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17 results for “Phoma”
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 from: Phukhamsakda C, Bhat DJ, Hongsanan S, Xu J-C, Stadler M, Hyde KD (2018) Two novel species of Neoaquastroma (Parabambusicolaceae, Pleosporales) with their phoma-like asexual morphs. MycoKeys 34: 47-62. https://doi.org/10.3897/mycokeys.34.25124
Figure 3 Neoaquastroma krabiense (MFLU 17-0003, holotype) a Barringtonia acutangula (L.) Gaertn specimens b Appearance of ascomata on host surface c Close up of ascomata d Ascomata forming on rice straw on WA after 8 weeks e, f Section of ascoma g Ostiolar canal h Section of partial peridium layer i Hyaline pseudoparaphyses j–m Asci n–s Hyaline ascospores with visible mucilaginous sheath q Ascospores stained in Indian ink to show sheath u Germinated ascospore v, w Culture characteristics on MEA x, y Conidiomata forming in culture after 8 weeks z Conidiomatal wall aa–ad Conidiogenous cells and developing conidia ae Conidia n–p Ascospores in 5% of KOH reagent m, r Asci and ascospore in culture (on rice straw). Scale bars: 500 µm (c–e); 200 µm (f, x); 50 µm (g–m, y), 20 µm (n–u, z); 5 µm (aa-af); 20 mm (v–w).
Figure 2 from: Phukhamsakda C, Bhat DJ, Hongsanan S, Xu J-C, Stadler M, Hyde KD (2018) Two novel species of Neoaquastroma (Parabambusicolaceae, Pleosporales) with their phoma-like asexual morphs. MycoKeys 34: 47-62. https://doi.org/10.3897/mycokeys.34.25124
Figure 2 Neoaquastroma bauhiniae (MFLU 17-0002, holotype) a Appearance of ascomata on host surface b Close up of ascoma c Section of ascoma d Ostiolar canal e Section of partial peridium layer f Pseudoparaphyses g–j Development state of asci j Asci produced in culture k–p Development state of ascospores; (n, o Senescent spores m, p ascospores in 5% of KOH reagent); q Ascospores stained with India ink, sheath surrounding the entire ascospore r Germinated ascospore s, t Culture character on MEA u Conidiomata forming on agar on rice straw media after 8 weeks v Immature conidiomata w Conidiomatal wall x, y Conidiogenous cells and developing conidia z Conidia j, m Asci and ascospore in culture (on rice straw). Scale bars: 500 µm (b); 100 µm (c, v); 50 µm (d–j); 20 µm (k–r, w); 5 µm (x–z).
Figure 1 from: Phukhamsakda C, Bhat DJ, Hongsanan S, Xu J-C, Stadler M, Hyde KD (2018) Two novel species of Neoaquastroma (Parabambusicolaceae, Pleosporales) with their phoma-like asexual morphs. MycoKeys 34: 47-62. https://doi.org/10.3897/mycokeys.34.25124
Figure 1 The best scoring RAxML tree based on a combined partial LSU, SSU, ITS and tef1 gene datasets. Bootstrap values (BS) from maximum likelihood (ML, left) of more than 70% BS and Bayesian posterior probabilities (PP, right) greater than 0.90 are given above or below the nodes. The tree is rooted with Corynespora smithii (CABI 5649b) and C. cassiicola (CBS 100822) in Corynesporaceae. The species, determined in this study, are indicated in blue. The ex-type and references strains are indicated in bold. Hyphens (-) represent support values less than 70% BS/0.90 PP. Thick branches represent significant support values from all analyses (BS ≥ 70%/PP ≥ 0.95).
Genomic and Transcriptomic Survey Provides Insights into Molecular Basis of Pathogenicity of the Sunflower Pathogen Phoma macdonaldii
<p>Supplementary Materials</p>
Fig. 6 in Oblongolides from endophytic fungus Phoma bellidis Neerg. harbored in Tricyrtis maculata (D. Don) J.F.Macbr.
Fig. 6. Proposed biosynthetic pathway of Phomaone A (1).
Fig. 5 in Oblongolides from endophytic fungus Phoma bellidis Neerg. harbored in Tricyrtis maculata (D. Don) J.F.Macbr.
Fig. 5. ECD calculations of 3, 4 and 5.
Fig. 4 in Oblongolides from endophytic fungus Phoma bellidis Neerg. harbored in Tricyrtis maculata (D. Don) J.F.Macbr.
Fig. 4. Regression analysis of the NMR calculations of the two possible configurations.
Fig. 3 in Oblongolides from endophytic fungus Phoma bellidis Neerg. harbored in Tricyrtis maculata (D. Don) J.F.Macbr.
Fig. 3. ORTEP diagrams of 1 and 2.
Fig. 1 in Oblongolides from endophytic fungus Phoma bellidis Neerg. harbored in Tricyrtis maculata (D. Don) J.F.Macbr.
Fig. 1. The chemical structures of compounds 1–9.
Fig. 5 in Undescribed diphenyl ethers betaethrins A-I from a desert plant endophytic strain of the fungus Phoma betae A.B. Frank (Didymellaceae)
Fig. 5. Proposed biosynthesis of compounds 1-10.
Fig. 2 in Undescribed diphenyl ethers betaethrins A-I from a desert plant endophytic strain of the fungus Phoma betae A.B. Frank (Didymellaceae)
Fig. 2. Key HMBC correlations and revisions of the previous report of 1.
Fig. 1 in Undescribed diphenyl ethers betaethrins A-I from a desert plant endophytic strain of the fungus Phoma betae A.B. Frank (Didymellaceae)
Fig. 1. Chemical structures of compounds 1-10.
Fig. 4. 1H–1H in Undescribed diphenyl ethers betaethrins A-I from a desert plant endophytic strain of the fungus Phoma betae A.B. Frank (Didymellaceae)
Fig. 4. 1H–1H COSY and key HMBC correlations of 2, 5 and 8.
Fig. 3 in Undescribed diphenyl ethers betaethrins A-I from a desert plant endophytic strain of the fungus Phoma betae A.B. Frank (Didymellaceae)
Fig. 3. Crystal structure of 1 and empirical rule (shielding effect).
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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)
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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.