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1,130 results for “Egypt”
Text-fig. 12. CUWM 132, right M3/ of Libycochoerus massai from Moghara, Egypt. a: stereo occlusal views; b: lingual view. in New Suoid Fossils (Mammalia, Artiodactyla) From The Miocene Of Moghara, Egypt, And Gebel Zelten, Libya: Biochronological Implications
Text-fig. 12. CUWM 132, right M3/ of Libycochoerus massai from Moghara, Egypt. a: stereo occlusal views; b: lingual view.
Text-fig. 11. CGM 94-138, right mandible fragment containing p/4–m/3 of Libycochoerus massai from Moghara, Egypt. a: lingual view; b: stereo occlusal view; c: buccal view. in New Suoid Fossils (Mammalia, Artiodactyla) From The Miocene Of Moghara, Egypt, And Gebel Zelten, Libya: Biochronological Implications
Text-fig. 11. CGM 94-138, right mandible fragment containing p/4–m/3 of Libycochoerus massai from Moghara, Egypt. a: lingual view; b: stereo occlusal view; c: buccal view.
Text-fig. 13. Bivariate plots of teeth of Libycochoerus massai from Gebel Zelten (circles) and Moghara (+ sign). in New Suoid Fossils (Mammalia, Artiodactyla) From The Miocene Of Moghara, Egypt, And Gebel Zelten, Libya: Biochronological Implications
Text-fig. 13. Bivariate plots of teeth of Libycochoerus massai from Gebel Zelten (circles) and Moghara (+ sign).
Text-fig. 9. CUWM 360, right mandible fragment and associated m/3 of Diamantohyus africanus from Moghara, Egypt. a: stereo occlusal views; b: buccal view; c: lingual view. in New Suoid Fossils (Mammalia, Artiodactyla) From The Miocene Of Moghara, Egypt, And Gebel Zelten, Libya: Biochronological Implications
Text-fig. 9. CUWM 360, right mandible fragment and associated m/3 of Diamantohyus africanus from Moghara, Egypt. a: stereo occlusal views; b: buccal view; c: lingual view.
Text-fig. 8. CUWM 261, right mandible with damaged m/2–m/3 of Diamantohyus africanus from Moghara, Egypt. a: lingual view; b: stereo occlusal views; c: buccal view. in New Suoid Fossils (Mammalia, Artiodactyla) From The Miocene Of Moghara, Egypt, And Gebel Zelten, Libya: Biochronological Implications
Text-fig. 8. CUWM 261, right mandible with damaged m/2–m/3 of Diamantohyus africanus from Moghara, Egypt. a: lingual view; b: stereo occlusal views; c: buccal view.
Text-fig. 7. CUWM 239, left m/3 of Diamantohyus africanus from Moghara, Egypt. a: buccal view; b: stereo occlusal views; c: lingual view. in New Suoid Fossils (Mammalia, Artiodactyla) From The Miocene Of Moghara, Egypt, And Gebel Zelten, Libya: Biochronological Implications
Text-fig. 7. CUWM 239, left m/3 of Diamantohyus africanus from Moghara, Egypt. a: buccal view; b: stereo occlusal views; c: lingual view.
Text-fig. 5. CUWM 63, left mandible with d/4–m/2 of Diamantohyus africanus from Moghara, Egypt. a: buccal view; b: stereo occlusal views; c: lingual view. in New Suoid Fossils (Mammalia, Artiodactyla) From The Miocene Of Moghara, Egypt, And Gebel Zelten, Libya: Biochronological Implications
Text-fig. 5. CUWM 63, left mandible with d/4–m/2 of Diamantohyus africanus from Moghara, Egypt. a: buccal view; b: stereo occlusal views; c: lingual view.
Text-fig. 3. CUWM 134, right lower molar of Diamantohyus africanus from Moghara, Egypt. a: stereo occlusal view; b: lingual view; c: buccal view. in New Suoid Fossils (Mammalia, Artiodactyla) From The Miocene Of Moghara, Egypt, And Gebel Zelten, Libya: Biochronological Implications
Text-fig. 3. CUWM 134, right lower molar of Diamantohyus africanus from Moghara, Egypt. a: stereo occlusal view; b: lingual view; c: buccal view.
Text-fig. 6. CUWM 121, right mandible with m/3 of Diamantohyus africanus from Moghara, Egypt. a: lingual view; b: stereo occlusal views; c: buccal view. in New Suoid Fossils (Mammalia, Artiodactyla) From The Miocene Of Moghara, Egypt, And Gebel Zelten, Libya: Biochronological Implications
Text-fig. 6. CUWM 121, right mandible with m/3 of Diamantohyus africanus from Moghara, Egypt. a: lingual view; b: stereo occlusal views; c: buccal view.
Text-fig. 4. CUWM 106, left mandible with p/4–m/3 of Diamantohyus africanus from Moghara, Egypt. a: buccal view; b: stereo occlusal views; c: lingual view. in New Suoid Fossils (Mammalia, Artiodactyla) From The Miocene Of Moghara, Egypt, And Gebel Zelten, Libya: Biochronological Implications
Text-fig. 4. CUWM 106, left mandible with p/4–m/3 of Diamantohyus africanus from Moghara, Egypt. a: buccal view; b: stereo occlusal views; c: lingual view.
Text-fig. 2. Diamantohyus africanus from Moghara, Egypt. a: CUWM 59, right upper molar, stereo occlusal view; b: CUWM 57, right m/3, b1 – stereo occlusal views, b2 – buccal view, b3 – lingual view. in New Suoid Fossils (Mammalia, Artiodactyla) From The Miocene Of Moghara, Egypt, And Gebel Zelten, Libya: Biochronological Implications
Text-fig. 2. Diamantohyus africanus from Moghara, Egypt. a: CUWM 59, right upper molar, stereo occlusal view; b: CUWM 57, right m/3, b1 – stereo occlusal views, b2 – buccal view, b3 – lingual view.
Figure 2 in Target-site insensitivity to some acaricides in a field population of Tetranychus urticae Koch (Acari: Tetranychidae) from Egypt
Figure 2. Multiple alignment of the amino acid sequences of T. urticae acetylcholinesterase (AChE) between Eg-Bernasht population and GenBank published populations. Tetranychus urticae AChE sequences were performed local as well as global alignments, using BLASTX search protein databases, using a translated nucleotide (NCBI). Three different specific primer sets (1, 2, and 3; Table 1) contained 422 amino acids of AChE gene. Dots: indicate amino acid similarity. Digital number: amino acid position on the AChE protein.
Figure 1 in Target-site insensitivity to some acaricides in a field population of Tetranychus urticae Koch (Acari: Tetranychidae) from Egypt
Figure 1. Products were imaged on a gel post electrophoresis. Tetranychus urticae acetylcholinesterase (AChE) gene fragment amplified expected sizes (639 bp, 571 bp, and 560 bp), using specific primers sets (1, 2, and 3, respectively). Tetranychus urticae voltage-gated sodium channel (VGSC) gene fragments were amplified products (226 bp, 225 bp, and 292 bp), using specific primers primer sets (4, 5, and 6, respectively). Tetranychus urticae glutamategated chloride channel (GluCl1, GluCl3) genes and chitin synthase 1 (CHS1) gene amplified products (263 bp, 251 bp, 541 bp), using primer sets (7, 8, and 9 respectively). EtBr was added to the gel before electrophoresis to a final concentration of 0.5 μg/ml, followed by separation at 100 V for 1 h. The gel was exposed to UV light and the picture was taken with a gel documentation system. Letter a: sample 1, letter b: sample 2, (-): no DNA templates. M:100 bp DNA ladder.
Figure 3 in Species identification and seasonal prevalence of house dust mites in Assiut City, Egypt: A descriptive study in an urban area
Figure 3. Dermatophagoides farinae adult female (SEM photo) – a. Dorsal view shows sce (external scapular seta) is much longer than sci (internal scapular seta); b. Ventral view shows the genital system of the female; c. Lateral views shows the finely striated body and prodorsal shield; d. Hysterostoma region and anal opening; e. Epigynium and genital opening; f. Ventral view of the gnathostoma.
Figure 2 in Species identification and seasonal prevalence of house dust mites in Assiut City, Egypt: A descriptive study in an urban area
Figure 2. Dermatophagoides farinae (adult male) – a. Habitus (100×) before being cleared in Hoyer's medium and the enlarged 1st and 3rd pairs of legs are noted; b. Fused apodemes I (arrow) while apodemes II (arrow head) and apodemes III (curved arrow) are not fused (200×); c. Anal plate (arrow), post anal seta 2 (ps2) (curved arrow) (400×).
Figure 1 in Species identification and seasonal prevalence of house dust mites in Assiut City, Egypt: A descriptive study in an urban area
Figure 1. Dermatophagoides farinae (adult female) – a. Habitus (before being cleared) (10×); b. Habitus (after being cleared in Hoyer's medium) (x100); c. Distal solenidion on tarsus I (arrow head), terminal spinous process (curved arrow) and tarsus II with the two distal solenidia (arrow) (200×); d. Magnified tarsus II with distal solenidia (arrow head) and two small spinous tubercles (long arrow) (400×); e. The low-arched epigynium (arrow) and the faint transverse striations above it (arrow head); f. Bursa copulatrix (arrow), its external opening and sclerotized part (arrow head).
Figure 4 in Species identification and seasonal prevalence of house dust mites in Assiut City, Egypt: A descriptive study in an urban area
Figure 4. Dermatophagoides farinae adult male (SEM photo) – a. Ventral view showing the enlarged first pair of legs. B. The aedeagus; c. The anal plate containing the anal suckers.
Fig. 16 in Kasimovian (late Pennsylvanian) cornute rugose corals from Egypt: taxonomy, facies and palaeogeography of a cool-water fauna from northern Gondwana
Fig. 16 Time-averaged mixed carbonate–siliciclastic ramp model for the late Moscovian–Gzhelian (Early Permian?) Rod El Hamal and Aheimer formations of the Proto-Clysmic Basin of Reynolds et al. (1997a, 1997b), western side of the Gulf of Suez. Hypothetical position of the Aheimer Formation south of the Rod El Hamal Formation during late Moscovian deposition of the latter to show a seaward–landward transect at the southern margin of the Palaeotethys. During continued regression the facies belts moved northwards; the Aheimer Formation overlaps the Rod El Hamal and in present outcrop is exposed north of it at the eastern rim of the Northern Galala Plateau. Phylloid algal–microbial mounds according to Abd-Elhameed et al. (2021) and terrigenous facies of the middle-upper Aheimer Formation based on Abou Khadra et al. (2012)
Fig. 14 in Kasimovian (late Pennsylvanian) cornute rugose corals from Egypt: taxonomy, facies and palaeogeography of a cool-water fauna from northern Gondwana
Fig. 14 Palaeoecology of the Aheimer rugose coral association. A–D External photographs of antiphyllid corals, showing constrictions and rejuvenations (arrows; axial rejuvenation in B; lateral rejuvenation in C–D); samples RAh 78, 85, 64, 89, respectively. E, F Cladochonus (?) encrusting the outer wall of the corallites RAh 95, 115 (arrows). G External view of the Monophyllum galalaensis n. sp. (RAh 80), showing a borehole in the lower part of the corallite RAh 60 (arrow). H External lateral view of an antiphyllid coral (RAh 106), showing an attachment scar at the apex (arrow). All scale bars: 5 mm
Fig. 17 in Kasimovian (late Pennsylvanian) cornute rugose corals from Egypt: taxonomy, facies and palaeogeography of a cool-water fauna from northern Gondwana
Fig. 17 Palaeobiogeographic relations of the cyathaxonid coral fauna of the Aheimer Formation (asterisk) showing its rooting in the western Palaeotethys (red dots) and the strong relations to the cool-water Cordilleran–Arctic–Uralian realm (yellow dots). The fauna is a precursor of the Lower Permian cyathaxonid cool-water fauna of the eastern Cimmerian peri-Gondwana terranes (E´pGT). Base map from Abd-Elhameed et al. (2021) as modified from Kiessling et al. (1999)
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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.