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1,918 results for “molecular evidence”
FIGURE 3 in Taxonomic evaluation of Miscanthus nudipes (Poaceae) based on morphological and molecular evidence
FIGURE 3. Images of spikelets, peduncle and axis (and rachis) of the 15 Miscanthus nudipes populations, photographed under a stereomicroscope. All scale bars = 2 mm.
FIGURE 4. Liparis wenshanensis Y. Y in Liparis wenshanensis, a new orchid species from China: Evidence from morphological and molecular analyses
FIGURE 4. Liparis wenshanensis Y. Y. Su, Y. L. Huang & G. Q. Zhang. A. Flowering plant. B. Flower, front view. C. Flower, side view. D. Dorsal sepal, petal, lateral sepal, and lip. E. Column and lip, longitudinal section. F. Pollinarium.
FIGURE 5. Liparis wenshanensis Y. Y in Liparis wenshanensis, a new orchid species from China: Evidence from morphological and molecular analyses
FIGURE 5. Liparis wenshanensis Y. Y. Su, Y. L. Huang & G. Q. Zhang. A. Flowering plant. B. Flower, side view. C. Column and lip, longitudinal section. D. Flower, front view. E. Pollinarium. F. A flower of L. habenarina. G. A flower of L. odorata.
FIGURE 3 in Molecular and morphological evidences reveal two new species in Grammothele and Theleporus (Basidiomycota) from southern China
FIGURE 3.—Microscopic structures of Grammothele separabillima. —a: Basidiospores. —b: Basidia and basidioles. —c: Dendrohyphidia. —d: Hyphae from trama. —e: Hyphae from subiculum.
FIGURE 1 in Molecular and morphological evidences reveal two new species in Grammothele and Theleporus (Basidiomycota) from southern China
FIGURE 1.—Phylogram obtained from most parsimonious analysis of the ITS gene sequences of Grammothele, Theleporus and other genera included in the study. Numbers at branches indicate parsimony bootstrap values and Bayesian posterior probabilities values higher than 50%. - Indicates lack of support or support less than 50% for an articular clade.
FIGURE 5 in Molecular and morphological evidences reveal two new species in Grammothele and Theleporus (Basidiomycota) from southern China
FIGURE 5.—Microscopic structures of Theleporus rimosus. —a: Basidiospores. —b: Basidia and basidioles. —c: Dendrohyphidia. —d: Hyphae from trama. —e: Hyphae from subiculum.
FIGURE 1 in A revision of the genus Leontodon (Asteraceae) in the Azores based on morphological and molecular evidence
FIGURE 1. Map of the Azores archipelago with the sites of the sampled individuals, estimations of the islands geological ages, and the location of the Azores relative to other land masses. São Miguel populations are represented by triangles, central group populations by squares and western group populations by circles. Crosses represent the locations of putative hybrids. Adapted from Dias et al. (2014).
FIGURE 5 in A revision of the genus Leontodon (Asteraceae) in the Azores based on morphological and molecular evidence
FIGURE 5. Field photographs of: A) Leontodon hochstetteri, Flores Island (J. Martins); B) Leontodon filii, Terceira Island (H. Schaefer); C) Leontodon rigens, São Miguel Island (M. Moura); and D) Leontodon × carreiroi (= L. saxatilis × L. rigens), São Miguel Island (H. Schaefer).
FIGURE 3. Maximum parsimony 50 in A revision of the genus Leontodon (Asteraceae) in the Azores based on morphological and molecular evidence
FIGURE 3. Maximum parsimony 50% majority-rule consensus tree obtained from combined nuclear and chloroplast data. Values above branches show MP bootstrap support; values below are the corresponding ML bootstrap support. Only values above 50% in at least one of the analysis criteria are shown.
FIGURE 4 in A revision of the genus Leontodon (Asteraceae) in the Azores based on morphological and molecular evidence
FIGURE 4. Analysis of characters by groups of islands. Biplot resulting from a discriminant analysis, representing individuals and variables based on two canonical functions. Scores of all variables were multiplied by 15 to increase plot legibility.
FIGURE 2. Maximum parsimony 50 in A revision of the genus Leontodon (Asteraceae) in the Azores based on morphological and molecular evidence
FIGURE 2. Maximum parsimony 50% majority-rule consensus tree obtained from nuclear ITS sequence data (A) and from the combined chloroplast sequence data (B). Values above branches show MP bootstrap support; values below are the corresponding ML bootstrap support. Only values above 50% in at least one of the analysis criteria are shown.
FIGURE 3 in Molecular evidence for the hybrid origin of Rosa lichiangensis (Rosaceae)
FIGURE 3. Phylogeny of nuclear GAPDH dataset. Numbers above branches are bootstrap values from ML analyses; numbers below branches are posterior probability values of BI.
FIGURE 2 in Molecular evidence for the hybrid origin of Rosa lichiangensis (Rosaceae)
FIGURE 2. Phylogeny of concatenated chloroplast dataset. Numbers above branches are bootstrap values from ML analyses; numbers below branches are posterior probability values of BI.
FIGURE 1 in Molecular evidence for the hybrid origin of Rosa lichiangensis (Rosaceae)
FIGURE 1. Photographic images of R. multiflora var. cathayensis (A, D), R. lichiangensis (B, E) and R. soulieana (C, F).
FIGURE 3 in Phylogenetic relationships of Petunia patagonica (Solanaceae) revealed by molecular and biogeographical evidence
FIGURE 3. Representatives of Petunia scheideana (A), Petunia patagonica (B), Fabiana sp. (C), and Nierembergia linariifolia Graham (1821: 378) (D). Photographs by J.R. Stehmann (A, D) and A.A. Cocucci (B, C).
FIGURE 2. A in Phylogenetic relationships of Petunia patagonica (Solanaceae) revealed by molecular and biogeographical evidence
FIGURE 2. A. Bayesian tree of tribe Petunieae based on concatenated plastid intergenic spacers (trnS-trnG and trnL-trnF) and internal transcribed spacers of nuclear ribosomal DNA (ITS). Posterior probabilities values are shown above branches. Petunia highland clade: P. mantiqueirensis, P. bonjardinensis, P. reitzii, P. scheideana, P. saxicola, P. guarapuavensis, P. altiplana, and P. interior. Petunia lowland clade: P. integrigolia subsp. integrifolia, P. integrifolia subsp. depauperata, P. riograndensis, P. littoralis, P. bajeensis, P. inflata, P. axillaris subsp. axillaris, P. axillaris subsp. parodii, P. axillaris subsp. subandina, P. secreta, and P. occidentalis. Circles on nodes represent the most likely ancestral areas obtained with S-DIVA analyses. B. Ancestral area reconstructions for selected nodes (in rows) based on Bayesian binary Markov chain Monte Carlo (BBM). Pie graphs show probabilities of alternative ancestral range, low probability ancestral areas were merged and indicated in black (* Others). Each column shows the results for the different root distribution assumption.
FIGURE 1 in Phylogenetic relationships of Petunia patagonica (Solanaceae) revealed by molecular and biogeographical evidence
FIGURE 1. Geographic distribution of P. patagonica relative to those of Fabiana and Petunia genera in South America showing its congruence with Fabiana distribution.
FIGURE 2. Dendrobium zhenghuoense S.P. Chen, L in Morphological and molecular evidence for a new species from China: Dendrobium zhenghuoense (Epidendroideae; Orchidaceae)
FIGURE 2. Dendrobium zhenghuoense S.P. Chen, L. Ma & M.H. Li. A. Habit. B. Flower, ventral view. C. Flower, side view. D. Pollinium. E. Dorsal sepal, petal, lateral sepal, and lip (clockwise). F. Lip and column, longitudinal section. Drawn by Zheng-Meng Yang.
FIGURE 1 in Morphological and molecular evidence for a new species from China: Dendrobium zhenghuoense (Epidendroideae; Orchidaceae)
FIGURE 1. Phylogenetic tree obtained by maximum-likelihood analysis of the combination of nrITS and plastid regions. Numbers near
FIGURE 3. Dendrobium zhenghuoense S.P. Chen, L in Morphological and molecular evidence for a new species from China: Dendrobium zhenghuoense (Epidendroideae; Orchidaceae)
FIGURE 3. Dendrobium zhenghuoense S.P. Chen, L. Ma & M.H. Li. A. Flowering plant. B. Flower, side view. C. Flower, front view. D. Anatomy of the flower.
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.