Yes/No Quantitative Analysis of Single-Stranded Oligonucleotides with Lateral Flow Assays

Accessible molecular diagnostics is fundamental to effective healthcare. While most current point-of-care devices detect only the presence of a molecular biomarker(s), biomarker quantification can be equally important for decision-making on disease treatment and containment. Here, we present a diagnostic platform that enables the equipment-free quantification of molecular biomarkers with the simplicity of a binary (yes/no) readout. This capability is achieved by integrating a stoichiometric quantitative approach with widely available and easy-to-use lateral flow dipsticks. To implement the approach, we engineer negative cooperativity into target–probe binding interactions for oligonucleotide targets as a model system. The resulting threshold-based semi-quantitative assay with lateral flow dipsticks quantifies targets in the low-nanomolar range and operates reliably in complex biological backgrounds. A key advantage of this platform is its potential adaptability to new and emerging targets: repurposing will require only reagent redesign, without the need for additional fabrication.

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Publication Details

Journal
Biosensors
Published
2026-08-26
DOI
https://doi.org/10.3390/bios16090465
Primary Topic
Advanced Biosensing Techniques and Applications
Type
article
Field-Weighted Citation Impact
0.00

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article

Yes/No Quantitative Analysis of Single-Stranded Oligonucleotides with Lateral Flow Assays

Irina V. Nesterova, Niusha Hassandoost, Leslie Munoz, Kerrigan Kotecki
Biosensors
Advanced Biosensing Techniques and Applications
article

Yes/No Quantitative Analysis of Single-Stranded Oligonucleotides with Lateral Flow Assays

Irina V. Nesterova, Niusha Hassandoost, Leslie Munoz, Kerrigan Kotecki
article en

Abstract

Accessible molecular diagnostics is fundamental to effective healthcare. While most current point-of-care devices detect only the presence of a molecular biomarker(s), biomarker quantification can be equally important for decision-making on disease treatment and containment. Here, we present a diagnostic platform that enables the equipment-free quantification of molecular biomarkers with the simplicity of a binary (yes/no) readout. This capability is achieved by integrating a stoichiometric quantitative approach with widely available and easy-to-use lateral flow dipsticks. To implement the approach, we engineer negative cooperativity into target–probe binding interactions for oligonucleotide targets as a model system. The resulting threshold-based semi-quantitative assay with lateral flow dipsticks quantifies targets in the low-nanomolar range and operates reliably in complex biological backgrounds. A key advantage of this platform is its potential adaptability to new and emerging targets: repurposing will require only reagent redesign, without the need for additional fabrication.

BiosensorsVol. 16(9)
Northern Illinois University (US)
National Science Foundation, National Institutes of Health
Peace, Justice and strong institutions
Openalex Percentile: Top 17%
Advanced Biosensing Techniques and Applications
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