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.
8
datasets available to search
ShareScore release 0.9.0
Dataset results
8 results for “Termitaria”
FIGURE 8 in Description of a novel termite ectoparasite, Termitaria hexasporodochia sp. nov. (Kathistaceae), presenting an unusual six-sectioned infestation, and a key to the fungal family Kathistaceae
FIGURE 8. Upper region structure of T. hexasporodochia sp. nov. A. Confocal stack image showing position of sporodochia on the ventral surface of Amitermes worker abdomen with six prominent elliptical sporodochia of T. hexasporodochia sp. nov. on ventral sternites 4, 5, and 6. Thick dark expiculum present along the periphery of each lesion. B. Confocal stack image just below the pad surface, showing sporodochia appears densely populated with 12,000–14,000 hexagonal pores (textura angularis), with the conidial spores (Cs) visible within each tubular hymenial channel leading to the apical pore. C. SEM image showing apical most surface of the hexagonal honeycomb of phialides, in contrast to the smooth, crust like expiculum (Ex) 4- Phialides terminate in two blunt bivalved flaps (Bf) that appear as two isosceles trapezoidal flaps that combine to form a hexagonal unit. Scale bars: C-100 μm, D-4 μm. Photographed by Steve Davis.
FIGURE 7. Phialide and spores SEM. A in Description of a novel termite ectoparasite, Termitaria hexasporodochia sp. nov. (Kathistaceae), presenting an unusual six-sectioned infestation, and a key to the fungal family Kathistaceae
FIGURE 7. Phialide and spores SEM. A. internal surface of the hymenial phialide, with dense minute filamentous coating B. Sporogenous structure prior to endogenous division at conidiogenous loci. C. Rectangular, catenate conidial spores located beyond the conidiogenous locus indicated by arrow. Scale bars: A—500 nm, B—3.0 μm, C—2 μm. Photographed by Steve Davis.
FIGURE 6 in Description of a novel termite ectoparasite, Termitaria hexasporodochia sp. nov. (Kathistaceae), presenting an unusual six-sectioned infestation, and a key to the fungal family Kathistaceae
FIGURE 6. Microscopic ultrastructure of T. hexasporodochia sp. nov. sporodochium. A. Transverse section of a single sporodochium resting upon the cuticle of the host. B. Transverse view of the bivalve flap terminations of the phialides. C. Rectangular conidia assemblage within the phialide are formed endogenously and in basipetal succession D. Fixed conidiogenous locus in which spore differentiation occurs (Cl) E. Basal region of the sporodochium in right corner of image showing initial phialidic growth, and left bottom of image shows thick haustorial layer (Hs) extending below the host cuticle (termite). F. Host cuticle (Hc) with underlaying haustoria. Scale bars: A—100 μm, B—5 μm, C—10 μm, D—50 μm, E—30 μm. Photographed by Steve Davis.
FIGURE 5. Sporodochial layers CLSM. A in Description of a novel termite ectoparasite, Termitaria hexasporodochia sp. nov. (Kathistaceae), presenting an unusual six-sectioned infestation, and a key to the fungal family Kathistaceae
FIGURE 5. Sporodochial layers CLSM. A. Upper region (UR), Sporogenous Region composed of a phialidic hymenium (SR), Basal region (BR) composed of haustorial mother cells and subhymenial layer that gives rise to SR. B. Basal most layer above insect cuticle 4-5 rows thick. White circle indicates thick haustorial mother cells that give rise to a subcuticular layer of haustoria that penetrates the host cuticle. White arrows indicate major penetration points between T. hexasporodochia sp. nov. and host cuticle. C. Confocal stack of tetralocular junctures between host cuticle and parasite. Photographed by Steve Davis.
FIGURE 3. T in Description of a novel termite ectoparasite, Termitaria hexasporodochia sp. nov. (Kathistaceae), presenting an unusual six-sectioned infestation, and a key to the fungal family Kathistaceae
FIGURE 3. T. hexasporodochia sp. nov. host. A. Dorsal view of soldier and worker caste morphology useful in termite species identification. Ventral view of un-infested worker and location of paired sporodochia on abdominal segments 4-6 on infested workers (rare). Corresponding confocal images of longitudinal abdominal muscles included on far right of figure, with apparent abdominal swelling in infested worker muscle. B. Light microscope images of intact un-infested termite worker and infested termite worker intact. Scale bars: 500 μm, 500 μm, 100 μm. Photographed by Steve Davis. Illustrated by Megan Wilson.
FIGURE 1 in Description of a novel termite ectoparasite, Termitaria hexasporodochia sp. nov. (Kathistaceae), presenting an unusual six-sectioned infestation, and a key to the fungal family Kathistaceae
FIGURE 1. Sporodochia forms. Schematic of various sporodochia lesions and positions. Representative forms are not exclusively found on these positions on the host, lesions can form on any external surface. Illustrated by Megan Wilson.
FIGURE 2 in Description of a novel termite ectoparasite, Termitaria hexasporodochia sp. nov. (Kathistaceae), presenting an unusual six-sectioned infestation, and a key to the fungal family Kathistaceae
FIGURE 2. Locality images and map, for termite host and fungi. Type- habitat, and map of Rupununi River Region locality. Photographed by Megan Wilson.
FIGURE 4 in Description of a novel termite ectoparasite, Termitaria hexasporodochia sp. nov. (Kathistaceae), presenting an unusual six-sectioned infestation, and a key to the fungal family Kathistaceae
FIGURE 4 Structural schematic of T. hexasporodochia sp. nov. Sporodochium section, (T=Transverse) in situ on its Amitermes host. SEM and Confocal images included for reference. Abbreviations used; Bm—Basement membrane, Hs—Haustoria, Hmc—Haustorial mother cells, Hp—Hymenial phialides, Cl—Conidigenous locus, Conidial spores, Phialide tips. Scale bars: sporodochium: 100 μm, hymenium: 30 μm. Illustrated by Steve Davis.
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.