Determination of polypeptide backbone dihedral angles in solid state NMR by double quantum C-13 chemical shift anisotropy measurements

Citation
Fj. Blanco et R. Tycko, Determination of polypeptide backbone dihedral angles in solid state NMR by double quantum C-13 chemical shift anisotropy measurements, J MAGN RES, 149(1), 2001, pp. 131-138
Citations number
55
Categorie Soggetti
Chemistry & Analysis","Physical Chemistry/Chemical Physics
Journal title
JOURNAL OF MAGNETIC RESONANCE
ISSN journal
10907807 → ACNP
Volume
149
Issue
1
Year of publication
2001
Pages
131 - 138
Database
ISI
SICI code
1090-7807(200103)149:1<131:DOPBDA>2.0.ZU;2-E
Abstract
A solid state NMR technique for the determination of peptide backbone confo rmations at specific sites in unoriented samples under magic angle spinning (MAS) is described and demonstrated on a doubly labeled polycrystalline sa mple of the tripeptide AlaClyGly and a sextuply labeled lyophilized sample of the 17-residue peptide MB(i + 4)EK. The technique is applicable to pepti des and proteins that are labeled with C-13 at two (or more) consecutive ba ckbone carbonyl sites. Double quantum (DQ) coherences are excited with a ra diofrequency-driven recoupling sequence and evolve during a constant-time t (1) period at the sum of the two anisotropic chemical shifts. The relative orientation of the two chemical shift anisotropy (CSA) tensors, which depen ds on the phi and psi backbone dihedral angles, determines the t(1)-depende nce of spinning sideband intensities in the DQ-filtered C-13 MAS spectrum. Experiments and simulations show that both dihedral angles can be extracted from a single data set. This technique, called DQCSA spectroscopy, may be especially useful when analyzing the backbone conformation of a polypeptide at a particular doubly labeled site in the presence of additional labeled carbons along the sequence.