Real Time Electrochemical Monitoring of DNA/PNA Dissociation by Melting Curve Analysis

被引:16
作者
Luo, Xiaoteng [1 ]
Hsing, I-Ming [1 ,2 ]
机构
[1] Hong Kong Univ Sci & Technol, Bioengn Grad Program, Kowloon, Hong Kong, Peoples R China
[2] Hong Kong Univ Sci & Technol, Dept Chem & Biomol Engn, Kowloon, Hong Kong, Peoples R China
关键词
Melting curve analysis; Immobilization-free; Ferrocene; PNA; Electrochemical DNA detection; DNA; PEPTIDE NUCLEIC-ACID; DNA BIOSENSORS; MOLECULAR BEACONS; ELECTRODES; PROBES; CARBON; HYBRIDIZATION; RECOGNITION; ADSORPTION; MERCURY;
D O I
10.1002/elan.200904592
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
An immobilization-free electrochemical method is reported for real-time monitoring of the DNA hybrid dissociation between a ferrocene labeled peptide nucleic acid (PNA) and a fully-complementary or single-base-mismatched DNA. This method takes advantages of electrostatic charge characteristics and interactions among the neutrally charged PNA, the negatively charged DNA and the negatively charged electrode surface made of indium tin oxide (]TO). When a ferrocene labeled PNA (Fc-PNA) sequence is hybridized to a complementary DNA strand, electrostatic repulsion between the negatively charged PNA/DNA hybrid and the negative ITO surface retards the diffusion of the electroactive Fc to the electrode, resulting in a much reduced electrochemical signal. On the other hand, when the FcPNA is dissociated from the hybrid at elevated temperatures, the neutrally charged Fc-PNA easily diffuses to the electrode with an enhanced electrochemical signal. Therefore, an electrochemical melting curve of the Fc-PNA/DNA hybrid can be obtained by measuring the Fe signal with the increasing temperature. This strategy allows monitoring of the dissociation of the DNA hybrid in real time, which might lead to a simple detection method for single nucleotide polymorphism (SNP) analysis.
引用
收藏
页码:1557 / 1561
页数:5
相关论文
共 30 条
  • [1] Electrochemical DNA biosensor using a disposable electrochemical printed (DEP) chip for the detection of SNPs from unpurified PCR amplicons[J]. Ahmed, Minhaz Uddin;Idegami, Koutarou;Chikae, Miyuki;Kerman, Kagan;Chaumpluk, Piyasak;Yamamura, Shohei;Tamiya, Eiichi. ANALYST, 2007(05)
  • [2] DEMIDOV V, 1994, BIOCHEM PHARMACOL, V48, P1309
  • [3] Electrochemical DNA sensors[J]. Drummond, TG;Hill, MG;Barton, JK. NATURE BIOTECHNOLOGY, 2003(10)
  • [4] PNA HYBRIDIZES TO COMPLEMENTARY OLIGONUCLEOTIDES OBEYING THE WATSON-CRICK HYDROGEN-BONDING RULES[J]. EGHOLM, M;BUCHARDT, O;CHRISTENSEN, L;BEHRENS, C;FREIER, SM;DRIVER, DA;BERG, RH;KIM, SK;NORDEN, B;NIELSEN, PE. NATURE, 1993(6446)
  • [5] Real-time PCR microfluidic devices with concurrent electrochemical detection[J]. Fang, Teh Huey;Ramalingam, Naveen;Dong Xian-Dui;Ngin, Tan Swee;Zeng Xianting;Kuan, Annie Tan Lai;Huat, Eric Yap Peng;Gong Hai-Qing. BIOSENSORS & BIOELECTRONICS, 2009(07)
  • [6] Adsorption of peptide nucleic acid and DNA decamers at electrically charged surfaces[J]. Fojta, M;Vetterl, V;Tomschik, M;Jelen, F;Nielsen, P;Wang, J;Palecek, E. BIOPHYSICAL JOURNAL, 1997(05)
  • [7] Synthesis of organometallic PNA oligomers by click chemistry[J]. Gasser, Gilles;Huesken, Nina;Koester, S. David;Metzler-Nolte, Nils. CHEMICAL COMMUNICATIONS, 2008(31)
  • [8] A formula for thermal stability (Tm) prediction of PNA/DNA duplexes[J]. Giesen, U;Kleider, W;Berding, C;Geiger, A;Orum, H;Nielsen, PE. NUCLEIC ACIDS RESEARCH, 1998(21)
  • [9] Gooding JJ, 2002, ELECTROANAL, V14, P1149, DOI 10.1002/1521-4109(200209)14:17<1149::AID-ELAN1149>3.0.CO
  • [10] 2-8