of tropical India based on morphotaxonomy and multigene phylogenetic analysis
FIG. 3. — Phylogram generated by Maximum Likelihood analysis based on combined sequence data of nrLSU, mtSSU and rpb2 for Russula boddingii Hembrom, D.Chakr., A.Ghosh & K.Das, sp. nov., R. pseudoflavida A.Ghosh, Hembrom, I.Bera & Buyck, sp. nov. and R. shoreae D.Chakr., A.Ghosh, K.Das & Buyck, sp. nov. and their allied species. Maximum Likelihood bootstrap support values (MLbs) ≥ 70% are shown on the left of "/" and Bayesian Posterior Probabilities (BPP) ≥ 0.95 are shown on the right above or below the branches at nodes. The new species are placed in red font to highlight their phylogenetic positions in the tree.
FIG. 5 in Three new species of genus Russula Pers. from Sal dominated forests of tropical India based on morphotaxonomy and multigene phylogenetic analysis
FIG. 5. — Russula boddingii Hembrom, D.Chakr., A.Ghosh & K.Das, sp. nov. (from holotype): A-D, fresh and dissected basidiomata in the field and basecamp; E, F, transverse section through pileipellis showing elements; G, transverse section through lamellae showing hymenial gloeocystidia near the lamellae edges; H, I, transverse section through lamellae showing hymenial gloeocystidia near the lamellae sides; J, transverse section through lamellae showing basidia. Scale bars: A, 40 mm; E, 100 μm; F-J, 10 μm.
FIGURE 1 in Effectiveness of multigene analysis for associating dimorphic partners in flat wasps (Hymenoptera, Bethylidae, Dissomphalus)
FIGURE 1: Bayesian phylogram of Dissomphalus using COI and 28S genes. Posterior probabilities are drawn near the nodes.
FIGURE 3 in Effectiveness of multigene analysis for associating dimorphic partners in flat wasps (Hymenoptera, Bethylidae, Dissomphalus)
FIGURE 3: Dissomphalus verus, female.A. Head, dorsal view; B. Head, frontal view; C. Mesosoma, dorsal view; D. Mesosoma, lateral view. Scale bars = 200 µm.
FIGURE 2 in Effectiveness of multigene analysis for associating dimorphic partners in flat wasps (Hymenoptera, Bethylidae, Dissomphalus)
FIGURE 2: Bayesian phylogram of Dissomphalus using ITS2. Posterior probabilities are drawn near the nodes.
FIGURE 4 in Phylogenetic position of Aerumnosa Mohrig (Diptera, Sciaridae) as revealed by multigene analysis, with the description of four new Oriental species
FIGURE 4. Maximum likelihood hypothesis for relationships among selected taxa of Sciaridae (Diptera) based on DNA sequence data (18S, 28S, 16S, and COI), 4,338 characters. Support numbers refer to bootstrap values (BV) over 50. The photograph (by J. Ševčík) shows a representative of Sciaridae, Sciara hemerobioides (Scopoli).
FIGURE 2. A, C. Hypopygium, ventral. B. Maxillary palpus, dorsolateral. A in Phylogenetic position of Aerumnosa Mohrig (Diptera, Sciaridae) as revealed by multigene analysis, with the description of four new Oriental species
FIGURE 2. A, C. Hypopygium, ventral. B. Maxillary palpus, dorsolateral. A: Aerumnosa bituberculata sp. n. (paratype). B, C: A. gemmifera sp. n. (holotype). Scale for A 0.25 mm, for B 0.10 mm, for C 0.20 mm.
FIGURE 1. A. Wing, dorsal. B in Phylogenetic position of Aerumnosa Mohrig (Diptera, Sciaridae) as revealed by multigene analysis, with the description of four new Oriental species
FIGURE 1. A. Wing, dorsal. B. Apical part of fore tibia, prolateral. C. Apical tooth of gonostylus, ventral. D. Apical part of apical tooth of gonostylus, ventral. A, B, D: Aerumnosa horrifica sp. n. (holotype). C: A. furcillata Mohrig, 1999 (PNG). Scale for A 0.5 mm, for B-D 0.05 mm.
FIGURE 3. A, D. Hypopygium, ventral. B. 4 in Phylogenetic position of Aerumnosa Mohrig (Diptera, Sciaridae) as revealed by multigene analysis, with the description of four new Oriental species
FIGURE 3. A, D. Hypopygium, ventral. B. 4th antennal flagellomere, frontal. C. Maxillary palpus, dorsal. A, C: Aerumnosa impar sp. n. (holotype). B, D: A. horrifica sp. n. (holotype). Scale for A 0.20 mm, for B, C and D 0.10 mm.
Fig. 3 in Multigene fossil-calibrated analysis of the African lampeyes (Cyprinodontoidei: Procatopodidae) reveals an early Oligocene origin and Neogene diversification driven by palaeogeographic and palaeoclimatic events
Fig. 3 Phylogenetic relationships between African lampeyes genera as depicted in Huber (1999) and Ghedotti (2000)
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Allen Brain Atlas
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International Brain Laboratory public data
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OpenNeuro
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