聚乙二醇包被生物传感器在微流控剪切流下检测CA-125的稳定性和灵敏度

IF 4.3 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
ACS Omega Pub Date : 2024-12-20 eCollection Date: 2025-01-14 DOI:10.1021/acsomega.4c07596
Yudong Wang, Niladri Talukder, Bharath Babu Nunna, Ming Lu, Xiao Tong, Eon Soo Lee
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引用次数: 0

摘要

近年来,基于微流体的即时诊断工具(POC)获得了极大的兴趣,提供了快速和具有成本效益的疾病检测。将微流控平台与生物传感器相结合,将芯片实验室技术与POC诊断设备相结合,这是一个日益增长的趋势。尽管在将生物传感器整合到微流控系统方面做了大量的努力,但当生物传感器在微流控剪切流条件下工作时,研究人员对生物标志物检测的稳定性进行了非常有限的研究。金纳米颗粒(AuNPs)是一种广泛应用于电容式生物传感器的材料,用于固定抗体和增强灵敏度。然而,由于AuNPs的团聚性质,它在提供微流体剪切流中生物标志物的稳定检测方面存在局限性。本研究通过使用2 kDa聚乙二醇(PEG)作为中间生物功能层,将CA-125抗体固定在金交叉电极上,以稳定和准确地检测CA-125抗原,从而解决了这些局限性。在静滴和微流切变条件下,评价了AuNPs和peg包被生物传感器检测CA-125抗原的稳定性和灵敏度。实验结果表明,在静态滴滴条件下检测CA-125抗原-抗体偶联时,peg包被生物传感器的电容性信号响应(5660 pF, 10 kHz)比aunp包被生物传感器的信号响应(2551 pF, 10 kHz)高2.2倍,表明peg包被生物传感器具有更高的灵敏度。此外,与aunp包被生物传感器(ΔCp%↓= 32.4%)测得的电信号相比,peg包被生物传感器在静滴和微流切变条件下检测CA-125抗原的一致性更好(10 kHz时Cp下降百分比(ΔCp%↓)= 2.9%),这表明peg包被生物传感器在微流切变条件下检测CA-125抗原的稳定性更高。随着聚乙二醇涂层生物传感器带来的这些重大改进,特别是在微流体条件下,开发用于POC诊断应用的电生物传感器的实质性障碍已经被克服,加速了该领域的进一步发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Enhanced Stability and Sensitivity for CA-125 Detection Under Microfluidic Shear Flow Using Polyethylene Glycol-Coated Biosensor.

Enhanced Stability and Sensitivity for CA-125 Detection Under Microfluidic Shear Flow Using Polyethylene Glycol-Coated Biosensor.

Enhanced Stability and Sensitivity for CA-125 Detection Under Microfluidic Shear Flow Using Polyethylene Glycol-Coated Biosensor.

Enhanced Stability and Sensitivity for CA-125 Detection Under Microfluidic Shear Flow Using Polyethylene Glycol-Coated Biosensor.

The microfluidic-based point-of-care (POC) diagnostic tool has garnered significant interest in recent years, offering rapid and cost-effective disease detection. There is a growing trend toward integrating microfluidic platforms with biosensors, aligning lab-on-a-chip technologies with POC diagnostic devices. Despite numerous efforts to incorporate biosensors into microfluidic systems, researchers have performed very limited investigations on the stability of biomarker detection when biosensors operate under microfluidic shear flow conditions. Gold nanoparticles (AuNPs) are a widely employed material in capacitive biosensors for antibody immobilization and sensitivity enhancement. However, AuNPs have limitations in providing stable detection of biomarkers within microfluidic shear flow due to their agglomeration nature. This study addresses these limitations by employing 2 kDa polyethylene glycol (PEG) as an intermediate biofunctional layer to immobilize CA-125 antibodies on gold-interdigitated electrodes for the stable and accurate detection of CA-125 antigens. The stabilities and sensitivities of AuNPs and PEG-coated biosensors are evaluated under both static drop and microfluidic shear flow conditions for CA-125 antigen detection. The experimental results demonstrate a capacitive signal response (5660 pF at 10 kHz) 2.2 times higher using the PEG-coated biosensor than the signal (2551 pF at 10 kHz) measured by the AuNP-coated biosensor in the detection of CA-125 antigen-antibody conjugation under static drop conditions, indicating the higher sensitivity of the PEG-coated biosensor. Additionally, the PEG-coated biosensor exhibits better consistency for the CA-125 antigen detection between static drop and microfluidic shear flow conditions (Cp decrease in percentage (ΔCp%↓) = 2.9% at 10 kHz) compared to the electrical signals measured using the AuNP-coated biosensor (ΔCp%↓ = 32.4% at 10 kHz), which suggests that the PEG-coated biosensor demonstrates higher stability for CA-125 antigen detection under microfluidic shear flow conditions. With these significant improvements brought by the PEG-coated biosensor, especially under microfluidic conditions, a substantial hurdle in developing electrical biosensors for POC diagnostic applications has been overcome, expediting further advancements in the field.

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来源期刊
ACS Omega
ACS Omega Chemical Engineering-General Chemical Engineering
CiteScore
6.60
自引率
4.90%
发文量
3945
审稿时长
2.4 months
期刊介绍: ACS Omega is an open-access global publication for scientific articles that describe new findings in chemistry and interfacing areas of science, without any perceived evaluation of immediate impact.
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