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47 results for “Nectriaceae”
FIGURE 3 in A new species of Sarcopodium (Hypocreales, Nectriaceae) from China
FIGURE 3. Sarcopodium tibetense asexual state (ex-type culture). a. Colony after 2 wk at 25 °C on PDA. b. Colony after 2 wk at 25 °C on SNA. c–h, k. Conidiophores, phialides and conidia. i. Phialides and conidia. j, l, m. Conidia. Scale bars: c–m = 10 μm.
FIGURE 2 in A new species of Sarcopodium (Hypocreales, Nectriaceae) from China
FIGURE 2. Sarcopodium tibetense sexual state (holotype). a–c. Ascomata and conidiomata on natural substratum. d–g. Ascomata covered with hyaline to yellowish hairs. h. Median section through perithecium. i. Lateral perithecial wall with a hair. j–l. Asci with ascospores. m–p. Ascospore. Scale bars: a–c = 1 mm, d–g = 0.5 mm, h, i = 50 μm, j–p =10 μm.
FIGURE 1 in A new species of Sarcopodium (Hypocreales, Nectriaceae) from China
FIGURE 1. Bayesian tree generated based on the combined dataset of act, ITS, LSU and tub sequences of Sarcopodium species. Supporting values showing at branches: MLBP (left) and BIPP (right).
FIGURE 2 in Fusarium citri-sinensis sp. nov. (Ascomycota: Nectriaceae) isolated from fruit of Citrus sinensis in China
FIGURE 2. Morphological characteristics of Fusarium citri-sinensis (YZU 191316). A–B. colonies on PDA; C–D. conidium formed on the carnation leaf; E. microconidia; F–G. chlamydospores; H. macroconidia.—Scale bars: C–G = 10 μm, H = 25 μm.
FIGURE 1 in Fusarium citri-sinensis sp. nov. (Ascomycota: Nectriaceae) isolated from fruit of Citrus sinensis in China
FIGURE 1. Phylogenetic tree of Fusarium citri-sinensis and its related species based on the combined dataset of the ITS, EF-1α and RPB2 gene sequences. The maximum likelihood, maximum parsimony bootstrap support values>60% (BS), and Bayesian posterior probabilities>0.7 (PP) are given at the nodes (BS/PP). Type strains are marked 'T' or 'NT'.
Comparative genomics of Nectriaceae, including freshwater fungi show environment adaptations and conservation strate-gies for fungi
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Comparative genomics of Nectriaceae, including freshwater fungi show environment adaptations and conservation strategies for fungi - Supplementary Material
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Comparative genomics of fungi in Nectriaceae reveals their environmental adaptation and conservation strategies
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FIGURE 2 in Bisifusarium tonghuanum (Nectriaceae), a novel species of Fusarium-like fungi from two desert oasis plants
FIGURE 2. Colonical and microscopic morphology of Bisifusarium tonghuanum (CGMCC 3.17369). A: Colony on PDA; B: Colony reverse on PDA; C: Sporodochia on pieces of carnation leaves placed on the surface of SNA; D, E: Sporodochium, optical section; F: Chlamydospores; G: Macroconidia and lateral phialidic pegs; H: Microconidia and lateral monophialide; I, J: Macroconidia and sporodochium, SEM. Bars: D, E, F, G, H = 10 μm; I, J = 3 μm.
FIGURE 1 in Bisifusarium tonghuanum (Nectriaceae), a novel species of Fusarium-like fungi from two desert oasis plants
FIGURE 1. Combined phylogeny of the β-tub, tef1 and ITS / LSU rDNA gene regions of species from Bisifusarium. Branches with values more than 1 pp and 95 % bs are thickened. The phylogram is rooted with Fusarium sambucinum (CBS 146.95).
FIGURE 1 in A new species and a new record of Thyronectria (Nectriaceae, Hypocreales) in China
FIGURE 1. Phylogram of combined act, ITS, LSU, tef1 and tub genes generated from maximum parsimony (MP) analyses. Values above or below the branches indicate Bayesian inference posterior probabilities (BI PP≥90%)/maximum likelihood bootstrap (ML BP≥50%)/ maximum parsimony bootstrap (MP BP≥50%). Strains that were isolated in this study are marked in bold.
FIGURE 3. Thyronectria lamyi. A–C in A new species and a new record of Thyronectria (Nectriaceae, Hypocreales) in China
FIGURE 3. Thyronectria lamyi. A–C: Perithecia on natural substrata. D: Ascus. E: Budding ascospores. F: Ascoconidia. G: Colony on PDA after 5 days at 25 °C. H: Median section of perithecium in water. I: Median section of perithecium in LA. J: Conidiophores and lateral phialidic pegs on MEA. K: Conidia on MEA. Scale bars: A = 200 μm; B–C = 100 μm; D–F, J–K= 10 μm; H–I = 50 μm.
FIGURE 2. Thyronectria berberidis. A–B in A new species and a new record of Thyronectria (Nectriaceae, Hypocreales) in China
FIGURE 2. Thyronectria berberidis. A–B: Perithecia on natural substrata. C: Median section of perithecium in water. D: Median section of perithecium in LA. E: Asci. F–K: Ascospores. L: Colonies on PDA after 4 days (left) and 9 days (right). Scale bars: A = 2 mm; B = 100 μm; C–D = 50 μm; E–K = 10 μm.
FIGURE 3 in Four new taxa of Ilyonectria and Thelonectria (Nectriaceae) revealed by morphology and combined ITS and -tubulin sequence data
FIGURE 3. One of thirty-six equally most parsimonious trees inferred from combined ITS and β-tubulin partial sequences. Abbreviations: Neo. = Neonectria, I. = Ilyonectria, T. = Thelonectria, N. = Nectria. Tree length = 1169, CI = 0.6296, HI = 0.3704, CI excluding uninformative characters = 0.5856, HI excluding uninformative characters = 0.4144, RI = 0.8426, Rescaled consistency index = 0.5305. Bootstrap values ≥50% from 1000 replicates are noted above internodes. Asterisks indicate sequences of ITS and β- tubulin gene were from different strains as shown in TABLE 1.
FIGURE 2 in Four new taxa of Ilyonectria and Thelonectria (Nectriaceae) revealed by morphology and combined ITS and -tubulin sequence data
FIGURE 2. Thelonectria yunnanica (holotype). A. Median section of an ascoma; B. Structure of lateral perithecial wall; C. Colony on PDA; D−F. Macroconidia; G, H. Conidiophores and microconidia; I. Asci with ascospores.
FIGURE 1 in Four new taxa of Ilyonectria and Thelonectria (Nectriaceae) revealed by morphology and combined ITS and -tubulin sequence data
FIGURE 1. Thelonectria beijingensis (holotype). A. Median section of an ascoma; B. Colony on PDA; C. Conidiophores and macroconidia; D Asci with ascospores; E. Microconidia; F, G. Macroconidia.
FIGURE 1 in Chaetopsina aquatica sp. nov. (Hypocreales, Nectriaceae) from the River Nile, Egypt
FIGURE 1. Maximum likelihood phylogenetic tree (-ln likelihood = 10028.26) generated from analysis of a combined ITS and LSU sequences dataset for Chaetopsina aquatica with other Chaetopsina species and other genera in Nectriaceae and Graphium jumulu as the outgroup taxon. Bootstrap support on the nodes represent ML and MP ≥ 50%. Branches received Bayesian pp ≥ 95% are in bold. The sequence of the new species in a box.
FIGURE 2 in Chaetopsina aquatica sp. nov. (Hypocreales, Nectriaceae) from the River Nile, Egypt
FIGURE 2. Chaetopsina aquatica (SUMCC H-18001, holotype). a Conidiophores on substrate. b–d Conidiophores bearing conidia. e Conidiophore with slimy head of conidia. f, g Conidiogenous cells with a flared collarette (arrowed) and stages in conidia production. h, j Conidia. i Conidiogenous cells with periclinal thickening (arrowed) k Germinating conidium. l, m Conidia. n, o Upper and reverse view of the 2 weeks old colony on MEA respectively. a–c, e, h, l from natural wood. d, f, g, i–k, m from culture. Scale bars: a = 100 μm, b–e = 20 μm, f–m = 10 μm.
Supplementary material 1 from: Pham NQ, Marincowitz S, Chen SF, Rodas CA, Wingfield MJ (2022) Soil-borne Calonectria (Hypocreales, Nectriaceae) associated with Eucalyptus plantations in Colombia. MycoKeys 94: 17-35. https://doi.org/10.3897/mycokeys.94.96301
Phylogenetic tree based on maximum likelihood (ML) analysis of individual gene region (ACT, CMDA, HIS3, TUB2, TEF1 and RBP2)
FIGURE 2 in Varicosporellopsis shangrilaensis sp. nov. (Nectriaceae, Hypocreales), a new terricolous species isolated from the rhizosphere soil of Astragalus polycladus in northwestern Yunnan, China
FIGURE 2. Varicosporellopsis shangrilaensis (CGMCC 3.21000, holotype). a Colony. b Macroconidia. c, e Conidiophores and conidiogenous cells. d Microconidia. Scale bars: a = 10 mm, b, d, e = 10 μm, c = 20 μm.
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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.