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Homogeneous point mutation detection by quantum dot-mediated two-color fluorescence coincidence analysis
Author(s) -
HsinChih Yeh,
YiPing Ho,
IeMing Shih,
TzaHuei Wang
Publication year - 2006
Publication title -
nucleic acids research
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 9.008
H-Index - 537
eISSN - 1362-4954
pISSN - 0305-1048
DOI - 10.1093/nar/gkl021
Subject(s) - quantum dot , fluorophore , fluorescence , oligonucleotide , coincidence , colocalization , genotyping , confocal , point mutation , biology , homogeneous , dna , materials science , biological system , mutation , physics , genotype , microbiology and biotechnology , optoelectronics , optics , genetics , gene , medicine , alternative medicine , pathology , thermodynamics
This report describes a new genotyping method capable of detecting low-abundant point mutations in a homogeneous, separation-free format. The method is based on integration of oligonucleotide ligation with a semiconductor quantum dot (QD)-mediated two-color fluorescence coincidence detection scheme. Surface-functionalized QDs are used to capture fluorophore-labeled ligation products, forming QD-oligonucleotide nanoassemblies. The presence of such nanoassemblies and thereby the genotype of the sample is determined by detecting the simultaneous emissions of QDs and fluorophores that occurs whenever a single nanoassembly flows through the femtoliter measurement volume of a confocal fluorescence detection system. The ability of this method to detect single events enables analysis of target signals with a multiple-parameter (intensities and count rates of the digitized target signals) approach to enhance assay sensitivity and specificity. We demonstrate that this new method is capable of detecting zeptomoles of targets and achieve an allele discrimination selectivity factor >10(5).

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