Nanobody@Biomimetic mineralized MOF as a sensing immunoprobe in detection of aflatoxin B1

被引:30
|
作者
Liao, Xiaoning [1 ,2 ]
Zhang, Xue [1 ,2 ]
Wang, Wenjun [3 ]
Liu, Chanjuan [4 ]
Yang, Wuying [3 ]
Wang, Dan [1 ,3 ]
机构
[1] Jiangxi Agr Univ, Res Ctr Mycotoxins, Nanchang 330045, Jiangxi, Peoples R China
[2] Jiangxi Agr Univ, Jiangxi Key Lab Postharvest Technol & Nondestruct, Collaborat Innovat Ctr Postharvest Key Technol &, Nanchang 330045, Jiangxi, Peoples R China
[3] Jiangxi Agr Univ, Key Lab Agroprod Proc & Qual Control Nanchang Cit, Coll Food Sci & Engn, Nanchang 330045, Jiangxi, Peoples R China
[4] Jiangxi Agr Univ, Agr Biotechnol Anal & Testing Ctr, Nanchang 330045, Jiangxi, Peoples R China
来源
基金
中国国家自然科学基金;
关键词
Nanobody; Aflatoxin B-1; Immunoprobe; Immunoassay; Biomimetic mineralization of MOF; METAL-ORGANIC FRAMEWORKS; HORSERADISH-PEROXIDASE; IMMUNOCHROMATOGRAPHIC ASSAY; IMMUNOASSAY; ZEARALENONE; STRATEGIES;
D O I
10.1016/j.bios.2022.114906
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Nanobody(Nb) is too small to carry more signal reporters, which often leads to low sensitivity in immunoassay. Herein, we proposed a novel immunoprobe integration of Nb and biomimetic mineralized metal-organic frameworks(MOF), in which plenty of succinylated horseradish peroxidase(sHRP) were encapsulated within a single MOF and the Nb was assembled on the biomimetic mineralized MOF. It overcomes the dilemma that the Nb is difficult to carry more signal reporters. Meanwhile, the mineralized MOF can protect the sHRP from denaturation and facilitate the transport of substrates to the active sites of sHRP. Electrosensing of aflatoxin B-1(AFB(1)) was realized with a competitive format in which the target AFB(1) and immobilized artificial antigen were competing for binding with the immunoprobe. Additionally, the detection signal was enlarged by the catalysis of this immunoprobe to 4-chloro-1-naphthol for producing precipitations, which blocked the channels of the immunoprobe and the redox probes of Fe(CN)(6)(3-/4-) was difficult to reach the electrode surface through the channels. Hence, the as-prepared immunosensor exhibited good voltammetry responses towards the determined AFB(1) in a linear range of 50.0 fg/mL - 20.0 ng/mL with a detection limit of 20.0 fg/mL. The specificity, stability, and reproducibility of this immunosensor were satisfactory. This work may provide an alternative idea for the application of Nb in immunoassay, and the idea may also be applicable to other bio-recognition elements for immunoassay.
引用
收藏
页数:8
相关论文
共 50 条
  • [31] Development of an immunochromatographic assay for detection of aflatoxin B1 in foods
    Sun, XL
    Zhao, XL
    Tang, J
    Gu, XH
    Zhou, J
    Chu, FS
    FOOD CONTROL, 2006, 17 (04) : 256 - 262
  • [32] An antibody-based microarray assay for the simultaneous detection of aflatoxin B1 and fumonisin B1
    Lamberti I.
    Tanzarella C.
    Solinas I.
    Padula C.
    Mosiello L.
    Mycotoxin Research, 2009, 25 (4) : 193 - 200
  • [33] An Improved Chemiluminescence Immunoassay for the Ultrasensitive Detection of Aflatoxin B1
    Junfeng Li
    Xiangyi Fang
    Yucong Yang
    Xiaoli Cheng
    Peng Tang
    Food Analytical Methods, 2016, 9 : 3080 - 3086
  • [34] Research Progress in the Detection of Aflatoxin B1 Based on Aptamers
    Zhang, Yi
    Chen, Xiaofang
    Xie, Xiaoyi
    Li, Dong
    Fan, Yuxiu
    Huang, Bin
    Yang, Xiupei
    CURRENT ANALYTICAL CHEMISTRY, 2024, 20 (04) : 242 - 254
  • [35] An Improved Chemiluminescence Immunoassay for the Ultrasensitive Detection of Aflatoxin B1
    Li, Junfeng
    Fang, Xiangyi
    Yang, Yucong
    Cheng, Xiaoli
    Tang, Peng
    FOOD ANALYTICAL METHODS, 2016, 9 (11) : 3080 - 3086
  • [36] Graphene coated optical microfiber for aflatoxin B1 detection
    Rahmatulloh, Imasda
    Apsari, Retna
    Na'imah, Syahidatun
    Amrillah, Tahta
    Samian
    Hikmawati, Dyah
    Masruroh
    Susanto, Hendra
    Yasin, M.
    Harun, Sulaiman W.
    RESULTS IN OPTICS, 2024, 17
  • [37] Zirconium-porphyrin-MOF-based oxidase-like nanozyme with oxygen vacancy for aflatoxin B1 colorimetric sensing
    Zhang, Shengyuan
    Li, Hong
    Xia, Qinghai
    Yang, Dezhi
    Yang, Yaling
    JOURNAL OF FOOD SCIENCE, 2024, 89 (06) : 3618 - 3628
  • [38] Quantitative detection of Aflatoxin B1 by subpixel CNN regression
    Zhu, Hongfei
    Yang, Lianhe
    Gao, Jiyue
    Gao, Mei
    Han, Zhongzhi
    SPECTROCHIMICA ACTA PART A-MOLECULAR AND BIOMOLECULAR SPECTROSCOPY, 2022, 268
  • [39] Dual effects of phloretin on aflatoxin B1 metabolism: Activation and detoxification of aflatoxin B1
    Gao, Shang Shang
    Chen, Xiao Yan
    Zhu, Ri Zhe
    Choi, Byung-Min
    Kim, Sun Jun
    Kim, Bok-Ryang
    BIOFACTORS, 2012, 38 (01) : 34 - 43
  • [40] Development of a smartphone-based biomimetic sensor for aflatoxin B1 detection using molecularly imprinted polymer membranes
    Sergeyev, Tetyana
    Yarynka, Dania
    Piletska, Elena
    Linnik, Rostyslav
    Zaporozhets, Olga
    Brovko, Oleksandr
    Piletsky, Sergey
    El'skaya, Anna
    TALANTA, 2019, 201 : 204 - 210