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Development of a Lateral Flow Immunochromatographic Strip for Rapid and Quantitative Detection of Small Molecule Compounds
Published on: November 13, 2021
Development of a Sensitive Lateral Flow Immunoassay Using Recombinant Rabbit Single-Chain Variable Fragments Fused to
Ngoc Minh Nguyen1, Ryosuke Mukai1, Makoto Nita1
1Faculty of Molecular Chemistry and Engineering, Kyoto Institute of Technology, Kyoto 606-8585, Japan.
Insights
We developed a novel lateral-flow immunoassay (LFIA) platform using recombinant antibody fragments fused with binding proteins for enhanced diagnostic performance. This innovation improves antigen detection sensitivity and reproducibility in point-of-care testing.
Area of Science:
- Biotechnology
- Immunotechnology
- Materials Science
Background:
- Lateral-flow immunoassays (LFIAs) are crucial for rapid point-of-care diagnostics.
- Traditional antibody immobilization on nitrocellulose (NC) membranes has limitations.
- Enhanced immobilization strategies are needed for improved LFIA performance.
Purpose of the Study:
- To develop an innovative LFIA platform using antibody fragments genetically fused with NC-binding proteins (NBPs).
- To enhance antibody immobilization stability and orientation on NC membranes.
- To improve the sensitivity and reproducibility of LFIAs.
Main Methods:
- Screening of 21 candidate NBPs, identifying lactoferrin (LF) as superior.
- Construction and expression of single-chain variable fragment-LF (scFv-LF) fusion proteins.
- Utilizing complementarity-determining region (CDR)-grafting for scFv-LF variants.
- Evaluating performance in dot blot, ELISA, and lateral flow assays.
Main Results:
- Lactoferrin demonstrated robust and stable adsorption onto NC membranes.
- scFv-LF fusion proteins showed high antigen-binding activity across a wide pH range.
- CDR-grafted scFv-LF variants (e.g., B1R/C2R) significantly enhanced antigen activity and signal intensity.
- The B1R/C2R scFv-LF fusion achieved a 100-fold lower detection limit for influenza B nucleocapsid protein.
Conclusions:
- The scFv-LF fusion platform enables stable and oriented antibody immobilization on NC membranes.
- This approach substantially enhances LFIA sensitivity and reproducibility.
- The modular CDR-grafting strategy facilitates rapid customization for next-generation diagnostics.
Abstract:
Lateral-flow immunoassays (LFIAs) are increasingly used as diagnostic tools for point-of-care testing because of their speed, simplicity, and cost-effectiveness. However, traditional antibody immobilization techniques, which primarily rely on the passive antibody adsorption onto nitrocellulose (NC) membranes, have notable limitations. Accordingly, we developed an innovative LFIA platform that integrates recombinant rabbit single-chain variable fragments (scFvs) genetically fused with NC-binding proteins (NBPs) to enhance immobilization and overall performance. Twenty-one candidate proteins were screened, of which lactoferrin emerged as a superior NBP because of its robust and stable adsorption onto NC membranes, even in the presence of surfactants. Fusion constructs of scFvs and lactoferrin (LF) (designated scFv-LF) were constructed and expressed in ExpiCHO cells. The purified scFv-LF proteins maintained high antigen-binding activity across a wide pH range (2-13) and exhibited improved performance in dot blot assays, enzyme-linked immunosorbent assay (ELISA), and lateral flow formats compared to scFvs alone. A complementarity-determining region (CDR)-grafting strategy was used to produce scFv-LF variants with modified regions that retained the C2R framework. C1R/C2R and B1R/C2R fusion proteins demonstrated enhanced antigen activity and high signal intensities. B1R/C2R scFv-LF fusion achieved a 100-fold lower detection limit for influenza B nucleocapsid protein than its nonfused counterpart. Overall, the scFv-LF fusion platform is a powerful solution for achieving stable and oriented antibody immobilization on NC membranes, substantially enhancing the sensitivity and reproducibility of LFIA systems. This modular approach facilitates the rapid customization of a diverse range of antigens through CDR grafting, paving the way for next-generation diagnostic developments.
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