Acknowledgement
This work was supported by the Technology Innovation Program (or Industrial Strategic Technology Development Program-ATC+) (20008891, Development of fully automatic fast-CLEIA system and 96-well plate technologies based on enzyme chemiluminescence) funded By the Ministry of Trade, Industry & Energy (MOTIE, Korea).
References
- Deng Y, Liu J, Lu Y, et al. Novel Polystyrene-Binding Nanobody for Enhancing Immunoassays: Insights into Affinity, Immobilization, and Application Potential. Analytical Chemistry. 2024. 1597.
- Gao S, Guisan JM, Rocha-Martin J. Oriented immobilization of antibodies onto sensing platforms - A critical review. Analytica Chimica Acta. 2022. 1189.
- Luis A, Gonzalez I, Garcia T, et al. Determination of food authenticity by enzyme-linked immunosorbent assay (ELISA). Food Control. 2008. 1-8.
- Mao X, Yu B, Li Z, et al. Comparison of lateral flow immunoassays based on oriented and nonoriented immobilization of antibodies for the detection of aflatoxin B1. Analytica Chimica Acta. 2022. 1221.
- Tabatabaei MS, Islam R, Ahmed M. Applications of gold nanoparticles in ELISA, PCR, and immuno-PCR assays: A review. Analytica Chimica Acta. 2021. 1143.
- Tao Z, Zhou Y, Li X, et al. Competitive HRP-Linked Colorimetric Aptasensor for the Detection of Fumonisin B1 in Food based on Dual Biotin-Streptavidin Interaction. Biosensors. 2020. 10.
- Wang C, Lakshmipriya T, Gopinath CB. Amine-Aldehtde Chemical Conjugation on a Potassium Hydroxide-Treated Polystyrene ELISA Surface for Nanosensing an HIV-p24 Antigen. Nanoscale Res Lett. 2019. 14.
- Welch NG, Scoble JA, Muir BW, et al. Orientation and characterization of immobilized antibodies for improved immunoassays (Review). Biointerphases. 2017. 16.
- Zhao C, Pan B, Wang M, et al. Improving the Sensitivity of Nanofibrous Membrane-Based ELISA for On-Site Antibiotics Detection. ACS Sensors. 2022. 7.