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821 results for “Molecular Systematics”
FIGURE 3 in Phylogenetic systematics of day geckos, genus Phelsuma, based on molecular and morphological data (Squamata: Gekkonidae)
FIGURE 3. Molecular phylogeny of the Phelsuma mutabilis group as calculated from the multi-gene dataset of Rocha et al. (2009). Shown are the respective clades from the Bayesian 50% majority-rule consensus trees based on (a) the combined dataset of mitochondrial and nuclear genes, (b) the mitochondrial genes only, and (c) the nuclear genes only. See caption to Fig. 2 for further explanations.
FIGURE 2 in Phylogenetic systematics of day geckos, genus Phelsuma, based on molecular and morphological data (Squamata: Gekkonidae)
FIGURE 2. Molecular phylogeny of the Phelsuma dubia group as calculated from the multi-gene dataset of Rocha et al. (2009). Shown are the respective clades from the Bayesian 50% majority-rule consensus trees based on (a) the combined dataset of mitochondrial and nuclear genes, (b) the mitochondrial genes only, and (c) the nuclear genes only. Asterisks mark nodes supported by Bayesian posterior probabilities of 99% or higher. ML bootstraps supports above 50 are given below the corresponding branch. Relevant PP values above 95 are given above respective branches (italics). Clade numbers M and O are as in Rocha et al. (2009) and discussed in the text.
FIGURE 1 in Phylogenetic systematics of day geckos, genus Phelsuma, based on molecular and morphological data (Squamata: Gekkonidae)
FIGURE 1. Schematic cladogram summarizing phylogenetic relationships of species groups proposed herein, species contained in each group, and characters useful for their phenotypic characterization. The tree is adapted from Rocha et al. (2009) and represents the BI 50% majority-rule consensus tree of combined mitochondrial and nuclear data. Species groups containing more that one species are colour coded.
FIGURES 5–7. Westindia haxairei n in A striking new genus and species of tiger-moth (Lepidoptera: Erebidae, Arctiinae, Arctiini) from the Caribbean, with molecular and morphological analysis of its systematic placement
FIGURES 5–7. Westindia haxairei n. sp. 5 Holotype, genitalia, lateral view of the uncus (un), scaphium (sc) and tuba analis (ta); 6 Holotype, genitalia, valvae; 7 Holotype, genitalia, membranous lobe (ml) between vinculum (vin) and tegumen (tg), valvae (va).
FIGURE 9 in A striking new genus and species of tiger-moth (Lepidoptera: Erebidae, Arctiinae, Arctiini) from the Caribbean, with molecular and morphological analysis of its systematic placement
FIGURE 9. Best-score ML tree resulting from the analysis of the extended dataset (2) with the two genes as distinct partitions. Bootstrap confidence values over 50% are given at each node.
FIGURE 8 in A striking new genus and species of tiger-moth (Lepidoptera: Erebidae, Arctiinae, Arctiini) from the Caribbean, with molecular and morphological analysis of its systematic placement
FIGURE 8. Consensus tree of the four most parsimonious trees obtained after the parsimony analysis of dataset (1) combining both COI and 28S genes for 21 ingroup taxa (outgroup Helicoverpa armigera, not shown). Bootstrap confidence values over 50% are given above branches. The tree in the upper-left box represents the topology of the best-score ML tree in which the Phaegopterina clade is highlighted in black and an arrow points at Westindia haxairei n. sp.. ML bootstrap values are given below branches on the MP tree for shared nodes.
FIGURES 2–4. Westindia haxairei n in A striking new genus and species of tiger-moth (Lepidoptera: Erebidae, Arctiinae, Arctiini) from the Caribbean, with molecular and morphological analysis of its systematic placement
FIGURES 2–4. Westindia haxairei n. sp. 2: Holotype, genitalia; 3: Holotype, aedeagus; 4: Paratype female, genitalia.
FIGURES 4–9 in Molecular systematics of the fishfly genus Anachauliodes Kimmins, 1954 (Megaloptera: Corydalidae: Chauliodinae)
FIGURES 4–9. Adult habitus of Anachauliodes laboissierei (Navás). 4. Neotype male from northern Vietnam; 5. Male (Holotype of A. tonkinicus) from northern Vietnam; 6. Male (Holotype of A. sinensis) from Yunnan, China; 7. Female from northeastern India; 8. Female from Chongqing, China; 9. Female from Yunnan, China. Scale bars = 5.0 mm.
FIGURE 3 in Molecular systematics of the fishfly genus Anachauliodes Kimmins, 1954 (Megaloptera: Corydalidae: Chauliodinae)
FIGURE 3. Phylogenetic tree based on combined datasets (COI + ND2 + 16S rRNA). NJ bootstraping values/ML bootstrapping values/BI posterior probabilities are shown at corresponding nodes. The species name follows the primary identification based on locality, and finally all these two species are concluded as the single species A. laboissierei (see Discussion). Gp = geographical group.
FIGURE 2 in Molecular systematics of the fishfly genus Anachauliodes Kimmins, 1954 (Megaloptera: Corydalidae: Chauliodinae)
FIGURE 2. Intraspecific and interspecific genetic divergence based on the three gene datasets with K2P model. a, Histogram based on COI data; b, Histogram based on ND2 data; c, Histogram based on 16S rRNA data. The species name follows the primary identification based on locality, and finally all these two species are concluded as the single species A. laboissierei (see Discussion).
FIGURE 1 in Molecular systematics of the fishfly genus Anachauliodes Kimmins, 1954 (Megaloptera: Corydalidae: Chauliodinae)
FIGURE 1. Distribution map of Anachauliodes. ○: Samplings of A. laboissierei for sequencing; ⊙: Samplings of A. sinensis for sequencing; ●: Additional distribution records. The species name follows the primary identification based on locality, and finally all these two species are concluded as the single species A. laboissierei (see Discussion). Detail information of all sampling sites is given in Table 1.
FIGURES 10–15 in Molecular systematics of the fishfly genus Anachauliodes Kimmins, 1954 (Megaloptera: Corydalidae: Chauliodinae)
FIGURES 10–15. Genitalia of Anachauliodes laboissierei (Navás). 10. Male genitalia, lateral view (drawn from a male paratype of A. sinensis); 11. Male tenth gonocoxite, dorsal view (drawn from a male paratype of A. sinensis); 12. Female genitalia, lateral view (drawn from a female from Yunnan, China); 13. Male genitalia, lateral view (drawn from the holotype male of A. tonkinicus, reproduced from Kimmins (1954)); 14. Male gonocoxite 10, dorsal view (drawn from the holotype male of A. tonkinicus, reproduced from Kimmins (1954)); 15. Female genitalia, lateral view (drawn from a female from Guizhou, China.
FIGURES 16–19 in Molecular phylogenetics, systematics and host-plant associations of the Bruchidius albosparsus (Fåhraeus) species group (Coleoptera, Chrysomelidae, Bruchinae) with the description of four new species
FIGURES 16–19. Bruchidius grandemaculatus (male): 16—median lobe (ventral view); 17—lateral lobes (ventral view); Bruchidius haladai: 18—median lobe (ventral view); 19—lateral lobes (ventral view).
FIGURES 13–15 in Molecular phylogenetics, systematics and host-plant associations of the Bruchidius albosparsus (Fåhraeus) species group (Coleoptera, Chrysomelidae, Bruchinae) with the description of four new species
FIGURES 13–15. Bruchidius glomeratus (male): 13—median lobe (ventral view); 14—lateral lobes (ventral view); Bruchidius basilewskyi (male, paratype, MNHN): 15—median lobe (ventral view).
FIGURES 20–24 in Molecular phylogenetics, systematics and host-plant associations of the Bruchidius albosparsus (Fåhraeus) species group (Coleoptera, Chrysomelidae, Bruchinae) with the description of four new species
FIGURES 20–24. Bruchidius ishwaensis (male): 20—median lobe (ventral view); 21—lateral lobes (ventral view); Bruchidius ishwaensis (female): 22—spermatheca (lateral view); Bruchidius tanaensis (male): 23—median lobe (ventral view); 24—lateral lobes (ventral view).
FIGURES 1–4 in Molecular phylogenetics, systematics and host-plant associations of the Bruchidius albosparsus (Fåhraeus) species group (Coleoptera, Chrysomelidae, Bruchinae) with the description of four new species
FIGURES 1–4. Bruchidius albosparsus (male): 1—median lobe (ventral view); 2—lateral lobes (ventral view); Bruchidius aurivillii (male): 3—median lobe with internal sac evaginated (lateral view); 4—sclerites of the internal sac (ventral view).
FIGURE 27 in Molecular phylogenetics, systematics and host-plant associations of the Bruchidius albosparsus (Fåhraeus) species group (Coleoptera, Chrysomelidae, Bruchinae) with the description of four new species
FIGURE 27. Results of molecular phylogenetic analyses. On the left side the best-fit maximum likelihood (ML) tree is figured. Support values are only provided for nodes leading to species (BV <50% are not figured). On the right side the majority-rule consensus topology from Bayesian inference (BI) analyses is figured. Support values are only provided for nodes leading to species (PP <50% are not figured). Representatives of the Bruchidius albosparsus species group are highlighted using a red frame.
FIGURES 9–12 in Molecular phylogenetics, systematics and host-plant associations of the Bruchidius albosparsus (Fåhraeus) species group (Coleoptera, Chrysomelidae, Bruchinae) with the description of four new species
FIGURES 9–12. Bruchidius nongoniermai (male): 9—median lobe (ventral view); 10—lateral lobes (ventral view); Bruchidius gerrardiicola (male): 11—median lobe (ventral view); 12—lateral lobes (ventral view).
FIGURES 25–26 in Molecular phylogenetics, systematics and host-plant associations of the Bruchidius albosparsus (Fåhraeus) species group (Coleoptera, Chrysomelidae, Bruchinae) with the description of four new species
FIGURES 25–26. Bruchidius uberatus (male): 25—median lobe (ventral view); 26—lateral lobes (ventral view).
FIGURES 5–8 in Molecular phylogenetics, systematics and host-plant associations of the Bruchidius albosparsus (Fåhraeus) species group (Coleoptera, Chrysomelidae, Bruchinae) with the description of four new species
FIGURES 5–8. Bruchidius elnairensis (male): 5—median lobe (ventral view); 6—lateral lobes (ventral view); Bruchidius eminingensis (male): 7—median lobe (ventral view); 8—lateral lobes (ventral view).
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
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.