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173 results for “molecular recognition”
Morphological, molecular, and biogeographic evidence for specific recognition of Euthamia hirtipes and Euthamia scabra (Asteraceae, Astereae)
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FIGURE 8 in Molecular and morphological data support recognition of a new genus of New World direct-developing frog (Anura: Terrarana) from an under-sampled region of South America
FIGURE 8. Distribution of Tachiramantis in the Cordillera de Mérida of Venezuela and the Cordillera Oriental of Colombia. The range gap corresponds to the relatively low-elevation Táchira Depression. Known point localities of each species are indicated, based on specimens listed in the Appendix, as well as those listed in Rivero (1984), and those with data on GBIF (www.gbif.org).
FIGURE 7. High resolution X in Molecular and morphological data support recognition of a new genus of New World direct-developing frog (Anura: Terrarana) from an under-sampled region of South America
FIGURE 7. High resolution X-ray computed tomography of digits of Tachiramantis prolixodiscus (KU 132729, adult male); (A) manus, (B) pes.
FIGURE 6. High resolution X in Molecular and morphological data support recognition of a new genus of New World direct-developing frog (Anura: Terrarana) from an under-sampled region of South America
FIGURE 6. High resolution X-ray computed tomography of skull of Tachiramantis prolixodiscus (KU 132729, adult male); (A) dorsal view, (B) ventral view, (C) side view.
FIGURE 5. High resolution X in Molecular and morphological data support recognition of a new genus of New World direct-developing frog (Anura: Terrarana) from an under-sampled region of South America
FIGURE 5. High resolution X-ray computed tomography of Tachiramantis prolixodiscus (KU 132729, adult male); dorsal view.
FIGURE 4 in Molecular and morphological data support recognition of a new genus of New World direct-developing frog (Anura: Terrarana) from an under-sampled region of South America
FIGURE 4. Tachiramantis prolixodiscus specimen KU 132729, adult male paratype of the type species of Tachiramantis.
FIGURE 3 in Molecular and morphological data support recognition of a new genus of New World direct-developing frog (Anura: Terrarana) from an under-sampled region of South America
FIGURE 3. Tachiramantis species in life. (A) Tachiramantis prolixodiscus specimen CBA 7510, adult female from Calderas, Barinas, Venezuela. (B) Tachiramantis lentiginosus specimen CVULA 9100, adult male from Guaraque, Mérida, Venezuela.
FIGURE 2 in Molecular and morphological data support recognition of a new genus of New World direct-developing frog (Anura: Terrarana) from an under-sampled region of South America
FIGURE 2. Maximum likelihood phylogeny of Terrarana, based on analysis of the genes 12S, tRNA-Val, 16S, RAG1, and TYR. Support values (Bayesian posterior probabilities/ML bootstrap support/MP bootstrap support) are indicated for nodes bearing on intergeneric relationships (i.e., at or above the genus level) with ML bootstrap support ≥ 50%.
FIGURE 1 in Molecular and morphological data support recognition of a new genus of New World direct-developing frog (Anura: Terrarana) from an under-sampled region of South America
FIGURE 1. (A) 2.5 degree grid cell map of terraranan distribution, depicting degree of sampling in each grid cell as standardized residuals of a linear regression of the number of species with available DNA sequences vs. total number of species. (B) Scatterplot of number of species with available DNA sequences vs. total number of species for all 287 grid cells.
Fig. 6 in Molecular and morphological analyses support recognition of Prostanthera volucris (Lamiaceae), a new species from the Central Tablelands of New South Wales
Fig. 6. (a, b) Output from morphometric analysis of 29 characters measured from 20 specimens of Prostanthera, showing three discrete groups. (a) Flexible unweighted pair-group method with arithmetic mean (UPGMA) phenogram, with yellow line indicating dissimilarity value; (b)semi-strong hybrid multidimensional scaling (SSHMDS) ordination with characters, with PCC vectors with R2 values of>0.9, with the size of each sphere representing its position in three-dimensional space (stress = 0.0503). See Supplementary Table S2 for OTU codes, Supplementary Table S3 for character list, and Supplementary Table S5 for PCC values.
Fig. 5 in Molecular and morphological analyses support recognition of Prostanthera volucris (Lamiaceae), a new species from the Central Tablelands of New South Wales
Fig. 5. Individual ancestry proportions from model-based clustering by using sNMF of all sampled individuals for values of K = 2–8. Putative species groups are labelled. Sample codes follow those outlined in Supplementary Table S1.
Fig. 3 in Molecular and morphological analyses support recognition of Prostanthera volucris (Lamiaceae), a new species from the Central Tablelands of New South Wales
Fig. 3. Neighbour-network graph produced by SplitsTree5 of DArTseq SNP data of samples remaining following the exclusion of clones. Putative species groups are coloured, and populations are labelled. NP, National Park; NR, Nature Reserve.
Fig. 4 in Molecular and morphological analyses support recognition of Prostanthera volucris (Lamiaceae), a new species from the Central Tablelands of New South Wales
Fig. 4. Phylogeny generated by SVDquartets analysis of DArTseq SNP data for 27 samples of Prostanthera. Putative species groups are coloured, and popula-tions are labelled. Labels are species/ phrase names and population of origin, followed by primary collector and collection number.
Fig. 2 in Molecular and morphological analyses support recognition of Prostanthera volucris (Lamiaceae), a new species from the Central Tablelands of New South Wales
Fig. 2. Three-dimensional (3-D) plot of principalcomponent analysis (PCA) of DArTseq SNP data of samples remaining following the exclusion of clones, showing PCA1 v. PCA2 v. PCA3. NP, National Park; NR, Nature Reserve.
Fig. 8 in Molecular and morphological analyses support recognition of Prostanthera volucris (Lamiaceae), a new species from the Central Tablelands of New South Wales
Fig. 8. Photograph images of Prostanthera volucris. (a) Habitat and associated vegetation; (b) habit; (c) habit, close-up; (d) flower and bud. Images: R. P. O'Donnell.
Fig. 1 in Molecular and morphological analyses support recognition of Prostanthera volucris (Lamiaceae), a new species from the Central Tablelands of New South Wales
Fig. 1. Occurrence records of Prostanthera gilesii, P. phylicifolia sens. str. and the Evans Crown population obtained from Australia's Virtual Herbarium (2021) after removal of misidentified records and accessions of P. phylicifolia s. lat. as identified by O'Donnell et al. (2021). Populations sampled in this study for genomic analysis (Supplementary Table S1) are indicated with larger, transparent circles, and populations with associated herbarium vouchers that were measured for morphological phenetic analysis (Supplementary Table S2) are indicated with crosses.
Fig. 7 in Molecular and morphological analyses support recognition of Prostanthera volucris (Lamiaceae), a new species from the Central Tablelands of New South Wales
Fig. 7. Illustration of Prostanthera volucris. (a) Habit; (b) detail of branch surface, showing retrorse trichomes; (c) leaf surface, abaxial view; (d) detail of abaxial leaf lamina surface, showing midrib and indumentum; (e) leaf lamina surface, adaxial view; (f) flower, lateral view, showing calyx, prophyll, corolla, anthers; (g) flower, ventral view, showing corolla inner surface of lobes and tube, stamens, and style; (h) stamen, showing ventral view of anther locules, connective appendage and distal portion of staminal filament; (i) stamen, showing dorsal view of anther, connective appendage and distal portion of staminal filament; (j) mericarp, ventral view, showing abscission scar. Illustration: R. P. O'Donnell.
FIGURE 9 in A review of species recognition in the Phenacoccus aceris species-group (Hemiptera: Coccomorpha: Pseudococcidae) using molecular and morphological data
FIGURE 9. Bayesian tree inferred from the combined dataset including sequences of P. aceris and P. azaleae from GenBank.
FIGURE 8 in A review of species recognition in the Phenacoccus aceris species-group (Hemiptera: Coccomorpha: Pseudococcidae) using molecular and morphological data
FIGURE 8. Haplotype network of the COI gene for mealybugs collected on (A) Fraxinus spp. and (B) Zanthoxylum bungeanum. For the abbreviations for the collection sites, see caption for Fig. 1.
FIGURE 6 in A review of species recognition in the Phenacoccus aceris species-group (Hemiptera: Coccomorpha: Pseudococcidae) using molecular and morphological data
FIGURE 6. Illustration of the distribution of oral-collar tubular ducts on the dorsum of PACE2 (left) and PACE4B (right), which occurred sympatrically in Beijing. The habitus photographs of mealybugs from the front and side view are provided to show the shape of secretions.
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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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