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302 results for “Fusarium”
Fig. 10 in New endemic Fusarium species hitch-hiking with pathogenic Fusarium strains causing Panama disease in small-holder banana plots in Indonesia
Fig. 10 Fusarium kotabaruense (ex-type InaCC F963). a. Culture grown on PDA; b. mycelium on carnation leaves; c–h. conidiophores and conidiogenous cells; i–k. conidia. — Scale bars: b = 200 µm; c–d = 50 µm; e–f, h–k = 10 µm; g = 5 µm.
Fig. 9 in New endemic Fusarium species hitch-hiking with pathogenic Fusarium strains causing Panama disease in small-holder banana plots in Indonesia
Fig. 9 Fusarium sulawense (ex-type InaCC F964). a. Culture grown on PDA; b–c. sporodochia on carnation leaves; d–h. aerial conidiophores and conidiogenous cells; i. aerial conidia; j–k. sporodochial conidiophores and conidiogenous cells; l–m. sporodochial conidia. — Scale bars: b–c = 50 µm; d–g, i–m = 10 µm; h = 5 µm.
Fig. 7 in New endemic Fusarium species hitch-hiking with pathogenic Fusarium strains causing Panama disease in small-holder banana plots in Indonesia
Fig. 7 Fusarium desaboruense (ex-type InaCC F950). a. Culture grown on PDA; b–c. sporodochia on carnation leaves; d–h. aerial conidiophores and conidiogenous cells; i–k. aerial conidia; l. sporodochial conidiophores and phialides; m. sporodochial conidia. — Scale bars: b–d = 20 µm; e–m = 10 µm.
Fig. 8 in New endemic Fusarium species hitch-hiking with pathogenic Fusarium strains causing Panama disease in small-holder banana plots in Indonesia
Fig. 8 Fusarium tanahbumbuense (ex-type InaCC F965). a. Culture grown on PDA; b–c. sporodochia on carnation leaves; d–g. aerial conidiophores and conidiogenous cells; h–i. aerial conidia; j–l. sporodochial conidiophores and conidiogenous cells; m–o. sporodochial conidia. — Scale bars: b–c = 50 µm; d–o = 10 µm.
Fig. 3 in New endemic Fusarium species hitch-hiking with pathogenic Fusarium strains causing Panama disease in small-holder banana plots in Indonesia
Fig. 3 Maximum likelihood tree inferred from the combined cmdA, ITS, rpb2, tef1, and LSU sequence datasets of the Fusarium incarnatum-equiseti species complex (FIESC) including 11 Indonesian isolates (indicated in blue). Bootstrap support values and Bayesian posterior probabilities are given at each node. The tree is rooted to Fusarium circinatum (NRRL 25331) and Fusarium fujikuroi (NRRL 13566).
Fig. 5 in New endemic Fusarium species hitch-hiking with pathogenic Fusarium strains causing Panama disease in small-holder banana plots in Indonesia
Fig. 5 Pathogenicity test of Fusarium spp. that belong to other species complexes. a. Plants before inoculation; b. wilting symptom caused by Fusarium odoratissimum InaCC F856, seven weeks after inoculation; c. control; d. positive control Fusarium odoratissimum (InaCC F856); e. Fusarium proliferatum (InaCC F992); f. Fusarium desaboruense (InaCC F950); g. Fusarium lumajangense (InaCC F872 T); h. Fusarium longipes (InaCC F974); i. FIESC (Indo161); j. Fusarium lumajangense (InaCC F993).
Fig. 2 Maximum likelihood tree inferred from the combined cmdA, tef1 in New endemic Fusarium species hitch-hiking with pathogenic Fusarium strains causing Panama disease in small-holder banana plots in Indonesia
Fig. 2 Maximum likelihood tree inferred from the combined cmdA, tef1, tub, rpb1, and rpb2 sequence datasets of the Fusarium fujikuroi species complex (FFSC) including eight Indonesian isolates (indicated in blue). Bootstrap support values and Bayesian posterior probabilities are given at each node. The tree is rooted to Fusarium nirenbergiae (CBS 744.97) and F. oxysporum (CBS 716.74).
Genome assembly of Fusarium oxysporum f.sp. sesami
<p>Here we summarized the scripts used for the genome assembly of the sesame wilt disease pathogen (<em>Fusarium oxysporum f.sp. sesami</em>).</p> <p> </p>
Datasets "Exploring the Impact of Apocarotenoids on Pathogenic Fusarium oxysporum f.sp. lini and Endophytic Fo47 strains".
<p><strong>Dataset 1 comprises files related to qPCR analysis, measurements of mass and spore counts, and assessments of colony size. Dataset 2 includes photographic documentation of Fol and Fo47 treatments, while Dataset 3 contains microscopic images of Fol and Fo47 following treatments. The UPLC dataset provides files detailing the analysis of fusaric acid production. These datasets support the findings presented in the article <em>'Exploring the Impact of Apocarotenoids on Pathogenic Fusarium oxysporum f. sp. lini and Endophytic Fo47 Strains.'</em> Comprehensive information regarding the methods and experimental designs can be found within the article.</strong></p>
Colour illustrations. Flowers, fruits, leaves and seeds of Musa itinerans (background photo by D.T. Vu); from top to bottom and left to right: colony on PDA after 14 d at 24 °C in darkness (left = obverse,right = reverse), sporodochia formed on CLA, aerial conidiophore, aerial conidiogenous cells, aerial conidia, sporodochial conidia. Scale bars: black = 20 µm, white = 10 µm. in Fusarium chuoi R. Hill, Gaya, D.T. Vu, Sand.-Den. & Crous, R. Hill, Gaya, D.T. Vu, Sand.-Den. & Crous sp. nov.
Colour illustrations. Flowers, fruits, leaves and seeds of Musa itinerans (background photo by D.T. Vu); from top to bottom and left to right: colony on PDA after 14 d at 24 °C in darkness (left = obverse,right = reverse), sporodochia formed on CLA, aerial conidiophore, aerial conidiogenous cells, aerial conidia, sporodochial conidia. Scale bars: black = 20 µm, white = 10 µm.
Complete workflow for the prediction of the secretome of Fusarium oxysporum f. sp. albedinis, the causal agent of palm dieback
<p>Custom scripts for mining the secretome of <em>Fusarium oxysporum</em> f. sp. <em>albedinis</em>, the causal agent of date palm dieback disease. </p>
Genetic and phenotypic diversity of banana-infecting Fusarium strains
<p>Genetic and phenotypic diversity of banana-infecting <em>Fusarium</em> strains. Dataset1 contains molecular diagnosis and pathogenicity assays of Fusarium isolates. Dataset2 describes the sequenced isolates used in the study.</p>
Spatial pattern of genetic diversity in field populations of Fusarium incarnatum-equiseti species complex
<p><i>Fusarium</i> is associated with a number of wilt, blight, scab and rot diseases in a range of economically important staple food crops worldwide. An assessment of the genetic structure and population stratification of <i>Fusarium incarnatum-equiseti</i> species complex (FIESC) pathogen populations is important to understand the evolutionary potential of such populations in adapting to environmental change. Based on inter-simple sequence repeat polymerase chain reaction (ISSR-PCR), it was found that the pathogen population was structured into three genetic clusters for which genetic differentiation was higher within than among populations. There was high intra-population genetic diversity for population 1 (94.63%) which consisted largely of isolates collected from North Trinidad. Populations 2 and 3 had a low level of admixture among the populations based on overall population differentiation. Population 1 accounted for the highest amount of genetic variation (95.82%) followed by populations 2 and 3. Population stratification was reflected in the dendrogram topology, which consisted of three main genetic clusters and which coincided with the outcome of Bayesian and PCoA analyses. The populations were isolated by distance and Voronoi tessellations indicated physical or structural barriers to gene flow which contributed to restricted admixture between two of three populations. These findings suggest a high evolutionary potential for this FIESC pathogen population, the implications of which directly affect disease management strategies.</p>
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'.
The transcriptome responses of Fusarium head blight and Fusarium root rot in B. distachyon
<p><em>Fusarium graminearum</em> causes Fusarium head blight (FHB) and Fusarium root rot (FRR) in small-grain cereals. The host response to FRR and the transcriptome responses differences of FHB and FRR are not well studied. Using the model <em>Brachypodium</em> <em>distachyon</em> (Bd), the RNA-seq transcriptome response of Bd to <em>F</em>. <em>graminearum</em> (Fg) infection of heads and roots was carried out. Additionally, the RNA-seq transcriptome response and predicted secretome within the same infected material were performed against in vitro samples of Fg.</p>
FIGURE 3 in Fusarium kamalianum, a new species of Fusarium from India from ornamental Chamaedorea seifrizii
FIGURE 3. Morphological characters of Fusarium kamalianum NFCCI 5154. A–C. Microconidia on simple, long slender phialides; D. Branched phialides bearing microconidia; E. Elongate microconidia in the false head; F. Solitary monophialides; G, H. Smooth to rough walled chlamydospores; I. Coiled mycelia bearing phialides; J, K. Microconidia; L. Micro and macroconidia.—Scale bars: A–F, I-J = 20 µm, G, H, K, L = 10 µm.
FIGURE 5 in Fusarium kamalianum, a new species of Fusarium from India from ornamental Chamaedorea seifrizii
FIGURE 5. Molecular phylogenetic analysis of new species, Fusarium kamalianum generated by maximum-likelihood (ML) method based on combined ITS, LSU, tef-1α, rpb2, and tub2 sequence data. Isolates majorly belonging to Fusarium oxysporum species complex were used in the construction of the phylogenetic tree. The statistical support values are shown next to each node, UFBS, and SH-aLRT produced from 1000 replicates using IQ-TREE. The new species, Fusarium kamalianum is represented in blue bold.
FIGURE 1 in Fusarium kamalianum, a new species of Fusarium from India from ornamental Chamaedorea seifrizii
FIGURE 1. The infected Chamaedorea seifrizii (ornamental Bamboo palm) shows the onset of fungal disease. The arrow represents fungal mycelia growing on collar regions.
FIGURE 4 in Fusarium kamalianum, a new species of Fusarium from India from ornamental Chamaedorea seifrizii
FIGURE 4. Molecular phylogenetic analysis of new species, Fusarium kamalianum, generated by maximum-likelihood (ML) method based on combined ITS, LSU, tef-1α, rpb2, and tub2 sequence data. Different species complexes of Fusarium were used in the study to figure out the taxonomic position of F. kamalianum. The new species, Fusarium kamalianum, is represented in blue bold.
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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
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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.