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821 results for “Molecular Systematics”
Figure 7 in Molecular systematics of Caribbean skinks of the genus Mabuya (Reptilia, Scincidae), with descriptions of two new species from Venezuela
Figure 7. Scenario of allopatric speciation along the valley of Mérida: (A) putative distribution (in grey) of the common ancestor of Mabuya meridensis and Mabuya zuliae sp. nov., and (B) present-day distribution of both species, separated by the xerophytic enclave of Lagunillas.
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 1 in Evolutionary systematics of the Indian mouse Mus famulus Bonhote, 1898: molecular (DNA/DNA hybridization and 12S rRNA sequences) and morphological evidence
Figure 1. Phylogenetic trees derived from the DNA/DNA hybridization analysis. A and B: Consensus trees resulting from the bootstrap analysis of delta-Tm (A) and delta-mode (B) 12*12 matrices. BP values are indicated when different from 100%. The lengths of the branches correspond to one tree arbitrarily selected among those of the consensus. C and D: Average consensus trees resulting from the weighted jacknife procedure for delta-Tm (C) and delta-mode (D) 13*13 matrices. The thin lines represent nodes that were not present in maximum and minimum consensus trees or that are not supported for all combinations of single deletion analysis. uUnlabelled taxa. The names in bold indicate the differences that can be observed between the two distance estimators (Tm, Mode).
Figure 4 in Evolutionary systematics of the Indian mouse Mus famulus Bonhote, 1898: molecular (DNA/DNA hybridization and 12S rRNA sequences) and morphological evidence
Figure 4. Fifty per cent majority rule consensus of 52 trees derived from the morphological analysis. Each mostparsimonious tree is 54 steps long, and has a Consistency Index of 0.52, a Retention Index of 0.72, and a Rescaled Consistency Index of 0.37. Values given below the branches represent the percentage of trees containing the specified clades.
Figure 3. Synthetic tree derived from the 12S in Evolutionary systematics of the Indian mouse Mus famulus Bonhote, 1898: molecular (DNA/DNA hybridization and 12S rRNA sequences) and morphological evidence
Figure 3. Synthetic tree derived from the 12S rRNA datasets with the inclusion of all substitutions (TV + TI). The thin lines indicate nodes that are not robustly supported by all kinds of analysis. The robustness of the different nodes are indicated as follows: [BP(BPweighted analysis)/BSI (Parsimony)]/[BP(NJ)/Reliability Percentage (ML)].
Figure 3 in Molecular systematics of the suborder Trogiomorpha (Insecta: Psocodea: 'Psocoptera')
Figure 3. ML tree estimated from the data set including taxa with missing data constraining the monophyly of Prionoglarididae. Unconstrained ML analysis does not recover monophyly of Prionoglarididae (indicated by the dotted line). Branch lengths are proportional to ML estimated branch lengths. Support values for the nodes (Bayesian posterior probability/ML bootstrap/ML bootstrap, respectively) are from an unconstrained analysis.
Figure 2 in Molecular systematics of the suborder Trogiomorpha (Insecta: Psocodea: 'Psocoptera')
Figure 2. ML tree estimated from the data set excluding taxa with missing data. Branch lengths are proportional to ML estimated branch lengths. Numbers above the nodes are Bayesian posterior probabilities and ML and MP bootstrap support values, respectively. The numbers below the nodes indicate partitioned Bremer supports of the 18S/Histone 3/16S genes, respectively.
Figure 40 in Systematic revision of the living species of Bullidae (Mollusca: Gastropoda: Cephalaspidea), with a molecular phylogenetic analysis
Figure 40. Phylogenetic hypothesis for Bullidae species based on Bayesian inference analysis of COI gene sequences. Numbers above branches are posterior probabilities expressed as percentages. Outgroups have been removed from the tree.
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Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
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.