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55 results for “Structure Elucidation”
Fig. 3 in Sensory Structures On The Antenniform Legs Of Whip Spider Phrynichus Phipsoni (Arachnida, Amblypygi) From The Indian State Of Goa: Scanning Electron Microscopic Elucidation
Fig. 3. Sensory assembly on the whip (Antenniform leg) of Phrynichus phipsoni from Goa, India: 8 — rod sensilla within groove, 9 — plate organ, 10 — slit sensilla, 11 — trichobothria, 12 — sockets of trichobothria
Fig. 1 in Sensory Structures On The Antenniform Legs Of Whip Spider Phrynichus Phipsoni (Arachnida, Amblypygi) From The Indian State Of Goa: Scanning Electron Microscopic Elucidation
Fig. 1. Resting captive specimen of whip spider Phrynichus phipsoni (Pocock, 1894). Note the whip like configuration, position, and length of the antenniform first pair of non-ambulatory leg. The various segments have been marked for reference: 1 — vertically raised femur; 2 — femur-patella-tibia joint; 3 — tibia; 4 — tibio-tarsal articulation; 5 — tarsus; 6 — distal tarsal tip.
Fig. 2 in Sensory Structures On The Antenniform Legs Of Whip Spider Phrynichus Phipsoni (Arachnida, Amblypygi) From The Indian State Of Goa: Scanning Electron Microscopic Elucidation
Fig. 2. Sensory assembly on the whip (Antenniform leg) of Phrynichus phipsoni from Goa, India: 1 — terminal tarsal claw; 2 — bristles; 3 — leaf like sensilla; 4 — pore sensilla; 5 — club sensilla; 6 — tarsal organ; 7 — pit organ.
supplementary data about Extraction, Isolation and Structure elucidation of Two Phenolic acids from Aerial parts of Celery and Coriander.
<p>supplementary data about Extraction, Isolation and Structure elucidation of Two Phenolic acids from Aerial parts of Celery and Coriander.</p> <p><br> caffiec acid nmr 2.pdf <br> supplementary data.docx</p> <p><a href="https://zenodo.org/api/files/52908924-99c6-4a2c-8047-ef7131714205/p%20coumaric%20acid%20nmr%202.pdf">p coumaric acid nmr 2.pdf</a></p>
Reactions of cold argon plasma with condensed-phase peptides and proteins for mass spectrometry imaging and structural elucidation - ESI
<p>ESI data for the paper 'Reactions of cold argon plasma with condensed-phase peptides and proteins for mass spectrometry imaging and structural elucidation'.</p>
Datasets for "Accurate and efficient structure elucidation from routine one-dimensional NMR spectra using multitask machine learning"
<p>This upload contains the datasets used for the experiments in:</p> <p>Accurate and efficient structure elucidation from routine one-dimensional NMR spectra using multitask machine learning</p> <p>Frank Hu, Michael S. Chen, Grant M. Rotskoff, Matthew W. Kanan, and Thomas E. Markland</p> <p>https://arxiv.org/abs/2408.08284</p> <p> </p> <p>For file descriptions and usage, please refer to the supplied README.md file.</p> <p> </p> <p> </p>
Supplementary Data for: Benchmark of density functional theory in the prediction of chemical shielding anisotropies for anisotropic NMR based structural elucidation
<p>Additional Data for the research paper titled: Benchmark of density functional theory in the prediction of chemical shielding anisotropies for anisotropic NMR based structural elucidation.</p> <p>Anisotropy Benchmark for Carbon NS372:</p> <ul> <li>Chemical Shielding Tensor for the molecules in the NS372 test set for carbon (XLSX)</li> <li>Coordinate files for the molcules of the NS372 test set that contained carbon (in NS372-Carbon-COORD-Files.zip)</li> </ul> <p>DFT Benchmark for RCSA for Natural Products:</p> <ul> <li>Chemical Shielding Tensor used for the RCSA analysis of 6 Natural Products (CSV)</li> <li>Turbomole Input and Ouput files for the DFT calculation of the natural products (in RAW_DATA_for_RCSA_Analysis.zip)</li> <li>ConArch+ Input and Ouput files for the RCSA analysis using (in RAW_DATA_for_RCSA_Analysis.zip)</li> <li>Coordinate files used for the RCSA analysis (in RAW_DATA_for_RCSA_Analysis.zip)</li> </ul> <p> </p>
Data from: Chronosequence resampling elucidates tree community and forest structure recovery patterns in restored tropical rainforest
Open the record for dataset details and reuse information.
HDX-MS raw data for "Structural elucidation of full-length Pfs48/45 in complex with potent mAbs isolated from a naturally exposed individual"
<p>These are the raw files of the HDX-MS data for the paper "Structural elucidation of full-length Pfs48/45 in complex with potent mAbs isolated from a naturally exposed individual."</p><p>Peptide identification files are provided in MGF/MZID, as well as in CSV format. </p>
DFT-NMR-Validated Full Structure Elucidation of Theionbrunonine C, An Unstable N-Oxide Theionbrunonine from Mostuea brunonis
<p>The structure elucidation of theionbrunonine C, a thioether-bridged dimeric monoterpene indole alkaloid (MIA), and more generally, one of the very few Sulfur-containing MIA, is reported after its isolation from Mostuea brunonis (Gelsemiaceae). This unstable structure had already been targeted for isolation in our former, molecular network-guided, investigation of this plant but this compound had degraded before sufficient spectroscopic data could have been acquired for a complete structure assignment. With this constraint in mind, the rapid acquisition of NMR data enabled retrieving sufficient spectroscopic information for full structure elucidation, although from a partial set of spectroscopic information (1H and 13C NMR; COSY, HSQC, and HMBC). In conjunction with biosynthetic considerations, the cursory examination of 13C NMR data unambiguously defined the complete stereostructure of 1, as further supported by DFT-NMR calculations and subsequent DP4 probability score.</p>
Fig. 9 in Further undescribed cembranoids from South China Sea soft coral Sarcophyton ehrenbergi: Structural elucidation and biological evaluation
Fig. 9. Experimental ECD spectra of (black) and the calculated ECD spectra (red and green) of 5 and 6. (For interpretation of the references to color in this figure legend, the reader is referred to the Web version of this article.)
Fig. 10 in Further undescribed cembranoids from South China Sea soft coral Sarcophyton ehrenbergi: Structural elucidation and biological evaluation
Fig. 10. Experimental ECD spectrum of 7 (black) and the calculated ECD spectra of 6S,11S,12S-7 (red) and the mirrored 6R,11R,12R-7 (blue). (For interpretation of the references to color in this figure legend, the reader is referred to the Web version of this article.)
Fig. 3. The key 1H–1H in Further undescribed cembranoids from South China Sea soft coral Sarcophyton ehrenbergi: Structural elucidation and biological evaluation
Fig. 3. The key 1H–1H COSY (red lines) and HMBC (blue arrows, from 1H to 13C) correlations of compounds 1–7. (For interpretation of the references to color in this figure legend, the reader is referred to the Web version of this article.)
Fig. 2 in Further undescribed cembranoids from South China Sea soft coral Sarcophyton ehrenbergi: Structural elucidation and biological evaluation
Fig. 2. Perspective ORTEP drawing of the X-ray structure of 8 (displacement ellipsoids are drawn at the 50% probability level).
Fig. 8 in Further undescribed cembranoids from South China Sea soft coral Sarcophyton ehrenbergi: Structural elucidation and biological evaluation
Fig. 8. Application of the modified Mosher's method to 5 and 6. Chemical shift values of ΔδSR [Δ(δS – δR)] are given in ppm. Positive and negative regions are colored blue and red, respectively. (For interpretation of the references to color in this figure legend, the reader is referred to the Web version of this article.)
Fig. 4 in Further undescribed cembranoids from South China Sea soft coral Sarcophyton ehrenbergi: Structural elucidation and biological evaluation
Fig. 4. the key NOESY (pink arrows, from 1H to 1H) correlations of compounds 1, 2, 5 and 7. (For interpretation of the references to color in this figure legend, the reader is referred to the Web version of this article.)
Fig. 6 in Further undescribed cembranoids from South China Sea soft coral Sarcophyton ehrenbergi: Structural elucidation and biological evaluation
Fig. 6. Perspective ORTEP drawings of the X-ray structures of 2 (left) and 3 (right) (displacement ellipsoids are drawn at the 50% probability level).
Fig. 4 in Isolation and structural elucidation of bioactive obovatol dimeric neolignans from the bark of Magnolia officinalis var. biloba
Fig. 4. Neuroprotective effects of racemate 1, (+)-1, ()-1, and 5 on glutamic acid-induced injury of SK-N-SH cells (10 μM, means ± SEM, n = 3). ***p <0.001, *p <0.05, **p <0.01. Positive controls: n-butylphthalide (NBP).
Fig. 3 in Isosteroidal alkaloids of Fritillaria taipaiensis and their implication to Alzheimer's disease: Isolation, structural elucidation and biological activity
Fig. 3. Key NOESY () correlations for compounds 1–4 [some hydrogens were removed for a clearer exhibition of their 3D structures].
Isolation, identification, and structure elucidation of Beta-sitosterol from Iraqi Plantago major using GC-MS, HPTLC, NMR, and FTIR
<p><strong>Isolation, identification, and structure elucidation of Beta-sitosterol from Iraqi <em>Plantago major</em></strong> <strong>using GC-MS, HPTLC, NMR, and FTIR</strong></p>
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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