English

Protein structure validation and refinement using amide proton chemical shifts derived from quantum mechanics

Chemical Physics 2014-03-05 v2 Biological Physics Biomolecules

Abstract

We present the ProCS method for the rapid and accurate prediction of protein backbone amide proton chemical shifts - sensitive probes of the geometry of key hydrogen bonds that determine protein structure. ProCS is parameterized against quantum mechanical (QM) calculations and reproduces high level QM results obtained for a small protein with an RMSD of 0.25 ppm (r = 0.94). ProCS is interfaced with the PHAISTOS protein simulation program and is used to infer statistical protein ensembles that reflect experimentally measured amide proton chemical shift values. Such chemical shift-based structural refinements, starting from high-resolution X-ray structures of Protein G, ubiquitin, and SMN Tudor Domain, result in average chemical shifts, hydrogen bond geometries, and trans-hydrogen bond (h3JNC') spin-spin coupling constants that are in excellent agreement with experiment. We show that the structural sensitivity of the QM-based amide proton chemical shift predictions is needed to refine protein structures to this agreement. The ProCS method thus offers a powerful new tool for refining the structures of hydrogen bonding networks to high accuracy with many potential applications such as protein flexibility in ligand binding.

Keywords

Cite

@article{arxiv.1305.2164,
  title  = {Protein structure validation and refinement using amide proton chemical shifts derived from quantum mechanics},
  author = {Anders S. Christensen and Troels E. Linnet and Mikael Borg and Wouter Boomsma and Kresten Lindorff-Larsen and Thomas Hamelryck and Jan H. Jensen},
  journal= {arXiv preprint arXiv:1305.2164},
  year   = {2014}
}

Comments

PLOS ONE accepted, Nov 2013

R2 v1 2026-06-22T00:14:10.967Z