[1] 左映平, 孙国勇.生物散斑激光技术及在生鲜农产品品质控制中的应用[J].江苏农业科学, 2021, 49(5):45-50.
ZUO Y P, SUN G Y.Biological speckle laser technology and its application in quality control of fresh agricultural products[J].Jiangsu Agricultural Sciences, 2021, 49(5):45-50.
[2] LI L L, ZHANG M, ADHIKARI B, et al.Recent advances in pressure modification-based preservation technologies applied to fresh fruits and vegetables[J].Food Reviews International, 2017, 33(5):538-559.
[3] BUMGARNER N R, SCHEERENS J C, KLEINHENZ M D.Nutritional yield:A proposed index for fresh food improvement illustrated with leafy vegetable data[J].Plant Foods for Human Nutrition, 2012, 67(3):215-222.
[4] PERERA N, GAMAGE T V, WAKELING L, et al.Colour and texture of apples high pressure processed in pineapple juice[J].Innovative Food Science & Emerging Technologies, 2010, 11(1):39-46.
[5] HAN J W, ZUO M, ZHU W Y, et al.A comprehensive review of cold chain logistics for fresh agricultural products:Current status, challenges, and future trends[J].Trends in Food Science & Technology, 2021, 109:536-551.
[6] RAMIREZ-HERNANDEZ A, GALAGARZA O A, ÁLVAREZ RODRIGUEZ M V, et al.Food safety in Peru:A review of fresh produce production and challenges in the public health system[J].Comprehensive Reviews in Food Science and Food Safety, 2020, 19(6):3323-3342.
[7] World Health Organization.Food safety[R/OL].WHO, (2020)[2022-04-30].https://www.who.int/NEWS-ROOM/FACT-SHEETS/DETAIL/FOOD-SAFETY.
[8] LIU Y, GAO Y, WANG T, et al. Detection of 12 common food-borne bacterial pathogens by Taq Man Real-Time PCR using a single set of reaction conditions[J]. Frontiers in Microbiology, 2019, 10. DOI: 10.3389/fmicb.2019.00222.
[9] DONG J, LU X, GUO W, et al.Research progress on isothermal amplification technology in the detection of foodborne pathogens[J].Food and Fermentation Industries, 2021,(8):256-260.
[10] XIN L, ZHANG L W.Recent progress in nucleic acid-microfluidic chips used for detection of foodborne pathogens:A review[J].Food Science, China, 2020, 41(23):266-272.
[11] POLTRONIERI P, DE BLASI M D, D'URSO O F.Detection of Listeria monocytogenes through real-time PCR and biosensor methods[J].Plant Soil and Environment, 2009, 55(9):363-369.
[12] JADHAV S R, SHAH R M, KARPE A V, et al.Detection of foodborne pathogens using proteomics and metabolomics-based approaches[J].Frontiers in Microbiology, 2018, 9:3132.
[13] 李海月, 黄继红, 张新武, 等.ATP生物发光法快速检测食源性致病菌的研究[J].河南工业大学学报(自然科学版), 2016, 37(1):67-71;128.
LI H Y, HUANG J H, ZHANG X W, et al.Study on rapid detection of food-borne pathogen by ATP bioluminescence method[J].Journal of Henan University of Technology (Natural Science Edition), 2016, 37(1):67-71;128.
[14] HU J Q, HUANG R N, WANG Y, et al.Development of duplex PCR-ELISA for simultaneous detection of Salmonella spp.and Escherichia coli O157:H7 in food[J].Journal of Microbiological Methods, 2018, 154:127-133.
[15] 李萌立, 李忠海, 李节, 等.量子点荧光探针技术在食源性致病菌检测中的应用[J].食品与机械, 2013, 29(5):241-244.
LI M L, LI Z H, LI J, et al.Application of quantum dots on detection of food borne pathogen[J].Food & Machinery, 2013, 29(5):241-244.
[16] 杨倩雯, 刘晓风, 曾海娟, 等.基于纳米材料的电化学免疫传感器及其在蛋白质检测中的研究进展[J].食品科学, 2021, 42(21):347-354.
YANG Q W, LIU X F, ZENG H J, et al.Electrochemical immunosensors and their application in the detection of proteins:A literature review[J].Food Science, 2021, 42(21):347-354.
[17] ABDEL-SALAM M, OMRAN B, WHITEHEAD K, et al.Superior properties and biomedical applications of microorganism-derived fluorescent quantum dots[J].Molecules, 2020, 25(19):1-5.
[18] XUE J P, WANG X F, JEONG J H, et al.Fabrication, photoluminescence and applications of quantum dots embedded glass ceramics[J].Chemical Engineering Journal, 2020, 383:123082.
[19] 覃爱苗, 赵路路, 杜为林, 等.近红外量子点的发光机理研究[J].光谱学与光谱分析, 2016, 36(7):2059-2065.
QIN A M, ZHAO L L, DU W L, et al.Luminescence mechanism of near-infrared quantum dots[J].Spectroscopy and Spectral Analysis, 2016, 36(7):2059-2065.
[20] RESCH-GENGER U, GRABOLLE M, CAVALIERE-JARICOT S, et al.Quantum dots versus organic dyes as fluorescent labels[J].Nature Methods, 2008, 5(9):763-775.
[21] LIU B, JIANG B, ZHENG Z P, et al.Semiconductor quantum dots in tumor research[J].Journal of Luminescence, 2019, 209:61-68.
[22] JUZENAS P, CHEN W, SUN Y P, et al.Quantum dots and nanoparticles for photodynamic and radiation therapies of cancer[J].Advanced Drug Delivery Reviews, 2008, 60(15):1600-1614.
[23] 高杨晨, 王猛, 张晓梅, 等.量子点荧光纳米材料的化学合成及其在潜手印显现中的应用[J].合成材料老化与应用, 2013, 42(2):40-46.
GAO Y C, WANG M, ZHANG X M, et al.Chemical synthesis of quantum dots fluorescent nanomaterials and their applications in development of latent fingerprints[J].Synthetic Materials Aging and Application, 2013, 42(2):40-46.
[24] 杜晴晴, 施科如, 王倩, 等.荧光量子点的生物合成方法研究进展[J].微生物学通报, 2017, 44(2):449-457.
DU Q Q, SHI K R, WANG Q, et al.Advance of approaches for fluorescent quantum dots biosynthesis[J].Microbiology China, 2017, 44(2):449-457.
[25] 徐传粉. 有机相中CdTe和ZnTe量子点的无膦化合成与性质表征[D].上海:华东师范大学, 2013.
XU C F.Phosphate-free synthesis and characterization of CdTe and ZnTe quantum dots[D].Shanghai:East China Normal University, 2013.
[26] 周蓓莹, 王明辉, 江莞.水相制备CdSe量子点及其ZnS核壳结构量子点[J].中国材料进展, 2017, 36(5):389-394.
ZHOU B Y, WANG M H, JIANG W.Preparation of CdSe and CdSe/ZnS core-shell quantum dots in aqueous phase[J].Materials China, 2017, 36(5):389-394.
[27] 李丽娜, 陈雯, 王舸泓, 等.水相合成CdTe量子点测定海藻中微量碲[J].分析试验室, 2021, 40(12):1414-1418.
LI L N, CHEN W, WANG G H, et al.Determination of trace tellurium in seaweed by synthesis of CdTe quantum dots in aqueous phase[J].Chinese Journal of Analysis Laboratory, 2021, 40(12):1414-1418.
[28] AKBARI M, RAHIMI-NASRABADI M, POURMASUD S, et al.CdTe quantum dots prepared using herbal species and microorganisms and their anti-cancer, drug delivery and antibacterial applications:A review[J].Ceramics International, 2020, 46(8):9979-9989.
[29] KOMINKOVA M, MILOSAVLJEVIC V, VITEK P, et al.Comparative study on toxicity of extracellularly biosynthesized and laboratory synthesized CdTe quantum dots[J].Journal of Biotechnology, 2017, 241:193-200.
[30] 张亚楠, 杨玲玲, 涂家薇, 等.金黄色葡萄球菌活细胞合成ZnSe量子点[J].高等学校化学学报, 2018, 39(6):1158-1163.
ZHANG Y N, YANG L L, TU J W, et al.Live-cell synthesis of ZnSe quantum dots in Staphylococcus aureus[J].Chemical Journal of Chinese Universities, 2018, 39(6):1158-1163.
[31] BAO H F, LU Z S, CUI X Q, et al.Extracellular microbial synthesis of biocompatible CdTe quantum dots[J].Acta Biomaterialia, 2010, 6(9):3534-3541.
[32] LAMOUREUX L, ADAMS P, BANISADR A, et al.An optical biosensor for detection of pathogen biomarkers from Shiga toxin-producing Escherichia coli in ground beef samples[C]//SPIE BiOS.Proc SPIE 9310, Frontiers in Biological Detection:From Nanosensors to Systems VII, San Francisco, California, USA.2015, 9310:7-14.
[33] HAHN M A, TABB J S, KRAUSS T D.Detection of single bacterial pathogens with semiconductor quantum dots[J].Analytical Chemistry, 2005, 77(15):4861-4869.
[34] GAZOULI M, LIANDRIS E, ANDREADOU M, et al.Specific detection of unamplified mycobacterial DNA by use of fluorescent semiconductor quantum dots and magnetic beads[J].Journal of Clinical Microbiology, 2010, 48(8):2830-2835.
[35] ZHAO Y, YE M Q, CHAO Q G, et al.Simultaneous detection of multifood-borne pathogenic bacteria based on functionalized quantum dots coupled with immunomagnetic separation in food samples[J].Journal of Agricultural and Food Chemistry, 2009, 57(2):517-524.
[36] HUANG A H, QIU Z G, JIN M, et al.High-throughput detection of food-borne pathogenic bacteria using oligonucleotide microarray with quantum dots as fluorescent labels[J].International Journal of Food Microbiology, 2014, 185:27-32.
[37] DU H, WANG X M, YANG Q L, et al.Quantum dot:Lightning invisible foodborne pathogens[J].Trends in Food Science & Technology, 2021, 110:1-12.
[38] 乔敏. 基于纳米材料的生物传感器在食品安全检测中的应用研究[J].粘接, 2021, 47(9):72-74;164.
QIAO M.Research on the application of biosensors based on nanomaterials in food safety detection[J].Adhesion, 2021, 47(9):72-74;164.
[39] XU L Z, LU Z, CAO L L, et al.In-field detection of multiple pathogenic bacteria in food products using a portable fluorescent biosensing system[J].Food Control, 2017, 75:21-28.
[40] 周环宇, 乔楠, 于大禹.碳量子点荧光探针在致病菌检测中的应用[J].化工新型材料, 2022, 50(5):21-26;31.
ZHOU H Y, QIAO N, YU D Y.Application of CQDs fluorescent probe in detection of pathogenic microorganism[J].New Chemical Materials, 2022, 50(5):21-26;31.
[41] CARVALHO F, GEORGE J, SHEIKH H M A, et al.Advances in screening, detection and enumeration of Escherichia coli using nanotechnology-based methods:A review[J].Journal of Biomedical Nanotechnology, 2018, 14(5):829-846.
[42] SAFARDOUST-HOJAGHAN H, SALAVATI-NIASARI M, AMIRI O, et al.Preparation of highly luminescent nitrogen doped graphene quantum dots and their application as a probe for detection of Staphylococcus aureus and E.coli[J].Journal of Molecular Liquids, 2017, 241:1114-1119.
[43] CRESPO R F, PEREZ O J P, RAMIREZ C.Total count of Salmonella typhimurium coupled on water soluble CdSe quantum dots by fluorescence detection[J].Journal of Electronic Materials, 2018, 47(8):4379-4384.
[44] CARRILLO-CARRIÓN C, SIMONET B M, VALCÁRCEL M.Colistin-functionalised CdSe/ZnS quantum dots as fluorescent probe for the rapid detection of Escherichia coli[J].Biosensors and Bioelectronics, 2011, 26(11):4368-4374.
[45] 徐焕焕, 余锦露, 孙雅静, 等.基于CdTe:Zn/ZnS量子点快速检测变形杆菌荧光免疫分析法的建立[J].分析试验室, 2019, 38(9):1065-1069.
XU H H, YU J L, SUN Y J, et al.Establishment of fluorescence immunoassay method for rapid detection of proteus based on CdTe:Zn/ZnS quantum dots[J].Chinese Journal of Analysis Laboratory, 2019, 38(9):1065-1069.
[46] RENUKA R M, ACHUTH J, CHANDAN H R, et al.A fluorescent dual aptasensor for the rapid and sensitive onsite detection of E.coli O157∶H7 and its validation in various food matrices[J].New Journal of Chemistry, 2018, 42(13):10807-10817.
[47] LIU Y S, ZHAO C, FU K Y, et al.Selective turn-on fluorescence detection of Vibrio parahaemolyticus in food based on charge-transfer between CdSe/ZnS quantum dots and gold nanoparticles[J].Food Control, 2017, 80:380-387.
[48] CHEN R, HUANG X L, LI J, et al.A novel fluorescence immunoassay for the sensitive detection of Escherichia coli O157:H7 in milk based on catalase-mediated fluorescence quenching of CdTe quantum dots[J].Analytica Chimica Acta, 2016, 947:50-57.
[49] WANG B B, WANG Q, CAI Z X, et al.Simultaneous, rapid and sensitive detection of three food-borne pathogenic bacteria using multicolor quantum dot probes based onmultiplex fluoroimmunoassay in food samples[J].LWT-Food Science and Technology, 2015, 61(2):368-376.
[50] PATEL M K, SINGH J, SINGH M K, et al.Tin oxide quantum dot based DNA sensor for pathogen detection[J].Journal of Nanoscience and Nanotechnology, 2013, 13(3):1671-1678.
[51] LIU Z P, SU X G.A novel fluorescent DNA sensor for ultrasensitive detection of Helicobacter pylori[J].Biosensors and Bioelectronics, 2017, 87:66-72.
[52] WANG B B, HUANG X, MA M H, et al.A simple quantum dot-based fluoroimmunoassay method for selective capturing and rapid detection of Salmonella Enteritidis on eggs[J].Food Control, 2014, 35(1):26-32.
[53] HU Y H, WANG C C, BING B, et al.Detection of Staphylococcus aureus using quantum clots as fluorescence labels[J].International Journal of Agricultural and Biological Engineering, 2014, 7(1):77-83.
[54] ANGENENDT P.Progress in protein and antibody microarray technology[J].Drug Discovery Today, 2005, 10(7):503-511.
[55] WINGREN C, BORREBAECK C A.Antibody-based microarrays[J].Methods in Molecular Biology (Clifton, N.J.), 2009, 509:57-84.
[56] SANVICENS N, PASCUAL N, TERESA FERNANDEZ-ARGUEELLES M, et al. Quantum dot-based array for sensitive detection of Escherichia coli[J]. Analytical and Bioanalytical Chemistry, 2011, 399(8): 2755-2762.
[57] WANG Y, SCHILL K M, FRY H C, et al.A quantum dot nanobiosensor for rapid detection of botulinum neurotoxin serotype E[J].ACS Sensors, 2020, 5(7):2118-2127.
[58] ZHOU J M, YANG Q B, LIANG C, et al.Detection of ochratoxin A by quantum dots-based fluorescent immunochromatographic assay[J].Analytical and Bioanalytical Chemistry, 2021, 413(1):183-192.
[59] LI Y F, XU L, FU X C, et al.A competitive immunoassay based on engineered magnetic/fluorescent nanoparticles and biolayer interferometry-based assay for T-2 toxin determination[J].Microchimica Acta, 2020, 187(9):514.
[60] WANG C Q, ZHANG W H, QIAN J, et al.A FRET aptasensor for sensitive detection of aflatoxin B1 based on a novel donor-acceptor pair between ZnS quantum dots and Ag nanocubes[J].Analytical Methods:Advancing Methods and Applications, 2021, 13(4):462-468.
[61] FOUBERT A, BELOGLAZOVA N V, GORDIENKO A, et al.Development of a rainbow lateral flow immunoassay for the simultaneous detection of four mycotoxins[J].Journal of Agricultural and Food Chemistry, 2017, 65(33):7121-7130.
[62] RESHMA V G, SYAMA S, SRUTHI S, et al.Engineered nanoparticles with antimicrobial property[J].Current Drug Metabolism, 2017, 18(11):1040-1054.
[63] KLOEPFER J A, MIELKE R E, NADEAU J L.Uptake of CdSe and CdSe/ZnS quantum dots into bacteria via purine-dependent mechanisms[J].Applied and Environmental Microbiology, 2005, 71(5):2548-2557.
[64] LUO Z H, WU Q S, ZHANG M, et al.Cooperative antimicrobial activity of CdTe quantum dots with rocephin and fluorescence monitoring for Escherichia coli[J].Journal of Colloid and Interface Science, 2011, 362(1):100-106.
[65] WANG L X, WU C S, FAN X D, et al.Detection of Escherichia coli O157:H7 and Salmonella in ground beef by a bead-free quantum dot-facilitated isolation method[J].International Journal of Food Microbiology, 2012, 156(1):83-87.
[66] CHEN X X, GAN M, XU H, et al.Development of a rapid and sensitive quantum dot-based immunochromatographic strip by double labeling PCR products for detection of Staphylococcus aureus in food[J].Food Control, 2014, 46:225-232.
[67] YAN Z Y, AI X X, SU Y L, et al.Intracellular biosynthesis of fluorescent CdSe quantum dots in Bacillus subtilis:A strategy to construct signaling bacterial probes for visually detecting interaction between Bacillus subtilis and Staphylococcus aureus[J].Microscopy and Microanalysis, 2016, 22(1):13-21.
[68] DUAN N, WU S J, YU Y, et al.A dual-color flow cytometry protocol for the simultaneous detection of Vibrio parahaemolyticus and Salmonella typhimurium using aptamer conjugated quantum dots as labels[J].Analytica Chimica Acta, 2013, 804:151-158.