Nanoplasmonic Optical Fiber Sensing of SARS-CoV-2 Nucleocapsid Protein Using an Aptamer-DNA Tetrahedron Interface

Fuente: arXiv
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Main Authors: Pin, Xu, Jingyu, Cui, Zhi, Cheng, Shiu, Simon Chi-Chin, Jingxian, Cui, Yujian, Li, Yifan, Liu, Lin, Wang, Siu, Ryan Ho Ping, Tanner, Julian A., Changyuan, Yu
Format: Preprint
Published: 2025
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author Pin, Xu
Jingyu, Cui
Zhi, Cheng
Shiu, Simon Chi-Chin
Jingxian, Cui
Yujian, Li
Yifan, Liu
Lin, Wang
Siu, Ryan Ho Ping
Tanner, Julian A.
Changyuan, Yu
author_facet Pin, Xu
Jingyu, Cui
Zhi, Cheng
Shiu, Simon Chi-Chin
Jingxian, Cui
Yujian, Li
Yifan, Liu
Lin, Wang
Siu, Ryan Ho Ping
Tanner, Julian A.
Changyuan, Yu
contents Optical fiber sensing carries a number of potential advantages for diagnostics and biomarker detection and monitoring, yet particular challenges persist in linking molecular recognition events to a change in the refractive index. DNA aptamers carry particular advantages as functional surface molecules on optical fibers to tailor detection of specific biomolecules, yet challenges persist around sensitivity and specificity. Diagnosis of COVID-19 through detection of nucleocapsid protein (N protein) of SARS-CoV-2 provides a classic diagnostic challenge where optical fiber-based sensing could complement and improve on typical detection methods such as RT-PCR and rapid antigen testing. In this study, a plasmonic gold-coated tilted fiber Bragg grating (TFBG)-based optical biosensing platform was developed for ultrasensitive detection of SARS-CoV-2 N protein. By functionalizing the optical fiber surface with aptamers for the molecular recognition of N protein, changes in refractive index measured biomolecular binding, thereby achieving real-time, label-free detection. Additionally, integrating DNA nanostructures such as the DNA tetrahedron with aptamers significantly enhanced detection sensitivity, increasing signal intensity ~2.5 times compared to aptamers alone. This study provides new insights into the development of high-performance optical fiber sensing platforms which integrate DNA nanostructure interfaces to facilitate biomarker recognition and sensing.
format Preprint
id arxiv_https___arxiv_org_abs_2506_23612
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Nanoplasmonic Optical Fiber Sensing of SARS-CoV-2 Nucleocapsid Protein Using an Aptamer-DNA Tetrahedron Interface
Pin, Xu
Jingyu, Cui
Zhi, Cheng
Shiu, Simon Chi-Chin
Jingxian, Cui
Yujian, Li
Yifan, Liu
Lin, Wang
Siu, Ryan Ho Ping
Tanner, Julian A.
Changyuan, Yu
Optics
Quantitative Methods
Optical fiber sensing carries a number of potential advantages for diagnostics and biomarker detection and monitoring, yet particular challenges persist in linking molecular recognition events to a change in the refractive index. DNA aptamers carry particular advantages as functional surface molecules on optical fibers to tailor detection of specific biomolecules, yet challenges persist around sensitivity and specificity. Diagnosis of COVID-19 through detection of nucleocapsid protein (N protein) of SARS-CoV-2 provides a classic diagnostic challenge where optical fiber-based sensing could complement and improve on typical detection methods such as RT-PCR and rapid antigen testing. In this study, a plasmonic gold-coated tilted fiber Bragg grating (TFBG)-based optical biosensing platform was developed for ultrasensitive detection of SARS-CoV-2 N protein. By functionalizing the optical fiber surface with aptamers for the molecular recognition of N protein, changes in refractive index measured biomolecular binding, thereby achieving real-time, label-free detection. Additionally, integrating DNA nanostructures such as the DNA tetrahedron with aptamers significantly enhanced detection sensitivity, increasing signal intensity ~2.5 times compared to aptamers alone. This study provides new insights into the development of high-performance optical fiber sensing platforms which integrate DNA nanostructure interfaces to facilitate biomarker recognition and sensing.
title Nanoplasmonic Optical Fiber Sensing of SARS-CoV-2 Nucleocapsid Protein Using an Aptamer-DNA Tetrahedron Interface
topic Optics
Quantitative Methods
url https://arxiv.org/abs/2506.23612