DocumentCode :
1755891
Title :
RNA Secondary Structure Prediction Using Soft Computing
Author :
Ray, Sanchita Saha ; Pal, Sankar K.
Author_Institution :
Center for Soft Comput. Res.: A Nat. Facility, Indian Stat. Inst., Kolkata, India
Volume :
10
Issue :
1
fYear :
2013
fDate :
Jan.-Feb. 2013
Firstpage :
2
Lastpage :
17
Abstract :
Prediction of RNA structure is invaluable in creating new drugs and understanding genetic diseases. Several deterministic algorithms and soft computing-based techniques have been developed for more than a decade to determine the structure from a known RNA sequence. Soft computing gained importance with the need to get approximate solutions for RNA sequences by considering the issues related with kinetic effects, cotranscriptional folding, and estimation of certain energy parameters. A brief description of some of the soft computing-based techniques, developed for RNA secondary structure prediction, is presented along with their relevance. The basic concepts of RNA and its different structural elements like helix, bulge, hairpin loop, internal loop, and multiloop are described. These are followed by different methodologies, employing genetic algorithms, artificial neural networks, and fuzzy logic. The role of various metaheuristics, like simulated annealing, particle swarm optimization, ant colony optimization, and tabu search is also discussed. A relative comparison among different techniques, in predicting 12 known RNA secondary structures, is presented, as an example. Future challenging issues are then mentioned.
Keywords :
RNA; ant colony optimisation; biology computing; fuzzy logic; genetic algorithms; molecular biophysics; molecular configurations; neural nets; particle swarm optimisation; search problems; RNA secondary structure prediction; ant colony optimization; artificial neural network; bulge structure; cotranscriptional folding; drugs; energy parameter estimation; fuzzy logic; genetic algorithm; genetic diseases; hairpin loop structure; helix structure; internal loop structure; kinetic effect; multiloop structure; particle swarm optimization; simulated annealing; soft computing; tabu search; Bioinformatics; Dynamic programming; Fuzzy logic; Prediction algorithms; Proteins; RNA; DNA; RNA; combinatorial optimization; dynamic programming; fuzzy logic; genetic algorithms; machine learning; metaheuristics; neural networks; protein; soft computing; Algorithms; Animals; Artificial Intelligence; Computational Biology; Humans; Models, Genetic; Nucleic Acid Conformation; RNA; Thermodynamics;
fLanguage :
English
Journal_Title :
Computational Biology and Bioinformatics, IEEE/ACM Transactions on
Publisher :
ieee
ISSN :
1545-5963
Type :
jour
DOI :
10.1109/TCBB.2012.159
Filename :
6378377
Link To Document :
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