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13 results for “Conidiobolus”
Figure 6 from: Nie Y, Yu D-S, Wang C-F, Liu X-Y, Huang B (2020) A taxonomic revision of the genus Conidiobolus (Ancylistaceae, Entomophthorales): four clades including three new genera. MycoKeys 66: 55-81. https://doi.org/10.3897/mycokeys.66.46575
Figure 6 Neoconidiobolus thromboidesa colony on PDA after 3 d at 25 °C b, c primary conidiophores bearing primary conidia d production of secondary conidia e zygospores f primary conidia. Scale bars: 10 mm (a); 20 μm (b–d, f); 40 μm (e).
Figure 3 from: Nie Y, Yu D-S, Wang C-F, Liu X-Y, Huang B (2020) A taxonomic revision of the genus Conidiobolus (Ancylistaceae, Entomophthorales): four clades including three new genera. MycoKeys 66: 55-81. https://doi.org/10.3897/mycokeys.66.46575
Figure 3 Capillidium adiaeretuma colony on PDA after 3 d at 25 °C b mycelia c, d primary conidiophores bearing primary conidia e, f primary conidia g Production of secondary conidia h first stage of forming microconidia i second stage of forming microconidia j, k ellipsoidal secondary conidia arising from slender conidiophores l chlamydospores. Scale bars: 10 mm (a); 100 μm (b); 20 μm (c–l).
Figure 4 from: Nie Y, Yu D-S, Wang C-F, Liu X-Y, Huang B (2020) A taxonomic revision of the genus Conidiobolus (Ancylistaceae, Entomophthorales): four clades including three new genera. MycoKeys 66: 55-81. https://doi.org/10.3897/mycokeys.66.46575
Figure 4 Conidiobolus coronatusa colony on PDA after 3 d at 21 °C b primary conidia c production of secondary conidia d, e primary conidiophores bearing primary conidia f, g microconidia h villose spores. Scale bars: 10 mm (a); 20 μm (b–h).
Figure 5 from: Nie Y, Yu D-S, Wang C-F, Liu X-Y, Huang B (2020) A taxonomic revision of the genus Conidiobolus (Ancylistaceae, Entomophthorales): four clades including three new genera. MycoKeys 66: 55-81. https://doi.org/10.3897/mycokeys.66.46575
Figure 5 a–gConidiobolus iuxtagenitushConidiobolus khandalensisa colony on PDA after 3 d at 21 °C b primary conidiophores bearing primary conidia c primary conidia d tertiary fusiform conidium from a globose spore e zygospore formation with the beak almost emptied of protoplasm f production of secondary conidia g zygospores h microconidia produced from global conidia. Scale bars: 10 mm (a); 20 μm (b–h).
Figure 2 from: Nie Y, Yu D-S, Wang C-F, Liu X-Y, Huang B (2020) A taxonomic revision of the genus Conidiobolus (Ancylistaceae, Entomophthorales): four clades including three new genera. MycoKeys 66: 55-81. https://doi.org/10.3897/mycokeys.66.46575
Figure 2 Capillidium heterosporuma colony on PDA after 3 d at 25 °C b primary conidiophores bearing primary conidia c primary conidia d, e, f ellipsoidal secondary conidia arising from slender conidiophores g, h production of secondary conidia. Scale bars: 10 mm (a); 20 μm (b, c, d, g, h); 100 μm (e, f).
Figure 1 from: Nie Y, Yu D-S, Wang C-F, Liu X-Y, Huang B (2020) A taxonomic revision of the genus Conidiobolus (Ancylistaceae, Entomophthorales): four clades including three new genera. MycoKeys 66: 55-81. https://doi.org/10.3897/mycokeys.66.46575
Figure 1 Phylogenetic tree constructed by maximum likelihood analyses of nucLSU, nucSSU, EF-1α and mtSSU sequences for Entomophthoromycotina, with some chytrid and mucoralean fungi as outgroups. Three new genera and one Chinese new record are shown in red. Maximum likelihood bootstrap values (≥ 50%) / Bayesian posterior probabilities (≥ 0.50) of main clades are indicated along branches. Scale bar indicates substitutions per site.
Figure 4 from: Nie Y, Cai Y, Gao Y, Yu D-S, Wang Z-M, Liu X-Y, Huang B (2020) Three new species of Conidiobolus sensu stricto from plant debris in eastern China. MycoKeys 73: 133-149. https://doi.org/10.3897/mycokeys.73.56905
Figure 4 Conidiobolus variabilis sp. nov. a Colony on PDA after 3 d at 21 °C b mycelia rarely branched at the colony edge c mycelia d, e primary conidiophores bearing primary conidia f–i primary conidia with different shapes j secondary conidia arising from primary conidia k microconidia arising from conidia l globose microconidia m ellipsoidal microconidia. Scale bars: 10 mm (a); 100 μm (b); 20 μm (c–m).
Figure 3 from: Nie Y, Cai Y, Gao Y, Yu D-S, Wang Z-M, Liu X-Y, Huang B (2020) Three new species of Conidiobolus sensu stricto from plant debris in eastern China. MycoKeys 73: 133-149. https://doi.org/10.3897/mycokeys.73.56905
Figure 3 Conidiobolus taihushanensis sp. nov. a colony on PDA after 3 d at 21 °C b mycelia unbranched at the colony edge c young mycelia d, e primary conidiophores arising from mycelia segments f two branches germinated from hyphal bodies and each bearing a primary conidium (arrows) g– j two, three, four or five branches germinated from hyphal bodies and each bearing a primary conidium k globose to subglobose primary conidia l secondary conidia arising from primary conidia m zygospores formed between adjacent segments of the same hypha n young zygospores o mature zygospores. Scale bars: 10 mm(a); 100 μm (b, c, f); 20 μm (d, e, g–o).
Figure 2 from: Nie Y, Cai Y, Gao Y, Yu D-S, Wang Z-M, Liu X-Y, Huang B (2020) Three new species of Conidiobolus sensu stricto from plant debris in eastern China. MycoKeys 73: 133-149. https://doi.org/10.3897/mycokeys.73.56905
Figure 2 Conidiobolus bifurcatus sp. nov. a Colony on PDA after 3 d at 21 °C b mycelium c septate mycelium and distended segments d, e primary conidiophores bearing primary conidia f, g primary conidia h, i a single secondary conidium produced from primary conidia j two secondary conidia arising from a branched conidiophore k secondary conidia falling from primary conidia l the relic of secondary conidiophores on secondary conidia (arrows) m microconidia arising from a conidium n, o globose microconidia p, q ellipsoidal microconidia r zygospores formed between adjacent segments of the same hypha s zygospores. Scale bars: 10 mm (a); 100 μm (b); 20 μm (c–s).
Figure 1 from: Nie Y, Cai Y, Gao Y, Yu D-S, Wang Z-M, Liu X-Y, Huang B (2020) Three new species of Conidiobolus sensu stricto from plant debris in eastern China. MycoKeys 73: 133-149. https://doi.org/10.3897/mycokeys.73.56905
Figure 1 Phylogenetic tree of Conidiobolus s.s. reconstructed by maximum likelihood analyses of nucLSU, mtSSU and TEF1 sequences, with six Conidiobolus s.l. species as outgroups. Three new species of Conidiobolus are shown in bold. Maximum parsimony bootstrap values (≥ 70%) / Maximum likelihood bootstrap values (≥ 70%) / Bayesian posterior probabilities (≥ 0.95) of each clade are indicated along branches. Scale bar indicates substitutions per site.
The Changes in Mitochondrial Morphology and Physiology Accompanying Apoptosis in Galleria mellonella (Lepidoptera) Immunocompetent Cells during Conidiobolus coronatus (Entomophthorales) Infection
<p>The raw data in published manuscript <a href="https://doi.org/10.3390/ijms241210169">https://doi.org/10.3390/ijms241210169</a></p>
Transcriptomic insight into pathogenicity-associated facters of Conidiobolus obscurus an obligate aphid-pathogenic fungus from Entomophthoromycota
GEO Series GSE105072. Conidiobolus obscurus. 6 samples. Type: Expression profiling by high throughput sequencing.
Octanoic Acid—An Insecticidal Metabolite of Conidiobolus coronatus (Entomopthorales) That Affects Two Majors Antifungal Protection Systems in Galleria mellonella (Lepidoptera): Cuticular Lipids and Hemocytes
<p>The raw data required for manuscript <a href="https://doi.org/10.3390/ijms23095204">https://doi.org/10.3390/ijms23095204</a>.</p>
ScienceDex guides
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