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1,258 results for “saudi arabia”
Figure 3 in Survey of Portulacaceae family flora in Taif, Saudi Arabia
Figure 3. The study area of Taif, Saudi Arabia and identified weed species Portulaca oleracea in the agriculture crop field of study area.
FIG. 1. — A in New Pottiaceae genera to the moss flora of Saudi Arabia and the Arabian Peninsula
FIG. 1. — A, Map showing Asir region, Saudi Arabia in the Arabian Peninsula (after Kürschner 2000); B, Map showing: 1, Muhayil Asir; and 2, Bariq governorates includes three sites of collection; Qana, Koran Valley and Athrb mountain (yellow pins) (https://earth.google.com).
FIG. 4 in New Pottiaceae genera to the moss flora of Saudi Arabia and the Arabian Peninsula
FIG. 4. — Plaubelia involuta (Magill) R.H.Zander: A, dry plant; B, wet plant; C-F, leaves; G, upper part of leaf; H, basal part of leaf; I-K, leaf cross sections; L, stem cross section; M, axillary propagule. Scale bars: A-F, 0,3 mm; G, I-M, 50 μm; H, 100 μm.
FIG. 3 in New Pottiaceae genera to the moss flora of Saudi Arabia and the Arabian Peninsula
FIG. 3. — Leptophascum leptophyllum (Müll.Hal.) J.Guerra & M.J.Cano.: A, dry plant; B, wet plant; C, wet plant with rhizoids from the back of the costa at leaf tips or along the leaf; D-G, leaves; H, I, upper part of leaves; J, basal part of leaf; K, leaf cross section; L, stem cross section; M, rhizoidal propagule. Scale bars: A, 1 mm; B, 2 mm; C-G, 0.5 mm; H-J, 200 μm; K, 50 μm; L, M, 100 μm.
Fig. 1 a in Taxonomic Remarks On Siderolites Jurassica Youssef & El-Sorogy, 2015, Callovian Of Saudi-Arabia
Fig. 1 a, Siderolites jurassica, Callovian of Saudi-Arabia (from Youssef & El-Soroggy (2015, Fig. 4). b-c, Variety of Thurammina papillata Brady, Middle Jurassic of Germany (from Häusler, 1883, pl. 8, figs. 25, and 4). These illustrations are for comparative purposes only and do not necessarily imply a taxonomic identity. d, Siderolitid Canalispina iapygia Robles-Salcedo et al. showing eight spines, late Maastrichtian Tarbur Formation of Iran (note the different scales).
Figs. 1-3 in Description of a new Attagenus species from Saudi Arabia (Coleoptera¡ Dermestidae¡ Attageninae).
Figs. 1-3.- Attagenus logunovi sp. nov.¡ 1.- Male antenna. 2.- Female antennal club. 3a, b.- Male genitalia (shown schematically, without setation).
Figure 5 in In vitro antifungal and antibacterial potentials of organic extracts of Avicennia marina collected from Rabigh Lagoon, Red Sea Coasts in Saudi Arabia
Figure 5. Comparison of MIC with MBC values (mg/mL) of A. marina in different solvents: a: Petroleum ether; b: Ethyl acetate. All tests were performed in triplicates (n = 3) and the error bars represent the SD. * p <0.05, ** p <0.01, *** p <0.001 with respect to the control. NS: not significant.
Figure 3 in In vitro antifungal and antibacterial potentials of organic extracts of Avicennia marina collected from Rabigh Lagoon, Red Sea Coasts in Saudi Arabia
Figure 3. Comparison of MIC values (mg/mL) of A. marina different extracts. All tests were performed in triplicates (n = 3) and the error bars represent the SD. * p <0.05, ** p <0.01, *** p <0.001 with respect to the control.
Figure 2 in In vitro antifungal and antibacterial potentials of organic extracts of Avicennia marina collected from Rabigh Lagoon, Red Sea Coasts in Saudi Arabia
Figure 2. Antagonistic effect expressed by the inhibition zone of Ethyl acetate extract on the growth of: (A):A. fumigatus; (B):C. albicanis.
Figure 1 in In vitro antifungal and antibacterial potentials of organic extracts of Avicennia marina collected from Rabigh Lagoon, Red Sea Coasts in Saudi Arabia
Figure 1. The antifungal effect of plant extracts from Avicennia marina against some pathogenic fungi expressed by zones of inhibition (ZI in mm). All tests were performed in triplicates (n = 3) and the error bars represent the SD. * p <0.05, ** p <0.01, *** p <0.001 with respect to the control. NS: not significant.
Figure 1. A in Preliminary assessment of weed population in vegetable and fruit farms of Taif, Saudi Arabia
Figure 1. A map of Taif region, Kingdom of Saudi Arabia (https://images.app.goo.gl/SLRH8ep1mKncRHkm7).
Figure 2 in Changes in the feeding behavior and habitat use of the desert hedgehog Paraechinus aethiopicus (Ehrenberg 1832, Eulipotyphla: Erinaceidae), in Saudi Arabia
Figure 2. Relationship between values of the trophic niche breadth in the four seasons during period from February 2015 and October 2019 in five study sites in Saudi Arabia.
Figs 1–5 in Choleoeimeria bunopusi sp. n. (Apicomplexa: Eimeriidae) Infecting the Gall Bladder of the Tuberculated Gecko Bunopus tuberculatus (Reptilia: Gekkonidae) from Saudi Arabia
Figs 1–5. Photomicrographs of freshly collected oocysts of Choleoeimeria bunopusi sp. n. in different stages of development obtained from the gall bladder of Bunopus tuberculatus. Mature oocysts surrounded with outer layer (OL) and inner layer (IL) membrane and containing four sporocysts (S). Each sporocyst have two sporozoites (Sp) with sporocyst residuum (SR). Scale bars: 10 µm.
Figs 29–36 in Taxonomic Descriptions of Two Marine Ciliates, Euplotes dammamensis n. sp. and Euplotes balteatus (Dujardin, 1841) Kahl, 1932 (Ciliophora, Spirotrichea, Euplotida), Collected from the Arabian Gulf, Saudi Arabia
Figs 29–36. Photomicrographs of Euplotes dammamensis n. sp. during binary division after protargol impregnation. 29, 32 – ventral and dorsal views of a specimen at an early stage of morphogenesis to show the frontoventral-transverse cirral anlagen (29, arrowheads) and denote the parental dikinetids (32, arrowheads); 30, 33, 34 – ventral and dorsal views of a specimen at a slightly later stage of morphogenesis, to show the frontoventral-transverse cirral anlagen developed and broadened (30), the newly formed dorsal kineties anlagen (33, arrowheads) and the marginal anlagen (34, arrowheads); 31, 35, 36 – ventral and dorsal views of a specimen at middle-stage to show the rightmost frontoventral-transverse cirral anlagen (31, arrowheads), the migratory cirral anlage in the proter (31, double-arrowhead), the marginal cirral anlagen (31, arrows), the dorsal kineties anlagen (35, arrowheads) and the replication bands (36, arrowheads).
Figs 19–28 in Taxonomic Descriptions of Two Marine Ciliates, Euplotes dammamensis n. sp. and Euplotes balteatus (Dujardin, 1841) Kahl, 1932 (Ciliophora, Spirotrichea, Euplotida), Collected from the Arabian Gulf, Saudi Arabia
Figs 19–28. Photomicrographs of Euplotes dammamensis n. sp. in vivo (19–25) and after protargol impregnation (26–28). 19, 20 – ventral views of different specimens, arrowheads in (19) to show the ventral ridges; 21 – dorsal view, arrowheads point to the dominant dorsal ridges; 22 – lateral view; 23 – ventral view of the posterior end, arrowhead marks the longest caudal cirrus; 24 – detailed dorsal view, arrowheads point to the apical view of the granules around the dorsal brush; 25 – arrowheads to show the lateral view of granules around the dorsal brush; 26 – arrow indicates the curved C-shaped macronucleus; 27, 28 – infraciliature on the ventral and dorsal sides, arrowheads indicate the dorsal kineties. Scale bars: 50 μm.
Figs 1–9. Euplotes dammamensis n in Taxonomic Descriptions of Two Marine Ciliates, Euplotes dammamensis n. sp. and Euplotes balteatus (Dujardin, 1841) Kahl, 1932 (Ciliophora, Spirotrichea, Euplotida), Collected from the Arabian Gulf, Saudi Arabia
Figs 1–9. Euplotes dammamensis n. sp. in vivo (1–7) and after protargol impregnation (8, 9). 1, 2 – ventral views of different individuals, arrows indicate the longest caudal cirrus; 3 – dorsal view, showing the conspicuous ridges; 4 – lateral view; 5 – frontoventral cirri, arrows indicate the cortical granules around the cirri; 6 – apical view of the cortical granules distributed on the dorsal side; 7 – lateral view of the cortical granules; 8, 9 – ventral and dorsal views of the same specimen, showing the general infraciliature and the micronucleus (arrow). AZM – adoral zone of membranelles, CC – caudal cirri, DK – dorsal kineties, FVC – frontoventral cirri, MC – marginal cirri, PM – paroral membrane, TC – transverse cirri, 1–11 – dorsal kineties. Scale bars: 50 μm.
Fig. 91 in Taxonomic Descriptions of Two Marine Ciliates, Euplotes dammamensis n. sp. and Euplotes balteatus (Dujardin, 1841) Kahl, 1932 (Ciliophora, Spirotrichea, Euplotida), Collected from the Arabian Gulf, Saudi Arabia
Fig. 91. Phylogenetic tree inferred by Maximum Likelihood (ML) based on SSU-rRNA gene sequences, showing the positions of Euplotes dammamensis n. sp. and Euplotes balteatus (red highlighted). The topology of the tree constructed with Bayesian analysis (BI) was essentially identical. Fully supported (100%/1.00) branches are marked with solid circles. The scale bar corresponds to 2 substitutions per 100 nucleotide positions. Systematic classification follows Lynn (2008).
Figures 22–26 in Three new species of the genus Macroocula Panfilov, 1954 (Hymenoptera: Bradynobaenidae: Apterogyninae) from Saudi Arabia
Figures 22–26. Macroocula khorimensis sp. nov., holotype, (♂): 22. habitus, dorsolateral view; 23. head, frontal view; 24. mesoscutum; 25. mid and hind coxae and trochanters; 26. T1 and T2.
Figures 18–21. 18–20 in Three new species of the genus Macroocula Panfilov, 1954 (Hymenoptera: Bradynobaenidae: Apterogyninae) from Saudi Arabia
Figures 18–21. 18–20. Macroocula zulfiensis sp. nov., holotype, (♂); 21. Macroocula brothersi Gadallah and Soliman. 18. T2 and T3; 19. S2–S8; 20 and 21. male genitalia, ventral view.
Figure 2 in Mount Faifa, a local hotspot of butterfly diversity (Lepidoptera: Papilionoidea) in the Kingdom of Saudi Arabia
Figure 2. Approximate position of the butterfly sampling locations in Mt. Faifa in the southwestern Kingdom of Saudi Arabia. The locations are numbered as in List of locations. The central part of the area is enlarged for clarity.
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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)
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.