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.
573
datasets available to search
ShareScore release 0.7.1
Dataset results
573 results for “chewing”
Figs 80–84 in The ischnoceran chewing lice (Phthiraptera: Ischnocera) of bulbuls (Aves: Passeriformes: Pycnonotidae), with descriptions of 18 new species
Figs 80–84. Brueelia galeata sp. nov. 80. Male head, dorsal and ventral views. 81. Male genitalia, dorsal view. 82. Male paramere, dorsal view. 83. Male mesosome, ventral view. 84. Female subgenital plate and vulval margin, ventral view.
Figs 64–65 in The ischnoceran chewing lice (Phthiraptera: Ischnocera) of bulbuls (Aves: Passeriformes: Pycnonotidae), with descriptions of 18 new species
Figs 64–65. Brueelia robertrankini sp. nov. 64. Male habitus, dorsal and ventral views. 65. Female habitus, dorsal and ventral views.
Figs 106–107. Philopteroides cucphuongensis Mey, 2004. 106 in The ischnoceran chewing lice (Phthiraptera: Ischnocera) of bulbuls (Aves: Passeriformes: Pycnonotidae), with descriptions of 18 new species
Figs 106–107. Philopteroides cucphuongensis Mey, 2004. 106. Male habitus, dorsal and ventral views. 107. Female habitus, dorsal and ventral views. Abbreviations: ps = paratergal seta; ss = sutural seta; sts = sternal seta; tps = tergal posterior seta.
Figs 59–63 in The ischnoceran chewing lice (Phthiraptera: Ischnocera) of bulbuls (Aves: Passeriformes: Pycnonotidae), with descriptions of 18 new species
Figs 59–63. Brueelia hermetica sp. nov. 59. Male head, dorsal and ventral views. 60. Male genitalia, dorsal view. 61. Male paramere, dorsal view. 62. Male mesosome, ventral view. 63. Female subgenital plate and vulval margin, ventral view.
Figs 126–129 in The ischnoceran chewing lice (Phthiraptera: Ischnocera) of bulbuls (Aves: Passeriformes: Pycnonotidae), with descriptions of 18 new species
Figs 126–129. Philopteroides haerixos sp. nov. 126. Male head, dorsal and ventral views. 127. Male genitalia, dorsal view. 128. Male genitalia, ventral view. 129. Female subgenital plate and vulval margin, ventral view.
Fig. 1 in Chewing Lice (Order Mallophaga, Suborders Amblycera And Ichnocera) Fauna Of Domestic Chicken (Gallus Gallus Domesticus) In Ukraine
Fig. 1. Menopon gallinae: ♀: 1 — forehead; 2 — temporal lobe; 3 — antenna; 4 — eyes; 5 — abdomen (×400); ♂: 1 — forehead; 2 — temporal lobe; 3 — antenna; 4 — foot; 5 — bristles; 6 — abdomen posterior (×300).
Fig. 4 in Chewing Lice (Order Mallophaga, Suborders Amblycera And Ichnocera) Fauna Of Domestic Chicken (Gallus Gallus Domesticus) In Ukraine
Fig. 4. Morphology of Goniocotes hologaster: ♀: 1 — forehead; 2 — eyes; 3 — bristles on head; 4 — the rear of the abdomen (×300); ♂: 1 — head; 2 — temporal edges; 3 — overall oval body; 4 — the last segment of the abdomen blade-shaped (×250).
Fig. 3 in Chewing Lice (Order Mallophaga, Suborders Amblycera And Ichnocera) Fauna Of Domestic Chicken (Gallus Gallus Domesticus) In Ukraine
Fig. 3. Morphology of Menacanthus cornutus: ♀: 1 — forehead; 2 — temporal lobe; 3 — sternal plate; 4 — crop; 5 — posterior part of the abdomen with bristles; ♂: 2 — eye; 3 — prothorax with foots; 4 — mesothorax; 5 — metathorax; 6 — abdomenal bristles; 7 — oval shape of the rear of the abdomen; 8 — ejaculatory ducts (×400).
Fig. 2 in Chewing Lice (Order Mallophaga, Suborders Amblycera And Ichnocera) Fauna Of Domestic Chicken (Gallus Gallus Domesticus) In Ukraine
Fig. 2. Morphology Menacanthus stramineus: ♀: 1 — forehead; 2 — temporal lobe; 3 — prothorax; 4 — mesothorax; 5 — metathorax; 6 — tarse; 7 — crop; 8 — the egg chamber; ♂: 1 — prothorax foot; 2 — foot mesothorax; 3 — foot metathorax; 4 — testes; 5 — crop (×400).
Data from: Plant richness, land use and temperature differently shape invertebrate leaf-chewing herbivory on plant functional groups
<p class="MsoNormal">Nutrient demands of leaf-chewing invertebrate herbivores change with temperature, which causes shifts in herbivores' diets. Temperature may act differently on herbivore species, so that factors shaping herbivore species richness may modulate temperature effects on invertebrate herbivory among plant functional groups with different nutrient composition (C:N ratio low to high: legumes, non-leguminous forbs, grasses). Global warming urges a deeper understanding of temperature effects on herbivory among plant functional groups in different habitats and landscapes. This study obtained measures on proportional leaf area loss to leaf-chewing invertebrate herbivores ('herbivory') on three plant functional groups on 80 plots of open herbaceous vegetation adjacent to different habitat types (forest, grassland, arable field, settlement) along climate and land-use gradients in Bavaria, Germany. Herbivory was analysed with regard to habitat characteristics (habitat type, plant richness at species and family level, local mean temperature), landscape characteristics (proportion of grassland, landscape diversity; 0.2–3.0-km), climate (multi-annual mean temperature, 'MAT') and interactive effects of plant functional group, temperature and habitat or landscape characteristics. Herbivory on plant functional groups changed differently in response to plant richness (family level only) and habitat type, but not to differences in landscape characteristics and temperature – only on grassland plots, multi-annual mean temperature differentially affected herbivory among plant functional groups. Thus, abiotic and biotic factors can differently affect leaf-chewing herbivory on plant functional groups. Under current conditions, plant richness and habitat type more strongly affected herbivory among legumes, forbs and grasses than temperature and landscape-scale land use.</p>
Laportea aestuans (L.) Chew (BR0000012168132)
Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.
Laportea aestuans (L.) Chew (BR0000015241115V)
Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.
Fig. 2. A 15 in Chewing lice Trichodectes pinguis pinguis in Scandinavian brown bears (Ursus arctos)
Fig. 2. A 15-year-old male brown bear (Ursus arctos), ID No. W1211, parasitized by Trichodectes pinguis pinguis. Notice the areas with partial or complete hair loss, hyperpigmentation and lichenification of the skin. a) April 2015 at the time of capture. b) June 2015 when feeding on a carcass.
Fig. 1. A 5 in Chewing lice Trichodectes pinguis pinguis in Scandinavian brown bears (Ursus arctos)
Fig. 1. A 5-year-old female brown bear (Ursus arctos), ID No. W1017, captured in Sweden. a) and b) April 2014: Hair loss in the ventral region of the neck and upper chest probably caused by Trichodectes spp. c) April 2015: Hair loss and scar tissue in the neck; no lice were found.
Fig. 4 in Chewing lice Trichodectes pinguis pinguis in Scandinavian brown bears (Ursus arctos)
Fig. 4. Specimen of Trichodectes pinguis pinguis recovered from a brown bear (Ursus arctos) killed because of human-wildlife conflict in south-central Sweden in May 2015. The distance between the measuring bars is 1 mm.
Fig. 3 in Chewing lice Trichodectes pinguis pinguis in Scandinavian brown bears (Ursus arctos)
Fig. 3. Brown bear (Ursus arctos) killed because of human-wildlife conflict in south-central Sweden in May 2015. The bear showed extensive alopecia in the area covering a) the chin, ventral part of the neck; b) axillar region, and abdomen.
Fig. 1 in Lousy chicks: Chewing lice from the Imperial Shag, Leucocarbo atriceps
Fig. 1. Mean intensity of instars (adults in dark grey, nymphs in light grey) of the lice Pectinopygus turbinatus and Piagetiella caputincisum in Imperial Shag chicks from Punta Léon, Patagonia, Argentina. Vertical bars correspond to the 95% confidence intervals.
Figure. Original photos of chewing lice identified in this study: A, Anatoecus cygni (♀); B, Ciconiphilus cygni (♀); C, Ciconiphilus decimfasciatus (♀); D, Colpocephalum apivorus (♂); E, Colpocephalum apivorus (♀); F, Colpocephalum napiforme (♂); G, Kurodaia subpachygaster (♀); H, Ornithobius cygni (♀); I, Philopterus atratus (♀) (bar: 1 mm). in Contributions to the knowledge of the diversity of the chewing lice fauna in Turkey
Figure. Original photos of chewing lice identified in this study: A, Anatoecus cygni (♀); B, Ciconiphilus cygni (♀); C, Ciconiphilus decimfasciatus (♀); D, Colpocephalum apivorus (♂); E, Colpocephalum apivorus (♀); F, Colpocephalum napiforme (♂); G, Kurodaia subpachygaster (♀); H, Ornithobius cygni (♀); I, Philopterus atratus (♀) (bar: 1 mm).
Figure 2 in Unusual finding of chewing louse Quadraceps cf. junceus (Scopoli, 1763) (Phthiraptera: Ischnocera) on Nathusius pipistrelle Pipistrellus nathusii (Keyserling & Blasius, 1839) (Mammalia: Chiroptera) with review of findings of lice reported from bats
Figure 2. Lice of genus Quadraceps parasitizing birds of the genus Tringa: A. Q. furvus; B. Q. junceus; C. Q. obscurus; D. Q. obtusus; E. Q. ochropi; F. Q. similis (Sychra, own data).
Fig. 9. A in Diversity and host associations of Myrsidea chewing lice (Phthiraptera: Menoponidae) in the tropical rainforest of Malaysian Borneo
Fig. 9. A species delimitation of Bornean Myrsidea studied inferred from a partial sequence of the mitochondrial COI gene. Validation methods shown on Bayesian tree of hypothetical species. Colors represent unique partitions and correspond to operational taxonomic units (OTU) by various methods of species delimitation: morphological, Automatic Barcode Gap Discovery (ABGD), Generalized Mixed Yule Coalescent analyses (GMYC), and Poisson Tree Process analyses (PTP) respectively.
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.