AI Article Synopsis

  • The ability to measure chemical shift anisotropy (CSA) is crucial for understanding molecular structure and dynamics, especially in proteins.
  • Previous techniques focused on aliphatic groups, leaving carbonyl groups underexplored due to their complex CSA values and challenging measurement conditions.
  • The introduction of fROCSA experiments allows for effective CSA measurement in solid-state NMR, enhancing the exploration of carbonyl groups at moderate MAS rates and high magnetic fields, showcasing promising results on specific model compounds.

Article Abstract

The power of chemical shift anisotropy (CSA) measurements for probing structure and dynamics of molecules has been long recognized. NMR pulse sequences that allow measurement of CSA values in an indirect dimension of a protein correlation spectrum have been employed for aliphatic groups, but for practical reasons, carbonyl functional groups have been little studied, despite the fact that carbonyls are expected to give particularly varied and informative CSA values. Specifically, the wide spectral widths of carbonyl tensors make their measurements difficult with typically attainable spectrometer settings. We present here an extended family of experiments that enable the recovery of static CSA lineshapes in an indirect dimension of magic angle spinning (MAS) solid-state NMR experiments, except for various real valued scaling factors. The experiment is suitable for uniformly labeled material, at moderate MAS rates (10 kHz-30 kHz) and at higher magnetic fields (ν > 600 MHz). Specifically, the experiments are based on pulse sequence elements from a previous commonly used pulse sequence for CSA measurement, recoupling of chemical shift anisotropy (ROCSA), while modification of scaling factors is achieved by interspersing different blocks of C-elements of the same Cn cycle. Using experimental conditions similar to the parent ROCSA sequence, a CSA scaling factor between 0 and 0.272 can be obtained, thus allowing a useful practical range of possibilities in experimental conditions for measurement of larger CSA values. Using these blocks, it is also possible to make a constant-time CSA recoupling sequence. The effectiveness of this approach, fROCSA, is shown on model compounds 1-C-Gly, U-C,N-l-His, and microcrystalline U-C,N-Ubiquitin.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9250421PMC
http://dx.doi.org/10.1063/5.0020682DOI Listing

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