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3,292 results for “DNA Barcode”
Figure 8 in Integrative taxonomy of the primitively segmented spider genus Ganthela (Araneae: Mesothelae: Liphistiidae): DNA barcoding gap agrees with morphology
Figure 8. Ganthela xianyouensis Xu, Kuntner & Chen sp. nov. A, female (XUX-2013-151). B, C, female genitalia (XUX- 2013-153): B, dorsal view; C, ventral view. RC, receptacular cluster. Scale bar: 0.5 mm.
Figure 4 in Integrative taxonomy of the primitively segmented spider genus Ganthela (Araneae: Mesothelae: Liphistiidae): DNA barcoding gap agrees with morphology
Figure 4. Ganthela cipingensis (Wang, 1989). A, female (XUX-2013-516). B, C, female genitalia (XUX-2013-517): B, dorsal view; C, ventral view; RC, receptacular cluster. Scale bar: 0.5 mm.
Figure 7 in Integrative taxonomy of the primitively segmented spider genus Ganthela (Araneae: Mesothelae: Liphistiidae): DNA barcoding gap agrees with morphology
Figure 7. Ganthela wangjiangensis Xu, Kuntner & Liu sp. nov. A, B, female genitalia (XUX-2013-159). A, dorsal view; B, ventral view. RC, receptacular cluster. Scale bar: 0.5 mm.
Figure 3 in Integrative taxonomy of the primitively segmented spider genus Ganthela (Araneae: Mesothelae: Liphistiidae): DNA barcoding gap agrees with morphology
Figure 3. Haplotype networks of Ganthela under a 95% parsimony criterion. The size of each open circle indicates haplotype frequency, numbers preceded by 'H' indicate haplotype number, and numbers in brackets indicate population sizes. Open dots on lines connecting haplotypes indicate a substitution. Dashed lines enclosing haplotype networks correspond to morphological and consensus species.
Figure 6 in Integrative taxonomy of the primitively segmented spider genus Ganthela (Araneae: Mesothelae: Liphistiidae): DNA barcoding gap agrees with morphology
Figure 6. Ganthela qingyuanensis Xu, Kuntner & Liu sp. nov. A, female (XUX-2013-139). B, C, female genitalia (XUX- 2013-142). D, E, female genitalia (XUX-2013-148). B, D, dorsal view; C, E, ventral view. F–H, male (XUX-2012-228) palp: F, prolateral view; G, ventral view; H, retrolateral view. Abbreviations: Co, conductor; CT, contrategulum; E, embolus; PC, paracymbium; T, tegulum; Scale bars: B–E, 0.5 mm; F–H, 1 mm.
Figure 9 in Integrative taxonomy of the primitively segmented spider genus Ganthela (Araneae: Mesothelae: Liphistiidae): DNA barcoding gap agrees with morphology
Figure 9. Ganthela venus Xu sp. nov. A, B, female genitalia (XUX-2013-160): A, dorsal view; B, ventral view. RC, receptacular cluster. Scale bar: 0.5 mm.
Figure 1. Bayesian COI gene tree for 51 in Integrative taxonomy of the primitively segmented spider genus Ganthela (Araneae: Mesothelae: Liphistiidae): DNA barcoding gap agrees with morphology
Figure 1. Bayesian COI gene tree for 51 terminals of Ganthela, with the results of five different species delimitation approaches, in addition to morphology (see legend). Numbers above branches show posterior probability and bootstrap supports, and values below branches show mean intraspecific (black) and interspecific genetic distances (red), calculated as Kimura two-parameter (K2P)/p-distance. Species names and locality group terminals (for specimen codes, see Table 1) according to consensus results of species delimitation approaches.
Figure 6 in Wolbachia endosymbionts distort DNA barcoding in the parasitoid wasp genus Diplazon (Hymenoptera: Ichneumonidae)
Figure 6. Bayesian majority-rule consensus tree of the Wolbachia surface protein (wsp) sequences of isolates from nine species of Diplazontinae parasitic wasps. Strains separated by molecular cloning in Escherichia coli were given arbitrary numbers. Values next to nodes represent Bayesian posterior probabilities.
Figure 5 in Wolbachia endosymbionts distort DNA barcoding in the parasitoid wasp genus Diplazon (Hymenoptera: Ichneumonidae)
Figure 5. Bayesian majority-rule consensus tree as retrieved from the internal transcribed spacer 2 rRNA. The Diplazon species are shown in different colours. Support values close to the nodes represent Bayesian posterior probabilites and the bootstrap support based on 1000 replicates. The branch leading to Diplazon albotibialis and Diplazon pectoratorius has been shortened to fit on a single page.
Figure 4 in Wolbachia endosymbionts distort DNA barcoding in the parasitoid wasp genus Diplazon (Hymenoptera: Ichneumonidae)
Figure 4. Scatterplot of isometric size versus the first shape principle component of the species pair Diplazon deletus–Diplazon flixi. PC, principal component.
Figure 1 in Wolbachia endosymbionts distort DNA barcoding in the parasitoid wasp genus Diplazon (Hymenoptera: Ichneumonidae)
Figure 1. Bayesian majority-rule consensus tree as retrieved from the barcoding fragment of COI mtDNA. Support values close to the nodes represent Bayesian posterior probabilites and bootstrap support based on 1000 replicates. Inlaid photographs show specimens of some of the unresolved species. Part of the tree was cut at the triangle and moved to the left to fit on a single page.
Figure 2 in Wolbachia endosymbionts distort DNA barcoding in the parasitoid wasp genus Diplazon (Hymenoptera: Ichneumonidae)
Figure 2. Numbers of species recovered and identity of lumped species as obtained by the threshold method for three different threshold values. Distances are uncorrected pairwise distances in the CO1 barcoding locus.
Figure 14 in Description of six new species of Loxosceles (Araneae: Sicariidae) endemic to the Canary Islands and the utility of DNA barcoding for their fast and accurate identification
Figure 14. Neighbour-joining (NJ) tree constructed with the cytochrome oxidase 1 (COI) sequences of the Canary Islands endemic Loxosceles species. Codes at the tips correspond to specimen code, followed by island name abbreviation and number referring to the haplotype network. Haplotype networks are drawn using the internal transcribed spacer 2 sequences. Each circle represents a haplotype, and numbers within the circles correspond to those in the NJ tree.
Figure 13 in Description of six new species of Loxosceles (Araneae: Sicariidae) endemic to the Canary Islands and the utility of DNA barcoding for their fast and accurate identification
Figure 13. Graphical representation of the leg length/carapace length ratio variation for Leg 1 to Leg 4 in Loxosceles. Females are coloured in green and males in red. Continuous line corresponds to the linear regression for each sex and leg, with the 95% confidence interval in grey. (Colour version of figure available online.)
Fig. 2b in Species Delineation of Malaysian Mangrove Fireflies (Coleoptera: Lampyridae) using DNA Barcodes
Fig. 2b. Continued neighbor joining tree of partial COI gene sequences (DNA barcode) for male firefly species based on genetic distances calculated with the Kimura 2 parameter model. Habitus image of Pteroptyx mangrove firefly is shown next to species name.
Fig. 3 in Species Delineation of Malaysian Mangrove Fireflies (Coleoptera: Lampyridae) using DNA Barcodes
Fig. 3. Female and larval association of firefly species in Malaysia. Process IDs (MYFI) with species names are males; an asterisk (*) denotes a female; an octothorpe (#) denotes larva. Numbers on branches are bootstrap values>50%.
Fig. 2a in Species Delineation of Malaysian Mangrove Fireflies (Coleoptera: Lampyridae) using DNA Barcodes
Fig. 2a. Partial neighbor joining tree of partial COI gene sequences (DNA barcode) for male firefly species based on genetic distances calculated with the Kimura 2 parameter model. Habitus images of mangrove fireflies of the genus Pteroptyx are shown next to the name of species.
Fig. 1 in Species Delineation of Malaysian Mangrove Fireflies (Coleoptera: Lampyridae) using DNA Barcodes
Fig. 1. Firefly collection sites in Malaysia. Circles are mangrove sites; triangles are riparian sites outside of the mangrove ecosystem. Inset: relative location of Malaysia in Southeast Asia.
Figures 7–10 in The bumblebees of the subgenus Subterraneobombus: integrating evidence from morphology and DNA barcodes (Hymenoptera, Apidae, Bombus)
Figures 7–10. Global distribution of material examined (grey spots) and successfully sequenced (black spots) for Bombus personatus, and for the species of the melanurus group. The inset scatter plots show activity by phenology (x-axis: day of the year, letters refer to months) and elevation (y-axis: metres).
Figure 103 in The bumblebees of the subgenus Subterraneobombus: integrating evidence from morphology and DNA barcodes (Hymenoptera, Apidae, Bombus)
Figure 103. Distribution of the principal colour patterns of Bombus subterraneus. White spots show specimens with bands of white hair on the thoracic dorsum (Figs 39, 40, 84; dlabolai); grey spots show specimens with bands of yellow hair on the thoracic dorsum (Figs 41–45, 85–88; latreillellus); black spots show female specimens with no obvious bands of pale hair on the thoracic dorsum (Figs 46, 47; subterraneus s.s.; males from this region have yellow bands). Introductions to New Zealand are not shown.
ScienceDex guides
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
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International Brain Laboratory public data
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OpenNeuro
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