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基于高度敏感光热微流控线的双通道免疫传感器,用于即时检测。

Highly Sensitive Photothermal Microfluidic Thread-Based Duplex Immunosensor for Point-of-Care Monitoring.

机构信息

Department of Electrical and Computer Engineering, Tufts University, Medford, Massachusetts 02155, United States.

Nano Lab, Tufts University, Medford, Massachusetts 02155, United States.

出版信息

Anal Chem. 2023 Aug 29;95(34):12802-12810. doi: 10.1021/acs.analchem.3c01778. Epub 2023 Aug 14.

Abstract

Herein, we successfully developed a thread-based analytical device (μTAD) for simultaneous immunosensing of two biomolecules with attomolar sensitivity by using a photothermal effect. A photothermal effect exploits a strong light-to-heat energy conversion of plasmonic metallic nanoparticles at localized surface plasmon resonance. The key innovation is to utilize the cotton thread to realize this sensor and the use of chitosan modification for enhancing the microfluidic properties, for improving the efficiency of photothermal conversion, and for sensor stability. The developed μTAD sensor consists of (i) a sample zone, (ii) a conjugation zone coated with gold nanoparticles bound with an antibody (AuNPs-Ab), and (iii) a test zone immobilized with a capture antibody (anti-Ab). The prepared μTAD is assembled in a custom three-dimensional (3D) printed device which holds the laser for illumination and the thermometer for readout. The 3D-printed supportive device enhances signal response by focusing light and localizing the heat generated. For proof of concept, simultaneous sensing of two key stress and inflammation biomarkers, namely, cortisol and interleukin-6 (IL-6), are monitored using this technique. Under optimization, this device exhibited a detection linear range of 2.0-14.0 ag/mL (R = 0.9988) and 30.0-360.0 fg/mL (R = 0.9942) with a detection limit (LOD) of 1.40 ag/mL (∼3.86 amol/L) and 20.0 fg/mL (∼950.0 amol/L) for cortisol and IL-6, respectively. Furthermore, the analysis of both biomolecules in human samples indicated recoveries in the range of 98.8%-102.88% with the highest relative standard deviation being 3.49%, offering great accuracy and precision. These results are the highest reported sensitivity for these analytes using an immunoassay method. Our PT-μTAD strategy is therefore a promising approach for detecting biomolecules in resource-limited point-of-care settings.

摘要

本文成功开发了一种基于纤维的分析装置(μTAD),该装置通过光热效应以纳摩尔灵敏度同时对两种生物分子进行免疫传感。光热效应利用等离子体金属纳米粒子在局域表面等离子体共振处的强光到热的能量转换。这项创新的关键是利用棉线来实现这种传感器,并利用壳聚糖修饰来提高微流控性能、提高光热转换效率和传感器稳定性。所开发的μTAD 传感器由(i)样品区、(ii)涂有与抗体结合的金纳米粒子的缀合区(AuNPs-Ab)和(iii)固定捕获抗体(抗 Ab)的测试区组成。制备的μTAD 被组装在一个定制的三维(3D)打印设备中,该设备包含用于照明的激光和用于读取的温度计。3D 打印的支撑装置通过聚焦光和定位产生的热量来增强信号响应。为了验证概念,使用该技术同时监测两种关键的应激和炎症生物标志物,即皮质醇和白细胞介素-6(IL-6)的传感。在优化条件下,该装置显示出检测线性范围为 2.0-14.0 ag/mL(R = 0.9988)和 30.0-360.0 fg/mL(R = 0.9942),检测限(LOD)分别为 1.40 ag/mL(约 3.86 amol/L)和 20.0 fg/mL(约 950.0 amol/L)。此外,对人体样本中这两种生物分子的分析表明,皮质醇和 IL-6 的回收率在 98.8%-102.88%范围内,最高相对标准偏差为 3.49%,具有很高的准确性和精密度。这些结果是使用免疫分析方法检测这些分析物的最高报道灵敏度。因此,我们的 PT-μTAD 策略是在资源有限的即时护理环境中检测生物分子的一种很有前途的方法。

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