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1,918 results for “molecular evidence”
FIGURE 13 in The Rhyacophila fasciata Group in Western Europe: Confirmation of Rhyacophila denticulata McLachlan 1879 (stat. prom.) and Rhyacophila sociata Navás 1916 (stat. res.), based on morphological and molecular genetic evidence (Trichoptera: Rhyacophilidae)
FIGURE 13. Neighbor-joining tree of R. sociata (RSoc) (13a), R. denticulata (RDen) (13b) and R. fasciata (RFas) (13c), together with R. relicta (RRel) (13d) as outgroup, based on mitochondrial COI sequence data. Values of main branches are shown, data of specimens summarized in Table 1. RSoc1esp: Rhyacophila sociata specimens from Spain, RSoc1fra: Rhyacophila sociata specimens from France.
FIGURE 12. Segments VIII–XI in The Rhyacophila fasciata Group in Western Europe: Confirmation of Rhyacophila denticulata McLachlan 1879 (stat. prom.) and Rhyacophila sociata Navás 1916 (stat. res.), based on morphological and molecular genetic evidence (Trichoptera: Rhyacophilidae)
FIGURE 12. Segments VIII–XI of females of Rhyacophila sociata Navás 1916, R. denticulata McLachlan 1879 and R. fasciata Hagen 1859. 12L left lateral; 12D dorsal; 12V ventral. Scale bar: 1 mm.
FIGURE 10 in The Rhyacophila fasciata Group in Western Europe: Confirmation of Rhyacophila denticulata McLachlan 1879 (stat. prom.) and Rhyacophila sociata Navás 1916 (stat. res.), based on morphological and molecular genetic evidence (Trichoptera: Rhyacophilidae)
FIGURE 10. Comparison among the male genitalia of the three species: Rhyacophila sociata Navás 1916, R. denticulata McLachlan 1879, and R. fasciata Hagen 1859. 10A, 2nd segments of right inferior appendages, left lateral; 10BL–10BD, parameres: 10BL, left parameres, left lateral; 10BV, pairs of parameres, ventral; 10BD, left parameres, dorsal. 10CL–10CV, aedeagi (phallicatae) and their ventral lobes: 10CL aedeagi only, lateral; 10CV, aedeagi and their ventral lobes, ventral. 10DD–10DV, apicodorsal lobes of segment IX, preanal appendages, and bodies of segment X: 10DD, apicodorsal lobes and preanal appendages, dorsal; 10DV, bodies of segment X, ventral.
FIGURE 8 in The Rhyacophila fasciata Group in Western Europe: Confirmation of Rhyacophila denticulata McLachlan 1879 (stat. prom.) and Rhyacophila sociata Navás 1916 (stat. res.), based on morphological and molecular genetic evidence (Trichoptera: Rhyacophilidae)
FIGURE 8. Larva of Rhyacophila sociata Navás 1916, right legs. 8A: anterior views, 8P: posterior views. I–III: pro-, meso-, and metathoracic legs respectively.
FIGURES 1–7 in The Rhyacophila fasciata Group in Western Europe: Confirmation of Rhyacophila denticulata McLachlan 1879 (stat. prom.) and Rhyacophila sociata Navás 1916 (stat. res.), based on morphological and molecular genetic evidence (Trichoptera: Rhyacophilidae)
FIGURES 1–7. Larva of Rhyacophila sociata Navás 1916. 1a–1d, head: 1a, dorsal; 1b, right parietalium, dorsal; 1c, left parietalium, left lateral; 1d, frontoclypeus, dorsal. 2D–2V, mandibles from last instar larval exuviae, left (l) and right (r): 2D, dorsal; 2V ventral. 3a–3b, mouth parts: 3a, ventral; 3b, labrum, dorsal. 4a–4b, prothorax: 4a, dorsal; 4b left hemisclerite, left lateral. 5, dorsal sclerite of abdominal segment IX. 6D–6V, anal prolegs: 6D, dorsal; 6V, ventral, with basoventral hooks (arrows). 7a–7c details of anal proleg sclerites: 7a, right anal claw, right lateral; 7b, detail of claw, right lateral; 7c detail of basilateral plate with sword process and basoventral hook (arrow), right lateral.
FIGURE 11 in The Rhyacophila fasciata Group in Western Europe: Confirmation of Rhyacophila denticulata McLachlan 1879 (stat. prom.) and Rhyacophila sociata Navás 1916 (stat. res.), based on morphological and molecular genetic evidence (Trichoptera: Rhyacophilidae)
FIGURE 11. Details of left parameres (left lateral view) of the males of Rhyacophila sociata Navás 1916 (11a), R. denticulata McLachlan 1879 (11b) and R. fasciata Hagen 1859 (11c), observed in light microscopy. Scale bar: 200 µm.
FIGURE 15 in The Rhyacophila fasciata Group in Western Europe: Confirmation of Rhyacophila denticulata McLachlan 1879 (stat. prom.) and Rhyacophila sociata Navás 1916 (stat. res.), based on morphological and molecular genetic evidence (Trichoptera: Rhyacophilidae)
FIGURE 15. Distribution of altitude in relation to longitude and latitude for Rhyacophila denticulata McLachlan 1879 (15a), and R. sociata Navás 1916 from France (15b), and Spain (15c).
FIGURE 9 in The Rhyacophila fasciata Group in Western Europe: Confirmation of Rhyacophila denticulata McLachlan 1879 (stat. prom.) and Rhyacophila sociata Navás 1916 (stat. res.), based on morphological and molecular genetic evidence (Trichoptera: Rhyacophilidae)
FIGURE 9. Rhyacophila sociata Navás 1916, paired abdominal hook plates of pupa, 9l and 9r, left and right hook plates, respectively. A: anterior hook plates, dorsal, P: posterior hook plates, dorsal; III–VII: abdominal segments III through VII respectively, dorsal.
FIGURE 2. Individuals from a in Molecular evidence for conspecificity of two desert Liolaemus lizards (Iguania: Liolaemidae)
FIGURE 2. Individuals from a) near Caspana (MUAP-114), near type locality for Liolaemus audituvelatus; b) Diego de Almagro, type locality of L. manueli; c) and d) Altos Quebrada Agua Colorada; e) and f) Barranquilla (near Caseron). f) is a gravid female. Note that b) male of L. audituvelatus from known distribution and d) male of L. manueli from type locality, are identical and were found 300 km away (in straight line); and, a) and e) are also similar and were found 600 km away (in straight line).
FIGURE 1 in Molecular evidence for conspecificity of two desert Liolaemus lizards (Iguania: Liolaemidae)
FIGURE 1. Distribution maps of Liolaemus audituvelatus and L. manueli based on historical and new records. Type localities of both species are indicated by stars. Historical records of both species gathered from Núñez et al. (1998, 2003, 2012) and GBIF (2016) also are indicated by black circles and squares. New localities of L. audituvelatus are indicated by red circles and red squares for L. manueli. Localities from which DNA samples were obtained for the analyses of this study are indicated with green triangles. The geographic references are in Appendix S2.
FIGURE 5 in Molecular evidence for conspecificity of two desert Liolaemus lizards (Iguania: Liolaemidae)
FIGURE 5. Results of the species delimitation analyses. On the left, the Bayesian consensus topology used for PTP and mPTP analyses is shown. On the right, boxes represent the species delimitations obtained with the three methods, in comparison with the current taxonomy (column nominal taxa).
FIGURE 4 in Molecular evidence for conspecificity of two desert Liolaemus lizards (Iguania: Liolaemidae)
FIGURE 4. Bayesian consensus tree showing the phylogenetic relationships among species of the montanus group and new populations related to L. audituvelatus and L. manueli. Posterior probability is indicated at each node.
FIGURE 3 in Molecular evidence for conspecificity of two desert Liolaemus lizards (Iguania: Liolaemidae)
FIGURE 3. Specimens of Liolaemus audituvelatus collected near Caspana, 65 km north of San Pedro de Atacama, Antofagasta Region (MUAP-113 (LNC135) and MUAP-114 (LNC136)).
FIGURE 6 in Two new species of the genus Ishigakia (Hymenoptera: Ichneumonidae, Acaenitinae) from Vietnam based on morphological and molecular evidence
FIGURE 6. Ishigakia duongi sp. nov., male paratype: a. Ventral view of subgenital plate; b. Ventral view of genital capsule; c. Lateral view of aedeagus
FIGURE 5 in Two new species of the genus Ishigakia (Hymenoptera: Ichneumonidae, Acaenitinae) from Vietnam based on morphological and molecular evidence
FIGURE 5. Ishigakia duongi sp. nov., female holotype: a. Face; b. Lateral view of head and mesosoma; c. Dorsal view of head; d. Mesonotum; e. Dorsal view of propodeum; f. Lateral view of first sternite; g. Lateral view of subgenital plate; h. Tergites 1–2; i. Apical half of fore wing
FIGURE 3 in Two new species of the genus Ishigakia (Hymenoptera: Ichneumonidae, Acaenitinae) from Vietnam based on morphological and molecular evidence
FIGURE 3. Ishigakia babeensis sp. nov., female holotype: a. Face; b. Dorsal view of head and mesoscutum; c. Lateral view of head, mesosoma and first sternite; d. Ventral view of first sternite; e. Wings; f. Dorsal view of scutellum, postscutellum and propodeum
FIGURE 1. The phylogenetic relationships among Acaenitinae species inferred from a 590 in Two new species of the genus Ishigakia (Hymenoptera: Ichneumonidae, Acaenitinae) from Vietnam based on morphological and molecular evidence
FIGURE 1. The phylogenetic relationships among Acaenitinae species inferred from a 590bp fragment of the COI gene based on Maximum Likelihood, Bayesian Inference analyses. Values at nodes are bootstrap or BI. #: values less than 65 or 0.65.
FIGURE 5 in Morphological and molecular evidence reveal a new species of the earthworm genus Pontodrilus Perrier, 1874 (Clitellata, Megascolecidae) from Thailand and Peninsular Malaysia
FIGURE 5. Photographs showing: A. Pontodrilus longissimus sp. n. (CUMZ 3670, CUMZ 3671) just after the first step preservation in 30% (v/v) ethanol; B. Ventral view of anterior portion; C. Cocoons; D. The type locality of Pontodrilus longissimus sp. n. at Hat Pak Meng, Sikao, Trang, Thailand.
FIGURE 6 in Morphological and molecular evidence reveal a new species of the earthworm genus Pontodrilus Perrier, 1874 (Clitellata, Megascolecidae) from Thailand and Peninsular Malaysia
FIGURE 6. Bayesian inference tree based on the partial COI sequence (658 bp) of two Pontodrilus species and outgroups. Bootstrap values of>70% and posterior probability values of>0.95 are shown on the tree as ML/BI values. Specimen names correspond to those in Table 1. Scale bar represents the number of nucleotide substitutions per site.
FIGURE 4 in Morphological and molecular evidence reveal a new species of the earthworm genus Pontodrilus Perrier, 1874 (Clitellata, Megascolecidae) from Thailand and Peninsular Malaysia
FIGURE 4. External and internal morphology of the holotype (CUMZ 3670) of Pontodrilus longissimus sp. n.; A. External ventral view; B. Internal dorsal view; C. Spermatheca.
ScienceDex guides
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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.