Journal of Atmospheric and Environmental Optics, Volume. 12, Issue 3, 161(2017)

Application of Quantum Dots Fluorescence Analysis Technology in the Detection of Trace Small Molecular Organic Pollutants

Haibo QU1... Suchun ZHAO2 and Zhigang WANG1,* |Show fewer author(s)
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
  • show less
    References(44)

    [1] [1] Wang Yunyun, Song Erqun. Research progress of quantum dots-based multiplex assay [J]. Scientia Sinica Chimica, 2011, 41(5): 785-797(in Chinese).

    [2] [2] Li Wenjun, Hou Yuze, Hu Xiaofei, et al. Application of quantum dot labeling in immunological detection [J]. Chinese Journal of Immunology, 2012, 28(10): 953-956(in Chinese).

    [3] [3] Qin B, Chen H, Liang H,et al. Reversible photoswitchable fluorescence in thin films of inorganic nanoparticle and polyoxometalate assemblies [J]. J. Am. Chem. Soc., 2010, 132(9): 2886-2888.

    [4] [4] Xing Shige, Xiong Qirong, Zhong Qiang, et al. Recent research advances of antibody-conjugated quantum dots [J]. Chinese Journal of Analytical Chemistry, 2013, 41(6): 949-955(in Chinese).

    [5] [5] Wang Huan, Gao Yihong, Zhang Ping. Advance of the fluorescent sensor with molecular recognition [J]. Applied Chemical Industry, 2014, 43(4): 718-728(in Chinese).

    [6] [6] Rosenthal S J, Chang J C,Kovtun O, et al. Biocompatible quantum dots for biological applications [J]. Chem. Biol., 2011, 18(1): 10-24.

    [7] [7] Smith A M, Nie S. Next-generation quantum dots [J]. Nat. Biotechnol., 2009, 27(8): 732-733.

    [8] [8] Wu Y,Chakrabortty S, Gropeanu R A, et al. pH-responsive quantum dots via an albumin polymer surface coating [J]. J. Am. Chem. Soc., 2010, 132(14): 5012-5014.

    [9] [9] Liu W,Greytak A B, Lee J, et al. Compact biocompatible quantum dots via RAFT-mediated synthesis of imidazole-based random copolymer ligand [J]. J. Am. Chem. Soc., 2010, 132(2): 472-483.

    [10] [10] Parra J,Esteveturrillas F A, Abadsomovilla A, et al. Exploring alternative hapten tethering sites for high-affinity anti-picoxystrobin antibody generation [J]. Anal. Biochem., 2011, 416(1): 82-91.

    [11] [11] Sun M, Du L, Gao S,et al. Determination of 17 β-oestradiol by fluorescence immunoassay with streptavidin-conjugated quantum dots as label [J]. Steroids, 2010, 75(6): 400-403.

    [12] [12] Wang X, Tao G, Meng Y. A novel CdSe/CdS quantum dot-based competitive fluoroimmunoassay for the detection of clenbuterol residue in pig urine using magnetic core/shell Fe3O4/Au nanoparticles as a solid carrier [J]. Anal. Sci., 2009, 25(12): 1409-1413.

    [13] [13] Chen Y P, Ning B, Liu N, et al. A rapid and sensitive fluoroimmunoassay based on quantum dot for the detection of chlorpyrifos residue in drinking water [J]. J. Environ. Sci. Health B, 45(6): 508-515.

    [14] [14] Chen Y, Ren H L, Liu N, et al. A fluoroimmunoassay based on quantum dot-streptavidin conjugate for the detection of chlorpyrifos [J]. J. Agric. Food Chem., 2010, 58(16): 8895-8903.

    [15] [15] Fernández-Argüelles M T, Costa-Fernández J M, Pereiro R, et al. Simple bio-conjugation of polymer-coated quantum dots with antibodies for fluorescence-based immunoassays [J]. Analyst, 2008, 133(4): 444-447.

    [16] [16] Zhou X,Meng Y, Ma H, et al. Method for determination of microcystin-leucine-arginine in water samples based on the quenching of the fluorescence of bioconjugates between CdSe/CdS quantum dots and microcystin-leucine-arginine antibody [J]. Microchim. Acta, 2011, 173(1): 259-266.

    [17] [17] YeQiyan, Zhuang Huisheng, Wang Qiong’e, et al. CdTe nanoparticles labeled with anti-fluorethene-antibody and fluorescent immunoassay of fluoranthene in water samples [J]. Chinese Journal of Analytical Chemistry, 2010, 38(3): 385-388(in Chinese).

    [18] [18] Zhang J, Wan Y, Li Y, et al. A rapid and high-throughput quantum dots bioassay for monitoring of perfluorooctane sulfonate in environmental water samples [J]. Environ. Pollut., 2011, 159(5): 1348-1353.

    [19] [19] Jamieson T, Bakhshi R, Petrova D, et al. Biological applications of quantum dots [J]. Biomaterials, 2007, 28(31): 4717-4732.

    [20] [20] Peng C, Li Z, Zhu Y, et al. Simultaneous and sensitive determination of multiplex chemical residues based on multicolor quantum dot probes [J]. Biosens. Bioelectron., 2009, 24(12): 3657-3662.

    [21] [21] Ma Huilian, Liu Hanzhi, Wang Liping, et al. Application of fluorescence resonance energy transfer of quantum dots in biological assay [J]. Chinese Journal of Analytical Chemistry, 2005, 33(9): 1335-1338(in Chinese).

    [22] [22] Liu Haiyan, Wu Shengmei, Cheng Fang, et al. Fluorescence resonance energy transfer between quantumn dots [J]. Chinese Journal of Analytical Chemistry, 2010, 38(7): 1036-1039(in Chinese).

    [23] [23] Medintz I L, Uyeda H T, Goldman E R,et al. Quantum dot bioconjugates for imaging, labelling and sensing [J]. Nat. Mater., 2005, 4(6): 435-446.

    [24] [24] Clapp A R, Medintz I L, Mattoussi H. Forster resonance energy transfer investigations using quantum-dot fluorophores [J]. Chem. Phys. Chem., 2006, 7(1): 47-57.

    [25] [25] Zhang Heming, Deng Guiming, Li Zhuo, et al. Advance in the application of quantum dots used in the fluorescence resonance energy transfer [J]. Journal of South China Normal University: Natural Science Edition, 2011(3): 1-4(in Chinese).

    [26] [26] Zhang K, Mei Q S, Guan G J,et al. Ligand replacement-induced fluorescence switch of quantum dots for ultrasensitive detection of organophosphorothioate pesticides [J]. Anal. Chem., 2010, 82(82): 9579-9586.

    [27] [27] Aaron R C,Medintz I L, Uyeda T H, et al. Quantum dot-based multiplexed fluorescence resonance energy transfer [J]. J. Am. Chem. Soc., 2005, 127(51): 18212-18221.

    [28] [28] Xia Y, Song L, Zhu C. Turn-on and near-infrared fluorescent sensing for 2,4,6-trinitrotoluene based on hybrid (gold nanorod)-(quantum dots) assembly [J]. Anal. Chem., 2011, 83(4): 1401-1407.

    [29] [29] Long F,Gu C, Gu A Z, et al. Quantum dot/carrier-protein/haptens conjugate as a detection nanobioprobe for FRET-based immunoassay of small analytes with all-fiber microfluidic biosensing platform [J]. Anal. Chem., 2012, 84(8): 3646-3653.

    [30] [30] Freeman R, Li Y, Telvered R, et al. Self-assembly of supramolecular aptamer structures for optical or electrochemical sensing [J]. Analyst, 2009, 134(4):653-656.

    [31] [31] Yang L, Chen B, Luo S,et al. Sensitive detection of polycyclic aromatic hydrocarbons using CdTe quantum dot-modified TiO2 nanotube array through fluorescence resonance energy transfer [J]. Environ. Sci. Technol., 2010, 44(20): 7884-7889.

    [32] [32] Nikiforov T T, Beechem J M. Development of homogeneous binding assays based on fluorescence resonance energy transfer between quantum dots and Alexa Fluor fluorophores [J]. Anal. Biochem., 2006, 357(1): 68-76.

    [33] [33] Duan Yun, Li Jianguo. Design and application of quantum dots senor in the chemical pollutants in Agro-products [J]. Guangxi Sciences, 2013, 20(4):331-334(in Chinese).

    [34] [34] Dankwardt A. Immunochemical Assays in Pesticide Analysis [M]. In Encyclopedia of Analytical Chemistry, Wiley: Chichester, 2006.

    [35] [35] Kang Q, Yang L X, Chen Y F,et al. Photoelectrochemical detection of pentachlorophenol with a multiple hybrid CdSexTe1-x/TiO2 nanotube structure-based label-free immunosensor [J]. Anal. Chem., 2010, 82(23): 9749-9754.

    [36] [36] Wang L, Chen W, Ma W,et al. Fluorescent strip sensor for rapid determination of toxins [J]. Chem. Commun., 2011, 47(5): 1574-1576.

    [37] [37] Luo W, Li H, Xu H,et al. Quantum dots-based lateral flow strip assay for rapid detection of clenbuterol [C]// International Conference on Biomedical Engineering and Informatics, 2011: 1520-1524.

    [38] [38] Chouhan R S,Vinayaka A C, Thakur M S. Thiol-stabilized luminescent CdTe quantum dot as biological fluorescent probe for sensitive detection of methyl parathion by a fluoroimmunochromatographic technique [J]. Anal. Bioanal. Chem., 2010, 397(4): 1467-1475.

    [39] [39] Vinayaka A C, Basheer S, Thakur M S. Bioconjugation of CdTe quantum dot for the detection of 2,4-dichlorophenoxyacetic acid by competitive fluoroimmunoassay based biosensor [J]. Biosens. Bioelectron., 2009, 24(6): 1615-1620.

    [40] [40] HuHuajun, Fu Tao, Zhang Mingzhou, et al. Development of CdTe/ZnSe core/shell quantum dots-based lateral-flow immunoassay for rapid detection of clenbuterol [J]. Chinese Journal of Analytical Chemistry, 2010, 38(12): 1727-1731(in Chinese).

    [41] [41] Zhang Guohua, Lai Weihua, Xiong Yonghua, et al. Application of quantum dot labeling to development of immunochromatographic test strip for rapid detection of ractopamine [J]. Food Science, 2009, 30(12):254-257(in Chinese).

    [42] [42] Fu Zhifeng, Wu Jie, Ju Huangxian. Multianalyte immunosensing and its application [J]. Chemical Sensors, 2006, 26(4): 1-11(in Chinese).

    [43] [43] Fu Z, Yan F, Liu H, et al. A channel-resolved approach coupled with magnet-captured technique for multianalyte chemiluminescent immunoassay [J]. Biosens. Bioelectron., 2008, 23(10): 1422-1428.

    [44] [44] Goldman E R, Anderson G P, Tran P T, et al. Conjugation of luminescent quantum dots with antibodies using an engineered adaptor protein to provide new reagents for fluoroimmunoassays [J]. Anal. Chem., 2002, 74(4): 841-847.

    Tools

    Get Citation

    Copy Citation Text

    QU Haibo, ZHAO Suchun, WANG Zhigang. Application of Quantum Dots Fluorescence Analysis Technology in the Detection of Trace Small Molecular Organic Pollutants[J]. Journal of Atmospheric and Environmental Optics, 2017, 12(3): 161

    Download Citation

    EndNote(RIS)BibTexPlain Text
    Save article for my favorites
    Paper Information

    Category:

    Received: Jun. 19, 2015

    Accepted: --

    Published Online: Jun. 9, 2017

    The Author Email: Zhigang WANG (wangzg@yzu.edu.cn)

    DOI:10.3969/j.issn.1673-6141.2017.03.001

    Topics