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29 results for “Didymellaceae”
FIGURE 2 in Stagonosporopsis rhizophilae sp. nov. (Didymellaceae, Pleosporales), a new rhizospheric soil fungus associated with Populus deltoides Marsh
FIGURE 2. Stagonosporopsis rhizophilae sp. nov. (CGMCC3.19852). A–D. Colonies on PDA, MEA, CA, and OA, respectively (front and reverse); E. Pycnidia forming on OA. F. Section of pycnidium. G. Section of pycnidial wall. H. Conidiogenous cells. I. Conidia. Scale bars: 800 μm (E), 20 μm (F), 10 μm (G–I). PDA: potato dextrose agar, MEA: malt extract agar, CA: cherry-decoction agar, and OA: oatmeal agar.
FIGURE 2 in A polyphasic approach to characterise two novel species of Phoma (Didymellaceae) from China
FIGURE 2. Phoma odoratissimi (CGMCC 3.17488). A–B. Colony on OA (front and reverse). C–D. Colony on MEA (front and reverse). E–F. Colony on PDA (front and reveres). G. Lesions on diseased leaves of Viburnum odoratissimum. H–I. Pycnidia on OA. J. Section of the pycnidial wall. K. Conidia. Scale bars: I = 100 μm; J–K = 10 μm.
FIGURE 1. Phylogenetic tree generated from a in A polyphasic approach to characterise two novel species of Phoma (Didymellaceae) from China
FIGURE 1. Phylogenetic tree generated from a maximum parsimony analysis based on the combined ITS, LSU, TUB and RPB2 sequence alignment. Values above the branches represent parsimony bootstrap support values (>50%). Thickened branches represent significant Bayesian posterior probability (≥95%). Novel sequences are printed in bold and the scale bar indicated 40 changes. The tree is rooted with Phoma paspali (CBS 560.81). An asterisk (*) indicates the ex-type strains.
FIGURE 3 in A polyphasic approach to characterise two novel species of Phoma (Didymellaceae) from China
FIGURE 3. Phoma segeticola (CGMCC 3.17489). A–B. Colony on OA (front and reverse). C–D. Colony on MEA (front and reverse). E–F. Colony on PDA (front and reverse). G. Lesions on diseased leaves of Cirsium segetum. H–J. Pycnidia on OA. K. Longitudinal section of the pycnidium. L. Section of the pycinidal wall. M. Conidia. Scale bars: H, J = 50 μm; I = 100 μm; K–M = 10 μm.
FIGURE 3 in Didymella eriobotryae sp. nov. (Didymellaceae) and Arthrinium arundinis (Apiosporaceae) from fruit of Eriobotrya japonica (loquat) in China
FIGURE 3. Arthrinium arundinis (MFLU 16–2600 and MFLUCC 16–0596) a, b. Symptoms on loquat fruit (Eriobotrya japonica). c. Colony on PDA. d. Conidiogenous cells giving rise to conidia. e, f. Conidia. Scale bars: d = 20 μm, e, f = 10 μm.
FIGURE 2 in Didymella eriobotryae sp. nov. (Didymellaceae) and Arthrinium arundinis (Apiosporaceae) from fruit of Eriobotrya japonica (loquat) in China
FIGURE 2. Maximum likelihood tree from analysis of combined ITS, LSU and β-tubulin sequence data of species in Didymella, Didymellaceae. Bootstrap support values greater than 75% are given above or below the nodes. Culture accession numbers are mentioned along with the species name. The tree is rooted to Epicoccum nigrum. The ex-type and ex-epitype strains are in black bold and the newly generated strain is indicated in blue bold.
FIGURE 4 in Didymella eriobotryae sp. nov. (Didymellaceae) and Arthrinium arundinis (Apiosporaceae) from fruit of Eriobotrya japonica (loquat) in China
FIGURE 4. Didymella eriobotryae (MFLU 16–2599, holotype) a, b. Symptoms on loquat fruit (Eriobotrya japonica). c. Appearance of conidiomata sporulating on PDA. d, e. Squash mount of conidioma. f. Conidiomatal wall. g. Vertical sections through conidiomata. h. Conidiogenous cells and developing conidia. i. Conidia. Scale bars: d, e = 50 μm, f = 15 μm, g = 100 μm, h, i = 20 μm.
FIGURE 1 in Didymella eriobotryae sp. nov. (Didymellaceae) and Arthrinium arundinis (Apiosporaceae) from fruit of Eriobotrya japonica (loquat) in China
FIGURE 1. Maximum likelihood tree from analysis of ITS sequence data of species in Arthrinium, Apiosporaceae. Bootstrap support values greater than 75% are given above or below the nodes. Culture accession numbers are mentioned along with the species name. The tree is rooted to Seiridium phylicae. The ex-type and ex-epitype strains are in black bold and the newly generated strain is indicated in blue bold.
FIGURE 2 in Boeremia parva sp. nov., a novel species of the family Didymellaceae isolated from soil
FIGURE 2. Maximum-likelihood phylogenetic tree based on the concatenated sequences (ITS + ACT+CAL+TEF1-α + β-TUB) showing the phylogenetic position of novel strains KNU-NL4 and KNU-OL2 among the closest Boeremia species. Bootstrap values greater than 50% (percentage of 1000 replications) are shown at branching points. Filled circles indicate that the corresponding nodes were also recovered in trees generated using the neighbor-joining and maximum-parsimony algorithms. Open circles indicate that the corresponding nodes were also recovered in the tree generated using the neighbor-joining or maximum-parsimony algorithm. The isolated strains are shown in boldface. The tree was rooted using Phoma herbarum CBS 615.75 as an outgroup. Bar, 0.02 substitutions per nucleotide position.
FIGURE 1 in Boeremia parva sp. nov., a novel species of the family Didymellaceae isolated from soil
FIGURE 1. Cultural and morphological characteristics of Boeremia parva KNU-NL4. Cultures were grown at 25 °C for 7 days in darkness. A and B, front and reverse view of colony on potato dextrose agar; C and D, front and reverse view of colony on malt extract agar; E and F, front and reverse view of colony on oatmeal agar; G, conidia; H, conidiomata. Scale bars: G, H = 10 µm
Figure 8 from: Hou L, Hernández-Restrepo M, Groenewald JZ, Cai L, Crous PW (2020) Citizen science project reveals high diversity in Didymellaceae (Pleosporales, Dothideomycetes). MycoKeys 65: 49-99. https://doi.org/10.3897/mycokeys.65.47704
Figure 8 Paraboeremia truiniorum (CBS 144952). A, B Colony on OA (front and reverse) C, D colony on MEA (front and reverse) E, F colony on PDA (front and reverse) G pycnidia forming on OAH pycnidium I section of pycnidium J section of pycnidial wall K–N conidiogenous cells O conidia. Scale bars: 20 μm (H); 50 μm (I); 5 μm (J–O).
Figure 7 from: Hou L, Hernández-Restrepo M, Groenewald JZ, Cai L, Crous PW (2020) Citizen science project reveals high diversity in Didymellaceae (Pleosporales, Dothideomycetes). MycoKeys 65: 49-99. https://doi.org/10.3897/mycokeys.65.47704
Figure 7 Paraboeremia rekkeri (CBS 144955). A, B Colony on OA (front and reverse) C, D colony on MEA (front and reverse) E, F colony on PDA (front and reverse) G pycnidia forming on OAH pycnidium I section of pycnidium J section of pycnidial wall K–N conidiogenous cells O conidia. Scale bars: 100 μm (H); 20 μm (I); 10 μm (J); 5 μm (K–O).
Figure 6 from: Hou L, Hernández-Restrepo M, Groenewald JZ, Cai L, Crous PW (2020) Citizen science project reveals high diversity in Didymellaceae (Pleosporales, Dothideomycetes). MycoKeys 65: 49-99. https://doi.org/10.3897/mycokeys.65.47704
Figure 6 Nothophoma brennandiae (CBS 145912). A, B Colony on OA (front and reverse) C, D colony on MEA (front and reverse) E, F colony on PDA (front and reverse) G pycnidia forming on OA. H, I pycnidia J section of pycnidial wall K–M conidiogenous cells N conidia. Scale bars: 50 μm (H, I); 10 μm (J); 5 μm (K–N).
Figure 5 from: Hou L, Hernández-Restrepo M, Groenewald JZ, Cai L, Crous PW (2020) Citizen science project reveals high diversity in Didymellaceae (Pleosporales, Dothideomycetes). MycoKeys 65: 49-99. https://doi.org/10.3897/mycokeys.65.47704
Figure 5 Juxtiphoma kolkmaniorum (CBS 146005). A, B Colony on OA (front and reverse) C, D colony on MEA (front and reverse) E, F colony on PDA (front and reverse) G, H pycnidium forming on OAI chlamydospores J–L conidiogenous cells M conidia. Scale bars: 100 μm (G, H); 10 μm (I–M).
Figure 3 from: Hou L, Hernández-Restrepo M, Groenewald JZ, Cai L, Crous PW (2020) Citizen science project reveals high diversity in Didymellaceae (Pleosporales, Dothideomycetes). MycoKeys 65: 49-99. https://doi.org/10.3897/mycokeys.65.47704
Figure 3 Didymella degraaffiae (CBS 144956). A, B Colony on OA (front and reverse) C, D colony on MEA (front and reverse) E, F colony on PDA (front and reverse) G, H pycnidia on OAI section of pycnidium J section of pycnidial wall K, L conidiogenous cells M chlamydospores N conidia. Scale bars: 50 μm (H, I); 10 μm (J); 5 μm (K–N).
Figure 4 from: Hou L, Hernández-Restrepo M, Groenewald JZ, Cai L, Crous PW (2020) Citizen science project reveals high diversity in Didymellaceae (Pleosporales, Dothideomycetes). MycoKeys 65: 49-99. https://doi.org/10.3897/mycokeys.65.47704
Figure 4 Didymella kooimaniorum (CBS 144951). A, B Colony on OA (front and reverse) C, D colony on MEA (front and reverse) E, F colony on PDA (front and reverse) G pycnidia forming on OAH pycnidia I section of pycnidium J section of pycnidial wall K–M conidiogenous cells N conidia. Scale bars: 100 μm (H); 50 μm (I); 10 μm (J); 5 μm (K–N).
Figure 9 from: Hou L, Hernández-Restrepo M, Groenewald JZ, Cai L, Crous PW (2020) Citizen science project reveals high diversity in Didymellaceae (Pleosporales, Dothideomycetes). MycoKeys 65: 49-99. https://doi.org/10.3897/mycokeys.65.47704
Figure 9 Stagonosporopsis stuijvenbergii (CBS 144953). A, B Colony on OA (front and reverse) C, D colony on MEA (front and reverse) E, F colony on PDA (front and reverse) G pycnidia forming on OAH pycnidia I ostiole J–L conidiogenous cells M stromatic hyphal aggregations N conidia. Scale bars: 50 μm (H); 10 μm (I, M); 5 μm (J–L, N).
Figure 13 from: Hou L, Hernández-Restrepo M, Groenewald JZ, Cai L, Crous PW (2020) Citizen science project reveals high diversity in Didymellaceae (Pleosporales, Dothideomycetes). MycoKeys 65: 49-99. https://doi.org/10.3897/mycokeys.65.47704
Figure 13 Xenodidymella weymaniae (CBS 144960). A, B Colony on OA (front and reverse) C, D colony on MEA (front and reverse) E, F colony on PDA (front and reverse) G, H pycnidia forming on OAI, J section of pycnidial wall K–N conidiogenous cells O conidia. Scale bars: 50 μm (H); 20 μm (I); 10 μm (J); 5 μm (K–O).
Figure 10 from: Hou L, Hernández-Restrepo M, Groenewald JZ, Cai L, Crous PW (2020) Citizen science project reveals high diversity in Didymellaceae (Pleosporales, Dothideomycetes). MycoKeys 65: 49-99. https://doi.org/10.3897/mycokeys.65.47704
Figure 10 Stagonosporopsis weymaniae (CBS 144959). A, B Colony on OA (front and reverse) C, D colony on MEA (front and reverse) E, F colony on PDA (front and reverse) G–I pycnidia forming on OAJ, L conidiogenous cells K subglobose conidia M stromatic hyphal aggregations N chlamydospores O oblong conidia. Scale bars: 100 μm (I); 10 μm (J–N); 5 μm (O).
Figure 12 from: Hou L, Hernández-Restrepo M, Groenewald JZ, Cai L, Crous PW (2020) Citizen science project reveals high diversity in Didymellaceae (Pleosporales, Dothideomycetes). MycoKeys 65: 49-99. https://doi.org/10.3897/mycokeys.65.47704
Figure 12 Vandijckomycella snoekiae (CBS 144954). A, B Colony on OA (front and reverse) C, D colony on MEA (front and reverse) E, F colony on PDA (front and reverse) G, H pycnidia forming on OAI, J section of pycnidial wall K–N conidiogenous cells O conidia. Scale bars: 100 μm (H); 50 μm (I); 10 μm (J); 5 μm (K–O).
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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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.