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.
165
datasets available to search
ShareScore release 0.7.1
Dataset results
165 results for “Hypocreales”
Fig. 1 in Aleuroclava aucubae (Homoptera: Aleyrodinea), a new adventive species for Russian Black Sea Coast, and its concomitant entomoparasitic fungus Conoideocrella luteorostrata (Ascomycota: Hypocreales: Clavicipitaceae)
Fig. 1. Morphology of the prepared ultimolarva (pseudopupa) of Aleuroclava aucubae, dorsal and ventral surfaces.
Fig. 3. A in Aleuroclava aucubae (Homoptera: Aleyrodinea), a new adventive species for Russian Black Sea Coast, and its concomitant entomoparasitic fungus Conoideocrella luteorostrata (Ascomycota: Hypocreales: Clavicipitaceae)
Fig. 3. A colony of ultimolarvae (pseudopupae) of Aleuroclava aucubae on leaves of Ficus carica, and a separate ultimolarva enlarged.
Fig. 1 in Nomuraea rileyi (Hypocreales: Clavicipitaceae) in Helicoverpa armigera (Lepidoptera: Noctuidae) larvae in Brazil
Fig. 1. Helicoverpa armigera larvae collected from cotton plantations in Bahia, Brazil. A: Larva on cotton bud; B, C: signs caused by Nomuraea rileyi on H. armigera larvae; D: light micrograph of the N. rileyi spores observed at 400-fold magnification.
Fig. 3 in Effects of a pathogenic Beauveria bassiana (Hypocreales: Cordycipitaceae) strain on detoxifying and protective enzyme activities in Xylotrechus rusticus (Coleoptera: Cerambycidae) larvae
Fig. 3. Effects of infection by Beauveria bassiana strain BbCC01 on protective enzyme activity in Xylotrechus rusticus larvae over time. A. Catalase (CAT). B. Peroxidase (POD). C. Superoxide dismutase (SOD). Data are expressed as mean ± SE (n = 3). Different letters indicate significant differences between means (P <0.05).
Fig. 4 in Effects of a pathogenic Beauveria bassiana (Hypocreales: Cordycipitaceae) strain on detoxifying and protective enzyme activities in Xylotrechus rusticus (Coleoptera: Cerambycidae) larvae
Fig. 4. Change of the protein content in Xylotrechus rusticus larvae infected with Beauveria bassiana strain BbCC01. Data are expressed as mean ± SE (n = 3). Different letters indicate significant differences between means (P <0.05).
Fig. 2 in Effects of a pathogenic Beauveria bassiana (Hypocreales: Cordycipitaceae) strain on detoxifying and protective enzyme activities in Xylotrechus rusticus (Coleoptera: Cerambycidae) larvae
Fig. 2. Effects of infection by Beauveria bassiana strain BbCC01 on detoxifying enzyme activity in Xylotrechus rusticus larvae over time. A. Carboxylesterase (CarE). B. Glutathione S-transferase (GST). C. Acetylesterase (AchE). Data are expressed as mean ± SE (n = 3). Different letters indicate significant differences between means (P <0.05).
Fig. 1 in Hirsutella sp. (Hypocreales: Ophiocordycipitaceae) affecting the invasive social wasp Vespula vulgaris (Hymenoptera: Vespidae) in southern Chile
Fig. 1. Vespula vulgaris adult infected with Hirsutella sp. found in southern Chile. A. Mycotized wasp cadaver; B–C. synnema arising from the abdomen of the wasp; D. conidiogenous cells with cylindrical bases and an elongated, narrowed neck; E. conidiogenous cells and conidia. Horizontal scale bars represent 20 µm in C, D, and E.
Fig. 1 in Effect of Mexican Hirsutella citriformis (Hypocreales: Ophiocordycipitaceae) strains on Diaphorina citri (Hemiptera: Liviidae) and the predators Chrysoperla rufilabris (Neuroptera: Chrysopidae) and Hippodamia convergens (Coleoptera: Coccinellidae)
Fig. 1. Overall mean mortality of Diaphorina citri adults caused by conidia of 8 Hirsutella citriformis strains applied by contact (3 separate bioassays) under controlled conditions (26 ± 1 °C, 76 ± 4% RH, 16:8 h L:D photoperiod). Error bars represent the standard error (n = 7).
Fig. 3 in Effect of Mexican Hirsutella citriformis (Hypocreales: Ophiocordycipitaceae) strains on Diaphorina citri (Hemiptera: Liviidae) and the predators Chrysoperla rufilabris (Neuroptera: Chrysopidae) and Hippodamia convergens (Coleoptera: Coccinellidae)
Fig. 3. Mean mortality of Diaphorina citri caused by blastospores of 5 Hirsutella citriformis strains under controlled conditions (26 ± 1 °C, 76 ± 4% RH, 16:8 h L:D photoperiod) during 26 d post inoculation. Different letters indicate significant differences (Tukey's test, α = 0.05). Error bars represent the standard error (n = 7).
Fig. 1 in Pathogenicity and virulence of Purpureocillium lilacinum (Hypocreales: Ophiocordycipitaceae) on Mexican fruit fly adults
Fig. 1. Daily survival (lx) of Anastrepha ludens adults infected by 2 Purpureocillium lilacinum strains (CFFSUR-A53 and CFFSUR-A60) and their non-infected control.
Fig. 2 in Pathogenicity and virulence of Purpureocillium lilacinum (Hypocreales: Ophiocordycipitaceae) on Mexican fruit fly adults
Fig. 2. Mean number of eggs laid per d (net fecundity lxmx) by Anastrepha ludens females infected by 2 strains of Purpureocillium lilacinum (CFFSUR-A53 and CFFSUR-A60) and their non-infected control.
Fig. 5 in Aleuroclava aucubae (Homoptera: Aleyrodinea), a new adventive species for Russian Black Sea Coast, and its concomitant entomoparasitic fungus Conoideocrella luteorostrata (Ascomycota: Hypocreales: Clavicipitaceae)
Fig. 5. Ultimolarvae of Aleuroclava aucubae, infected by Conoideocrella luteorostrata.
Fig. 4. A in Aleuroclava aucubae (Homoptera: Aleyrodinea), a new adventive species for Russian Black Sea Coast, and its concomitant entomoparasitic fungus Conoideocrella luteorostrata (Ascomycota: Hypocreales: Clavicipitaceae)
Fig. 4. A generalised scheme of ontogenesis in whiteflies.
Fig. 2 in Aleuroclava aucubae (Homoptera: Aleyrodinea), a new adventive species for Russian Black Sea Coast, and its concomitant entomoparasitic fungus Conoideocrella luteorostrata (Ascomycota: Hypocreales: Clavicipitaceae)
Fig. 2. Photo of the microscopic slide with an ultimolarva (pseudopupa) of Aleuroclava aucubae.
Exploring the activity of Chrysoperla carnea (Neuroptera: Chrysopidae) and Beauveria bassiana (Ascomycota: Hypocreales) on Neophilaenus campestris (Hemiptera: Aphrophoridae), vector of Xylella fastidiosa
<p>Raw data and R codes from the study "Exploring the activity of Chrysoperla carnea (Neuroptera: Chrysopidae) and Beauveria bassiana (Ascomycota: Hypocreales) on Neophilaenus campestris (Hemiptera: Aphrophoridae), vector of Xylella fastidiosa"</p>
FIGURE 1. Maximum likelihood tree reconstructed from tef1 in Trichoderma orarium (Hypocreales): a new species from Taiwan
FIGURE 1. Maximum likelihood tree reconstructed from tef1 sequences. The newly described species is displayed in blue bold. We indicated bootstrap values at the nodes based on 1000 replicates only exceeding 50%. Bar scale represents 0.01 substitutions per nucleotide position. T. inhamatum and T. bannaense were used as outgroup. The tef1 sequence accession numbers are provided in parentheses following the strain numbers. "T" denotes type strains.
FIGURE 2. Trichoderma orarium BCRC 18F0041. A–C. Colonies after 7 d in Trichoderma orarium (Hypocreales): a new species from Taiwan
FIGURE 2. Trichoderma orarium BCRC 18F0041. A–C. Colonies after 7 d at 25 ˚C; A. from above on PDA, B. from below on PDA, C. from above on SNA. D–L. Conidiophores, phialides, and conidia formed on SNA. M–N. Conidia. Scale bar = 10 µm. Photographs by Y.-H. Wei.
FIGURE 2 in Myxospora poaceicola sp. nov. (Stachybotryaceae, Hypocreales), a novel myrothecium-like fungus from Digitaria sanguinalis (Poaceae)
FIGURE 2. Myxospora poaceicola (HUEST 23.0116, holotype). a. Natural substrates of Phragmites australis. b. Synnemata on the host surface. c, d. Close-up of Synnemata. e, g. Conidiophores. f. Conidiogenous cells and conidia. h. Conidia. i, j. Colony on PDA (front and back views) after 5 days at 25 °C in darkness. Scale bars: d = 100 µm. e–h = 10 µm.
FIGURE 2. Gibellula flava GNJ20200814-46 in Gibellula flava sp. nov. (Cordycipitaceae, Hypocreales), a new pathogen of spider from China
FIGURE 2. Gibellula flava GNJ20200814-46 (asexual morph): a–c. Fungus on spider. k, l. Conidiophores and conidial head. j. Conidial head. m. Conidia. WFS20190625-25 (sexual morph): d. Stroma with ascomata. e. Perithecium ostioles (arrow). f. Perithecium. g. Ascus with thickened apical cap (arrow). h. Ascus and ascospores. i. Part-ascospores. Scale bars: f = 50 μm, j, k, l = 10 μm, g, h, i, m = 5 μm.
FIGURE 1 in Gibellula flava sp. nov. (Cordycipitaceae, Hypocreales), a new pathogen of spider from China
FIGURE 1. The maximum likelihood (ML) tree derived from multigene sequences of Gibellula spp. and allied taxa retrieved from GenBank with Hypocrea lutea (ATCC 208838) and H. voglmayrii (CBS117710) as outgroup. Numbers at the significant nodes represent ML bootstrap values and Bayesian posterior probabilities greater than 80%. Bold lines in the tree represent 100% of two values.
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.