Luan Qiyue, Cahoon Stacey, Wu Agnes, Bale Shyam Sundhar, Yarmush Martin, Bhushan Abhinav
Department of Biomedical Engineering, Illinois Institute of Technology, Chicago, IL, 60616, USA.
Center for Engineering in Medicine, Massachusetts General Hospital, Harvard Medical School, Boston, MA, 02114, USA.
Biomed Microdevices. 2017 Nov 11;19(4):101. doi: 10.1007/s10544-017-0244-6.
Recent progress in the development of microfluidic microphysiological systems such as 'organs-on-chips' and microfabricated cell culture is geared to simulate organ-level physiology. These tissue models leverage microengineering technologies that provide capabilities of presenting cultured cells with input signals in a more physiologically relevant context such as perfused flow. Proteins that are secreted from cells have important information about the health of the cells. Techniques to quantify cellular proteins include mass spectrometry to ELISA (enzyme-linked immunosorbent assay). Although our capability to perturb the cells in the microphysiological systems with varying inputs is well established, we lack the tools to monitor in-line the cellular responses. User intervention for sample collection and off-site is cumbersome, causes delays in obtaining results, and is especially expensive because of collection, storage, and offline processing of the samples, and in many case, technically impractical to carry out because of limitated sample volumes. To address these shortcomings, we report the development of an ELISA that is carried out in-line under perfusion within a microfluidic device. Using this assay, we measured the albumin secreted from perfused hepatocytes without and under stimulation by IL-6. Since the method is based on a sandwich ELISA, we envision broad application of this technology to not just organs-on-chips but also to characterizing the temporal release and measurement of soluble factors and response to drugs.
微流控微生理系统(如“芯片器官”)和微制造细胞培养技术的最新进展旨在模拟器官水平的生理学。这些组织模型利用微工程技术,能够在更具生理相关性的环境(如灌注流)中为培养的细胞提供输入信号。细胞分泌的蛋白质包含有关细胞健康状况的重要信息。量化细胞蛋白质的技术包括从质谱分析到酶联免疫吸附测定(ELISA)。尽管我们在微生理系统中用不同输入扰动细胞的能力已得到充分确立,但我们缺乏在线监测细胞反应的工具。用户进行样本采集和现场外处理很麻烦,会导致结果获取延迟,而且由于样本的采集、存储和离线处理成本特别高,并且在许多情况下,由于样本量有限,在技术上难以实施。为了解决这些缺点,我们报告了一种在微流控装置内灌注条件下在线进行的ELISA的开发。使用这种检测方法,我们测量了在无IL-6刺激和有IL-6刺激情况下灌注肝细胞分泌的白蛋白。由于该方法基于夹心ELISA,我们设想这项技术不仅可广泛应用于芯片器官,还可用于表征可溶性因子的时间释放和测量以及对药物的反应。