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基于连续体中的束缚态的分子印迹聚合物传感器用于 TGF-β的选择性痕量检测。

Molecularly Imprinted Polymer Sensor Empowered by Bound States in the Continuum for Selective Trace-Detection of TGF-beta.

机构信息

Institute of Applied Sciences and Intelligent Systems, National Research Council, Via Pietro Castellino 111, Napoli, 80131, Italy.

Institute of Nanotechnology, National Research Council, c/o Campus Ecotekne, Via Monteroni, Lecce, 73100, Italy.

出版信息

Adv Sci (Weinh). 2024 Nov;11(41):e2401843. doi: 10.1002/advs.202401843. Epub 2024 Sep 5.

Abstract

The integration of advanced materials and photonic nanostructures can lead to enhanced biodetection capabilities, crucial in clinical scenarios and point-of-care diagnostics, where simplified strategies are essential. Herein, a molecularly imprinted polymer (MIP) photonic nanostructure is demonstrated, which selectively binding to transforming growth factor-beta (TGF-β), in which the sensing transduction is enhanced by bound states in the continuum (BICs). The MIP operating as a synthetic antibody matrix and coupled with BIC resonance, enhances the optical response to TGF-β at imprinted sites, leading to an augmented detection capability, thoroughly evaluated through spectral shift and optical lever analogue readout. The validation underscores the MIP-BIC sensor capability to detect TGF-β in spiked saliva, achieving a limit of detection of 10 fM and a resolution of 0.5 pM at physiological concentrations, with a precision of two orders of magnitude above discrimination threshold in patients. The MIP tailored selectivity is highlighted by an imprinting factor of 52, showcasing the sensor resistance to interference from other analytes. The MIP-BIC sensor architecture streamlines the detection process eliminating the need for complex sandwich immunoassays and demonstrates the potential for high-precision quantification. This positions the system as a robust tool for biomarker detection, especially in real-world diagnostic scenarios.

摘要

先进材料和光子纳米结构的融合可以提高生物检测能力,在临床和即时诊断场景中至关重要,因为简化策略是必不可少的。本文展示了一种分子印迹聚合物(MIP)光子纳米结构,它可以选择性地结合转化生长因子-β(TGF-β),其中结合态连续体(BIC)增强了传感转导。MIP 作为合成抗体基质与 BIC 共振结合,增强了印迹部位对 TGF-β的光学响应,从而提高了检测能力,通过光谱位移和光学杠杆模拟读数进行了彻底评估。验证强调了 MIP-BIC 传感器检测唾液中 TGF-β的能力,在生理浓度下达到 10 fM 的检测限和 0.5 pM 的分辨率,在患者中比判别阈值高两个数量级的精度。MIP 具有 52 的印迹因子,突出了其对其他分析物干扰的选择性,展示了传感器对干扰的抵抗力。MIP-BIC 传感器架构简化了检测过程,无需复杂的夹心免疫分析,并展示了高精度定量的潜力。该系统特别适用于实际诊断场景,是一种强大的生物标志物检测工具。

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