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.
302
datasets available to search
ShareScore release 0.9.0
Dataset results
302 results for “Fusarium”
FIGURE 2. A in Fusarium kamalianum, a new species of Fusarium from India from ornamental Chamaedorea seifrizii
FIGURE 2. A. Rotted stem of Chamaedorea seifrizii (Bamboo palm); B. Wilted leaf of Chamaedorea seifrizii (Bamboo palm); C. In vitro culture of the pathogen of Chamaedorea seifrizii (F. kamalianum) on PDA; Pure colony of F. kamalianum growing on PDA after a week; D. Front view; F. Reverse view; E. Pure colony of F. kamalianum growing on SNA.
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 The holomorph of Fusarium celtidicola sp. nov. from Celtis australis
FIGURE 1. Maximum likelihood majority rule consensus tree of analysis of species in Fusarium generated from a combined dataset of RPB1 and RPB2 sequence data. Bootstrap support values for maximum likelihood (red) and maximum parsimony (black) equal or greater than 70% are shown above the nodes. The Bayesian posterior probabilities values (green) greater than 0.95 are also indicated above the nodes. The new isolates are in blue, ex-type strains are in bold. The tree is rooted to Nectria cinnaburina (CBS 125165)
FIGURE 3 in The holomorph of Fusarium celtidicola sp. nov. from Celtis australis
FIGURE 3. Asexual morph of Fusarium celtidicola produced on PDA. a, b Mycelium growing on PDA. c–e Conidiogenous cells with conidia. f Conidiogenous cell. g–j Chlamydospores. k Conidia. l–o Macroconidia. p–t Microconidia. Scale bars: a, b, k = 20 μm, c–i, l–t= 10 μm.
FIGURE 2 in The holomorph of Fusarium celtidicola sp. nov. from Celtis australis
FIGURE 2. Fusarium celtidicola (MFLU 15-3646, holotype!) a Appearance of ascomata on the host surface. b Vertical section of ascoma. c Ostiole with periphyses. d Peridium. e Catenophyses. f–h Asci (h = in Melzer's reagent). i–n Ascospores. o Germinating ascospore. p, q Culture on PDA (p = colony from above, q = colony from below). Scale bars: a = 100 μm, b = 30 μm, d, i–n = 10 μm, e = 20 μm, f–h, o = 15 μm.
Fusarium oxysporum chlamydospores
<p>Fusarium oxysporum chlamydospores</p>
Fusarium oxysporum, Macroconidia and microconidia
<p>Fusarium oxysporum, Macroconidia and microconidia</p>
FIGURE 1. The most parsimonious trees obtained from a in Taxonomy and phylogeny of Fusarium houttuyniae and F. liriopes spp. nov. (Hypocreales, Nectriaceae) from China
FIGURE 1. The most parsimonious trees obtained from a heuristic search of combined cmdA, rpb2, tef1 and tub2, sequence data for the Fusarium oxysporum complex (FOSC) group. Fusarium udum (CBS 177. 31) is used as the outgroup taxon. The MP bootstrap values ≥ 50%, ML bootstraps ≥ 70%, and Bayesian posterior probabilities ≥ 0.90 (MPBS/MLBS/BYPP) are given at the nodes. New collections obtained in this study are in red.
FIGURE 3 in Taxonomy and phylogeny of Fusarium houttuyniae and F. liriopes spp. nov. (Hypocreales, Nectriaceae) from China
FIGURE 3. Fusarium liriopes (Specimen code: HGUP 10008) a, b. Colony on PDA; a. Surface of colony on PDA after 21 days at 24 °C under continuous white light; b. Reverse of colony on PDA; c, d. Mycelium on PDA; e, h. Conidiophores and phialides on aerial mycelium; i, j. Chlamydospores; k, r Aerial conidia (microconidia); s, t Sporodochia conidia (macroconidia). Scale bars: a, b = 10 mm; c, d = 1 mm; e, g, k, r = 5 µm; h, j, s, t = 15 µm.
FIGURE 2 in Taxonomy and phylogeny of Fusarium houttuyniae and F. liriopes spp. nov. (Hypocreales, Nectriaceae) from China
FIGURE 2. Fusarium houttuyniae (Specimen code: HGUP 10007) a, b. Colony on PDA; a. Surface of colony on PDA after 21 days at 24 °C under continuous white light; b. Reverse of colony on PDA; c, d. Mycelium on PDA; e, f. Conidiophores and phialides on aerial mycelium; g. Chlamydospores; h, o. Aerial conidia (microconidia); p, t. Sporodochial conidia (macroconidia). Scale bars: a, b = 10 mm; c, d = 1 mm; f = 20 μm; e, g, p, t = 15 µm; h, o = 5 µm.
FIGURE 2 in Fusarium endophyticum sp. nov. (Nectriaceae, Hypocreales), a new endophytic fungus from northern Thailand
FIGURE 2. Fusarium endophyticum (SDBR-CMU465, holotype). Colonies incubated at 25°C for two weeks. a. PDA; b. OA; c. SNA (left, surface view and right, reverse view); d–f. Monophialides; g. Polyphialide; h,i. Chlamydospores; j. Aerial macroconidia. Scale bars: a–c = 10 mm; d–g = 5 µm; h–j = 10 µm.
Fig. 5 in Decalintetracids A and B, two pairs of unusual 3-decalinoyltetramic acid derivatives with phytotoxicity from Fusarium equiseti D39
Fig. 5. Regression analysis of experimental versus calculated 13C NMR chemical shifts of 1a and 2a, linear fitting is shown as a line.
Fig. 2 in Polyketides, diketopiperazines and an isochromanone from the marine-derived fungal strain Fusarium graminearum FM1010 from Hawaii
Fig. 2. Key COSY (bolds) and HMBC (red arrows) correlations of compound 1–4, and 6. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
Fig. 7 in Deciphering the roles of leucine-rich repeat receptor-like protein kinases (LRR-RLKs) in response to Fusarium wilt in the Vernicia fordii (Tung tree)
Fig. 7. The expression patterns of two gene pairs (i.e. Vf01G2125 and Vf03G1740, and Vf06G2687 and Vf10G1659) were generated by tandem duplication events. Numbers on the x-axis indicate the following: seeds at 10, 15, 20, 25, and 30 weeks after flowering (WAF; 10_WAF, 15_WAF, 20_WAF, 25_WAF, and 30_WAF), male flowers at 30, 20, 10, and 1 days before flowering (X1-X4), female flowers at 30, 20, 10, and 1 days before flowering (C1–C4), young leaves, roots, stems, and hermaphrodite (CX).
Fig. 5 in Deciphering the roles of leucine-rich repeat receptor-like protein kinases (LRR-RLKs) in response to Fusarium wilt in the Vernicia fordii (Tung tree)
Fig. 5. Expression of VfLRR-RLK gene family members. The heat map depicts expression profiles of VfLRR-RLKs in V. fordii (left) and V. montana (right) in response to Fusarium wilt at four infection stages: 0, uninfected stage; 1, 2 days after Fusarium wilt infection (dpi); 2, 8 dpi; 3, 13 dpi. F0–F3 indicated the expression of VfLRRRLKs in V. fordii during the infection stage (0, 1, 2, 3) by the pathogen Fusarium wilt; M0-M3 indicated the expression of VfLRR-RLKs in V. montana during the infection stage (0, 1, 2, 3) by the pathogen Fusarium wilt. The innermost circle represents 0, followed by 1, 2, and the outermost circle represents 3.
Fig. 4 in Deciphering the roles of leucine-rich repeat receptor-like protein kinases (LRR-RLKs) in response to Fusarium wilt in the Vernicia fordii (Tung tree)
Fig. 4. The similar expression patterns between duplicated VfLRR-RLK gene pairs during vegetative and reproductive development. Numbers on the x-axis indicate the following: seeds at 10, 15, 20, 25, and 30 weeks after flowering (WAF; 10_WAF, 15_WAF, 20_WAF, 25_WAF, and 30_WAF), male flowers at 30, 20, 10, and 1 days before flowering (X1-X4), female flowers at 30, 20, 10, and 1 days before flowering (C1–C4), young leaves, roots, stems, and hermaphrodite (CX).
Fig. 6 in Deciphering the roles of leucine-rich repeat receptor-like protein kinases (LRR-RLKs) in response to Fusarium wilt in the Vernicia fordii (Tung tree)
Fig. 6. The qRT-PCR experiments of four VfLRR-RLKs in response to Fusarium wilt. Black represents these VfLRR-RLKs in response to Fusarium wilt in V. fordii. Grey represents these VfLRR-RLKs in response to Fusarium wilt in V. montana. The numbers in the x-axis indicate the two stages of infection, as follows: 1, uninfected stage; 2, late stage of infection.
Fig. 3 in Deciphering the roles of leucine-rich repeat receptor-like protein kinases (LRR-RLKs) in response to Fusarium wilt in the Vernicia fordii (Tung tree)
Fig. 3. Collinearity relationships of LRR-RLKs in V. fordii and the other four Euphorbiaceae genomes. The chromosomes of different Euphorbiaceae species were depicted as blocks of different colors. Gene pairs with a syntenic relationship between different Euphorbiaceae species were connected by different colored lines. (For interpretation of the references to color in this figure legend, the reader is referred to the Web version of this article.)
Fig. 1 in Deciphering the roles of leucine-rich repeat receptor-like protein kinases (LRR-RLKs) in response to Fusarium wilt in the Vernicia fordii (Tung tree)
Fig. 1. The maximum likelihood tree and synteny analysis among these five Euphorbiaceae genomes. All LRR-RLKs were divided into 22 groups and were distinguished by different colors. These different groups were determined and defined based on the A. thaliana homologs nomenclature within the same group (Shiu and Bleecker, 2001b). The synteny relationships between different Euphorbiaceae genomes were represented by different links. (For interpretation of the references to color in this figure legend, the reader is referred to the Web version of this article.)
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.