DocumentCode :
1477115
Title :
Mining Characteristic Relations Bind to RNA Secondary Structures
Author :
Chen, Qingfeng ; Chen, Yi-Ping Phoebe
Author_Institution :
Fac. of Sci. & Technol., Deakin Univ., Melbourne, VIC, Australia
Volume :
14
Issue :
1
fYear :
2010
Firstpage :
10
Lastpage :
15
Abstract :
The identification of RNA secondary structures has been among the most exciting recent developments in biology and medical science. It has been recognized that there is an abundance of functional structures with frameshifting, regulation of translation, and splicing functions. However, the inherent signal for secondary structures is weak and generally not straightforward due to complex interleaving substrings. This makes it difficult to explore their potential functions from various structure data. Our approach, based on a collection of predicted RNA secondary structures, allows us to efficiently capture interesting characteristic relations in RNA and bring out the top-ranked rules for specified association groups. Our results not only point to a number of interesting associations and include a brief biological interpretation to them. It assists biologists in sorting out the most significant characteristic structure patterns and predicting structure-function relationships in RNA.
Keywords :
bioinformatics; biological techniques; data mining; macromolecules; molecular biophysics; molecular configurations; organic compounds; RNA secondary structure identification; RNA structure-function relationships; association groups; association rule mining; frame shifting; functional RNA structures; predicted RNA secondary structures; splicing functions; translation regulation; Association group; H-pseudoknot; function; probability matrix; secondary structure; Algorithms; Computational Biology; Data Mining; Databases, Nucleic Acid; Nucleic Acid Conformation; RNA; Structure-Activity Relationship;
fLanguage :
English
Journal_Title :
Information Technology in Biomedicine, IEEE Transactions on
Publisher :
ieee
ISSN :
1089-7771
Type :
jour
DOI :
10.1109/TITB.2009.2032655
Filename :
5268203
Link To Document :
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