PCR-RFLP Primer Design Using Particle Swarm Optimization Combined with Chaotic Logistic Map

Polymerase chain reaction restriction fragment length polymorphism (PCR-RFLP) is an important technique in basic research of complex genetic diseases associated with single nucleotide polymorphisms (SNPs). Performing PCR-RFLP for SNP genotyping requires feasible primer pairs subject to numerous cons...

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Published in2012 26th International Conference on Advanced Information Networking and Applications Workshops pp. 956 - 961
Main Authors Li-Yeh Chuang, Yu-Da Lin, Hsueh-Wei Chang, Cheng-Hong Yang
Format Conference Proceeding
LanguageEnglish
Published IEEE 01.03.2012
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ISBN9781467308670
1467308676
DOI10.1109/WAINA.2012.208

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Abstract Polymerase chain reaction restriction fragment length polymorphism (PCR-RFLP) is an important technique in basic research of complex genetic diseases associated with single nucleotide polymorphisms (SNPs). Performing PCR-RFLP for SNP genotyping requires feasible primer pairs subject to numerous constraints and, in turn, requires a restriction enzyme to discriminate the target SNP. However, designing optimal primers from large quantities of template DNA is time consuming and often fails to provide a specific size of PCR product. In this study, a chaotic logistic map (CLM) is proposed to determine the value of the inertia weight of PSO (CLMPSO) to design feasible primers. The in silico simulation for SNPs of the SLC6A4 gene demonstrates that this CLM method reliably produces designs for PCR-RFLP primers which best fit the common primer constraints and also identifies available restriction enzymes. A comparison of the results obtained from PSO and CLMPSO primer design showed that CLM provided better primer sets than PSO primer design.
AbstractList Polymerase chain reaction restriction fragment length polymorphism (PCR-RFLP) is an important technique in basic research of complex genetic diseases associated with single nucleotide polymorphisms (SNPs). Performing PCR-RFLP for SNP genotyping requires feasible primer pairs subject to numerous constraints and, in turn, requires a restriction enzyme to discriminate the target SNP. However, designing optimal primers from large quantities of template DNA is time consuming and often fails to provide a specific size of PCR product. In this study, a chaotic logistic map (CLM) is proposed to determine the value of the inertia weight of PSO (CLMPSO) to design feasible primers. The in silico simulation for SNPs of the SLC6A4 gene demonstrates that this CLM method reliably produces designs for PCR-RFLP primers which best fit the common primer constraints and also identifies available restriction enzymes. A comparison of the results obtained from PSO and CLMPSO primer design showed that CLM provided better primer sets than PSO primer design.
Author Li-Yeh Chuang
Yu-Da Lin
Hsueh-Wei Chang
Cheng-Hong Yang
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  surname: Yu-Da Lin
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  surname: Hsueh-Wei Chang
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  surname: Cheng-Hong Yang
  fullname: Cheng-Hong Yang
  email: chyang@cc.kuas.edu.tw
  organization: Dept. of Electron. Eng., Nat. Kaohsiung Univ. of Appl. Sci., Kaohsiung, Taiwan
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Snippet Polymerase chain reaction restriction fragment length polymorphism (PCR-RFLP) is an important technique in basic research of complex genetic diseases...
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StartPage 956
SubjectTerms Algorithm design and analysis
Biochemistry
Chaos
chaotic logistic map
Clamps
DNA
Educational institutions
Logistics
Particle swarm optimization
PCR-RFLP
primer
restriction enzyme
Title PCR-RFLP Primer Design Using Particle Swarm Optimization Combined with Chaotic Logistic Map
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