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3,761 results for “phylogenetic relationship”
Figure 1 from: Luangsuphabool T, Lumbsch HT, Piapukiew J, Sangvichien E (2018) Architrypethelium murisporum (Ascomycota, Trypetheliaceae), a remarkable new lichen species from Thailand challenging ascospore septation as an indicator of phylogenetic relationships. MycoKeys 34: 25-34. https://doi.org/10.3897/mycokeys.34.23836
Figure 1 Phylogenetic relationships of Architrypethelium and sister genera based on a combined data set of two DNA loci (mtSSU and nuLSU rDNA). Bootstrap values ≥ 70% and posterior probabilities ≥ 0.95 are shown at above and below branches.
FIGURE 4 in The mature larva and pupa of Tychius subsulcatus Tournier, 1847 (Coleoptera, Curculionidae), with comments on its biology and phylogenetic relationships
FIGURE 4. Tychius subsulcatus mature larva, habitus, lateral view. Scale bar: 1 mm.
FIGURE 3. Adult Hapalogenys analis, 142 in Phylogenetic position of the fish genera Lobotes, Datnioides and Hapalogenys, with a reappraisal of acanthuriform composition and relationships based on adult and larval morphology
FIGURE 3. Adult Hapalogenys analis, 142 mm SL, Saikung, Hong Kong. Photo by J.E. Randall.
FIGURE 2 in Phylogenetic position of the fish genera Lobotes, Datnioides and Hapalogenys, with a reappraisal of acanthuriform composition and relationships based on adult and larval morphology
FIGURE 2. Adult Datnioides pulcher, ca. 250 mm SL, aquarium specimen. Photo by B. Lee.
FIGURE 4. Larval Lobotes surinamensis, 5.9 in Phylogenetic position of the fish genera Lobotes, Datnioides and Hapalogenys, with a reappraisal of acanthuriform composition and relationships based on adult and larval morphology
FIGURE 4. Larval Lobotes surinamensis, 5.9 mm SL (after Watson 1996).
FIGURE 6. Larval Hapalogenys nitens, 7.3 in Phylogenetic position of the fish genera Lobotes, Datnioides and Hapalogenys, with a reappraisal of acanthuriform composition and relationships based on adult and larval morphology
FIGURE 6. Larval Hapalogenys nitens, 7.3 mm SL, from Japan (after Kinoshita 1988).
Supplementary material 2 from: Kocić K, Petrović A, Čkrkić J, Mitrović M, Tomanović Ž (2019) Phylogenetic relationships and subgeneric classification of European Ephedrus species (Hymenoptera, Braconidae, Aphidiinae). ZooKeys 878: 1-22. https://doi.org/10.3897/zookeys.878.38408
: Data type: phylogenetic data
Supplementary material 1 from: Kocić K, Petrović A, Čkrkić J, Mitrović M, Tomanović Ž (2019) Phylogenetic relationships and subgeneric classification of European Ephedrus species (Hymenoptera, Braconidae, Aphidiinae). ZooKeys 878: 1-22. https://doi.org/10.3897/zookeys.878.38408
: Data type: specimens data
Figure 4 from: Kocić K, Petrović A, Čkrkić J, Mitrović M, Tomanović Ž (2019) Phylogenetic relationships and subgeneric classification of European Ephedrus species (Hymenoptera, Braconidae, Aphidiinae). ZooKeys 878: 1-22. https://doi.org/10.3897/zookeys.878.38408
Figure 4 Representative species of the subgenera Breviephedrus (E. brevis), Fovephedrus (E. persicae), and Ephedrus (E. plagiator). A–CBreviephedrusA mesoscutum dorsal view B petiole, dorsal view C forewing D–FFovephedrusD mesoscutum dorsal view E petiole, dorsal view F forewing G–IEphedrusG mesoscutum, dorsal view H petiole, dorsal view I forewing.
Figure 3 from: Kocić K, Petrović A, Čkrkić J, Mitrović M, Tomanović Ž (2019) Phylogenetic relationships and subgeneric classification of European Ephedrus species (Hymenoptera, Braconidae, Aphidiinae). ZooKeys 878: 1-22. https://doi.org/10.3897/zookeys.878.38408
Figure 3 Ephedrus hyadaphidis Kocić & Tomanović, sp. nov., female, scanning electron microscopy A Head, anterior view B Antennae, lateral view C First and second antennal segments, lateral view D Mesoscutum, dorsal view E Propodeum, dorsal view F Petiole, dorsal view G Ovipositor sheaths, lateral view H Forewing, with designated vein terminology. Abbreviations: ptl – pterostigma length, ptw – pterostigma width.
Figure 2 from: Kocić K, Petrović A, Čkrkić J, Mitrović M, Tomanović Ž (2019) Phylogenetic relationships and subgeneric classification of European Ephedrus species (Hymenoptera, Braconidae, Aphidiinae). ZooKeys 878: 1-22. https://doi.org/10.3897/zookeys.878.38408
Figure 2 Bayesian inference phylogram for elongation factor 1α nuclear sequences. Bayesian posterior probabilities above 50 % are shown.
Figure 1 from: Kocić K, Petrović A, Čkrkić J, Mitrović M, Tomanović Ž (2019) Phylogenetic relationships and subgeneric classification of European Ephedrus species (Hymenoptera, Braconidae, Aphidiinae). ZooKeys 878: 1-22. https://doi.org/10.3897/zookeys.878.38408
Figure 1 Bayesian inference phylogram for cytochrome oxidase c subunit I mitochondrial sequences. Bayesian posterior probabilities above 50 % are shown. The traditional subgenera are marked in different colours: Lysephedrus (blue), Breviephedrus (green), and Ephedrus (yellow). The number of sequences with the same haplotype and countries of origin are presented in brackets. Country abbreviations: AT – Austria, BE – Belgium, CZ – Czech Republic, FI – Finland, HR – Croatia, ME – Montenegro, RS – Republic of Serbia, RU – Russia, SI – Slovenia.
Figure 3 from: Özcan T (2019) Defining phylogenetic relationship of Nepeta x tmolea and its parents via DNA barcoding. PhytoKeys 134: 83-96. https://doi.org/10.3897/phytokeys.134.38238
Figure 3 Phylogenetic relationship of N. viscida, N. nuda subsp. nuda and N. × tmolea with some Nepeta members and outgroups (based on nrITS sequences and Neighbour Joining phylogram (A) and Dendroscope diagram (B).(* examined taxa in this study).
Figure 2 from: Özcan T (2019) Defining phylogenetic relationship of Nepeta x tmolea and its parents via DNA barcoding. PhytoKeys 134: 83-96. https://doi.org/10.3897/phytokeys.134.38238
Figure 2 Phylogenetic position of N. viscida and N. nuda subsp. nuda amongst different Nepeta species and outgroups (based on nrITS sequences and Maximum Likelihood phylogram (A) and Neighbour-Net Diagram (B) without hybrids.(* examined taxa in this study).
Figure 1 from: Özcan T (2019) Defining phylogenetic relationship of Nepeta x tmolea and its parents via DNA barcoding. PhytoKeys 134: 83-96. https://doi.org/10.3897/phytokeys.134.38238
Figure 1 General habit, inflorescence and lower parts of N. nuda subsp. nuda (A, D, G); N. × tmolea (B, E, H) and N. viscida (C, F, I).
Fig. 5 in Molecular prevalence and phylogenetic relationship of Haemoproteus and Plasmodium parasites of owls in Thailand: Data from a rehabilitation centre
Fig. 5. Bayesian phylogeny based on the partial cytochrome b gene (479 base pairs) of Plasmodium species lineages. Lineages reported in this study are given in bold. MalAvi lineages codes and GenBank accession numbers are given after species names. Node values (in percentages) indicate posterior clade probabilities. Four groups (I-IV) of closely related reported lineages are highlighted.
Fig. 2 in Molecular prevalence and phylogenetic relationship of Haemoproteus and Plasmodium parasites of owls in Thailand: Data from a rehabilitation centre
Fig. 2. Monthly molecular prevalence of Haemoproteus species and Plasmodium spp. in owls in Thailand during 2012–2018. Vertical lines are 95% confidence intervals. The average temperature and rainfall in Kamphaeng Saen were reported by the Nakhon Pathom meteorological station, Thai Meteorological Department.
Fig. 6 in Molecular prevalence and phylogenetic relationship of Haemoproteus and Plasmodium parasites of owls in Thailand: Data from a rehabilitation centre
Fig. 6. Colour heatmap of pairwise genetic distances estimated from nucleotide sequences of the cytochrome b gene (479 bp) of Plasmodium spp. based on the JukesCanter model. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
Fig. 1 in Molecular prevalence and phylogenetic relationship of Haemoproteus and Plasmodium parasites of owls in Thailand: Data from a rehabilitation centre
Fig. 1. Extracellular gametocytes of Haemoproteus spp. in an Asian barred owlet (A), barn owl (B), brown hawk owl (C), collared scops-owl (D), Oriental scopsowl (E), and spotted owlet (F). Wright's stain. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
Text-fig. 7. Maxillary (labial view) with maxillary foramen (arrows) from A – Cyprinus carpio (Cyprininae) showing the schematic reconstruction of the nervus trigeminus and the rostral barbel, B – Ctenopharyngodon idella (Xenocyprininae), C – Tinca tinca (Tincinae), (images not to scale). in Revision Of The Cyprinids From The Early Oligocene Of The České Středohoří Mountains, And The Phylogenetic Relationships Of Protothymallus Laube, 1901 (Teleostei, Cyprinidae, Gobioninae)
Text-fig. 7. Maxillary (labial view) with maxillary foramen (arrows) from A – Cyprinus carpio (Cyprininae) showing the schematic reconstruction of the nervus trigeminus and the rostral barbel, B – Ctenopharyngodon idella (Xenocyprininae), C – Tinca tinca (Tincinae), (images not to scale).
ScienceDex guides
Understand access before you commit
These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
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.