Title
A spatio-temporal mining approach towards summarizing and analyzing protein folding trajectories.
Abstract
Understanding the protein folding mechanism remains a grand challenge in structural biology. In the past several years, computational theories in molecular dynamics have been employed to shed light on the folding process. Coupled with high computing power and large scale storage, researchers now can computationally simulate the protein folding process in atomistic details at femtosecond temporal resolution. Such simulation often produces a large number of folding trajectories, each consisting of a series of 3D conformations of the protein under study. As a result, effectively managing and analyzing such trajectories is becoming increasingly important. In this article, we present a spatio-temporal mining approach to analyze protein folding trajectories. It exploits the simplicity of contact maps, while also integrating 3D structural information in the analysis. It characterizes the dynamic folding process by first identifying spatio-temporal association patterns in contact maps, then studying how such patterns evolve along a folding trajectory. We demonstrate that such patterns can be leveraged to summarize folding trajectories, and to facilitate the detection and ordering of important folding events along a folding path. We also show that such patterns can be used to identify a consensus partial folding pathway across multiple folding trajectories. Furthermore, we argue that such patterns can capture both local and global structural topology in a 3D protein conformation, thereby facilitating effective structural comparison amongst conformations. We apply this approach to analyze the folding trajectories of two small synthetic proteins-BBA5 and GSGS (or Beta3S). We show that this approach is promising towards addressing the above issues, namely, folding trajectory summarization, folding events detection and ordering, and consensus partial folding pathway identification across trajectories.
Year
DOI
Venue
2007
10.1186/1748-7188-2-3
Algorithms for Molecular Biology
Keywords
Field
DocType
computability theory,structural biology,bioinformatics,protein folding,algorithms,protein conformation,temporal resolution,molecular dynamic
Femtosecond,Minimum bounding rectangle,Protein folding,Computer science,Structural biology,Algorithm,Molecular dynamics,Root-mean-square deviation,Bioinformatics,Temporal resolution
Journal
Volume
Issue
ISSN
2
1
1748-7188
Citations 
PageRank 
References 
5
0.53
4
Authors
3
Name
Order
Citations
PageRank
Hui Yang1122.77
Srinivasan Parthasarathy24666375.76
Duygu Ucar334719.69