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Dual-Functionalized Glass Micropipette Sensor for Simultaneous High Sensitivity Detection of Cancer Biomarkers.

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ACS applied materials & interfaces 📖 저널 OA 16.9% 2021: 0/1 OA 2022: 0/3 OA 2024: 3/10 OA 2025: 11/43 OA 2026: 7/65 OA 2021~2026 2025 Vol.17(14) p. 20717-20725
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Wang G, Xu S, Feng Y, Huang L, Wang Y, Liu N

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Early cancer detection is crucial for improving patient survival rates.

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↓ .bib ↓ .ris
APA Wang G, Xu S, et al. (2025). Dual-Functionalized Glass Micropipette Sensor for Simultaneous High Sensitivity Detection of Cancer Biomarkers.. ACS applied materials & interfaces, 17(14), 20717-20725. https://doi.org/10.1021/acsami.4c22311
MLA Wang G, et al.. "Dual-Functionalized Glass Micropipette Sensor for Simultaneous High Sensitivity Detection of Cancer Biomarkers.." ACS applied materials & interfaces, vol. 17, no. 14, 2025, pp. 20717-20725.
PMID 40135971 ↗

Abstract

Early cancer detection is crucial for improving patient survival rates. However, current single-biomarker detection methods often face challenges, such as insufficient sensitivity, poor accuracy, and false positives. To address these issues, we report a dual-functionalized glass micropipet sensor (DFMS) capable of simultaneously detecting two cancer biomarkers, nucleic acids and proteins. The inner surface of the sensor is functionalized with amino-modified silicon nanowires (SiNWs) to capture disease-related miRNAs, enabling ionic-current-based detection, while the outer surface is decorated with gold nanoparticles to anchor specific protein aptamers for Raman-based detection. This dual-functionalization significantly enhances the sensitivity and selectivity by combining ionic current amplification with plasmonic Raman signal enhancement. The sensor achieves detection limits of 1 aM for miRNAs and 0.001 ng/mL for proteins, with minimal mutual interference between the two detection modes, ensuring accurate and independent detection. Validation with prostate cancer biomarkers miRNA-1246 and PSA, as well as gastric cancer biomarkers miRNA-106a and CD44, demonstrates its outstanding sensitivity, selectivity, stability, and broad applicability, providing a novel approach for early cancer detection with significant clinical implications.

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