Abstract
We introduce a homonuclear version of third spin assisted recoupling, a second-order mechanism that can be used for polarization transfer between 13C or 15N spins in magic angle spinning (MAS) NMR experiments, particularly at high spinning frequencies employed in contemporary high field MAS experiments. The resulting sequence, which we refer to as proton assisted recoupling (PAR), relies on a cross-term between 1H - 13C (or 1H - 15N) couplings to mediate zero quantum 13C - 13C (or 15N - 15N recoupling). In particular, using average Hamiltonian theory we derive an effective Hamiltonian for PAR and show that the transfer is mediated by trilinear terms of the form C1±C2±HZ for 13C - 13C recoupling experiments (or N1± N2±HZ for 15N - 15N). We use analytical and numerical simulations to explain the structure of the PAR optimization maps and to delineate the PAR matching conditions. We also detail the PAR polarization transfer dependence with respect to the local molecular geometry and explain the observed reduction in dipolar truncation. Finally, we demonstrate the utility of PAR in structural studies of proteins with 13C - 13C spectra of uniformly 13C, 15N labeled microcrystalline Crh, a 85 amino acid model protein that forms a domain swapped dimer (MW=2×10.4 kDa). The spectra, which were acquired at high MAS frequencies (ωr 2π >20 kHz) and magnetic fields (750-900 MHz 1H frequencies) using moderate rf fields, exhibit numerous cross peaks corresponding to long (up to 6-7 Å) 13C - 13C distances which are particularly useful in protein structure determination. Using results from PAR spectra we calculate the structure of the Crh protein. © 2008 American Institute of Physics.
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CITATION STYLE
De Paëpe, G., Lewandowski, J. R., Loquet, A., Böckmann, A., & Griffin, R. G. (2008). Proton assisted recoupling and protein structure determination. Journal of Chemical Physics, 129(24). https://doi.org/10.1063/1.3036928
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