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.
3,979
datasets available to search
ShareScore release 0.9.0
Dataset results
3,979 results for “Coleoptera: Cerambycidae”
Fig. 2 in Límites y posición sistemática de Iberodorcadion mosqueruelense Escalera, 1902, I. grustani González, 1992 e I. seguntianum ssp. belbezei Escalera, 1914 (Coleoptera, Cerambycidae).
Fig. 2. – Mapa de distribución de I. mosqueruelense (líneas azules), I. terolense (líneas amarillas) e I. pseudomolitor (líneas rojas).
Fig. 7 in Límites y posición sistemática de Iberodorcadion mosqueruelense Escalera, 1902, I. grustani González, 1992 e I. seguntianum ssp. belbezei Escalera, 1914 (Coleoptera, Cerambycidae).
Fig. 7.- Mapa de distribución de I. seguntianum (líneas rojas), I. seguntianum belbezei (líneas azules) e I. zarcoi (líneas amarillas).
Fig. 5 in Límites y posición sistemática de Iberodorcadion mosqueruelense Escalera, 1902, I. grustani González, 1992 e I. seguntianum ssp. belbezei Escalera, 1914 (Coleoptera, Cerambycidae).
Fig. 5. - Holotipos de D. zarcoi m. presuturalebivittatum y D. zarcoi m. suturaleconnexum. Col. Lepesme, Musée des Confluences de Lyon. Ọ H. Labrique.
Fig. 1 in New population of Rosalia longicorn, Rosalia alpina, in Calabria (southern Italy) (Coleoptera: Cerambycidae)
Fig. 1 – Green areas: National Parks where Rosalia alpina is present; dotted blue line: Catena Costiera as an ecological corridor; red star: discovery point of the new population of R. alpina. Fig. 2 – SCI-SAC present in the study area (Image reworked from the maps downloadable from: http://retenatura2000. regione.calabria.it/).
Fig. 3 in New population of Rosalia longicorn, Rosalia alpina, in Calabria (southern Italy) (Coleoptera: Cerambycidae)
Fig. 3 – Individual of Rosalia alpina photographed on a rotting beech trunk on the ground covered with moss into the new Calabrian site.
Fig. 9 in Ad-hoc devised phototraps unravel Cerambyx miles diel activity in the wild (Coleoptera: Cerambycidae)
Fig. 9 – Diel activity (%) of Cerambyx miles in the wild during two consecutive years as assessed with phototrapping: frequency of captures in 2020 with PT1 traps (upper panel), frequency of sightings in 2021 with PT2 traps (central panel), and pooled data (bottom panel). The frequency distributions on an hourly basis show the strong prevalence of the diurnal behaviour exhibited by C. miles adults (Local time, GMT+2). Field trials were conducted both years during June-July at Montánchez mountain range, Cáceres (SW Spain). See text for additional details.
Figs 3-8 in Ad-hoc devised phototraps unravel Cerambyx miles diel activity in the wild (Coleoptera: Cerambycidae)
Figs 3-8 – Some selected images (unretouched, original frames) showing phototrapped adults of Cerambyx miles; 3, a C. miles male prowling the container of a PT1 phototrap at 19.05 h. Two marked C. welensii adults are visible within the trap. Montánchez, Cáceres, 7 July 2020; 4, a C. miles male lured by a PT1 phototrap at 19.15 h before being trapped. Montánchez, Cáceres, 8 July 2020; 5, a mated pair of C. miles prowling a PT1 phototrap at 18.25 h. Two marked C. cerdo adults are visible within the trap. Note the removable cardboard panel to protect the container from direct sunlight. Montánchez, Cáceres, 8 July 2020; 6, a C. miles female feeding in the drinker of a PT2 phototrap at 14.21 h. Montánchez, Cáceres, 29 June 2021; 7, a mated pair of C. miles (while female feeds) in the platform of a PT2 phototrap at 17.56 h. Cancho Blanco, Zarza de Montánchez, Cáceres, 1 July 2021; and 8, a C. miles male feeding in the drinker of a PT2 phototrap at 14.14 h. Montánchez, Cáceres, 29 July 2021 (Local time, GMT+2).
Fig. 10 in Ad-hoc devised phototraps unravel Cerambyx miles diel activity in the wild (Coleoptera: Cerambycidae)
Fig. 10 – Pie charts depicting the diel activity (%) of Cerambyx miles depending on the data source, either field experimental data from this study (left) or literature data (right). Captures/sightings from this study (n = 139) and literature data (n = 103 records from 79 references, Table S1) were scored into three diel activity classes as either diurnal (D), crepuscular (C) or nocturnal (N). The two frequency distributions were significantly different (see text) suggesting an underlying bias in how entomologists have perceived or described the diel activity of C. miles adults.
Fig. 1 in The ectoparasitoid Scleroderma guani (Hymenoptera: Bethylidae) uses innate and learned chemical cues to locate its host, larvae of the pine sawyer Monochamus alternatus (Coleoptera: Cerambycidae)
Fig. 1. Numbers of naïve Scleroderma guani females responding to various odor sources presented in pairs in a Y-tube olfactometer. W = wood diet, WF = mixture of wood diet and Monochamus alternatus frass, S = sawdust from M. alternatus galleries, L = 10 M. alternatus 3rd instars, and A = clean air. *: P ≤ 0.05, **: P ≤ 0.01. Numbers indicate numbers of wasps responding.
Fig. 4 in The ectoparasitoid Scleroderma guani (Hymenoptera: Bethylidae) uses innate and learned chemical cues to locate its host, larvae of the pine sawyer Monochamus alternatus (Coleoptera: Cerambycidae)
Fig. 4. Numbers of Scleroderma guani females responding to the odor of Monochamus alternatus 3rd instars (L) versus clean air (A) in a Y-tube olfactometer. Females were either naïve (N), previously exposed to gallery sawdust (S), or with previous exposure to the odor of M. alternatus larvae (L). *: P ≤ 0.05, **: P ≤ 0.01.
Fig. 3 in The ectoparasitoid Scleroderma guani (Hymenoptera: Bethylidae) uses innate and learned chemical cues to locate its host, larvae of the pine sawyer Monochamus alternatus (Coleoptera: Cerambycidae)
Fig. 3. Numbers of naïve Scleroderma guani females responding to the odor of 10 Monochamus alternatus 1st, 3rd, or 5th instars (L) versus clean air (A) in a Y-tube olfactometer. *: P ≤ 0.05, **: P ≤ 0.01.
Fig. 2 in The ectoparasitoid Scleroderma guani (Hymenoptera: Bethylidae) uses innate and learned chemical cues to locate its host, larvae of the pine sawyer Monochamus alternatus (Coleoptera: Cerambycidae)
Fig. 2. Relative proportions of organic compounds identified in headspace volatiles from Monochamus alternatus larvae and a mixture of wood diet, sawdust, and frass.
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 The nutritional ecology of Dectes texanus (Coleoptera: Cerambycidae): Does host choice affect the macronutrient levels in overwintering larvae?
Fig. 1. The mean (± SE) A) head capsule width, B) wet mass, C) levels of protein per unit mass, D) levels of carbohydrates per unit mass, and E) levels of lipids per unit mass in larvae from sunflower (Sun) and soybean (Soy) plant hosts. An asterisk indicates that the levels are significantly different.
Fig. 1 in Changes in midgut gene expression following Bacillus thuringiensis (Bacillales: Bacillaceae) infection in Monochamus alternatus (Coleoptera: Cerambycidae)
Fig. 1. Comparison of the gene expression levels between the control (CK) and Bt-exposed Monochamus alternatus. To compare the gene expression levels between the 2 libraries, each library was normalized to 1 million tags. The x-axis represents log10 of the reads per kb per million reads (RPKM) of the control sample, and the y-axis indicates log10 of the RPKM of the treated sample. The expression level of each gene is included in the volcano plot. The red dots represent transcripts that are more prevalent in the Bt-treated library, the green dots show those present at a lower frequency in the Bt-treated library, and the blue dots indicate transcripts that did not change significantly. The parameters "FDR <0.001" and "absolute value of log2(Treated/Control) ≥ 1" were used as the thresholds to judge the significance of the gene expression difference.
Mapa 1 in Notas sobre coleópteros gallegos. VIII. Sobre la presencia de Aegosoma scabricorne (Scopoli, 1763) (Coleoptera, Cerambycidae) en Galicia (N.O. de la Península Ibérica).
Mapa 1.- Localidades de captura de A. scabricorne en el extremo noroccidental de la Península Ibérica, recopiladas por GONZÁLEZ PEÑA et al. (2007).
Fig. 1 in Nuevos datos sobre Phytoeciini Mulsant, 1839 (Coleoptera, Cerambycidae) en Castilla y León (norte de España)
Fig. 1.- Phytoecia (Opsilia) molybdaena. Fig. 2.- Phytoecia (Phytoecia) caerulea caerulea. Fig. 3.- Phytoecia (Phytoecia) erythrocnema.
Figures 82–89 in A review of the history of the names Hamaticherus Dejean and Plocaederus Dejean and description of a new genus and species (Coleoptera: Cerambycidae: Cerambycinae)
Figures 82–89. Hamaederus allofasciatus sp. nov. 82–88) Holotype male. 82) Dorsal habitus. 83) Ventral habitus. 84) Lateral habitus. 85) Head, frontal view. 86) Scape. 87) Prosternal process, oblique view. 88) Prosternal and mesoventral processes. 89) Paratype female, dorsal habitus.
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.