| Literature DB >> 28451263 |
S Alexis Paz1, Eric Vanden-Eijnden2, Cameron F Abrams1.
Abstract
We study the thermodynamic stability of the native state of the human prion protein using a new free-energy method, replica-exchange on-the-fly parameterization. This method is designed to overcome hidden-variable sampling limitations to yield nearly error-free free-energy profiles along a conformational coordinate. We confirm that all four (M129V, D178N) polymorphs have a ground-state conformation with three intact β-sheet hydrogen bonds. Additionally, they are observed to have distinct metastabilities determined by the side-chain at position 129. We rationalize these findings with reference to the prion "strain" hypothesis, which links the variety of transmissible spongiform encephalopathy phenotypes to conformationally distinct infectious prion forms and classifies distinct phenotypes of sporadic Creutzfeldt-Jakob disease based solely on the 129 polymorphism. Because such metastable structures are not easily observed in structural experiments, our approach could potentially provide new insights into the conformational origins of prion diseases and other pathologies arising from protein misfolding and aggregation.Entities:
Year: 2016 PMID: 28451263 PMCID: PMC5369536 DOI: 10.1039/c6sc03275c
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Fig. 1Backbone of the β-sheet structure of the mouse prion protein. Secondary structure, residue numbers and H-bonds labels are included.
Fig. 2(a) Average free energy landscape (FEL) along s 4 for the MoPrPC at different temperatures obtained via RE-OTFP simulations. (b) Comparison between FELs obtained via RE-OTFP and pure OTFP.[25] Error bars correspond to ±one standard deviation from independent simulations (RE-OTFP, n = 3; OTFP, n = 16).
Fig. 3Free energy vs. s 4 for human wild-type PrPC (a) and mutant D178N (b).
Fig. 4Schematic of the H-bond network near the β-sheet structure of WT HuPrPC and the D178N mutant. Bond thicknesses indicate relative frequencies with which H–O bond lengths below 2.5 Å are observed at 309 K.