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一种用于生物标志物检测的自容式声流控平台。

A self-contained acoustofluidic platform for biomarker detection.

机构信息

State Key Laboratory of Precision Measuring Technology & Instruments, and College of Precision Instrument and Opto-electronics Engineering, Tianjin University, Tianjin 300072, China.

出版信息

Lab Chip. 2022 Oct 11;22(20):3817-3826. doi: 10.1039/d2lc00541g.

Abstract

Self-contained microfluidic platforms with on-chip integration of flow control units, microreactors, (bio)sensors, are ideal systems for point-of-care (POC) testing. However, current approaches such as micropumps and microvalves, increase the cost and the control system, and it is rather difficult to integrate into a single chip. Herein, we demonstrated a versatile acoustofluidic platform actuated by a Lamb wave resonator (LWR) array, in which pumping, mixing, fluidic switching, and particle trapping are all achieved on a single chip. The high-speed microscale acoustic streaming triggered by the LWR in the confined microchannel can be utilized to realize a flow resistor and switch. Variable unidirectional pumping was realized by regulating the relative position of the LWR in various custom-designed microfluidic structures and adoption of different geometric parameters for the microchannel. In addition, to realize quantitative biomarker detection, the on-chip flow resistor, micropump, micromixer and particle trapper were also integrated with a CMOS photo sensor and electronic driver circuit, resulting in an automated handheld microfluidic system with no moving parts. Finally, the acoustofluidic platform was tested for prostate-specific antigen (PSA) sensing, which demonstrates the biocompatibility and applied potency of this proposed self-contained system in POC biomedical applications.

摘要

具有片上集成流量控制单元、微反应器和(生物)传感器的自容式微流控平台是即时检测(POC)的理想系统。然而,当前的方法,如微泵和微阀,会增加成本和控制系统,并且很难集成到单个芯片中。在此,我们展示了一种由兰姆波谐振器(LWR)阵列驱动的多功能声流控平台,其中泵送、混合、流体切换和颗粒捕获都可以在单个芯片上实现。LWR 在受限微通道中引发的高速微尺度声流可以用于实现流量电阻器和开关。通过调节 LWR 在各种定制设计的微流控结构中的相对位置,并采用不同的微通道几何参数,实现了可变的单向泵送。此外,为了实现定量生物标志物检测,片上流量电阻器、微泵、微混合器和颗粒捕获器也与 CMOS 光电传感器和电子驱动电路集成在一起,从而实现了无运动部件的自动化手持式微流控系统。最后,对声流控平台进行了前列腺特异性抗原(PSA)传感测试,证明了该自容式系统在 POC 生物医学应用中的生物相容性和应用潜力。

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