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FIGURE 6. Spinnerets and details. A−D in Revealing the diversity of ant-eating spiders in Colombia II: morphology, distribution, and taxonomy of the trilobatus group of the genus Tenedos O. Pickard-Cambridge, 1897 (Araneae: Zodariidae)
FIGURE 6. Spinnerets and details. A−D. Female of Tenedos trilobatus Jocqué & Baert, 2002 (IBSP 324932): A. Spinnerets, apical view. B. ALS, apical view. C. PLS, apical view. Male (IBSP 324932): E. Epiandric region (arrow indicates the epiandric spigots). F. Male of Tenedos gabi sp. n. (IBSP 324921): F. Epiandric region (arrow indicates the epiandric spigots). Abbreviations: Ac, aciniform gland spigot; ALS, Anterior lateral spinnerets; MaAm, major ampullate gland spigot; Pi, piriform gland spigot; PLS, posterior lateral spinnerets; PMS, posterior median spinnerets. Scale bars: A, F: 0.1 mm; B: 0.03; C: 0.02; D, E: 0.05 mm.
FIGURE 5. Spinnerets and details. A−B, E in Revealing the diversity of ant-eating spiders in Colombia II: morphology, distribution, and taxonomy of the trilobatus group of the genus Tenedos O. Pickard-Cambridge, 1897 (Araneae: Zodariidae)
FIGURE 5. Spinnerets and details. A−B, E. Male of Tenedos trilobatus Jocqué & Baert, 2002 (IBSP 324932): A. Spinnerets, apical view. B. ALS, apical view. E. PLS, apical view. D−F. Male of Tenedos gabi sp. n. (IBSP 324921): D. Spinnerets, apical view. E. ALS, apical view. F. PLS, apical view. Abbreviations: Ac, aciniform gland spigot; ALS, Anterior lateral spinnerets; MaAm, major ampullate gland spigot; Pi, piriform gland spigot; PLS, posterior lateral spinnerets; PMS, posterior median spinnerets. Scale bars: A, C: 0.05 mm; B: 0.03 mm; E: 0.01 mm; D: 0.04 mm; F: 0.02 mm.
FIGURE 4. Female legs I details. A−F in Revealing the diversity of ant-eating spiders in Colombia II: morphology, distribution, and taxonomy of the trilobatus group of the genus Tenedos O. Pickard-Cambridge, 1897 (Araneae: Zodariidae)
FIGURE 4. Female legs I details. A−F. Tenedos trilobatus Jocqué & Baert, 2002 (IBSP 324934): A. Tibia I, dorsal view. B. Tarsus I, dorsal view (arrow indicates the tarsal organ). C. Metatarsus-tarsus, dorsal view (arrow indicates vibration sense organ "metatarsal stopper" on metatarsus). D. Tibia-metatarsus I, dorsal view (arrow indicates the ball-shaped projection). E. Tarsus I, trichobothria. F. Tibia-metatarsus I, prodorsal view Abbreviations: MtS, metatarsal stopper. Scale bars: A, F: 0.1 mm; B−D: 0.05 mm; E: 0.01 mm.
FIGURE 3. Male legs I and IV details. A−B, D, H−I in Revealing the diversity of ant-eating spiders in Colombia II: morphology, distribution, and taxonomy of the trilobatus group of the genus Tenedos O. Pickard-Cambridge, 1897 (Araneae: Zodariidae)
FIGURE 3. Male legs I and IV details. A−B, D, H−I. Tenedos chiribiquete sp. n. (IBSP 324945): A. Tibia I, retrodorsal view (arrow indicates the dorsal trichobothria row). B. Tarsus I, dorsal view. D. Tibia-metatarsus I, dorsal view (arrow indicates the ball-shaped projection). H. Tarsus IV, trichobothria. I. Tarsus IV, tarsal organ. C, E, F−G. Tenedos trilobatus Jocqué & Baert, 2002 (IBSP 324932). C. Tarsus IV, dorsal view. E. Tibia I, dorsal view. F. Metatarsus-tarsus, dorsal view (arrow indicates vibration sense organ "metatarsal stopper" on metatarsus). G. Tarsus I, dorsal view. Abbreviations: MtS, metatarsal stopper. Scale bars: A−B, D, F−G, I: 0.05 mm; C, E: 0.1 mm; H: 0.01 mm.
Fig. 3 in A detailed DFT-based study of the free radical scavenging activity and mechanism of daphnetin in physiological environments
Fig. 3. Transition states geometries related to the reactions of DAP with HO•, HOO•, and NO • in water.
Fig. 4 in Detailed characterization of Pinus ponderosa sporopollenin by infrared spectroscopy
Fig. 4. ATR-FTIR spectra of (i) P. ponderosa pollen, (ii) enzymatically-isolated sporopollenin, (iii) sporopollenin isolated by acidolysis with phosphoric acid, and (iv) sporopollenin isolated by acetolysis. Original data files are deposited with the accompanying Data in Brief article (Lutzke et al., 2019).
Fig. 6 in Detailed characterization of Pinus ponderosa sporopollenin by infrared spectroscopy
Fig. 6. ATR-FTIR spectra of (i) enzymatically-isolated sporopollenin, (ii) trans- 4-hydroxycinnamic acid, (iii) trans-4-hydroxy-3-methoxycinnamic acid, (iv) trans-4-methoxycinnamic acid, and (v) methyl trans-4-hydroxycinnamate. Original data files are deposited with the accompanying Data in Brief article (Lutzke et al., 2019).
Fig. 2 in Detailed characterization of Pinus ponderosa sporopollenin by infrared spectroscopy
Fig. 2. Examples of (a) α-pyrone biosynthesis in the exine and (b) carotenoids that may be oxidatively polymerized to form sporopollenin according to the hypothesis of Brooks and Shaw (1968).
Fig. 7 in Detailed characterization of Pinus ponderosa sporopollenin by infrared spectroscopy
Fig. 7. Scheme depicting the synthesis of acetonides (cyclic ketals) from 1,2- or 1,3-diols naturally present in sporopollenin, followed by hydrolysis under acidic conditions. This process corresponds to the spectroscopic changes observed in Figure S21.
Fig. 1 in Detailed characterization of Pinus ponderosa sporopollenin by infrared spectroscopy
Fig. 1. Scheme depicting enzymes involved in sporopollenin synthesis and selected degradation products. (a) Mid-chain oxidation of fatty acid substrates by CYP703A2, ω-oxidation by CYP704B1 and CYP704B2, and reduction of an activated fatty acid substrate by MS2. (b) Proposed sporopollenin monomer identified by Li et al. (2019). (c) The sporopollenin degradation products trans-4-hydroxycinnamic acid, trans-4-hydroxy-3-methoxycinnamic acid, and 7-hydroxyhexadecanedioic acid.
Fig. 8 in Detailed characterization of Pinus ponderosa sporopollenin by infrared spectroscopy
Fig. 8. ATR-FTIR spectra of (i) enzymatically-isolated sporopollenin, (ii) trans- 4-hydroxycinnamic acid, (iii) trans-4-hydroxy-3-methoxycinnamic acid, (iv) trans-4-methoxycinnamic acid, and (v) methyl trans-4-hydroxycinnamate. Original data files are deposited with the accompanying Data in Brief article (Lutzke et al., 2019).
Fig. 9 in Detailed characterization of Pinus ponderosa sporopollenin by infrared spectroscopy
Fig. 9. The relationship between IR band assignments and hypothesized structural components of sporopollenin.
Fig. 5 in Detailed characterization of Pinus ponderosa sporopollenin by infrared spectroscopy
Fig. 5. ATR-FTIR spectra of (i) enzymatically-isolated sporopollenin, (ii) sporopollenin isolated by acidolysis with phosphoric acid, and (iii) sporopollenin isolated by acetolysis. Distinct bands or shoulders with diagnostic importance are assigned a unique identifier in Table 3. Original data files are deposited with the accompanying Data in Brief article (Lutzke et al., 2019).
FIGURE 1 in Checklist, typification details, and nomenclature status of ascomycetous fungi originally described in Sri Lanka
FIGURE 1. Unexplored fungal diversity in Sri Lanka. a–u Diversity of fungi from different micro habitats such as in leaf litter, decying wood. Scale bars: a, b, c, e, f, h, i, j, k, n = 1000 µm; g, l, o, q, r, t = 500 µm; u = 100 µm.
Homework_Details (2)
Source: Objaverse 1.0 / Sketchfab
Detail, Hintze Hall (Cats)
Natural History Museum 123D Catch Source: Objaverse 1.0 / Sketchfab
[XYZ-School] HomeWork Details - Farm House
Farm House by https://www.artstation.com/artwork/3b00o Source: Objaverse 1.0 / Sketchfab
Door Detail
A scan of a detail of a door- Royal Palace, Sweden. Source: Objaverse 1.0 / Sketchfab
State Anxiety Levels of Pregnant Women to Inform About Fetus With Ultrasound Images During Detailed Ultrasound.
ClinicalTrials.gov study NCT05960357. IPD Sharing: NO. Countries: 1. Publications: 0.
DETAIL Study: Diabetes Exposed to Telmisartan and Enalapril
ClinicalTrials.gov study NCT00274118. IPD Sharing: Not stated. Countries: 6. Publications: 1.
ScienceDex guides
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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.