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.
218
datasets available to search
ShareScore release 0.9.0
Dataset results
218 results for “Pleosporales”
FIGURE 2 in Parathyridaria ephedrae sp. nov. (Thyridariacaeae, Pleosporales), endophytic to Ephedra gerardiana in India
FIGURE 2. Parathyridaria ephedrae (MCC 9655, holotype). a, b. Conidiomata on nutrient medium. c. View of conidiomata showing prominent, wart-like papillae. d. Section of conidioma through papilla showing long ostiolar canal. e, f. Section through the conidiomatal wall showing multi-layered textura angularis lined with conidiogenous cells. g, h. Ampulliform and doliiform conidiogenous cells. i, j. Conidia. Scale bars a = 1000 μm, b = 500 μm, c = 200 μm, d = 50 μm, e, f = 30 μm, g–j = 10 μm. Photo credit: Aroosa Jan Mattoo.
FIGURE 3 in Parathyridaria ephedrae sp. nov. (Thyridariacaeae, Pleosporales), endophytic to Ephedra gerardiana in India
FIGURE 3. Cultural characteristics of Parathyridaria ephedrae. a. Isolation plate showing emergence of mycelium (arrow) from a surface sterilized stem segment. b. Colonies on PDA before sporulation. c. Colony on PDA after sporulation (above, left; below, right). d–g. Colonies on MEA, CDA, OMA and WA, respectively (above, left; below, right). Photo credit: Aroosa Jan Mattoo.
FIGURE 2 in Massaria broussonetiae sp. nov. and M. racemosae sp. nov. (Massariaceae, Pleosporales) on moraceous hosts
FIGURE 2. Massaria broussonetiae (holotype, HKAS 102402) a Substrate. b, c Ascomata on substrate. d Vertical section of an ascoma. e Ostiolar neck with green algae-like structures (in white arrows). f Peridium. g Paraphyses. h–m Ascospores (l in Congo Red, m in Indian ink). n–q Asci. Scale bars: a = 1 cm, b, c = 500 µm, d = 200 µm, n–q = 50 µm, e, f, h–m = 20 µm, g = 5 µm.
FIGURE 3 in Massaria broussonetiae sp. nov. and M. racemosae sp. nov. (Massariaceae, Pleosporales) on moraceous hosts
FIGURE 3. Massaria racemosae (holotype, MFLU 19–2135) a Substrate. b, c Ascomata on substrate. d Vertical section of an ascoma. e Peridium. f Paraphyses. g–l Asci (l in Congo Red). m–t Ascospores (s in Congo Red, t in Indian ink). Scale bars: a = 1 cm, b = 1000 µm, c = 500 µm, d = 200 µm, g–l = 50 µm, e, m–s = 20 µm, f = 5 µm.
FIGURE 1 in Massaria broussonetiae sp. nov. and M. racemosae sp. nov. (Massariaceae, Pleosporales) on moraceous hosts
FIGURE 1. Phylogram generated from maximum likelihood (IQ-tree) based on the LSU–SSU–TEF1–RPB2 matrix. MP, ML bootstrap support (≥50%) and Bayesian posterior probabilities (≥0.95PP) support are given above or below the branches, respectively. The types and ex-types taxa are in black and red bold, and the newly introduced taxa are in red. Aceraceae, Adoxaceae, Fabaceae, Moraceae, Rosaceae, Rutaceae, and Ulmaceae host families are indicated right side.
FIGURE 1 in Pseudokeissleriella bambusicola gen. et sp. nov. (Lentitheciaceae, Pleosporales) from bamboos in Sichuan province, China
FIGURE 1. RAxML analysis of Lentitheciaceae based on a concatenated dataset of SSU, ITS, LSU and tef-1α sequence data. Bootstrap support values for maximum likelihood (ML) and maximum parsimony (MP) equal to or greater than 75% were placed above the branches (ML/MP). Bayesian posterior probabilities (BYPP) equal to or greater than 0.95 were shown as bold branches. Ex-type strains were in bold and new strains generated in this study were indicated in red.
FIGURE 2 in Pseudokeissleriella bambusicola gen. et sp. nov. (Lentitheciaceae, Pleosporales) from bamboos in Sichuan province, China
FIGURE 2. Pseudokeissleriella bambusicola (HKAS 124020, holotype) a–b Ascomata on host surface. c Horizontal section of an ascoma. d Vertical section of ascomata. e Ostiole. f Peridium. g Hamathecium. h–l Asci, m–t Ascospores. u Ascospore stained with India ink showing the mucilaginous sheath. v Germinating ascospore. w, x Colony on PDA (four weeks). Scale bars: d = 100 μm, e = 50 μm, f–l = 20 μm, m–v = 10 μm.
Supplementary material 2 from: Iturrieta-González I, Gené J, Guarro J, Castañeda-Ruiz RF, García D (2018) Neodendryphiella, a novel genus of the Dictyosporiaceae (Pleosporales). MycoKeys 37: 19-38. https://doi.org/10.3897/mycokeys.37.27275
Supplementary material 2 from: Iturrieta-González I, Gené J, Guarro J, Castañeda-Ruiz RF, García D (2018) Neodendryphiella, a novel genus of the Dictyosporiaceae (Pleosporales). MycoKeys 37: 19-38. https://doi.org/10.3897/mycokeys.37.27275
Supplementary material 1 from: Iturrieta-González I, Gené J, Guarro J, Castañeda-Ruiz RF, García D (2018) Neodendryphiella, a novel genus of the Dictyosporiaceae (Pleosporales). MycoKeys 37: 19-38. https://doi.org/10.3897/mycokeys.37.27275
Supplementary material 1 from: Iturrieta-González I, Gené J, Guarro J, Castañeda-Ruiz RF, García D (2018) Neodendryphiella, a novel genus of the Dictyosporiaceae (Pleosporales). MycoKeys 37: 19-38. https://doi.org/10.3897/mycokeys.37.27275
FIGURE 3 in Stemphylium persianum sp. nov., (Pleosporales, Ascomycota) from Iran
FIGURE 3. Asexual morph of Stemphylium persianum (IRAN 4984C). a‒b. Symptoms on Schoenoplectus sp.; c‒e. Colonies (front and reverse) on PDA (c), PCA (d) and V‒8A (e) culture media after seven days; f. Sporulation pattern on PCA medium; g–j. Conidiophores and conidia; k. Conidia. Scale bars: f‒k = 20 μm.
FIGURE 1 in Stemphylium persianum sp. nov., (Pleosporales, Ascomycota) from Iran
FIGURE 1. Phylogenetic tree inferred from maximum likelihood (ML) of combined dataset of ITS‒rDNA, gapdh and cmdA of Stemphylium species. The tree was rooted to Alternaria alternata (GV14-634a1) and newly identified strains are in red boldface. The maximum likelihood and maximum parsimony (MP) bootstrap support (MLBS/MPBS) values ≥60% and Bayesian posterior probabilities (BIPP) ≥0.90 are given at the nodes. The scale bar indicates the number of nucleotide substitutions. T, ET, HT and NT indicate ex-type, exepitype, holotype and ex-neotype strains, respectively.
FIGURE 2 in Stemphylium persianum sp. nov., (Pleosporales, Ascomycota) from Iran
FIGURE 2. Sexual morph of Stemphylium persianum (IRAN 4984C). a‒e. Ascomata on PCA medium containing culms of host plant; f. Vertical section through an ascoma; g‒h. Peridium; i‒m. Asci; n. Ascospores. Scale bars: d‒e = 100 μm, f‒n = 20 μm.
FIGURE 2 in Hermatomyces pyriformis sp. nov., a novel dematiaceous hyphomycete (Hermatomycetaceae, Pleosporales) associated with medicinal plants in Yunnan Province, China
FIGURE 2. Hermatomyces pyriformis (HKAS 132457, holotype). a. Host Eleutherococcus nodiflorus. b. Branch of Eleutherococcus nodiflorus. c−e. Colonies on host surface. f. Conidiophores with conidia. g, h. Colonies on PDA (g from above, h from below). i−l. Conidiogenous cells and conidia. m. Germinated conidium. n−u. Conidia. Scale bars: f, i−u = 10 µm.
FIGURE 1 in Hermatomyces pyriformis sp. nov., a novel dematiaceous hyphomycete (Hermatomycetaceae, Pleosporales) associated with medicinal plants in Yunnan Province, China
FIGURE 1. Phylogenetic tree from ML analysis based on the combined LSU, ITS, tef1-α and rpb2 sequences data. Branches support for ML ≥ 75% and Bayesian inference posterior probabilities (BIPP) ≥ 0.95 are marked above or below branches as MLBS/BIPP. The tree was rooted with Elsinoe centrolobi (AFTOL-ID 1854) and E. veneta (AFTOL-ID 1360). The abbreviation T indicate ex-type isolates. New species is indicated in red.
FIGURE 1 in Introduction of a novel freshwater species Setoseptoria guangxiensis sp. nov., with Setoseptoria baiyunensis nom. nov., in Lentitheciaceae, Pleosporales
FIGURE 1. The RAxML tree is generated from combined LSU, SSU, ITS and tef1-α sequence data analysis. Bootstrap support values for ML equal to or greater than 60% and Bayesian posterior probabilities (PP) equal to or greater than 0.95 are given above the nodes shown as "ML/PP". The tree is rooted to Massarina cisti (CBS 266.62) and Massarina eburnea (CBS 473.64). Type strains are indicated in bold, new species is marked in red, and new name is indicated in blue.
FIGURE 3 in Introduction of a novel freshwater species Setoseptoria guangxiensis sp. nov., with Setoseptoria baiyunensis nom. nov., in Lentitheciaceae, Pleosporales
FIGURE 3. Setoseptoria guangxiensis (ZHKUCC 23-1034). a A two-month-old colony on PDA (from above). b Ascoma produced in PDA after two months. c Colony on PDA (from below). d, e Asci. f–i Ascospores (i ascospore in Indian Ink). Scale bars: d–i = 20 µm.
FIGURE 2 in Introduction of a novel freshwater species Setoseptoria guangxiensis sp. nov., with Setoseptoria baiyunensis nom. nov., in Lentitheciaceae, Pleosporales
FIGURE 2. Setoseptoria guangxiensis (MHZU 23-0281, holotype). a, b Appearance of ascomata on the host. c, d Section of ascomata. e Structure of peridium. f Pseudoparaphyses. g, h Asci. i–n Ascospores (n ascospore in Indian Ink). o Germinated ascospore. p, q Colony on PDA (p from above, q from below). Scale bars: c, d = 50 µm, e–o = 20 µm.
FIGURE 2. Preussia octocylindrospora A–B. ascomata, C–D. pseudoparaphyses E–G. asci, H–I. ascospores. J in New species of Preussia with 8-celled ascospores (Sporormiaceae, Pleosporales, Ascomycota)
FIGURE 2. Preussia octocylindrospora A–B. ascomata, C–D. pseudoparaphyses E–G. asci, H–I. ascospores. J. part of an ascospore with enhanced germ slits A–J. Coll. F-529978 (UPS). Scale bars: A–B=100 μm, C–D= 10 μm, E–G= 20 μm, H–J=10 μm.
FIGURE 1. Preussia alpina A–B. ascomata, C in New species of Preussia with 8-celled ascospores (Sporormiaceae, Pleosporales, Ascomycota)
FIGURE 1. Preussia alpina A–B. ascomata, C. detail of exoperidium, D. immature ascus, E. ascus, F–G. pseudoparaphyses, H–O. ascospores. A–B, F–H, M. Coll. F-529764 (UPS), C, E, L. Coll. F-529759 (UPS), D, J. Coll. F-529761 (UPS), I. Coll. F-529762 (UPS), K. Coll. F-529758 (UPS), N–O. Coll. F-529760 (UPS). Scale bars: A–B=100 μm, C=10 μm, D–E=20 μm, F–O=10 μm.
FIGURE 1 in Phylogeny and morphology of Premilcurensis gen. nov. (Pleosporales) from stems of Senecio in Italy
FIGURE 1. Phylogenetic tree obtained from RAxML analysis based on combined LSU, ITS and SSU sequence data. Bootstrap support values for maximum parsimony (MP, left), maximum likelihood (ML, middle) higher than 60% and Bayesian posterior probabilities (BYPP, right) greater than 0.95 are provided at the nodes. The tree is rooted with Halojulella avicenniae (BCC 20173). Newly generated sequences and ex-types strains are in bold.
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.