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一种结合了干涉传感器和注塑微流控技术的自动化光流体生物传感器平台。

An automated optofluidic biosensor platform combining interferometric sensors and injection moulded microfluidics.

机构信息

School of Engineering, RMIT University, Melbourne, Australia.

出版信息

Lab Chip. 2017 Aug 8;17(16):2793-2804. doi: 10.1039/c7lc00524e.

Abstract

A primary limitation preventing practical implementation of photonic biosensors within point-of-care platforms is their integration with fluidic automation subsystems. For most diagnostic applications, photonic biosensors require complex fluid handling protocols; this is especially prominent in the case of competitive immunoassays, commonly used for detection of low-concentration, low-molecular weight biomarkers. For this reason, complex automated microfluidic systems are needed to realise the full point-of-care potential of photonic biosensors. To fulfil this requirement, we propose an on-chip valve-based microfluidic automation module, capable of automating such complex fluid handling. This module is realised through application of a PDMS injection moulding fabrication technique, recently described in our previous work, which enables practical fabrication of normally closed pneumatically actuated elastomeric valves. In this work, these valves are configured to achieve multiplexed reagent addressing for an on-chip diaphragm pump, providing the sample and reagent processing capabilities required for automation of cyclic competitive immunoassays. Application of this technique simplifies fabrication and introduces the potential for mass production, bringing point-of-care integration of complex automated microfluidics into the realm of practicality. This module is integrated with a highly sensitive, label-free bimodal waveguide photonic biosensor, and is demonstrated in the context of a proof-of-concept biosensing assay, detecting the low-molecular weight antibiotic tetracycline.

摘要

将光子生物传感器集成到即时检测平台中面临的一个主要限制是其与流体自动化子系统的集成。对于大多数诊断应用,光子生物传感器需要复杂的流体处理协议;对于竞争性免疫分析,这一点尤为突出,因为它常用于检测低浓度、低分子量的生物标志物。出于这个原因,需要复杂的自动化微流控系统来实现光子生物传感器的全部即时检测潜力。为了满足这一要求,我们提出了一种基于芯片阀的微流自动化模块,能够实现这种复杂的流体处理自动化。该模块通过应用 PDMS 注塑成型制造技术来实现,该技术在我们之前的工作中已有描述,可实际制造出常闭气动致动弹性体阀。在这项工作中,这些阀被配置为实现片上隔膜泵的多路试剂寻址,从而提供了自动化循环竞争性免疫分析所需的样品和试剂处理能力。该技术的应用简化了制造过程,并引入了批量生产的潜力,使复杂的自动化微流技术在即时检测中的集成成为可能。该模块与高度灵敏、无标记双模波导光子生物传感器集成在一起,并在概念验证生物传感测定的背景下进行了演示,检测了低分子量抗生素四环素。

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