Increasing the sensitivity of immunochromatographic assay for penicillin determination in milk due to oriented immobilization of penicillin-binding protein on the surface of colloidal gold
- 作者: Maksin I.V.1,2, Kuandykova A.2, Luzyanin T.A.1,2, Ivanov V.S.2, Kirillova Y.G.1, Khunteev G.A.2
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隶属关系:
- MIREA – Russian Technological University (Lomonosov Institute of Fine Chemical Technologies)
- Rapid Bio LLC
- 期: 卷 80, 编号 6 (2025)
- 页面: 545–557
- 栏目: ORIGINAL ARTICLES
- ##submission.dateSubmitted##: 15.07.2025
- ##submission.dateAccepted##: 15.07.2025
- URL: https://ta-journal.ru/0044-4502/article/view/687588
- DOI: https://doi.org/10.31857/S0044450225060021
- EDN: https://elibrary.ru/bcfzww
- ID: 687588
如何引用文章
详细
Abstract — The sensitivity of competitive immunochromatographic assay (ICA) for the determination of penicillin in milk using colloidal gold (CG) conjugates with recombinant penicillin-binding protein (PBP) prepared by two methods, passive non-oriented immobilization and oriented immobilization with antibodies to the histidine tag, was compared. The detection limit of the optimized ICA with non-oriented PBP immobilization was 5 ng/mL. It was possible to achieve a detection limit of 0.3 ng/mL with visual interpretation due to antibodies to the histidine tag with the use of oriented PBP immobilization. The analysis time was 10 min. The efficiency of two PBP immobilization methods was compared. It was shown that the sensitivity of the assay increased due to an improved PBP orientation and a simultaneous decrease in the number of binding sites on the CG. Thus, targeted immobilization of specific proteins on sensor surfaces using antibodies to the histidine tag can increase the sensitivity of the assay and simultaneously decrease the amount of biospecific reagents used. This approach can be applied to the simple conjugation of recombinant proteins with a histidine tag to nanoparticles.
全文:

作者简介
I. Maksin
MIREA – Russian Technological University (Lomonosov Institute of Fine Chemical Technologies); Rapid Bio LLC
编辑信件的主要联系方式.
Email: maxinivanv@gmail.com
俄罗斯联邦, 86, Vernadskogo Prospekt, 119571 Moscow; Bolshoy Boulevard., 42, b.1, 121205 Moscow
A. Kuandykova
Rapid Bio LLC
Email: maxinivanv@gmail.com
俄罗斯联邦, Bolshoy Boulevard., 42, b.1, 121205 Moscow
T. Luzyanin
MIREA – Russian Technological University (Lomonosov Institute of Fine Chemical Technologies); Rapid Bio LLC
Email: maxinivanv@gmail.com
俄罗斯联邦, 86, Vernadskogo Prospekt, 119571 Moscow; Bolshoy Boulevard., 42, b.1, 121205 Moscow
V. Ivanov
Rapid Bio LLC
Email: maxinivanv@gmail.com
俄罗斯联邦, Bolshoy Boulevard., 42, b.1, 121205 Moscow
Y. Kirillova
MIREA – Russian Technological University (Lomonosov Institute of Fine Chemical Technologies)
Email: maxinivanv@gmail.com
俄罗斯联邦, 86, Vernadskogo Prospekt, 119571 Moscow
G. Khunteev
Rapid Bio LLC
Email: maxinivanv@gmail.com
俄罗斯联邦, Bolshoy Boulevard., 42, b.1, 121205 Moscow
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