INESC Microsistemas e Nanotecnologias, IN-Institute of Nanoscience and Nanotechnology, Lisbon, Portugal.
INESC Microsistemas e Nanotecnologias, IN-Institute of Nanoscience and Nanotechnology, Lisbon, Portugal; Department of Bioengineering, Instituto Superior Técnico, Lisbon, Portugal.
Biosens Bioelectron. 2014 Jul 15;57:284-91. doi: 10.1016/j.bios.2014.02.009. Epub 2014 Feb 18.
The miniaturization of biosensors using microfluidics has potential in enabling the development of point-of-care devices, with the added advantages of reduced time and cost of analysis with limits-of-detection comparable to those obtained through traditional laboratory techniques. Interfacing microfluidic devices with the external world can be difficult especially in aspects involving fluid handling and the need for simple sample insertion that avoids special equipment or trained personnel. In this work we present a point-of-care prototype system by integrating capillary microfluidics with a microfabricated photodiode array and electronic instrumentation into a hand-held unit. The capillary microfluidic device is capable of autonomous and sequential fluid flow, including control of the average fluid velocity at any given point of the analysis. To demonstrate the functionality of the prototype, a model chemiluminescence ELISA was performed. The performance of the integrated optical detection in the point-of-care prototype is equal to that obtained with traditional bench-top instrumentation. The photodiode signals were acquired, displayed and processed by a simple graphical user interface using a computer connected to the microcontroller through USB. The prototype performed integrated chemiluminescence ELISA detection in about 15 min with a limit-of-detection of ≈2 nM with an antibody-antigen affinity constant of ≈2×10(7) M(-1).
利用微流控技术实现生物传感器的微型化,有可能开发出即时检测设备,具有减少分析时间和成本的额外优势,并且检测限与传统实验室技术相当。将微流控设备与外部世界接口连接可能具有挑战性,特别是在涉及流体处理和需要简单样本插入的方面,以避免特殊设备或经过培训的人员。在这项工作中,我们通过将毛细管微流控技术与微制造光电二极管阵列和电子仪器集成到一个手持式单元中,展示了一种即时检测原型系统。毛细管微流控设备能够实现自主和顺序的流体流动,包括控制分析过程中任意点的平均流体速度。为了演示原型的功能,我们进行了模型化学发光 ELISA 实验。集成光学检测在即时检测原型中的性能与传统台式仪器相当。光电二极管信号通过使用连接到微控制器的计算机通过 USB 连接的简单图形用户界面进行采集、显示和处理。该原型在大约 15 分钟内完成集成化学发光 ELISA 检测,检测限约为 2 nM,抗体-抗原亲和力常数约为 2×10(7) M(-1)。