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FIGURE 2 in Suillus adhikarii, a new species from the subalpine Himalaya of India and Nepal associated with Larix
FIGURE 2. Suillus adhikarii (KD 11-007) a. Basidiospores b–c. Caulocystidia d. Caulobasidia e. Tube basidia f. Radial section through pileipellis g. Pleuro- and cheilocystidia. Bars: a–g = 10 μm.
FIGURE 1 in Suillus adhikarii, a new species from the subalpine Himalaya of India and Nepal associated with Larix
FIGURE 1. Suillus adhikarii (KD 11-007): a & c. Fresh basidiomata in field b. Concolorous background color and reticulation of stipe above annulus d. Pore surface e. Compound pores (from dry material) f. Radial section through pileipellis g. Hymenial cystidia h. Basidiospores. Bars: e = 1000 μm, f = 50 μm, g–h = 10 μm.
FIGURE 2. Andinia wayqechensis. A. Habit, ascendent plant growing associated with mosses. B. Habit, lateral view with a flower and fruit. C. Flower, lateral view. D. Flower, frontal view. Photographs A and C in Andinia wayqechensis (Orchidaceae), a new species from southern Peru
FIGURE 2. Andinia wayqechensis. A. Habit, ascendent plant growing associated with mosses. B. Habit, lateral view with a flower and fruit. C. Flower, lateral view. D. Flower, frontal view. Photographs A and C by Anne-Laure Maire, B and D by Carlos Martel.
FIGURE 2 in Ophiostoma olgensis, a new species associated with Larix spp. and Ips subelongatus in northern China
FIGURE 2. Light micrographs of Ophiostoma olgensis. Colony morphology (A: O. olgensis on MEA; B: O. olgensis on PDA); Sexual characteristic (C: Perithecium, D: Perithecium neck with ostiolar hyphae, E: Fertile perithecium releasing ascospores; F, G: Reniform ascospores without sheaths); Asexual characteristic (H: Hyalorhinocladiella anamorph with annellidic conidium development, I: Obovoid with sharp bases to almost clavate conidia). Scale bar: C=100 μm; D-I=10 μm.
FIGURE 1 in Ophiostoma olgensis, a new species associated with Larix spp. and Ips subelongatus in northern China
FIGURE 1. Phylogram obtained from MP analysis of ITS1-5.8S-ITS2 rDNA (partial β-tubulin, EF-1α, and actin gene regions) sequences, showing fungal associates of Ips subelongatus from north China within the Ophiostomatales. Novel sequences obtained in this study are printed in bold type. MP bootstrap values (10,000 replicates) (bold type) and ML bootstrap support values (1,000 replicates) (normal type)>70% are indicated at the nodes. Values <80% are indicated by the symbol *. Two or three probabilities (above 90%) are indicated by bold lines at the relevant branching points. Scale bar = total nucleotide differences between taxa; ML, maximum likelihood; MP, maximum parsimony; BI, Bayesian inference.
FIGURE 2. The Bayesian 50 in Tulasnella tubericola (Tulasnellaceae, Cantharellales, Basidiomycota): a new Rhizoctonia-like fungus associated with mycorrhizal evergreen oak plants artificially inoculated with black truffle (Tuber melanosporum) in Spain
FIGURE 2. The Bayesian 50% majority-rule consensus tree inferred from sequences of the ITS region of rDNA. Numbers above and below nodes represent bayesian posterior probabilities. Phylogram was rooted with an ITS sequence of Botryobasidium botryosum.
FIGURE 1. Tulasnella tubericola CECT 20958 in Tulasnella tubericola (Tulasnellaceae, Cantharellales, Basidiomycota): a new Rhizoctonia-like fungus associated with mycorrhizal evergreen oak plants artificially inoculated with black truffle (Tuber melanosporum) in Spain
FIGURE 1. Tulasnella tubericola CECT 20958 (holotype). a-c. morphological aspect in PDA culture (front view) at several temperatures; d. runner hyphae; e. monilioid-like hyphal elements; f. chains of monilioid cells; g. bi- and tri-nucleate hyphae
FIGURE 3 in Gyrodon suthepensis (Boletales, Basidiomycota), a new ectomycorrhizal fungus from northern Thailand and its ecomycorhizal association
FIGURE 3. Morphological and anatomical traits of Gyrodon suthepensis mycorrhizas with Betula alnoides. A. Ectomycorrhizal root tips, B. The epidermoid cells of the outer mantle layer, C. Cross section of mycorrhizal root tips showing mantle sheath (M) and Hartig net (arrow). Scale bars: A = 1 mm; B and C = 10 μm.
FIGURE 2 in Gyrodon suthepensis (Boletales, Basidiomycota), a new ectomycorrhizal fungus from northern Thailand and its ecomycorhizal association
FIGURE 2. Phylogram derived from maximum likelihood analysis of the ITS region of nuclear of rDNA of 37 sequences. Suillus luteus and Sui. spraguei were used as the outgroup. The numbers above branches represent maximum likelihood bootstrap percentages (left) and Bayesian posterior probabilities (right). Only bootstrap values ≥ 50 % are shown, and the scale bar represents ten substitutions per nucleotide position. The sequences obtained from this study are in bold.
FIGURE 1 in Gyrodon suthepensis (Boletales, Basidiomycota), a new ectomycorrhizal fungus from northern Thailand and its ecomycorhizal association
FIGURE 1. Phylogram derived from maximum likelihood analysis of the LSU region of nuclear of rDNA of 41 sequences. Suillus luteus and Sui. spraguei were used as the outgroup. The numbers above branches represent maximum likelihood bootstrap percentages (left) and Bayesian posterior probabilities (right). Only bootstrap values ≥ 50 % are shown, and the scale bar represents ten substitutions per nucleotide position. The sequences obtained from this study are in bold.
FIGURE 4 in Gyrodon suthepensis (Boletales, Basidiomycota), a new ectomycorrhizal fungus from northern Thailand and its ecomycorhizal association
FIGURE 4. Gyrodon suthepensis (holotype). A. Basidiomes, B. Basidiospores, C. Basidia, D. Pleurocystidia, E. Cheliocystidia. Scale bars: A = 50 mm; B = 5 μm; C−E = 10 μm.
FIGURE 4 in Ophiostoma pehueninum, a new species associated with Araucaria araucana in Chile
FIGURE 4. Colony morphology of Ophiostoma pehueninum (holotype) after 21 d growth at 25 °C on MEA, PDA and OA (from left to right).
FIGURE 1 in Ophiostoma pehueninum, a new species associated with Araucaria araucana in Chile
FIGURE 1. Phylogram obtained from ML analysis of the ITS region showing the placement in Ophiostoma s. str. of the isolates collected in Araucaria araucana. Bootstrap values ≥ 75 % are recorded at nodes as ML/MP (* = bootstrap values lower than 75 %).
FIGURE 3 in Ophiostoma pehueninum, a new species associated with Araucaria araucana in Chile
FIGURE 3. Ophiostoma pehueninum (RGM 2389, holotype). A: Blastic conidia in the apex of conidiogenous cell. B, C: Conidia revealing narrowly spaced, over the conidiophore, and wide basal insertion. D: Conidia with repeated percurrent proliferations of the conidiogenous cell (in the box conidia with basal scar), E. Conidiogenous cell revealing narrowly spaced scar due to repeated percurrent proliferations, in the long axis (arrows). F: Apparent synchronic born of blastic conidia with repeated percurrent proliferations in the apex of sessile conidiogenous cell in the width mycelia, G: Secondary conidia. H: Group of ascomata in submerged water agar with sterilized Araucaria twigs. I: Perithecia with long neck and peridial hyphae around the base (in the box, ascospores with huge increase). J: Ascomata apex necks with divergent ostiolar hyphae and ascospore. Scale bar: A-G and I (small box) = 5 μm; H-I = 100 μm; J = 10 μm.
FIGURE 2 in Ophiostoma pehueninum, a new species associated with Araucaria araucana in Chile
FIGURE 2. Phylogram obtained from ML analysis of the β-tubulin (left) and EF-1α (right) gene region for selected species in Ophiostoma s. str. Bootstrap values ≥ 75 % are recorded at nodes as ML/MP (* = bootstrap values lower than 75 %).
FIGURE 2 in Molecular phylogeny of Nectria species associated with dieback and canker diseases in China, with a new species described
FIGURE 2. Morphology of Nectria ulmicola from Ulmus davidiana var. japonica (BJFC-S1372, holotype). A–C: Sporodochia on natural substrata. D: Median section of astipitate sporodochium. E–F: Conidia. G: Conidiophores. H: Immature conidiophores. Scale bars: A–D = 200 μm; E–H = 10 μm.
FIGURE 6 in Molecular phylogeny of Nectria species associated with dieback and canker diseases in China, with a new species described
FIGURE 6. Morphology of Nectria pseudotrichia from Ulmus pumila (BJFC-S1392). A: Host branch. B–D: Synnemata on natural substrata. E: Median section of synnema. F–H: Conidiophores and conidia. I: Conidia. Scale bars: C = 1 mm; D–E = 500 μm; F–I = 20 μm.
FIGURE 4 in Molecular phylogeny of Nectria species associated with dieback and canker diseases in China, with a new species described
FIGURE 4. Sexual morph of Nectria dematiosa from Malus baccata (BJFC-S440). A: Host branch. B–D: Perithecia on natural substrata. E–F: Median section of perithecium. G–I: Asci. J–L: Ascospores. Scale bars: B–C = 1 mm; D–E = 500 μm; F–L = 20 μm.
FIGURE 1 in Molecular phylogeny of Nectria species associated with dieback and canker diseases in China, with a new species described
FIGURE 1. Phylogram of the combined act, LSU, ITS, rpb2, tef1, and tub2 gene sequences based on the MP, ML, and BI analyses. Values at the nodes indicate the Maximum Parsimony bootstrap proportion (left, MPBP ≥ 50%) and the Maximum Likelihood bootstrap proportion (right, MLBP ≥ 50%). The branches with significant BIPP values (≥ 0.90) in the BI analysis are thickened. Scale bar = 200 nucleotide substitutions. *Ex-type/Ex-epitype isolate. The new Nectria species resulting from the current study is highlighted in bold.
FIGURE 3 in Molecular phylogeny of Nectria species associated with dieback and canker diseases in China, with a new species described
FIGURE 3. Morphology of Nectria balansae from Aphananthe aspera (BJFC-S1389). A: Host branch. B–D: Perithecia on natural substrata. E–F: Median section of perithecium. G, J, K: Ascospores. H–I: Asci. Scale bars: B–E = 500 μm; F, H, I = 50 μm; G, J, K = 20 μm.
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.