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Rotating-frame nuclear Overhauser effect spectroscopy

Sowinski and coworkers40 reported a structure of vacidin A (63), an aromatic hep-taene macrolide antibiotic. The constitution of vacidin A, a representative of the aromatic heptaene macrolide antibiotics, was established on the basis of 13C and H- H double quantum filtered correlated spectroscopy, rotating frame nuclear Overhauser effect spectroscopy, 7-resolved 11 as well as H-13C correlation NMR spectra. The geometry of the polyene chromophore was determined as 22E, 24E, 26E, 28Z, 30Z, 32E, 34E. [Pg.94]

The data from H NMR studies of 63, which included double quantum filtered phase sensitive correlated spectroscopy (DQF-COSY) and rotating frame nuclear Overhauser effect spectroscopy (ROESY) experiments (Figure 12), are collected in Table 17. [Pg.95]

Fattorusso and co-workers identified a component of wormwood called artar-borol. Correlation spectroscopy (COSY) and rotating frame nuclear overhauser effect spectroscopy (ROESY) experiments allowed for deduction of four possible diastereomeric structures of artarborol, 2-5. Low energy conformers of 11-14 were obtained through a molecular mechanics (MM) search. These conformers were screened to identify those having a dihedral angle of around 90 for the C-8 and C-9 protons due to a low coupling constant between these protons. Only conformers of 11 and 13 satisfied this criterion. Next, five low energy conformers, two... [Pg.73]

The elucidation of the scalar coupling network by the correlation experiments is, apart from small molecules, not sufficient for the unambiguous, sequential and stereo-specific assignment. The complementary information of spatially adjacent protons is obtained via cross-relaxation experiments, the laboratory-frame nuclear Overhauser enhancement spectroscopy (NOESY) and the rotating-frame nuclear Overhauser effect spectroscopy (ROESY). These experiments provide also the distance restraints for the structure determination and help to recognize exchange processes. [Pg.708]

Rotating Frame Nuclear Overhauser Effect Spectroscopy (ROESY), NMR, a technique that allows exchange processes to be observed when applied to the trimethylam-monium salt of 12 in dichloromethane-rf2, provided evidence for aggregation in solution (Figure 14). Two resonances were observed between 7.0 and 7.5 ppm... [Pg.266]

ROESY Rotating frame nuclear Overhauser effect spectroscopy... [Pg.3226]


See other pages where Rotating-frame nuclear Overhauser effect spectroscopy is mentioned: [Pg.408]    [Pg.414]    [Pg.1274]    [Pg.358]    [Pg.45]    [Pg.156]    [Pg.287]    [Pg.156]    [Pg.91]    [Pg.491]    [Pg.1485]   
See also in sourсe #XX -- [ Pg.95 ]

See also in sourсe #XX -- [ Pg.669 ]

See also in sourсe #XX -- [ Pg.95 ]

See also in sourсe #XX -- [ Pg.95 ]

See also in sourсe #XX -- [ Pg.669 ]




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Effect frame

Frame spectroscopy)

Frame, rotating

Nuclear Overhauser

Nuclear effective

Nuclear effects

Nuclear overhauser effect spectroscopy

Nuclear rotation

Overhauser

Overhauser effect spectroscopy

Overhauser spectroscopy

Rotating frame Overhauser effect

Rotating frame Overhauser effect spectroscopy

Rotating frame SpectroscopY

Rotating frame nuclear Overhauser

Rotating frame nuclear Overhauser effect

Rotating-frame Overhauser spectroscopy

Rotation spectroscopy

Rotation-frame Overhauser Effect

Rotation-frame Overhauser Effect Spectroscopy

Rotational spectroscopies

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