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DNA Melting Analysis for Detection of Single Nucleotide Polymorphisms
Author(s) -
Robert H. Lipsky,
Chiara Maria Mazzanti,
Joseph Rudolph,
Ke Xu,
Gopal Vyas,
David Bozak,
Marta Radel,
David Goldman
Publication year - 2001
Publication title -
clinical chemistry
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.705
H-Index - 218
eISSN - 1530-8561
pISSN - 0009-9147
DOI - 10.1093/clinchem/47.4.635
Subject(s) - heteroduplex , amplicon , sybr green i , melting curve analysis , microbiology and biotechnology , dna , temperature gradient gel electrophoresis , base pair , single nucleotide polymorphism , biology , nucleic acid thermodynamics , polymerase chain reaction , genetics , gene , genotype , base sequence , 16s ribosomal rna
BACKGROUNDSeveral methods for detection of single nucleotide polymorphisms (SNPs; e.g., denaturing gradient gel electrophoresis and denaturing HPLC) are indirectly based on the principle of differential melting of heteroduplex DNA. We present a method for detecting SNPs that is directly based on this principle.METHODSWe used a double-stranded DNA-specific fluorescent dye, SYBR Green I (SYBR) in an efficient system (PE 7700 Sequence Detector) in which DNA melting was controlled and monitored in a 96-well plate format. We measured the decrease in fluorescence intensity that accompanied DNA duplex denaturation, evaluating the effects of fragment length, dye concentration, DNA concentration, and sequence context using four naturally occurring polymorphisms (three SNPs and a single-base deletion/insertion).RESULTSDNA melting analysis (DM) was used successfully for variant detection, and we also discovered two previously unknown SNPs by this approach. Concentrations of DNA amplicons were readily monitored by SYBR fluorescence, and DNA amplicon concentrations were highly reproducible, with a CV of 2.6%. We readily detected differences in the melting temperature between homoduplex and heteroduplex fragments 15-167 bp in length and differing by only a single nucleotide substitution.CONCLUSIONSThe efficiency and sensitivity of DMA make it highly suitable for the large-scale detection of sequence variants.

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