Find research datasets worth reusing
Search datasets from major research repositories and use ShareScore to quickly assess how well each record supports discovery, access, and reuse.
2,620
datasets available to search
ShareScore release 0.9.0
Dataset results
2,620 results for “Molecular Phylogeny”
FIGURE 4 in Taxonomy of the tribe Apieae (Apiaceae) revisited as revealed by molecular phylogenies and morphological characters
FIGURE 4. Transverse section of the mericarps of species representing of all the genera of tribe Apieae except Billburttia. All the photographs show mericarps in cross section except for Naufraga (J) which is a complete schizocarp. Scale bar = 1 mm. Lower cases indicate in the different slides the main carpological features commented in this work: c, commissure; mr, marginal ribs; pr, primary dorsal ribs; sr, secondary ribs; v, vallecula; cv, commissural vitta; vv, vallecular vitta; vb, vascular bundles. Dash lines in figures C and O depicts the break of fruit layers due to manipulation. For voucher information see Table 1. Species are provided in alphabetical order. A. Ammi majus. B. Anethum foeniculoides. C. Anethum graveolens, arrow depicts the vascular bundles within a broken winged marginal rib. D. Apium anuum. E. Apium graveolens. F. Deverra aphylla. G. Deverra denudata. H. Deverra intermedia. I. Foeniculum vulgare (A. Aparicio & J. G. Rowe s.n., MA). J. Naufraga balearica, arrow depicts commissural vascular bundles. K. Petroselinum crispum, arrow depicts an accessorial vitta (E. San Miguel ESM278, MA). L. Pseudoridolfia fennanei (paratype J. Mathez 6979ter, MPU). M. Ridolfia
FIGURE 3 in Taxonomy of the tribe Apieae (Apiaceae) revisited as revealed by molecular phylogenies and morphological characters
FIGURE 3. Mericarps of species representing of all the genera of tribe Apieae (except Billburttia). Pictures represent the adaxial view of a single mericap unless specified otherwise. A. Foeniculum vulgare. B. Anethum foeniculoides, C. Anethum graveolens. D. Naufraga balearica (two mericarps on the pedicelle). E. Petroselinum crispum (lateral view). F. Ridolfia segetum. G. Ammi majus. H. Stoibrax involucratum. I. Apium graveolens. J. Apium annuum. K. Pseudoridolfia fennanei. L. Stoibrax dichotomum. M. Seseli webbii. N. Sclerosciadium nodiflorum. O. Deverra denudata. P. Deverra aphylla (two mericarps kept together).
FIGURE 2 in Taxonomy of the tribe Apieae (Apiaceae) revisited as revealed by molecular phylogenies and morphological characters
FIGURE 2. Majority rule consensus tree obtained from the Bayesian analysis of the rps16 matrix with coded indels. Bayesian posterior probabilities are given in regular typeface next to the respective branches when greater than 0.9; bootstrap values from the corresponding maximum parsimony consensus tree are given in italics when greater than 75%. Well supported major clades and subclades are named according Results. The white arrows at right point the placement of the different accessions of Stoibrax. The black arrows point the
FIGURE 1 in Taxonomy of the tribe Apieae (Apiaceae) revisited as revealed by molecular phylogenies and morphological characters
FIGURE 1. Majority rule consensus tree obtained from the Bayesian analysis of ITS matrix with coded indels. Bayesian posterior probabilities are given in regular typeface next to the respective branches; bootstrap values from the corresponding maximum parsimony consensus tree are given in italics when greater than 75%. Well supported major clades and subclades are named according to Results. The white arrows at right point the placement of the different accessions of Stoibrax. The black arrows point the placement of the different
FIGURE 3 in Molecular phylogeny confirms the placement of enigmatic Stachys persepolitana in Lamium (Lamiaceae; subfam. Lamioideae)
FIGURE 3. Photographs of Lamium persepolitanum. A. Lectotype, G-BOIS, B. Habit, C. Calyx, D. Corolla, E. Inflorescence of L. persepolitanum (from Yasaman Salmaki).
FIGURE 1. The 50 in Molecular phylogeny confirms the placement of enigmatic Stachys persepolitana in Lamium (Lamiaceae; subfam. Lamioideae)
FIGURE 1. The 50% majority rule consensus phylogram from a Bayesian analysis of the combined cpDNA dataset of members of subfamily Lamioideae (Lamiaceae). Posterior probabilities and non-parametric bootstrap values ≥ 50% from 1000 replicates are indicated above and below branches, respectively.
FIGURE 2. The 50 in Molecular phylogeny confirms the placement of enigmatic Stachys persepolitana in Lamium (Lamiaceae; subfam. Lamioideae)
FIGURE 2. The 50% majority rule consensus phylogram from a Bayesian analysis of the nrITS dataset of members of subfamily Lamioideae (Lamiaceae). Posterior probabilities and non-parametric bootstrap values ≥ 50% from 1000 replicates are indicated above and below branches, respectively.
FIGURE 3 in Molecular phylogeny and taxonomy of Fibroporia (Basidiomycota) in China
FIGURE 3. Microscopic structures of Fibroporia albicans (drawn from the holotype). a: Basidiospores. b: Basidia and basidioles. c: Cystidioles. d: Hyphae from trama. e: Hyphae from subiculum.
FIGURE 1 in Molecular phylogeny and taxonomy of Fibroporia (Basidiomycota) in China
FIGURE 1. Maximum parsimony strict consensus tree illustrating the phylogeny of Fibroporia albicans and its related species, based on ITS sequences. Branches are labeled with parsimony bootstrap proportions (before slash) higher than 50% and Bayesian posterior probabilities (after slash) more than 0.95. Newly generated sequences are indicated in bold.
FIGURE 5. Pseudocodon petiolatus D. Y. Hong & Q. Wang. 1, plant. 2, root. 3 in Taxonomic revision of the genus Pseudocodon (Campanulaceae) based on character analysis and molecular phylogeny
FIGURE 5. Pseudocodon petiolatus D. Y. Hong & Q. Wang. 1, plant. 2, root. 3, stamens & ovary. The illustration was drawn by Ai-Li Li.
FIGURE 3. The 50 in Taxonomic revision of the genus Pseudocodon (Campanulaceae) based on character analysis and molecular phylogeny
FIGURE 3. The 50% majority rule consensus tree derived from the Bayesian analysis of ITS. Ranges of parsimony jackknife support (JK) above 50 are reported with bootstrap value of likelihood, and Bayesian posterior probability values (MP/ML/BI) above branches. The putative new species from Muli is indicated by grey shadow.
FIGURE 2 in Taxonomic revision of the genus Pseudocodon (Campanulaceae) based on character analysis and molecular phylogeny
FIGURE 2. Principal coordinate analysis on 11 groups (the characters used are explained and described in Table 2): A, convolvulacea group; B, forrestii group with petiole <6 mm; C, forrestii group with petiole ≥ 6 mm; D, efilamentosa group; E, vinciflora group from NW Yunnan and SW Sichuan; F, vinciflora group from W & NW Sichuan; G, vinciflora group from SE Tibet; H, grey-wilsonii group; I, hirsuta group; J, graminifolia group, and K, the group possibly representing a new species.
FIGURE 4. The 50 in Taxonomic revision of the genus Pseudocodon (Campanulaceae) based on character analysis and molecular phylogeny
FIGURE 4. The 50% majority rule consensus tree derived from the Bayesian analysis of combining four chloroplast DNA fragments. Ranges of parsimony jackknife support (JK) above 50 are reported with bootstrap value of likelihood, and Bayesian posterior probability values (MP/ML/BI) above branches. The putative new species from Muli is indicated by grey shadow.
FIGURE 1 in Taxonomic revision of the genus Pseudocodon (Campanulaceae) based on character analysis and molecular phylogeny
FIGURE 1. Polymorphism of leaf shape and petiole length within a population of Codonopsis forrestii / Codonopsis efilamentosa (Kunming, Yunnan Prov., D. Y. Hong et al., H10012, PE, photographed by De-Yuan Hong). Scale bar = 1 cm.
FIGURE 3. A–F in Three new species of Entoloma subgenus Nolanea from India based on morphology and molecular phylogeny
FIGURE 3. A–F: Entoloma brunneoapplanatum (CAL 1313, holotype). A–B. Basidiomata. C. Basidiospores; D. Basidium; E. Pileipellis; F. Pileipellis hypha showing spiral encrustations. Scale bars: A–B = 10 mm; C–F = 10 μm. Photos by K. N. Anil Raj.
FIGURE 2. A–F in Three new species of Entoloma subgenus Nolanea from India based on morphology and molecular phylogeny
FIGURE 2. A–F: Entoloma luteodiscum (CAL 1312, holotype). A–C. Basidiomata; D. Basidiospores; E. Basidium; F. Pileipellis. Scale bars: A–C = 10 mm; D–F = 10 μm. Photos by K. N. Anil Raj.
FIGURE 1. A–F in Three new species of Entoloma subgenus Nolanea from India based on morphology and molecular phylogeny
FIGURE 1. A–F: Entoloma brunneoumbonatum (CAL 1317, holotype). A. Basidiomata; B. Basidiospores; C. Basidium; D. Hyphal septum showing clamp-connection; E. Pileipellis; F. Cheilocystidia. Scale bars: A = 10 mm; B–F = 10 μm. Photos by K. N. Anil Raj.
FIGURE 4 in Three new species of Entoloma subgenus Nolanea from India based on morphology and molecular phylogeny
FIGURE 4. ITS-based phylogram generated from Maximum likelihood (ML) analysis depicting the placement of Entoloma brunneoumbonatum, E. luteodiscum and E. brunneoapplanatum within the clade Nolanea. Values at nodes indicate bootstrap support. BS values ≥50% are shown.
FIGURE 21 in Toward a monograph of non-marine Ulvophyceae using an integrative approach (Molecular phylogeny and systematics of terrestrial Ulvophyceae II.)
FIGURE 21. Overview about the morphology of the investigated Chamaetrichon strains grown on MIEB12 medium. A, B. SAG 1.87, general and close view of filaments, with a common mucilage, C. UTEX 1918, filaments with rudimentary branching, surrounded by common mucilage stained with indian ink, D. SAG 23.88, branched filaments, E. ULVO-15, short branched filaments surrounded by mucilage at the edge of the colony, F. SAG 2396, short filaments and packets, surrounded by common matrix.
FIGURE 14 in Toward a monograph of non-marine Ulvophyceae using an integrative approach (Molecular phylogeny and systematics of terrestrial Ulvophyceae II.)
FIGURE 14. Overview about the morphology of the investigated Sarcinofilum strains grown on 3NBBM medium. A,B. SAG 4.90, C. SAG 24.93, D. SAG 29.94, E. 26.94, F. SAG 26.88.
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.