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1,855 results for “Fungus”
Fig. 2 in Chemical control of leaf-cutting ants: how do workers disperse toxic bait fragments onto fungus garden?
Fig. 2. Pellet fragment distribution onto the fungus garden, with and without active ingredients. A2, B2, C2: fragment distribution with ultraviolet light. A1 and A2: pellets without active ingredient. B1 and B2: pellets with sulfluramid. C1 and C2: pellets with with different action modes. A1, B1, C1: fragment distribution without ultraviolet light indoxacarb. Treatment followed the same letter is not significantly different.
Figure 1 in New distributional records of fungus feeder Thrips (Thysanoptera) from Odisha, India
Figure 1. (1) Dinothrips spinosus, female (2) Gastrothrips acuticornis, male (3) Gastrothrips falcatus, male (4) Gastrothrips falcatus, male (5) Loyolaia indica, male (6) Loyolaia indica, female (7) Nesothrips brevicollis, female (8) Nesothrips lativentris, female (9) Nesothrips minor, female.
Fig. 1 in Infection of perennial ryegrass (Lolium perenne) by an endophyte fungus (Neotyphodium lolii) decreases the abundance and diversity of predators and parasitoids
Fig. 1. Total number of predators collected from Jumbo (E-) and Alto AR1 (E+) perennial ryegrass. A) Number of spiders and B) the number of insects. * indicates significant differences according to the chi-square test.
Fig. 1 in Effect of the presence of brood and fungus on the nest architecture and digging activity of Acromyrmex subterraneus Forel (Hymenoptera, Formicidae)
Fig. 1. Plaster mold of a nest excavated by Acromyrmexsubterraneus workers. (A) Plaster mold of tunnels; (B) a molded and dried nest ready to be removed; (C) labeled and measured structure.
Fig. 3 in Effect of the presence of brood and fungus on the nest architecture and digging activity of Acromyrmex subterraneus Forel (Hymenoptera, Formicidae)
Fig. 3. Boxplot showing the variation in digging activity according to treatment (indicated above each graph) and time.
Figure 2. A in Susceptibility of Agriotes spp. larvae (Coleoptera: Elateridae) to stress-and-kill strategies using spinosad and the entomopathogenic fungus Metarhizium brunneum
Figure 2. A: MetarhIzIum brunneum strain ART2825 growth in the tracheae of AgrIotes obscurus 22 days posttreatment. B: ART2825 fungal colonization in the integument of A. obscurus 22 days posttreatment.
Figure 3. A in Susceptibility of Agriotes spp. larvae (Coleoptera: Elateridae) to stress-and-kill strategies using spinosad and the entomopathogenic fungus Metarhizium brunneum
Figure 3. A: Sporulation of MetarhIzIum brunneum strain 16P on AgrIotes sordIdus 21 days posttreatment (zoom ×6.7). B: M. brunneum strain 16P primary and secondary fungal growth, with melanotic spots (black arrow) on A. sordIdus (×6.7). C: ART2825 fungal growth on the cuticle of A. obscurus 22 days posttreatment. D: Fungal growth on the cuticle of A. obscurus, which could correspond to the secondary growth on the sclerites.
Figure 1. A in Susceptibility of Agriotes spp. larvae (Coleoptera: Elateridae) to stress-and-kill strategies using spinosad and the entomopathogenic fungus Metarhizium brunneum
Figure 1. A: Leg of AgrIotes obscurus exposed to MetarhIzIum brunneum strain ART2825 48 h posttreatment. B: intersegment area of A. obscurus exposed to M. brunneum strain F52 36 h posttreatment, C: Depression at the base of a setae of A. obscurus with F52 conidia 24 h posttreatment, D: Melanization on A. sordIdus exposed to M. brunneum strain 16P 21 days posttreatment (zoom x 6.7).
Figure 4 in New insights on the impact of earthworm extract on the growth of beneficial soil fungi: species-specific alteration of the nematophagous fungal growth and limitation of an entomopathogenic fungus
Figure 4. Growth of Purpureocillium lilacinum after 20 days postexposer to two different earthworm based media: fresh earthworms (FE) (four concentration C1, C2, C3, and C4), and earthworms devoid of gut contents (EDG) (four concentration C1, C2, C3, and C4), C1 = 40 g/L, C2 = 20 g/L, C3 = 10 g/L, C4 = 5 g/L, and two rich media: potato dextrose agar (PDA), and brain heart infusion (BHI).
Figure 5 in New insights on the impact of earthworm extract on the growth of beneficial soil fungi: species-specific alteration of the nematophagous fungal growth and limitation of an entomopathogenic fungus
Figure 5. Evaluation of conidial germination of the fungus Beauveria bassiana exposed to two different earthworm extracts: fresh earthworms (FE) and earthworms without gut contents, EDG, and two conventional media: potato dextrose agar (PDA), and brain heart infusion agar (BHI). A. Percentage germination on conventional and earthworm-based media. B. Percent germination as a function of concentration and earthworm-based medium. Concentrations are equivalent to C1 = 40 g/L, C2 = 20 g/L, C3 = 10 g/L, and C4 = 5 g/L. Results of one-way ANOVA (A) or two-way ANOVA (B), and differences are significant according to Tukey's test (HSD) and groups "a", "b" and "c".
Figure 3 in New insights on the impact of earthworm extract on the growth of beneficial soil fungi: species-specific alteration of the nematophagous fungal growth and limitation of an entomopathogenic fungus
Figure 3. Evaluation of vegetative growth, conidial production and germination in the fungus Purpureocillium lilacinum exposed to two earthworm extracts: fresh earthworm (FE), earthworms devoid of intestinal contents (EDG) and two conventional media: potato dextrose agar (PDA), and brain heart infusion agar (BHI). A. Cumulative growth from 3 to 18 days according to conventional and earthworm-based media. B. Cumulative growth as a function of concentration and earthworm-based medium. C. Conidia production (×10⁵ conidia/mL) according to conventional and earthworm-based media. D. Conidia production (×10⁵ conidia/mL) according to concentration and earthworm-based medium. E. Percent germination on conventional and earthworm-based media. F. Percent germination as a function of concentration and earthworm-based medium. Concentrations are equivalent to C1 = 40 g/L, C2 = 20 g/L, C3 = 10 g/L, and C4 = 5 g/L. Results of one-way ANOVA (A, C, E) or two-way ANOVA (B, D, F), and differences are significant at Tukey's test (HSD) and groups "a", "b" and "c".
Figure 1 in New insights on the impact of earthworm extract on the growth of beneficial soil fungi: species-specific alteration of the nematophagous fungal growth and limitation of an entomopathogenic fungus
Figure 1. Evaluation of vegetative growth, conidial production and germination in the fungus Arthrobotris musiformis exposed to two earthworms' extracts: fresh earthworm (FE), earthworms devoid of intestinal contents (EDG) and two conventional media: potato dextrose agar (PDA), and brain heart infusion agar (BHI). A. Cumulative growth from 3 to 18 days according to conventional and earthworm-based media. B. Cumulative growth as a function of concentration and earthworm-based medium. C. Conidia production (×10⁵ conidia/mL) according to conventional and earthworm-based media. D. Conidia production (×10⁵ conidia/mL) according to concentration and earthworm-based medium. E. Percent germination on conventional and earthworm-based media. F. Percent germination as a function of concentration and earthworm-based medium. Concentrations are equivalent to C1 = 40 g/L, C2 = 20 g/L, C3 = 10 g/L, and C4 = 5 g/L. Results of one-way ANOVA (A, C, E) or two-way ANOVA (B, D, F), and differences are significant at Tukey's test (HSD) and groups "a", "b" and "c".
Figure 1 in Two new silken fungus beetle species (Coleoptera, Cucujiformia, Cryptophagidae) from Rovno amber
Figure 1. Atomaria (Anchicera) bukejsi sp. nov.: A – dorsal view (image), B – ventral view (image), C – antenna (drawing), D – lateral view (image).
Figure 2 in Two new silken fungus beetle species (Coleoptera, Cucujiformia, Cryptophagidae) from Rovno amber
Figure 2. Fossil Atomaria sp.: A – A. (Anchicera) bukejsi sp. nov., legs and abdomen (image), B – A. (Anchicera) archibaldi sp. nov., ventrolateral view (image).
Figure 3 in Two new silken fungus beetle species (Coleoptera, Cucujiformia, Cryptophagidae) from Rovno amber
Figure 3. Atomaria (Anchicera) archibaldi sp. nov.: A – lateral view (image), B – total view (drawing).
Figure 2 in New silken fungus beetle species (Coleoptera, Cucujiformia, Cryptophagidae) from Rovno amber
Figure 2. Cryptophagus vorontsovi sp. nov.: A – lateral view (image), B – dorsolateral view (image), C – antenna (drawing).
Fig. 2. Photographs. A in Chiggers (Acariformes: Trombiculoidea) do not increase rates of infection by Batrachochytrium dendrobatidis fungus in the endemic Dwarf Mexican Treefrog Tlalocohyla smithii (Anura: Hylidae)
Fig. 2. Photographs. A: restrained T. smithii specimen; B: anatomical areas of host (T.smithii) parasitized by Trombiculoidea chiggers; C: another specimen of T smithii in its natural habitat.
Fig. 1. Study area, showing November 2014 and 2016 in Chiggers (Acariformes: Trombiculoidea) do not increase rates of infection by Batrachochytrium dendrobatidis fungus in the endemic Dwarf Mexican Treefrog Tlalocohyla smithii (Anura: Hylidae)
Fig. 1. Study area, showing November 2014 and 2016 sampling sites. Gray and white circles show presence or absence of Batrachochytrium dendrobatidis. Sampling sites in 2010 and 2011 show fungus presence, reported by Cortes in 2014.
Fig. 2 in A volatile semiochemical released by the fungus garden of leaf-cutting ants
Fig. 2. Olfactometer model used in the experiment of ant responses to healthy or unhealthy fungus in the Y-shaped choice system.
Fig. 4. A in A volatile semiochemical released by the fungus garden of leaf-cutting ants
Fig. 4. A: Mean percent area and standard deviation (confidence interval) of volatiles emited by the fungus; B: healthy fungus and fungus with cycloheximide for 7 d; C: healthy fungus and fungus with cycloheximide for 14 d.
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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.