Based on the unique physical properties of noble metal nanoparticles
a fluorescence sensor with signal amplification function was designed for detecting the concentration of dopamine. Based on the effect of metal fluorescence enhancement
the fluorescence signal was amplified by adding a spacer layer between the gold nanoparticles and fluorophore. First
the aptamer chemically modified with an SH bond was mixed with a gold nanoparticle solution to form a stable Au-S bond structure. Then
the DNA labeled with fluorescent groups were bound due to the complementary base pairing. The distance between the fluorophore and the surface of the gold nanoparticle was adjusted by changing the amount of base A. At the same time
the concentration ratio between the aptamer and gold nanoparticles and the pH of the reaction environment were optimized to obtain the best amplification efficiency. Finally
different concentrations of dopamine were tested. The experimental results indicate that at a certain concentration ratio between the gold nanoparticle solution and aptamer
the maximum fluorescence enhancement is 2.35 times at the isolation layer thickness is 27 base A. Dopamine concentration detection has a linear range of 20-100 nmol/L. The detection limit is 20 nmol/L. It can effectively regulate the isolation layer thickness at the nanometer level
providing a stable signal amplification strategy.
关键词
Keywords
references
LI X Y, CHENG R J, SHI H J, et al . A simple highly sensitive and selective aptamer-based colorimetric sensor for environmental toxins microcystin-LR in water samples[J]. Journal of Hazardous Materials , 2015, 304(1):474-480.
WANG B, CHEN Y F, WU Y Y, et al . Aptamer induced assembly of fluorescent nitrogen-doped carbon dots on gold nanoparticles for sensitive detection of AFB1[J]. Biosensors and Bioelectronics , 2016, 78: 23-30.
HE Y, LIN Y, TANG H, et al . A graphene oxide-based fluorescent aptasensor for the turn-on detection of epithelial tumor marker mucin 1[J]. Nanoscale , 2012, 4:2054-2059.
MA K, ZHANG F, SAYYADI N, et al . "Turn-on" fluorescent aptasensor based on AIEgen labeling for the localization of IFN-γ in live cells[J]. ACS Sensors , 2018, 3(2):7b00720.
KEEFE A D, PAI S, ELLINGTON A. Aptamers as therapeutics[J]. Nature Reviews Drug Discovery , 2010, 9(7): 537-550.
RUTKOWSKA A, FREEDMAN K, SKALKOWSKA J, et al . Electrodeposition and bipolar effects in metallized nanopores and their use in the detection of insulin[J]. Analytical Chemistry , 2015, 87(4):2337-2344.
ROYCHOUDHURY A, BASU S, JHA S K. Dopamine biosensor based on surface functionalized nanostructured nickel oxide platform[J]. Biosensors and Bioelectronics , 2016, 84: 72-81.
KHOSHFETRAT S M, BAGHERI H, MEHRGARDI M A. Visual electrochemiluminescence biosensing of aflatoxin M1 based on luminol-functionalized, silver nanoparticle-decorated graphene oxide[J]. Biosensors and Bioelectronics , 2018, 100: 382-388.
LI CH, GUO ZH, ZHANG W, et al . Multi-walled carbon nanotubes enhanced electrochemical sensor for prothrombin time detection[J]. Opt. Precision Eng. , 2019, 27(6): 1345-1353. (in Chinese)
GAO D, LI H F, WANG N J, et al . Evaluation of the absorption of methotrexate on cells and its cytotoxicity assay by using an integrated microfluidic device coupled to a mass spectrometer[J]. Analytical Chemistry , 2012, 84(21) :121022155012001.
LUO D B, HAN X G, DUAN L J. Extinction characteristics and resonant wavelength of spherical gold nanoparticles in different ambient mediums[J]. Opt. Precision Eng. , 2017, 25(3): 625-631. (in Chinese)
DONG J, ZHANG Z, ZHENG H, et al . Erratum to: recent progress on plasmon-enhanced fluorescence[J]. Nanophotonics , 2017, 6(2):472-490.
WANG Y, LI H, XU D K. Aptamers-based sandwich assay for silver-enhanced fluorescence multiplex detection[J]. Analytica Chimica Acta , 2015, 905:149-155.
NIE Y H, TENG Y J, LI P, et al . Label-free aptamer-based sensor for specific detection of malathion residues by surface-enhanced Raman scattering[J]. Spectrochimica Acta Part A Molecular and Biomolecular Spectroscopy , 2017, 191: 271-276.
YE S J, WU Y Y, ZHAI X M, et al . Asymmetric signal amplification for simultaneous SERS detection of multiple cancer markers with significantly different levels[J]. Analytical Chemistry , 2015, 87(16) :8242-8249.
WU J H, CHENG P H, ZHANG CH, et al . New development of metal nanostructures enhanced fluorescence[J]. Spectroscopy and Spectral Analysis , 2018, 38(1): 128-133. (in Chinese)
ASSELIN J, LEGROS P, GRÖGOIRE A, et al . Correlating metal-enhanced fluorescence and structural properties in Ag@SiO_2 core-shell nanoparticles[J]. Plasmonics , 2016, 11(5): 1369-1376.
CHEN CH, ZHANG L. Distance control surface-enhanced fluorescence properties of nanoporous gold[J]. Journal of University of Shanghai for Science and Technology , 2017, 39(1): 58-62. (in Chinese)
LI X, WANG Y, LUO J, AI S. Sensitive detection of adenosine triphosphate by exonuclease Ⅲ-assisted cyclic amplification coupled with surface plasmon resonance enhanced fluorescence based on nanopore[J]. Sensors & Actuators B: Chemical , 2016, 228: 509-514.
MA H J, LI A H, XU Y H, et al . Preparation of pH-responsive AgNPs/polymer nanohybrids with controllable metal-enhanced fluorescence behavior[J]. European Polymer Journal , 2015, 72: 212-221.
LÜ G W, SHEN H M, CHENG Y Q, et al . Advances in localized surface plasmon enhanced fluorescence[J]. Chinese Science Bulletin , 2015, 60(33): 3169-3179. (in Chinese)
Fluorescence-enhanced aptamer sensor for dopamine detection
Optimization and validation of the differential interferometric surface plasmon resonance sensor
Scanning surface plasmon resonance biosensor for array sample detection
Chemical sensor based on a fiber Bragg grating
Related Author
JIANG Li-ying HANG Xin-xin ZHANG Pei REN Lin-jiao WANG Wei
WANG Yi-jia
ZHANG Chong-lei
WANG Rong
ZHU Si-wei
YUAN Xiao-cong
QI Pan
LI Ying
Related Institution
Institute of Modern Optics, College of Information Technical Science, Nankai University2. Nankai University Affiliated Hospital
Department of Optoelectronic Engineering, Jinan University, Guangzhou 510632, China
Department of Electronic Engineering, Guangdong Communication Polytechnic Institute
Laboratory of Optoelectronic Information and Sensing Technologies of Guangdong Higher Education Institute, Jinan University
Key Laboratory of Optical Communication and Lightwave Technologies of Ministry of Education, School of Electronic Engineering,Beijing University of Posts and Telecommunications