» Articles » PMID: 12358535

Determination of Multiple Torsion-angle Constraints in U-(13)C,(15)N-labeled Peptides: 3D (1)H-(15)N-(13)C-(1)H Dipolar Chemical Shift NMR Spectroscopy in Rotating Solids

Overview
Journal J Am Chem Soc
Specialty Chemistry
Date 2002 Oct 3
PMID 12358535
Citations 30
Authors
Affiliations
Soon will be listed here.
Abstract

We demonstrate constraint of peptide backbone and side-chain conformation with 3D (1)H-(15)N-(13)C-(1)H dipolar chemical shift, magic-angle spinning NMR experiments. In these experiments, polarization is transferred from (15)N[i] by ramped SPECIFIC cross polarization to the (13)C(alpha)[i], (13)C(beta)[i], and (13)C(alpha)[i - 1] resonances and evolves coherently under the correlated (1)H-(15)N and (1)H-(13)C dipolar couplings. The resulting set of frequency-labeled (15)N(1)H-(13)C(1)H dipolar spectra depend strongly upon the molecular torsion angles phi[i], chi1[i], and psi[i - 1]. To interpret the data with high precision, we considered the effects of weakly coupled protons and differential relaxation of proton coherences via an average Liouvillian theory formalism for multispin clusters and employed average Hamiltonian theory to describe the transfer of (15)N polarization to three coupled (13)C spins ((13)C(alpha)[i], (13)C(beta)[i], and (13)C(alpha)[i - 1]). Degeneracies in the conformational solution space were minimized by combining data from multiple (15)N(1)H-(13)C(1)H line shapes and analogous data from other 3D (1)H-(13)C(alpha)-(13)C(beta)-(1)H (chi1), (15)N-(13)C(alpha)-(13)C'-(15)N (psi), and (1)H-(15)N[i]-(15)N[i + 1]-(1)H (phi, psi) experiments. The method is demonstrated here with studies of the uniformly (13)C,(15)N-labeled solid tripeptide N-formyl-Met-Leu-Phe-OH, where the combined data constrains a total of eight torsion angles (three phi, three chi1, and two psi): phi(Met) = -146 degrees, psi(Met) = 159 degrees, chi1(Met) = -85 degrees, phi(Leu) = -90 degrees, psi(Leu) = -40 degrees, chi1(Leu) = -59 degrees, phi(Phe) = -166 degrees, and chi1(Phe) = 56 degrees. The high sensitivity and dynamic range of the 3D experiments and the data analysis methods provided here will permit immediate application to larger peptides and proteins when sufficient resolution is available in the (15)N-(13)C chemical shift correlation spectra.

Citing Articles

Fast collective motions of backbone in transmembrane α helices are critical to water transfer of aquaporin.

Tan H, Duan M, Xie H, Zhao Y, Liu H, Yang M Sci Adv. 2024; 10(19):eade9520.

PMID: 38718112 PMC: 11078191. DOI: 10.1126/sciadv.ade9520.


Backbone Torsion Angle Determination Using Proton Detected Magic-Angle Spinning Nuclear Magnetic Resonance.

Xue K, Nimerovsky E, Tekwani Movellan K, Becker S, Andreas L J Phys Chem Lett. 2021; 13(1):18-24.

PMID: 34957837 PMC: 8762656. DOI: 10.1021/acs.jpclett.1c03267.


Dihedral Angle Measurements for Structure Determination by Biomolecular Solid-State NMR Spectroscopy.

van der Wel P Front Mol Biosci. 2021; 8:791090.

PMID: 34938776 PMC: 8685456. DOI: 10.3389/fmolb.2021.791090.


Peptide bond conformation in peptides and proteins probed by dipolar coupling-chemical shift tensor correlation solid-state NMR.

Mukhopadhyay D, Gupta C, Theint T, Jaroniec C J Magn Reson. 2018; 297:152-160.

PMID: 30396157 PMC: 6289736. DOI: 10.1016/j.jmr.2018.10.015.


Solid-State NMR of highly C-enriched cholesterol in lipid bilayers.

Della Ripa L, Petros Z, Cioffi A, Piehl D, Courtney J, Burke M Methods. 2018; 138-139:47-53.

PMID: 29366688 PMC: 6003781. DOI: 10.1016/j.ymeth.2018.01.008.