DocumentCode :
951455
Title :
Hybridization-ligation versus parallel overlap assembly: an experimental comparison of initial pool generation for direct-proportional length-based DNA computing
Author :
Ibrahim, Zuwairie ; Tsuboi, Yusei ; Ono, Osamu
Author_Institution :
Dept. of Mechatronics & Robotics, Univ. Teknologi Malaysia, Skudai, Malaysia
Volume :
5
Issue :
2
fYear :
2006
fDate :
6/1/2006 12:00:00 AM
Firstpage :
103
Lastpage :
109
Abstract :
Previously, direct-proportional length-based DNA computing (DPLB-DNAC) for solving weighted graph problems has been reported. The proposed DPLB-DNAC has been successfully applied to solve the shortest path problem, which is an instance of weighted graph problems. The design and development of DPLB-DNAC is important in order to extend the capability of DNA computing for solving numerical optimization problem. According to DPLB-DNAC, after the initial pool generation, the initial solution is subjected to amplification by polymerase chain reaction and, finally, the output of the computation is visualized by gel electrophoresis. In this paper, however, we give more attention to the initial pool generation of DPLB-DNAC. For this purpose, two kinds of initial pool generation methods, which are generally used for solving weighted graph problems, are evaluated. Those methods are hybridization-ligation and parallel overlap assembly (POA). It is found that for DPLB-DNAC, POA is better than that of the hybridization-ligation method, in terms of population size, generation time, material usage, and efficiency, as supported by the results of actual experiments.
Keywords :
DNA; biocomputing; bioelectric phenomena; electrophoresis; enzymes; molecular biophysics; optimisation; direct-proportional length-based DNA computing; gel electrophoresis; generation time; hybridization ligation; initial pool generation; material usage; numerical optimization problem; parallel overlap assembly; polymerase chain reaction; population size; weighted graph problems; Assembly; DNA computing; Design optimization; Electrokinetics; Hybrid power systems; Hydrogen; Polymer gels; Sequences; Shortest path problem; Visualization; Direct-proportional length-based DNA computing (DPLB-DNAC); hybridization-ligation; parallel overlap assembly (POA); shortest path problem; Base Sequence; Computer Simulation; Computers, Molecular; DNA; Gene Pool; Models, Chemical; Molecular Sequence Data; Nucleic Acid Hybridization; Sequence Alignment; Sequence Analysis, DNA;
fLanguage :
English
Journal_Title :
NanoBioscience, IEEE Transactions on
Publisher :
ieee
ISSN :
1536-1241
Type :
jour
DOI :
10.1109/TNB.2006.875043
Filename :
1637451
Link To Document :
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