DocumentCode
1815039
Title
Multi-scale hierarchical structure prediction of helical transmembrane proteins
Author
Chen, Zhong ; Xu, Ying
Author_Institution
Dept. of Biochem. & Molecular Biol., Georgia Univ., Athens, GA, USA
fYear
2005
fDate
8-11 Aug. 2005
Firstpage
203
Lastpage
207
Abstract
As the first step toward a multi-scale, hierarchical computational approach for membrane protein structure prediction, the packing of transmembrane helices was modeled at the residual and atomistic levels, respectively. For predictions at the residual level, the helix-helix and helix-lipid interactions were described by a set of knowledge-based energy functions. For predictions at the atomistic level, CHARMM19 force field was employed. To facilitate the system to overcome energy barriers, Wang-Landau sampling was carried out by performing a random walk in the energy and conformational spaces. Native-like structures were predicted at both levels for 2- and 7-helix systems. Interestingly, consistent results were obtained from simulations at residual and atomistic levels for the same system, strongly suggesting the feasibility of a hierarchical approach for membrane structure prediction.
Keywords
biochemistry; biology computing; biomembranes; molecular biophysics; proteins; CHARMM19 force field; Wang-Landau sampling; atomistic level; helical transmembrane protein; helix-helix interaction; helix-lipid interaction; knowledge-based energy function; multiscale hierarchical structure prediction; residual level; Biochemistry; Bioinformatics; Biological system modeling; Biology computing; Biomembranes; Energy states; Predictive models; Proteins; Sampling methods; Space exploration;
fLanguage
English
Publisher
ieee
Conference_Titel
Computational Systems Bioinformatics Conference, 2005. Proceedings. 2005 IEEE
Print_ISBN
0-7695-2344-7
Type
conf
DOI
10.1109/CSB.2005.41
Filename
1498021
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