Literature DB >> 10529232

Molecular dynamics simulations of human prion protein: importance of correct treatment of electrostatic interactions.

J Zuegg1, J E Gready.   

Abstract

Molecular dynamics simulations have been used to investigate the dynamical and structural behavior of a homology model of human prion protein HuPrP(90-230) generated from the NMR structure of the Syrian hamster prion protein ShPrP(90-231) and of ShPrP(<90-231) itself. These PrPs have a large number of charged residues on the protein surface. At the simulation pH 7, HuPrP(90-230) has a net charge of -1 eu from 15 positively and 14 negatively charged residues. Simulations for both PrPs, using the AMBER94 force field in a periodic box model with explicit water molecules, showed high sensitivity to the correct treatment of the electrostatic interactions. Highly unstable behavior of the structured region of the PrPs (127-230) was found using the truncation method, and stable trajectories could be achieved only by including all the long-range electrostatic interactions using the particle mesh Ewald (PME) method. The instability using the truncation method could not be reduced by adding sodium and chloride ions nor by replacing some of the sodium ions with calcium ions. The PME simulations showed, in accordance with NMR experiments with ShPrP and mouse PrP, a flexibly disordered N-terminal part, PrP(90-126), and a structured C-terminal part, PrP(127-230), which includes three alpha-helices and a short antiparallel beta-strand. The simulations showed some tendency for the highly conserved hydrophobic segment PrP(112-131) to adopt an alpha-helical conformation and for helix C to split at residues 212-213, a known disease-associated mutation site (Q212P). Three highly occupied salt bridges could be identified (E146/D144<-->R208, R164<-->D178, and R156<-->E196) which appear to be important for the stability of PrP by linking the stable main structured core (helices B and C) with the more flexible structured part (helix A and strands A and B). Two of these salt bridges involve disease-associated mutations (R208H and D178N). Decreased PrP stability shown by protein unfolding experiments on mutants of these residues and guanidinium chloride or temperature-induced unfolding studies indicating reduced stability at low pH are consistent with stabilization by salt bridges. The fact that electrostatic interactions, in general, and salt bridges, in particular, appear to play an important role in PrP stability has implications for PrP structure and stability at different pHs it may encounter physiologically during normal or abnormal recycling from the pH neutral membrane surface into endosomes or lysomes (acidic pHs) or in NMR experiments (5.2 for ShPrP and 4.5 for mouse PrP).

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Year:  1999        PMID: 10529232     DOI: 10.1021/bi991469d

Source DB:  PubMed          Journal:  Biochemistry        ISSN: 0006-2960            Impact factor:   3.162


  20 in total

1.  Computational studies on prion proteins: effect of Ala(117)-->Val mutation.

Authors:  Noriaki Okimoto; Kazunori Yamanaka; Atsushi Suenaga; Masayuki Hata; Tyuji Hoshino
Journal:  Biophys J       Date:  2002-05       Impact factor: 4.033

2.  On the truncation of long-range electrostatic interactions in DNA.

Authors:  J Norberg; L Nilsson
Journal:  Biophys J       Date:  2000-09       Impact factor: 4.033

3.  Molecular dynamics simulation of dimeric and monomeric forms of human prion protein: insight into dynamics and properties.

Authors:  Masakazu Sekijima; Chie Motono; Satoshi Yamasaki; Kiyotoshi Kaneko; Yutaka Akiyama
Journal:  Biophys J       Date:  2003-08       Impact factor: 4.033

4.  Influence of pH on the human prion protein: insights into the early steps of misfolding.

Authors:  Marc W van der Kamp; Valerie Daggett
Journal:  Biophys J       Date:  2010-10-06       Impact factor: 4.033

Review 5.  Classical electrostatics for biomolecular simulations.

Authors:  G Andrés Cisneros; Mikko Karttunen; Pengyu Ren; Celeste Sagui
Journal:  Chem Rev       Date:  2013-08-27       Impact factor: 60.622

6.  Differential stability of the bovine prion protein upon urea unfolding.

Authors:  Olivier Julien; Subhrangsu Chatterjee; Angela Thiessen; Steffen P Graether; Brian D Sykes
Journal:  Protein Sci       Date:  2009-10       Impact factor: 6.725

7.  Mapping the early steps in the pH-induced conformational conversion of the prion protein.

Authors:  D O Alonso; S J DeArmond; F E Cohen; V Daggett
Journal:  Proc Natl Acad Sci U S A       Date:  2001-02-27       Impact factor: 11.205

Review 8.  The consequences of pathogenic mutations to the human prion protein.

Authors:  Marc W van der Kamp; Valerie Daggett
Journal:  Protein Eng Des Sel       Date:  2009-07-14       Impact factor: 1.650

9.  Checking the pH-induced conformational transition of prion protein by molecular dynamics simulations: effect of protonation of histidine residues.

Authors:  Emma Langella; Roberto Improta; Vincenzo Barone
Journal:  Biophys J       Date:  2004-09-17       Impact factor: 4.033

10.  Searching for factors that distinguish disease-prone and disease-resistant prions via sequence analysis.

Authors:  Kanaka Durga Kedarisetti; Scott Dick; Lukasz Kurgan
Journal:  Bioinform Biol Insights       Date:  2008-03-12
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