DocumentCode :
1233878
Title :
Fluorescent resonance energy transfer based detection of biological contaminants through hybrid quantum dot-quencher interactions
Author :
Ramadurai, D. ; Norton, E. ; Hale, J. ; Garland, J.W. ; Stephenson, L.D. ; Stroscio, M.A. ; Sivananthan, S. ; Kumar, A.
Author_Institution :
EPIR Technol. Inc., Bolingbrook, Bolingbrook, IL
Volume :
2
Issue :
2
fYear :
2008
fDate :
6/1/2008 12:00:00 AM
Firstpage :
47
Lastpage :
53
Abstract :
A nanoscale sensor employing fluorescent resonance energy transfer interactions between fluorescent quantum dots (QDs) and organic quencher molecules can be used for the multiplexed detection of biological antigens in solution. Detection occurs when the antigens to be detected displace quencher-labelled inactivated (or dead) antigens of the same type attached to QD-antibody complexes through equilibrium reactions. This unquenches the QDs, allowing detection to take place through the observation of photoluminescence in solution or through the fluorescence imaging of unquenched QD complexes trapped on filter surfaces. Multiplexing can be accomplished by using several different sizes of QDs, with each size QD labelled with an antibody for a different antigen, providing the ability to detect several types of antigens or biological contaminants simultaneously in near real-time with high specificity and sensitivity.
Keywords :
biological techniques; chemical sensors; fluorescence; microsensors; molecular biophysics; multiplexing; nanobiotechnology; organic compounds; photoluminescence; quantum dots; antigen detection; biological antigens; biological contaminants; equilibrium reactions; filter surfaces; fluorescence imaging; fluorescent quantum dots; fluorescent resonance energy transfer; hybrid quantum dot-quencher interactions; multiplexed detection; nanoscale sensor; organic quencher molecules; photoluminescence; quantum dot-antibody complexes; quencher labelling;
fLanguage :
English
Journal_Title :
Nanobiotechnology, IET
Publisher :
iet
ISSN :
1751-8741
Type :
jour
DOI :
10.1049/iet-nbt:20070033
Filename :
4531114
Link To Document :
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