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91 results for “Beauveria”
FIGURE 9 in The RNA-seq approach to discriminate gene expression profiles in response to Beauveria bassiana and Micrococcus luteus microbial pathogens on Actias selene (Lepidoptera: Saturniidae)
FIGURE 9. Larva and adult of Actias selene.
Supplementary material 1 from: Bustamante DE, Oliva M, Leiva S, Mendoza JE, Bobadilla L, Angulo G, Calderon MS (2019) Phylogeny and species delimitations in the entomopathogenic genus Beauveria (Hypocreales, Ascomycota), including the description of B. peruviensis sp. nov. MycoKeys 58: 47-68. https://doi.org/10.3897/mycokeys.58.35764
: Data type: molecular data
Figure 2 from: Bustamante DE, Oliva M, Leiva S, Mendoza JE, Bobadilla L, Angulo G, Calderon MS (2019) Phylogeny and species delimitations in the entomopathogenic genus Beauveria (Hypocreales, Ascomycota), including the description of B. peruviensis sp. nov. MycoKeys 58: 47-68. https://doi.org/10.3897/mycokeys.58.35764
Figure 2 Phylogenetic tree based on maximum likelihood inference of combined Bloc, RPB1, Tef1 data. Value above branches = Maximum likelihood bootstrap values (BS) / Bayesian posterior probabilities. Grey bars represent species delimitation results from ABGD-, SPN-, GMYC- and BPP based algorithmic methods based on Bloc, RPB1, and Tef1 sequences. Scale bar indicates the number of nucleotide substitution per site. a: delimited as the same species. B. araneola, B. gryllotalpidicola, B. loeiensis, B. medogensis, and B. rudraprayagi were not delimited by any DNA-based algorithm due to abundant missing data in their sequences.
Figure 1 from: Bustamante DE, Oliva M, Leiva S, Mendoza JE, Bobadilla L, Angulo G, Calderon MS (2019) Phylogeny and species delimitations in the entomopathogenic genus Beauveria (Hypocreales, Ascomycota), including the description of B. peruviensis sp. nov. MycoKeys 58: 47-68. https://doi.org/10.3897/mycokeys.58.35764
Figure 1 Collections of the 55 strains of B. amazonensis sp. nov. from the Rodriguez de Mendoza Province.
Figure 3 from: Bustamante DE, Oliva M, Leiva S, Mendoza JE, Bobadilla L, Angulo G, Calderon MS (2019) Phylogeny and species delimitations in the entomopathogenic genus Beauveria (Hypocreales, Ascomycota), including the description of B. peruviensis sp. nov. MycoKeys 58: 47-68. https://doi.org/10.3897/mycokeys.58.35764
Figure 3 Morphology of Beauveria amazonensis. A, B Colony growth on PDA showing the habit C–F conidiogenous cells and conidia.
Figure 3 in Orientation of Hippodamia variegata (Coleoptera: Coccinellidae) to healthy and Beauveria bassiana-infected Aphis fabae (Hemiptera: Aphididae) in an olfactometer system
Figure 3. Response of Hippodamia variegata to broad bean plants infested by A. fabae infected by Beauveria bassiana at the interval of 24 h after infection versus broad bean plants infested by A. fabae infected by B. bassiana at intervals of 48 (a) and 72 (b) h after infection. The white bars indicate the numbers of insects choosing broad bean plants infested by A. fabae infected by B. bassiana at intervals 48 and 72 h after infection, whereas the black bars indicate the numbers of insects that chose broad bean plants infested by A. fabae infected by B. bassiana at the interval of 24 h after infection.
Data from: Experimental evolution to increase the efficacy of the entomopathogenic fungus Beauveria bassiana against malaria mosquitoes: effects on mycelial growth and virulence
Entomopathogenic fungi such as Beauveria bassiana are currently considered as a potential control agent for malaria mosquitoes. The success of such strategies depends among others on the efficacy of the fungus to kill its hosts. As B. bassiana can use various resources for growth and reproduction, increasing the dependency on mosquitoes as a nutritional source may be instrumental for reaching this goal. Passage of entomopathogenic fungi through an insect host has been shown to increase its virulence. We evaluated the virulence, fungal outgrowth, mycelial growth rate, and sporulation rate of two B. bassiana isolates (Bb1520 and Bb8028) that underwent 10 consecutive selection cycles through malaria mosquitoes (Anopheles coluzzii) using an experimental evolution approach. This cycling resulted in an altered capacity of evolved B. Bassiana lineages to grow on different substrates while maintaining the ability to kill insects. Notably, however, there were no significant changes in virulence or speed of outgrowth when comparing the evolved lineages against their un-evolved ancestors. These results suggest that fungal growth and sporulation evolved through successive and exclusive use of an insect host as a nutritional resource. We discuss the results in the light of biocontrol and provide suggestions to increase fungal virulence.
Data from: Experimental evolution to increase the efficacy of the entomopathogenic fungus Beauveria bassiana against malaria mosquitoes: effects on mycelial growth and virulence
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Data from: Intra- and trans-generational effects of larval diet on susceptibility to an entomopathogenic fungus, Beauveria bassiana, in the greater wax moth, Galleria mellonella
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Survival rate and transcriptional response upon infection with the generalist parasite Beauveria bassiana in a world-wide sample of Drosophila melanogaster
GEO Series GSE67177. Drosophila melanogaster. 35 samples. Type: Expression profiling by high throughput sequencing.
Ssr4-regulated genes in Beauveria bassiana
GEO Series GSE132211. Beauveria bassiana ARSEF 2860. 6 samples. Type: Expression profiling by high throughput sequencing.
Chemical warfare does not always win – rapid evolution of increased virulence in Beauveria bassiana
GEO Series GSE71570. Beauveria bassiana. 28 samples. Type: Expression profiling by high throughput sequencing.
Global Analysis of the Transcriptional Response of Whitefly to Entomopathogenic Fungi Beauveria bassiana Reveals New Insights on Host-Pathogen Interactions
GEO Series GSE38108. Bemisia tabaci. 3 samples. Type: Expression profiling by high throughput sequencing.
Revealing the Immune Response of Sitona callosus to Beauveria bassiana Infection through Integrative Analyses of Transcriptomics and Metabolomics
GEO Series GSE281105. Sitona callosus. 12 samples. Type: Expression profiling by high throughput sequencing.
Transcriptomic of Beauveria bassiana during in vitro blastospore production
GEO Series GSE163673. Beauveria bassiana. 18 samples. Type: Expression profiling by high throughput sequencing.
Beauveria bassiana SNF 1 (BbSNF1) regulating genes involved in conidiation
GEO Series GSE60002. Beauveria bassiana ARSEF 2860. 2 samples. Type: Expression profiling by high throughput sequencing.
Co-regulation of genome-wide gene expression by FluG and FluG-like protein A (FlrA) in Beauveria bassiana
GEO Series GSE193058. Beauveria bassiana. 9 samples. Type: Expression profiling by high throughput sequencing.
Data from: Behavioral thermoregulation in Locusta migratoria manilensis (Orthoptera: Acrididae) in response to the entomopathogenic fungus, Beauveria bassiana
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Transcription factor Msn2 dependent gene expression in two entomopathogen fungi, Beauveria bassiana and Metarhizium robertsii under thermal and oxidaitve stresses
GEO Series GSE40765. Beauveria bassiana; Metarhizium robertsii. 8 samples. Type: Expression profiling by high throughput sequencing.
Beauveria bassiana abaA (BbabaA) and brlA (BbbrlA) regulating genes involved in conidiation
GEO Series GSE132277. Beauveria bassiana. 6 samples. Type: Expression profiling by high throughput sequencing.
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