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2,620 results for “Molecular Phylogeny”
Figure 4 in Revision of the genus Bosmina Baird, 1845 (Cladocera: Bosminidae), based on evidence from male morphological characters and molecular phylogenies
Figure 4. Bosmina (Bosmina) longirostris: from a duck pond near Ghent University, Belgium. A, postabdomen of juvenile female; B, juvenile male I, lateral view; C, D, postabdomen of juvenile male I; E, rostrum and antennae I of juvenile male I; F, limb I of juvenile male I, inner view; G, H, distal portion of limb I of juvenile male I; I, juvenile male II, lateral view; J–L, postabdomen of juvenile male II; M, rostrum and antennae I of juvenile male II; N, antenna II of juvenile male II; O, limb I of juvenile male II, inner view; P, distal portion of juvenile male II. See text for a list of morphological abbreviations. Scale bars: 100 Mm.
Figure 3 in Revision of the genus Bosmina Baird, 1845 (Cladocera: Bosminidae), based on evidence from male morphological characters and molecular phylogenies
Figure 3. Bosmina (Bosmina) longirostris: adult male from a duck pond near Ghent University, Belgium (A–D), and juvenile male II from Lake Glubokoe, Moscow Area, Russia (E–H). A, B, postabdomen; C, tip of postabdomen in distal view; D, distal portion of limb I; E, F, rostrum; G, lateral head pore and coxal portion of antenna II; H, postabdomen and copulatory hook on limb I. Scale bar: 10 Mm.
Figure 2 in Revision of the genus Bosmina Baird, 1845 (Cladocera: Bosminidae), based on evidence from male morphological characters and molecular phylogenies
Figure 2. Bosmina (Bosmina) longirostris: adult male from a duck pond near Ghent University, Belgium. A, lateral view; B, anterior view; C, head; D, lateral head pore; E, F, rostrum; G, antenna II; H, mucro. Scale bars: 100 Mm for (A, B); 10 Mm for (C–H).
Figure 1 in Revision of the genus Bosmina Baird, 1845 (Cladocera: Bosminidae), based on evidence from male morphological characters and molecular phylogenies
Figure 1. Bosmina (Bosmina) longirostris: adult male from a duck pond near Ghent University, Belgium. A, B, general view; C, lateral head pore; E, F, postandomen; G, antennae I, anterior view; H, antenna II, posterior view; I, distal portion of antenna II, anterior view; J, limb I, inner view; K–M, distal portion of limb I; N, subdistal lobe. See text for a list of morphological abbreviations. Scale bars: 100 Mm.
Figure 2. Phylogenetic relationships among the 29 in Molecular phylogeny and phylogeography of the Greek populations of the genus Orthometopon (Isopoda, Oniscidea) based on mitochondrial DNA sequences
Figure 2. Phylogenetic relationships among the 29 specimens of Orthometopon species. Individuals from two other terrestrial isopod species were used as outgroup taxa: Ligidium sp. and Armadillidium vulgare. Phylogenetic analyses, maximum parsimony (MP), maximum likelihood (ML), and Bayesian inference (BI), all produced trees with the same topology. Only the BI tree is presented here. Numbers above the branches indicate bootstrap values in the MP and ML analyses, respectively (MP/ML). Numbers below the branches indicate the posterior probabilities of the Bayesian analysis (BI).
Figure 1 in Molecular phylogeny and phylogeography of the Greek populations of the genus Orthometopon (Isopoda, Oniscidea) based on mitochondrial DNA sequences
Figure 1. Map showing the sampling localities of the 29 specimens used for the DNA analysis. The numbers correspond to those listed in Table 1.
Figures 5–14 in Systematics and phylogeny of the tribe Paragini (Diptera: Syrphidae) based on molecular and morphological characters
Figures 5–14. Head, lateral view (Figs 5–7); head, anterior view (Figs 8–10); antenna (Figs 10–14). Paragus (Pandasyopthalmus) jozanus (Figs 5, 8); Paragus (Pandasyopthalmus) brachycerus (Fig. 13); Paragus (Pandasyopthalmus) atratus (Fig. 14); Paragus (Pandasyopthalmus) haemorrhous (Figs 7, 10); Paragus (Paragus) quadrifasciatus (Fig. 9); Paragus (Paragus) strigatus (Fig. 12); Paragus (Serratoparagus) auritus (Fig. 11); Paragus (Serratoparagus) capricorni (Fig. 6). Names of subgenera according classification proposed in this paper.
Figures 72–83 in Systematics and phylogeny of the tribe Paragini (Diptera: Syrphidae) based on molecular and morphological characters
Figures 72–83. Aedeagal apodeme, lateral view (Figs 72,74,76,78,80,82); aedeagal apodeme, dorsal view (Figs 73,75,77,79,81,83). Paragus (Afroparagus) borbonicus (Figs 74, 75); Paragus (Pandasyopthalmus) brachycerus (Figs 78, 79); Paragus (Pandasyopthalmus) jozanus (Figs 80, 81); Paragus (Pandasyopthalmus) haemorrhous (Figs 82, 83); Paragus (Paragus) variabilis (Figs 76, 77); Paragus (Serratoparagus) auritus (Figs 72, 73).
Figures 55–60 in Systematics and phylogeny of the tribe Paragini (Diptera: Syrphidae) based on molecular and morphological characters
Figures 55–60. Hypandrium, lateral view (Figs 55–57); hypandrium, ventral view (Figs 58–60). Paragus (Pandasyopthalmus) jozanus (Figs 57, 60); Paragus (Pandasyopthalmus) brachycerus (Figs 55, 58); Paragus (Pandasyopthalmus) manensis (Figs 56, 59).
Figures 49–54 in Systematics and phylogeny of the tribe Paragini (Diptera: Syrphidae) based on molecular and morphological characters
Figures 49–54. Hypandrium, lateral view (Figs 49–52); epandrium, ventral view (Fig. 43); epandrium, dorsal view (Fig. 54). Paragus (Paragus) absidatus (Figs 53, 54); Paragus (Paragus) pecchiolli (Fig. 51); Paragus (Paragus) punctulatus (Fig. 49); Paragus (Paragus) quadrifasciatus (Fig. 50); Paragus (Paragus) strigatus (Fig. 52).
Figures 35–42 in Systematics and phylogeny of the tribe Paragini (Diptera: Syrphidae) based on molecular and morphological characters
Figures 35–42. Epandrium, ventral view (Figs 35,37,39,41); epandrium, ventral view (Figs 36,38,40,42). Paragus (Pandasyopthalmus) brachycerus (Figs 41, 42); Paragus (Pandasyopthalmus) jozanus (Figs 37, 38); Paragus (Pandasyopthalmus) manensis (Figs 39, 40); Paragus (Serratoparagus) auritus (Figs 35, 36).
Figures 66–71 in Systematics and phylogeny of the tribe Paragini (Diptera: Syrphidae) based on molecular and morphological characters
Figures 66–71. Aedeagus complex, lateral view. Paragus (Afroparagus) borbonicus (Fig. 70); Paragus (Pandasyopthalmus) brachycerus (Fig. 67); Paragus (Pandasyopthalmus) jozanus (Fig. 66); Paragus (Pandasyopthalmus) tibialis (Fig. 68); Paragus (Paragus) pecchiollii (Fig. 71); Paragus (Serratoparagus) auritus (Fig. 69).
Figures 100–112 in Systematics and phylogeny of the tribe Paragini (Diptera: Syrphidae) based on molecular and morphological characters
Figures 100–112. Ejaculatory apodeme and spermal sac (Figs 100–106); postgonites (Figs 107–112). Paragus (Afroparagus) borbonicus (Figs 104, 108); Paragus (Pandasyopthalmus) brachycerus (Figs 102, 110); Paragus (Pandasyopthalmus) jozanus (Figs 103, 111); Paragus (Pandasyopthalmus) manensis (Fig. 101); Paragus (Pandasyopthalmus) haemorrhous (Fig. 112); Paragus (Pandasyopthalmus) longiventris (Fig. 100); Paragus (Paragus) quadrifasciatus (Fig. 106); Paragus (Paragus) variabilis (Fig. 109); Paragus (Serratoparagus) capricorni (Fig. 105); Paragus (Serratoparagus) auritus (Fig. 107).
Figure 4 in Systematics and phylogeny of the tribe Paragini (Diptera: Syrphidae) based on molecular and morphological characters
Figure 4. Strict consensus tree of eight equally parsimonious trees resulting from parsimony analysis of combined morphological and molecular data sets (length = 1365 steps, consistency index = 0.53, retention index = 0.67). Bootstrap and Bremer support values above and below nodes, respectively. The new taxonomical classification of the Paragini, according to results of this study, is shown on the right side of the tree.
Figure 1 in Systematics and phylogeny of the tribe Paragini (Diptera: Syrphidae) based on molecular and morphological characters
Figure 1. One of the six most parsimonious trees using only morphological characters. Multistate characters treated as unordered (length = 53 steps, consistency index = 0.69, retention index = 0.92). Character numbers are indicated above nodes, character states below nodes. Closed circle, non-homoplastic changes; open circle, changes with homoplasy. The current taxonomy [Stuckenberg's (1954a, b) species groups] is shown on the right side of the tree. B = bicolor-group; T = tibialis-group.
Figures 23–34 in Systematics and phylogeny of the tribe Paragini (Diptera: Syrphidae) based on molecular and morphological characters
Figures 23–34. Abdomen, male (Figs 23–28,34); abdomen, female (Figs 29–33). Paragus (Afroparagus) borbonicus (Figs 24, 30); Paragus (Pandasyopthalmus) brachycerus (Fig. 27); Paragus (Pandasyopthalmus) jozanus (Figs 26, 32); Paragus (Pandasyopthalmus) atratus (Fig. 28); Paragus (Pandasyopthalmus) haemorrhous (Fig. 33); Paragus (Pandasyopthalmus) longiventris (Fig. 34); Paragus (Paragus) strigatus (Figs 25, 31); Paragus (Serratoparagus) azureus (Fig. 29); Paragus (Serratoparagus) capricorni (Fig. 23).
Figures 43–48 in Systematics and phylogeny of the tribe Paragini (Diptera: Syrphidae) based on molecular and morphological characters
Figures 43–48. Hypandrium, lateral view (Figs 43–45); hypandrium, ventral view (Fig. 39); epandrium, ventral view (Fig. 47); epandrium, dorsal view (Fig. 48). Paragus (Afroparagus) borbonicus (Figs 45–4748); Paragus (Serratoparagus) auritus (Fig. 44); Paragus (Serratoparagus) capricorni (Fig. 43). Names of genera and subgenera applied according to the classification proposed in this paper.
Figures 15–22 in Systematics and phylogeny of the tribe Paragini (Diptera: Syrphidae) based on molecular and morphological characters
Figures 15–22. Scutum, dorsal view (Figs 15–17); scutellum, dorsal view (Figs 18–20); wing (Figs 21,22). Paragus (Pandasyopthalmus) jozanus (Fig. 20); Paragus (Pandasyopthalmus) haemorrhous (Figs 17, 22); Paragus (Paragus) pecchiolii (Figs 16, 21); Paragus (Paragus) strigatus (Fig. 19); Paragus (Serratoparagus) auritus (Fig. 15); Paragus (Serratoparagus) capricorni (Fig. 18).
Figures 61–65 in Systematics and phylogeny of the tribe Paragini (Diptera: Syrphidae) based on molecular and morphological characters
Figures 61–65. Hypandrium, lateral view (Figs 61,62); hypandrium, ventral view (Fig. 63); epandrium, ventral view (Fig. 64); epandrium, ventral view (Fig. 65). Paragus (Pandasyopthalmus) tibialis (Figs 62, 63, 65); Paragus (Pandasyopthalmus) longiventris (Figs 61, 64).
Figure 5 in Molecular phylogeny of Anomalodesmata (Mollusca: Bivalvia) inferred from 18S rRNA sequences
Figure 5. Summary cladogram representing the relationships of the anomalodesmatan family-level taxa inferred from the 18S rRNA data. Asterisks indicate lacking support for the monophyly of the taxon.
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