Carbon Nanostructure-Based DNA Sensor Used for Quickly Detecting Breast Cancer-Associated Genes

被引:0
作者
Yingqi Zhang
Jisu Song
Songlin Yang
Jianying Ouyang
Jin Zhang
机构
[1] University of Western Ontario,Chemical and Biochemical Engineering
[2] University of Western Ontario,School of Biomedical Engineering
[3] National Research Council Canada,undefined
来源
Nanoscale Research Letters | / 17卷
关键词
Carbon quantum dots; Graphene oxide; DNA sensor; Förster resonance energy transfer (FRET) quenching;
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学科分类号
摘要
The early diagnosis of breast cancer highly relies on the detection of mutant DNA at low concentrations. Förster resonance energy transfer (FRET) quenching may offer a solution to quickly detect a small amount of single-strand DNA (ssDNA) through the combination of nanomaterials with special luminescence and unique structures of DNA double helix structure. Here, carbon quantum dots (CDs) modified with Capture ssDNA act as the FRET donor which interact with the two-dimensional fluorescence quencher, i.e., graphene oxide nanosheets (GO), to detect breast cancer-associated Target ssDNA at a low concentration. CDs bioconjugated with the designed Capture ssDNA (named CDs-Capture ssDNA) have the maximum fluorescence intensity (Imax) at the emission (λem) = 510 nm. The fluorescence of CDs-Capture ssDNA is quenched, while they interact with GO due to the π–π* interaction between ssDNA and GO. In the presence of Target ssDNA, the Imax is restored because of the stronger interaction between Target ssDNA and CDs-Capture ssDNA through the hydrogen bond. The restored fluorescence intensity of CDs has a linear relationship with the concentration of Target ssDNA from 0.25 to 2.5 μM with a detection limit around 0.24 μM. The selectivity of the sensing system has been further evaluated by testing the 3-base mismatched and non-base matched in which efficient restoration of photoluminescence of the sensing system cannot be observed. This carbon nanostructure-based DNA sensing system offers a user-friendly and quick detection of single-strand DNA at lower concentration.
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  • [1] Paludan SR(2013)Immune sensing of DNA Immunity 38 870-880
  • [2] Bowie AG(2018)Fluorescent nanobiosensors for sensing glucose Sensors 18 1440-6
  • [3] Chen L(2015)DNA-functionalization gold nanoparticles based fluorescence sensor for sensitive detection of Hg2+ in aqueous solution Sens Actuators B Chem 211 1-1697
  • [4] Hwang E(2005)Multiplexed hybridization detection with multicolor colocalization of quantum dot nanoprobes Nano Lett 5 1693-50
  • [5] Zhang J(2019)Integration of nanomaterials and bioluminescence resonance energy transfer techniques for sensing biomolecules Biosensors 9 42-13038
  • [6] Wang G(2017)Synthesis, assembly, and applications of hybrid nanostructures for biosensing Chem Rev 117 12942-2224
  • [7] Lu Y(2013)Biomedical applications of graphene and graphene oxide Acc Chem Res 46 2211-1178
  • [8] Yan C(2018)A comparison of optical, electrochemical, magnetic, and colorimetric point-of-care biosensors for infectious disease diagnosis ACS Infect Dis 4 1162-4768
  • [9] Lu Y(2015)An overview of nanoparticles commonly used in fluorescent bioimaging Chem Soc Rev 44 4743-5363
  • [10] Ho Y-P(2015)Red, green, and blue luminescence by carbon dots: full-color emission tuning and multicolor cellular imaging Angew Chem Int Ed 54 5360-16149