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PMID: 18481860 Published · ppublish English Journal Article Research Support, U.S. Gov't, Non-P.H.S.

Role of backbone-solvent interactions in determining conformational equilibria of intrinsically disordered proteins.

Journal of the American Chemical Society ·Vol. 130 ·No. 23 ·2008-06-11 ·Pages 7380-92

Tran HT, Mao A, Pappu RV

Abstract

Intrinsically disordered proteins (IDPs) are functional proteins that do not fold into well-defined three-dimensional structures under physiological conditions. IDP sequences have low hydrophobicity, and hence, recent experiments have focused on quantitative studies of conformational ensembles of archetypal IDP sequences such as polyglutamine and glycine-serine block copolypeptides. Results from these experiments show that, despite the absence of hydrophobic residues, polar IDPs prefer ensembles of collapsed structures in aqueous milieus. Do these preferences originate in interactions that are unique to polar sidechains? The current study addresses this issue by analyzing conformational equilibria for polyglycine and a glycine-serine block copolypeptide in two environments, namely, water and 8 M urea. Polyglycine, a poly secondary-amide, has no sidechains and is a useful model system for generic polypeptide backbones. Results based on large-scale molecular dynamics simulations show that polyglycine forms compact, albeit disordered, globules in water and swollen, disordered coils in 8 M urea. There is minimal overlap between conformational ensembles in the two environments. Analysis of order parameters derived from theories for flexible polymers show that water at ambient temperatures is a poor solvent for generic polypeptide backbones. Therefore, the experimentally observed preferences for polyglutamine and glycine-serine block copolypeptides must originate, at least partially, in polypeptide backbones. A preliminary analysis of the driving forces that lead to distinct conformational preferences for polyglycine in two different environments is presented. Implications for describing conformational ensembles of generic IDP sequences are also discussed.

MeSH Terms
Computer Simulation Fluorescence Resonance Energy Transfer Glycine/analogs & derivatives,chemistry Kinetics Monte Carlo Method Peptides/chemistry Protein Conformation Solutions Thermodynamics Urea/chemistry Water/chemistry
Chemicals
Peptides Solutions Water polyglycine acetylglycyl-N-methylamide Urea Glycine
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Tran Hoang T
Department of Biomedical Engineering and Center for Computational Biology, Washington University in St. Louis, Campus Box 1097, St. Louis, Missouri 63130, USA.
Mao Albert
Pappu Rohit V
Article Info
Journal
Journal of the American Chemical Society
Abbr.
J Am Chem Soc
ISSN
1520-5126
Published
2008-06-11
Epub
2008-00-16
Pages
7380-92
Language
English
Region
United States
NLM ID
7503056
Subset
IM
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