Riahi Reza, Shaegh Seyed Ali Mousavi, Ghaderi Masoumeh, Zhang Yu Shrike, Shin Su Ryon, Aleman Julio, Massa Solange, Kim Duckjin, Dokmeci Mehmet Remzi, Khademhosseini Ali
Harvard-MIT Division of Health Sciences and Technology, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.
Biomaterials Innovation Research Center, Department of Medicine, Brigham and Women's Hospital, Harvard Medical School, Cambridge, MA 02139, USA.
Sci Rep. 2016 Apr 21;6:24598. doi: 10.1038/srep24598.
There is an increasing interest in developing microfluidic bioreactors and organs-on-a-chip platforms combined with sensing capabilities for continual monitoring of cell-secreted biomarkers. Conventional approaches such as ELISA and mass spectroscopy cannot satisfy the needs of continual monitoring as they are labor-intensive and not easily integrable with low-volume bioreactors. This paper reports on the development of an automated microfluidic bead-based electrochemical immunosensor for in-line measurement of cell-secreted biomarkers. For the operation of the multi-use immunosensor, disposable magnetic microbeads were used to immobilize biomarker-recognition molecules. Microvalves were further integrated in the microfluidic immunosensor chip to achieve programmable operations of the immunoassay including bead loading and unloading, binding, washing, and electrochemical sensing. The platform allowed convenient integration of the immunosensor with liver-on-chips to carry out continual quantification of biomarkers secreted from hepatocytes. Transferrin and albumin productions were monitored during a 5-day hepatotoxicity assessment in which human primary hepatocytes cultured in the bioreactor were treated with acetaminophen. Taken together, our unique microfluidic immunosensor provides a new platform for in-line detection of biomarkers in low volumes and long-term in vitro assessments of cellular functions in microfluidic bioreactors and organs-on-chips.
开发结合传感能力以持续监测细胞分泌生物标志物的微流控生物反应器和芯片器官平台的兴趣与日俱增。诸如酶联免疫吸附测定(ELISA)和质谱分析等传统方法无法满足持续监测的需求,因为它们劳动强度大且不易与小体积生物反应器集成。本文报道了一种基于微流控珠子的自动化电化学免疫传感器的开发,用于在线测量细胞分泌的生物标志物。对于这种可多次使用的免疫传感器的操作,使用一次性磁性微珠固定生物标志物识别分子。微阀进一步集成到微流控免疫传感器芯片中,以实现免疫测定的可编程操作,包括珠子加载和卸载、结合、洗涤以及电化学传感。该平台允许免疫传感器与芯片肝脏方便地集成,以对肝细胞分泌的生物标志物进行持续定量。在为期5天的肝毒性评估中监测转铁蛋白和白蛋白的产生,在此期间,生物反应器中培养的人原代肝细胞用对乙酰氨基酚进行处理。综上所述,我们独特的微流控免疫传感器为在小体积中在线检测生物标志物以及在微流控生物反应器和芯片器官中对细胞功能进行长期体外评估提供了一个新平台。