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2,620 results for “Molecular Phylogeny”
FIGURE 2 in The first zoeal stage morphology of Achelous spinimanus (Latreille), A. gibbesii (Stimpson), and Portunus sayi (Gibbes) (Decapoda, Brachyura) provides support for molecular phylogeny
FIGURE 2. Achelous spinimanus (Latreille, 1819), Zoea I. a. First maxilliped; b. Second maxilliped; c. Pleon, dorsal view; d. Pleon, lateral view; e. detail of spinulation of the telson furcae. (Scale bars: a, b = 0.05 mm; c, d = 0.1 mm; e = 0.02 mm)
FIGURE 1 in The first zoeal stage morphology of Achelous spinimanus (Latreille), A. gibbesii (Stimpson), and Portunus sayi (Gibbes) (Decapoda, Brachyura) provides support for molecular phylogeny
FIGURE 1. Achelous spinimanus (Latreille, 1819), Zoea I. a. Cephalothorax, lateral view; b. Magnification of the lateroventral margin of cephalothorax; c. Antennule; d. Antenna; e. Maxillule; f. Maxilla. (Scale bars: a = 0.1 mm; b - f = 0.05 mm)
FIGURE 4. Antennule. a in The first zoeal stage morphology of Achelous spinimanus (Latreille), A. gibbesii (Stimpson), and Portunus sayi (Gibbes) (Decapoda, Brachyura) provides support for molecular phylogeny
FIGURE 4. Antennule. a. Achelous gibbesii (Stimpson, 1859); c. Portunus sayi (Gibbes, 1850). Antenna. b. A. gibbesii; d. P. sayi. (Scale bar: 0.05 mm)
Supplementary material 1 from: Boulaassafer K, Ghamizi M, Delicado D (2018) The genus Mercuria Boeters, 1971 in Morocco: first molecular phylogeny of the genus and description of two new species (Caenogastropoda, Truncatelloidea, Hydrobiidae). ZooKeys 782: 95-128. https://doi.org/10.3897/zookeys.782.26797
Table 1–6 : Explanation note: Measurements recorded for the shell, radula, ctenidium, osphradium, digestive system, female and male genitalia, and nervous system in the Mercuria species examined.
FIGURE 7 in Morphology and molecular phylogeny of Macrobrachium suphanense sp. nov. (Decapoda: Palaemonidae) from Thailand
FIGURE 7. Phylogenetic trees of Macrobrachium reconstructed from (A) mitochondrial COI, (B) nuclear 18S, and (C) combined genes using partitioned Bayesian inference with Cryphiops caementarius and Coralliocaris superba constituting an outgroup. The numbers at the nodes represent the posterior probabilities supporting the corresponding clades. Branch lengths and (horizontal) heights of isosceles triangles represent the estimated numbers of nucleotide substitutions per site where the scales are given for (A) and (B).
FIGURE 5 in Morphology and molecular phylogeny of Macrobrachium suphanense sp. nov. (Decapoda: Palaemonidae) from Thailand
FIGURE 5. Palm and finger of mature (lower) and finger of fully grown (upper) male of Macrobrachium suphanense sp. nov.
FIGURE 6 in Morphology and molecular phylogeny of Macrobrachium suphanense sp. nov. (Decapoda: Palaemonidae) from Thailand
FIGURE 6. Teeth on cutting edge of finger of second pereiopod of male Macrobrachium suphanense sp. nov.
FIGURE 3 in Morphology and molecular phylogeny of Macrobrachium suphanense sp. nov. (Decapoda: Palaemonidae) from Thailand
FIGURE 3. Rostrum of fully grown male Macrobrachium suphanense sp. nov. Teeth numbers 1 and 2 are more far apart than in other members of Macrobrachium.
FIGURE 2 in Morphology and molecular phylogeny of Macrobrachium suphanense sp. nov. (Decapoda: Palaemonidae) from Thailand
FIGURE 2. Macrobrachium suphanense sp. nov. (male). (A) Entire animal, lateral view; (B) scaphocerite; (C) mandible; (D) maxilla; (E) first maxilliped; (F) second maxilliped; (G) third maxilliped; (H) maxillula. Scales: (A) 5 mm; (B–H) 1 mm.
FIGURE 1 in Morphology and molecular phylogeny of Macrobrachium suphanense sp. nov. (Decapoda: Palaemonidae) from Thailand
FIGURE 1. Map of Thailand showing the region for collecting Macrobrachium suphanense sp. nov. Adapted from Map of Bangkok and the 76 provinces of Thailand originated by NordNordWest, modified by Paul_012, available under the Creative Commons Attribution-Share Alike 3.0 Unported license from https://en.wikipedia.org/wiki/File: Thailand_provinces_en.svg (2 August 2017).
FIGURE 8 in Morphology and molecular phylogeny of Macrobrachium suphanense sp. nov. (Decapoda: Palaemonidae) from Thailand
FIGURE 8. Comparing size of fully grown Macrobrachium suphanense sp. nov. (upper) with fully grown M. sintangense (lower). The larger one is M. sintangense.
FIGURE 8 in Description and molecular phylogeny of Axinella nayaritensis n. sp. (Porifera: Axinellida) from East Pacific and remarks about the polyphyly of the genus Axinella
FIGURE 8. Consensus tree of genus Axinella using Maximum Likelihood and Bayesian method based on COI mtDNA. Bootstrap values/posterior probabilities (ML/BI) are indicated above the principal node. The clades of Axinella proposed by Gazave et al. 2010 are and labelled as AXI1, AXI 2 and AXI 3. Taxon names are followed by their GenBank accession numbers. Indicate the new species belonging to the Axinella genus.
FIGURE 7 in Description and molecular phylogeny of Axinella nayaritensis n. sp. (Porifera: Axinellida) from East Pacific and remarks about the polyphyly of the genus Axinella
FIGURE 7. Consensus tree of genus Axinella using Maximum Likelihood and Bayesian methods based on 18S rDNA. Bootstrap values/posterior probabilities (ML/BI) are indicated under the principal node. The clades of Axinella proposed by Gazave et al. 2010 are shaded and labelled as AXI I, AXI 2 and AXI 3. Taxon names are followed by their GenBank accession numbers. Indicates the new species belonging to the Axinella genus.
FIGURE 3. Axinella nayaritensis n in Description and molecular phylogeny of Axinella nayaritensis n. sp. (Porifera: Axinellida) from East Pacific and remarks about the polyphyly of the genus Axinella
FIGURE 3. Axinella nayaritensis n. sp. Dry specimen collected from Nayarit A) Preserved specimen where the ectosomal membrane is collapsed. B) Detail of a branch of A) where is clearly observable the ridge surface and the subectosomic canals.
FIGURE 2. Axinella nayaritensis n in Description and molecular phylogeny of Axinella nayaritensis n. sp. (Porifera: Axinellida) from East Pacific and remarks about the polyphyly of the genus Axinella
FIGURE 2. Axinella nayaritensis n. sp. in situ at isla Isabel. A) Holotype at 24 m depth. Black arrows show oscules, and white arrows subectosomic canals. B), C, D) different growth forms and stages of growth (white arrows) found between 21 and 25 m depth.
FIGURE 4. Axinella nayaritensis n in Description and molecular phylogeny of Axinella nayaritensis n. sp. (Porifera: Axinellida) from East Pacific and remarks about the polyphyly of the genus Axinella
FIGURE 4. Axinella nayaritensis n. sp. skeleton of a branch to SEM. A) Cross section where is clearly distinguishable a dense central axial condensation skeleton from which radiate to the surface an extra axial plumoreticulated skeleton. B) Detail of the area of transition to central axial condensation and the plumoreticulated area. C) Extra axial skeleton in the sponge surface where can be observable spicule brushes (D, E).
FIGURES 1–2 in Escalonius, a new subgenus of Calochromus Guérin-Méneville, 1833 identified by the molecular phylogeny of Calochromini (Coleoptera: Lycidae)
FIGURES 1–2. The phylogenetic position of Escalonius subgen. nov. inferred from three-gene maximum likelihood analyses. Numbers at branches indicate bootstrap support values and posterior probabilities. The values under 50% and 0.5 are not shown. The voucher numbers given for each sample provide an access to the sequences deposited in GenBank. 2. Sexually dimorphic Micronychus sp., male and female in copula.
FIGURES 3–12 in Escalonius, a new subgenus of Calochromus Guérin-Méneville, 1833 identified by the molecular phylogeny of Calochromini (Coleoptera: Lycidae)
FIGURES 3–12. Calochromus (Escalonius) amabilis subgen. nov. (3) General appearance; (4) antenna; (5) head; (6) pronotum; (7) male genitalia, lateral view; (8) ditto, dorsal view. C. glaucopterus (9) pronotum; (10) general appearance. (11) male genitalia, lateral view; (12) ditto, dorsal view. Scales: 2–3, 8 = 1 mm; 4–5 = 0.5 mm; 9 = 2.5 mm; 6–7, 11–12 = 0.25 mm.
Supplementary material 4 from: Huber BA, Eberle J, Dimitrov D (2018) The phylogeny of pholcid spiders: a critical evaluation of relationships suggested by molecular data (Araneae, Pholcidae). ZooKeys 789: 51-101. https://doi.org/10.3897/zookeys.789.22781
Figure S4. Maximum-likelihood tree (RAxML) of a reduced set of taxa (excluding taxa for which less than four genes were available) : Explanation note: In the text we refer to this tree as '4+ genes tree'. Support values as in Figure S1.
Supplementary material 3 from: Huber BA, Eberle J, Dimitrov D (2018) The phylogeny of pholcid spiders: a critical evaluation of relationships suggested by molecular data (Araneae, Pholcidae). ZooKeys 789: 51-101. https://doi.org/10.3897/zookeys.789.22781
Figure S3. Maximum-likelihood tree (RAxML) of a reduced set of taxa (excluding rogue taxa with RogueNaRok) : Explanation note: In the text we refer to this tree as 'RogueNaRok tree'. Support values: RBS.
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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DANDI Archive for NWB datasets
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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.