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1,918 results for “molecular evidence”
FIGURE 4 in Satureja kermanica (Lamiaceae) a new species from south-east of Iran, inferred from molecular and morphological evidence
FIGURE 4. Satureja kermanica sp. nov. from the type locality, Mirtadzadini 1943 (MIR). A) habit and habitat, B) close-up view of inflorescence, C) close-up view of flower. Photographs by M. Mirtadzadini.
FIGURE 3 in Satureja kermanica (Lamiaceae) a new species from south-east of Iran, inferred from molecular and morphological evidence
FIGURE 3. Satureja bachtiarica. Photographs by M. Mirtadzadini. A) habit and habitat from the type locality, Mirtadzadini 1991 (MIR); B) close-up view of inflorescence, Mirtadzadini 1950 (MIR); C) close-up view of flower, Mirtadzadini 1967 (MIR).
FIGURE 2 in Satureja kermanica (Lamiaceae) a new species from south-east of Iran, inferred from molecular and morphological evidence
FIGURE 2. PCA scatterplot of the studied populations of Satureja bachtiarica. The geographical areas of distribution indicated with symbols. SE populations belong to S. kermanica sp. nov. The percentage of variability explained by each component is indicated on the axis.
FIGURE 1 in Satureja kermanica (Lamiaceae) a new species from south-east of Iran, inferred from molecular and morphological evidence
FIGURE 1. Distribution map of Satureja bachtiarica (solid circle) and S. kermanica sp. nov. (solid triangle) in Iran.
FIGURE 1. Leptochilus brevipes.—A in Leptochilus brevipes (Polypodiaceae), a new fern species from southeastern Yunnan, China based on morphological and molecular evidence
FIGURE 1. Leptochilus brevipes.—A. Habit of the new fern on rock.—B. Habit of the new fern on tree trunk.—C. Rhizome.—D. Portion of fertile frond.—E. Lower portion of abaxial lamina of sterile frond.—F. Upper portion of abaxial lamina of sterile frond.—G. Middle portion of abaxial lamina of sterile frond. Photo credit: Zhen-Long Liang & Jing Zhao.
FIGURE 2. Leptochilus brevipes.—A. Habit.—B in Leptochilus brevipes (Polypodiaceae), a new fern species from southeastern Yunnan, China based on morphological and molecular evidence
FIGURE 2. Leptochilus brevipes.—A. Habit.—B. Portion of lamina.—C. Cross section of costa.—D. Cross section of rhizome. Stippled: vascular tissue; black: sclerenchyma strands.—E. Rhizome scale (drawn by Zhen-Long Liang based on the isotype at CDBI).
FIGURE 3 in Leptochilus brevipes (Polypodiaceae), a new fern species from southeastern Yunnan, China based on morphological and molecular evidence
FIGURE 3. Maximum likelihood phylogeny of Leptochilus based on six plastid markers (atpB, rbcL, rps4, rps4-trnS, trnL, trnL-F). Maximum likelihood bootstrap support (MLBS) are above the branches. Six subclades of the Colysis clade identified by Zhang et al. (2019) are indicated in green.
FIGURE 1 in Three new combinations in Gloeocantharellus (Gomphales, Agaricomycetes) from Mexico based on molecular evidence
FIGURE 1. ML phylogeny of Gomphales based on the concatenated sequences atp6, SSU and LSU. Numbers over the branches represent Bootstrap support (>50). In bold type, the species formerly described as Gomphus and here proposed as new combinations of Gloeocantharellus.
FIGURE 2 in Three new combinations in Gloeocantharellus (Gomphales, Agaricomycetes) from Mexico based on molecular evidence
FIGURE 2. Phylogenetic informativeness profiles of the sequences atp6 (green), SSU (blue) and LSU (red) showing overall poor performance of the last two markers and decay of informativeness for atp6 over the genus level. In bold type, the species formerly described as Gomphus and here proposed as new combinations of Gloeocantharellus.
FIGURE 4 in Morphological and molecular evidence for two new species of Absidia from Neotropic soil
FIGURE 4. Absidia pernambucoensis (holotype URM 93638). a. Branched sporangiophore. b-c. Unbranched sporangiophore with a columella and a single projection. d. Unbranched sporangiophore with a columella and double projection. e. Unbranched sporangiophore with a columella without projection. f. Unbranched sporangiophores on a stolon. g. Cylindrical and cuneiform sporangiospores.
FIGURE 3 in Morphological and molecular evidence for two new species of Absidia from Neotropic soil
FIGURE 3. Absidia cornuta (holotype URM 93639). a. Unbranched sporangiophore with a columella and double projection. b. Unbranched sporangiophore with a columella with three projections. c. Branched sporangiophore. d. Unbranched sporangiophore with a columella and single projection. e. Sporangiophore with single branch. f. Rhizoid. g. Cylindrical sporangiospores.
FIGURE 1 in Morphological and molecular evidence for two new species of Absidia from Neotropic soil
FIGURE 1. Phylogenetic tree of Absidia and related species constructed using the ITS rDNA sequences. Actinomucor elegans, Circinella minor and Absidia idahoensis were used as an outgroup. Sequences are labeled with their database accession numbers. Support values are from maximum likelihood analyses and Bayesian inference. The sequences obtained in this study are annotated in boldface.
FIGURE 2 in Morphological and molecular evidence for two new species of Absidia from Neotropic soil
FIGURE 2. Phylogenetic tree of Cunninghamellaceae constructed using D1–D2 domains of nuc 28S rDNA sequences. Mortierella parvispora was used as an outgroup. Sequences are labeled with their database accession numbers. Support values are from maximum likelihood analyses and Bayesian inference. The sequences obtained in this study are annotated in boldface.
FIGURE 1 in Polygonatum daminense (Asparagaceae), a new species from China based on morphological and molecular evidence
FIGURE 1. Polygonatum daminense: A. Whole plants; B. Rhizome; C. Inflorescence; D. Flower; E. Open perianth and stamens; F. Pistil.
FIGURE 3 in Polygonatum daminense (Asparagaceae), a new species from China based on morphological and molecular evidence
FIGURE 3. ML tree produced by the combined matrix of plastid DNA. Numbers at nodes are bootstrap percentages.
FIGURE 7 in Taxonomic notes on Ilex sect. Ilex (Aquifoliaceae) from China II: Revision of I. fargesii and related species based on molecular and morphological evidence
FIGURE 7. Type specimens of Ilex wattii and its synonyms. A, lectotype of I. wattii subsp. wattii; B, isolectotype of I. wattii subsp. wattii; C, holotype of I. gintungensis; D, isotype of I. venosa; E, holotype of I. wattii subsp. marlipoensis (I. marlipoensis); F, isotype of I. cupreonitens; G, fruiting branch; H, old branch; I, pyrene. G–I photographed by Y. Yang.
FIGURE 6. Ilex pubifructa and its relatives. A in Taxonomic notes on Ilex sect. Ilex (Aquifoliaceae) from China II: Revision of I. fargesii and related species based on molecular and morphological evidence
FIGURE 6. Ilex pubifructa and its relatives. A, isotype of I. pubifructa; B, paratype of I. pubifructa; C, the collection from Yunnan (C. W. Wang 77406); D, specimen of I. pubifructa transplanted in KIB; E–F, syntype of I. denticulata; G–L, photos of I. pubifructa (G, tree and its drupe feeder, Zosterops palpebrosa; H, female inflorescence; I, male inflorescence; J, infructescence; K, pyrene; L, fruiting branch; M, bud). G–I and L photographed by Y. Yang; J–K and M photographed by L. Jiang.
FIGURE 5 in Taxonomic notes on Ilex sect. Ilex (Aquifoliaceae) from China II: Revision of I. fargesii and related species based on molecular and morphological evidence
FIGURE 5. Type specimens of Ilex fargesii and its relatives. A, holotype of I. fargesii subsp. fargesii; B, isotype of I. fargesii subsp. fargesii; C, syntype of I. franchetiana (synonym of I. fargesii subsp. fargesii); D, lectotype of I. fargesii subsp. melanotricha; E, isotype of I. chartaceifolia; F, holotype of I. micropyrena; G, I, K, the infructescences of I. fargesii, I. chartaceifolia and I. micropyrena, respectively; H, J, L, the pyrenes of I. fargesii, I. chartaceifolia and I. micropyrena, respectively. G photographed by F. Zhao.
FIGURE 4 in Taxonomic notes on Ilex sect. Ilex (Aquifoliaceae) from China II: Revision of I. fargesii and related species based on molecular and morphological evidence
FIGURE 4. Distribution of Ilex denticulata, I. fargesii, I. pubifructa, and I. wattii based on specimen records and our filed investigation
FIGURE 3 in Taxonomic notes on Ilex sect. Ilex (Aquifoliaceae) from China II: Revision of I. fargesii and related species based on molecular and morphological evidence
FIGURE 3. The distribution map of Ilex fargesii with various leaf shapes based on the sampled specimens.
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.