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芯片上的免疫生物传感器:一种基于自供电微流控的电化学生物传感平台,用于即时检测蛋白质定量。

Immuno-biosensor on a chip: a self-powered microfluidic-based electrochemical biosensing platform for point-of-care quantification of proteins.

作者信息

Haghayegh Fatemeh, Salahandish Razieh, Zare Azam, Khalghollah Mahmood, Sanati-Nezhad Amir

机构信息

BioMEMS and Bioinspired Microfluidic Laboratory, Department of Mechanical and Manufacturing Engineering, University of Calgary, Calgary, Alberta T2N 1N4, Canada.

Center for BioEngineering Research and Education, University of Calgary, Calgary, Alberta T2N 1N4, Canada.

出版信息

Lab Chip. 2021 Dec 21;22(1):108-120. doi: 10.1039/d1lc00879j.

Abstract

The realization of true point-of-care (PoC) systems profoundly relies on integrating the bioanalytical assays into "on-chip" fluid handing platforms, with autonomous performance, reproducible functionality, and capacity in scalable production. Specifically for electrochemical immuno-biosensing, the complexity of the procedure used for ultrasensitive protein detection using screen-printed biosensors necessitates a lab-centralized practice, hindering the path towards near-patient use. This work develops a self-powered microfluidic chip that automates the entire assay of electrochemical immuno-biosensing, enabling controlled and sequential delivery of the biofluid sample and the sensing reagents to the surface of the embedded electrochemical biosensor. Without any need for active fluid handling, this novel sample-to-result testing kit offers antibody-antigen immunoreaction within 15 min followed by the subsequent automatic washing, redox probe delivery, and electrochemical signal recording. The redox molecules ([Fe(CN)]) are pre-soaked and dried in fiber and embedded inside the chip. The dimensions of the fluidic design and the parameters of the electrochemical bioassay are optimized to warrant a consistent and reproducible performance of the autonomous sensing device. The uniform diffusion of the dried redox into the injected solution and its controlled delivery onto the biosensor are modeled a two-phase flow computational fluid dynamics simulation, determining the suitable time for electrochemical signal measurement from the biosensor. The microfluidic chip performs well with both water-based fluids and human plasma with the optimized sample volume to offer a proof-of-concept ultrasensitive biosensing of SARS-CoV-2 nucleocapsid proteins spiked in phosphate buffer saline within 15 min. The on-chip N-protein biosensing demonstrates a linear detection range of 10 to 1000 pg mL with a limit of detection of 3.1 pg mL. This is the first self-powered microfluidic-integrated electrochemical immuno-biosensor that promises quantitative and ultrasensitive PoC biosensing. Once it is modified for its design and dimensions, it can be further used for autonomous detection of one or multiple proteins in diverse biofluid samples.

摘要

真正的即时检测(PoC)系统的实现,在很大程度上依赖于将生物分析检测集成到具有自主性能、可重复功能以及可扩展生产能力的“芯片上”流体处理平台中。特别是对于电化学免疫生物传感,使用丝网印刷生物传感器进行超灵敏蛋白质检测所采用的程序较为复杂,需要在实验室集中操作,这阻碍了其走向床边检测的进程。这项工作开发了一种自供电微流控芯片,该芯片可自动完成电化学免疫生物传感的整个检测过程,能够将生物流体样本和传感试剂可控且有序地输送到嵌入式电化学生物传感器的表面。这种新型的样本到结果检测试剂盒无需任何主动流体处理操作,在15分钟内即可完成抗体 - 抗原免疫反应,随后自动进行洗涤、氧化还原探针输送以及电化学信号记录。氧化还原分子([Fe(CN)])预先浸泡并干燥在纤维中,然后嵌入芯片内部。对流体设计的尺寸和电化学生物检测的参数进行了优化,以确保自主传感设备具有一致且可重复的性能。通过两相流计算流体动力学模拟对干燥的氧化还原分子在注入溶液中的均匀扩散及其向生物传感器的可控输送进行了建模,确定了从生物传感器测量电化学信号的合适时间。该微流控芯片在水性流体和人血浆中均表现良好,优化后的样本体积可在15分钟内对添加在磷酸盐缓冲盐水中的新型冠状病毒2(SARS-CoV-2)核衣壳蛋白进行概念验证性超灵敏生物传感。芯片上的N蛋白生物传感显示线性检测范围为10至1000 pg/mL,检测限为3.1 pg/mL。这是首个自供电的微流控集成电化学生物传感器,有望实现定量和超灵敏的即时检测生物传感。一旦对其设计和尺寸进行改进,它可进一步用于对多种生物流体样本中的一种或多种蛋白质进行自主检测。

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