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2,620 results for “Molecular Phylogeny”
Figure 22 in Molecular phylogeny, analysis of character evolution, and submersible collections enable a new classification of a diverse group of gobies (Teleostei: Gobiidae: Nes subgroup), including nine new species and four new genera
Figure 22. Psilotris laurae papillae pattern, drawn from holotype, USNM 426779. Illustration by J.L. Van Tassell.
FIGURE 1 in Szczepkamyces quercicola sp. nov. (Polyporales, Basidiomycota) evidenced by morphological characters and molecular phylogeny
FIGURE 1. Strict consensus tree illustrating the phylogeny based on the combined dataset. Branches are labeled with maximum likelihood bootstrap higher than 50% and Bayesian posterior probabilities more than 0.90.
FIGURE 3 in Szczepkamyces quercicola sp. nov. (Polyporales, Basidiomycota) evidenced by morphological characters and molecular phylogeny
FIGURE 3. Microscopic structure of Szczepkamyces quercicola. a. Basidiospores; b. Basidia and basidioles; c. A section of dissepiment. d. Subicular hyphae; e. Tramal hyphae. Drawing by Meng Zhou.
Figure 3. Maximum likelihood phylogeny showing the relationships among Indo-Burmese Cyrtodactylus species using mitochondrial NADH dehydrogenase subunit 2 in Morphological and molecular phylogenetic data reveal another new species of bent-toed gecko (Cyrtodactylus Gray: Squamata: Gekkonidae) from Mizoram, India
Figure 3. Maximum likelihood phylogeny showing the relationships among Indo-Burmese Cyrtodactylus species using mitochondrial NADH dehydrogenase subunit 2 gene. Numbers at each node are bootstrap support values. Preceding each species name is the NCBI accession number.
Fig. 2 in Molecular Phylogeny of Dermestidae (Coleoptera) Reveals the Polyphyletic Nature of Trogoderma Latreille and the Taxonomic Placement of the Khapra Beetle Trogoderma
Fig. 2. Simplified bekt Maximum licelihood tree of Dermektidae at kubfamily level from 200 independent kearchek baked on the three dataketk: %;) amino acid %;;)& %B) the original nucleotide %NT)& %C) the degeneracy-recoded nucleotide %Degen). Statiktical kupport valuek prekented ak Shimodaira–Hakegawa approximate licelihood ratio tekt valuek %SH-aRLT)/ Ultrafakt Bootktrap %UFBoot). Stark denote cladek with ktrong ktatiktical kupport: orange ktar: both SH-aLRT and UFBoot ≥ 99.5; blacc ktar: SH-aLRT> 80 or 95
Figure 3. Bayesian inference tree inferred from Dataset5 in First molecular phylogeny of the freshwater planarian genus Girardia (Platyhelminthes: Tricladida) unveils hidden taxonomic diversity and initiates resolution of its historical biogeography
Figure 3. Bayesian inference tree inferred from Dataset5 (concatenated no outgroup). Different groups indicated by letters and colours. A, schematic representation of the tree with collapsed clades (triangles) and singletons (rectangles) showing species identifications, when available, and countries of origin of the various terminals. The relationships between groups
FIGURE 2 in The molecular phylogeny and morphology revealed a new wood-rotting fungus Vararia yunnanensis (Peniophoraceae, Russulales) in Yunnan Province, China
FIGURE 2. Maximum Parsimony strict consensus tree illustrating the phylogeny of two new species and related species in Vararia based on ITS sequences. Branches are labeled with maximum likelihood bootstrap values equal to or higher than 70%, parsimony bootstrap values equal to or higher than 50% and Bayesian posterior probabilities equal to or higher than 0.95. The new species are in bold.
FIG. 1 in Molecular Phylogeny of the Liolaemus kriegi Complex (Iguania, Liolaemini)
FIG. 1.—Map showing sampling localities of the Liolaemus kriegi complex and two related taxa. Circles and squares correspond to localities for described and candidate species, respectively. Liolaemus buergeri (1–6); L. ceii (7), L. kriegi (8, 9), and L. tregenzai (10); L. sp. A (11–13), L. sp. B (14); L. sp. C (15, 16), and L. sp. D (17–19). Locality 14 includes two sampled sites in close geographic proximity that are distinct (see Appendix).
Figure 3 in Three in one: molecular phylogeny of the genus Helodrilus (Crassiclitellata: Lumbricidae) with a description of two new genera and two new species
Figure 3. Imetescolex orientalis sp. nov. Ventrolateral view of the fore body. Cl = clitellum, Gt = glandular tumescences, Mp = male pore, Tb = tubercula pubertatis.
Figure 1 in Molecular phylogeny and taxonomy of three anaerobic plagiopyleans (Alveolata: Ciliophora), retrieved from two geographically distant localities in Asia and North America
Figure 1. Sample location (A, B). A, portion of the map of China showing photos of sampling sites. B, portion of the map of USA showing photos of sampling sites.
Recommended fossil calibrators for time-scaled molecular phylogenies of Afrotheria
Open the record for dataset details and reuse information.
FIGURE 26 in Revision of the bee group Anthophora (Micranthophora) (Hymenoptera: Apidae), with notes on potential conservation concerns and a molecular phylogeny of the genus
FIGURE 26. Distribution of Anthophora rara. Generated with 11 specimen records from 8 locations.
FIGURE 347 in Filling the gaps: descriptions of unnamed species included in the latest molecular phylogeny of Pholcidae (Araneae)
FIGURE 347. Known distribution of Saciperere catuaba sp. n.; TL, type locality.
Fig. 13 in Tracking the variability of phenotypic traits on a molecular phylogeny: an example from scolopendrid centipedes in peninsular India
Fig. 13 Presence of a tarsal spur on leg 20 mapped onto phylogeny of Indian Digitipes
Fig. 9 in Tracking the variability of phenotypic traits on a molecular phylogeny: an example from scolopendrid centipedes in peninsular India
Fig. 9 Number of DM spines on the ultimate leg prefemur mapped onto phylogeny of Indian Digitipes
Fig. 5 in Tracking the variability of phenotypic traits on a molecular phylogeny: an example from scolopendrid centipedes in peninsular India
Fig. 5 First tergite with complete margination mapped onto phylogeny of Indian Digitipes
Fig. 6 in Topography and climatic fluctuations boosting speciation: biogeography and a molecular phylogeny of the East African genera Afroanthracites Hemp & Ingrisch and Afroagraecia Ingrisch & Hemp (Orthoptera, Tettigoniidae, Conocephalinae, Agraeciini)
Fig. 6 Distribution of Afroagraecia in East Africa
Fig. 5 in New insights into the systematics and molecular phylogeny of the Malagasy snake genus Liopholidophis suggest at least one rapid reversal of extreme sexual dimorphism in tail length
Fig. 5 Liopholidophis rhadinaea in life, from Talatakely, Ranomafana National Park (ZSM 1602/2008)
Fig. 4 in New insights into the systematics and molecular phylogeny of the Malagasy snake genus Liopholidophis suggest at least one rapid reversal of extreme sexual dimorphism in tail length
Fig. 4 Holotype of Liopholidophis oligolepis sp. nov. in (a) dorsal and (b) ventral view
Figure 25. Varicus adamsi paratype, 44.5 in Molecular phylogeny, analysis of character evolution, and submersible collections enable a new classification of a diverse group of gobies (Teleostei: Gobiidae: Nes subgroup), including nine new species and four new genera
Figure 25. Varicus adamsi paratype, 44.5 mm SL, preserved, USNM 427226. Photo by J.L. Van Tassell.
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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)
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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.