Imaizumi Yuki, Goda Tatsuro, Toya Yutaro, Matsumoto Akira, Miyahara Yuji
Institute of Biomaterials and Bioengineering, Tokyo Medical and Dental University (TMDU) , Tokyo , Japan.
Sci Technol Adv Mater. 2016 Jul 26;17(1):337-345. doi: 10.1080/14686996.2016.1198217. eCollection 2016.
The extracellular ionic microenvironment has a close relationship to biological activities such as by cellular respiration, cancer development, and immune response. A system composed of ion-sensitive field-effect transistors (ISFET), cells, and program-controlled fluidics has enabled the acquisition of real-time information about the integrity of the cell membrane via pH measurement. Here we aimed to extend this system toward floating cells such as T lymphocytes for investigating complement activation and pharmacokinetics through alternations in the plasma membrane integrity. We functionalized the surface of tantalum oxide gate insulator of ISFET with oleyl-tethered phosphonic acid for interacting with the plasma membranes of floating cells without affecting the cell signaling. The surface modification was characterized by X-ray photoelectron spectroscopy and water contact angle measurements. The Nernst response of -37.8 mV/pH was obtained for the surface-modified ISFET at 37 °C. The oleyl group-functionalized gate insulator successfully captured Jurkat T cells in a fluidic condition without acute cytotoxicity. The system was able to record the time course of pH changes at the cells/ISFET interface during the process of instant addition and withdrawal of ammonium chloride. Further, the plasma membrane injury of floating cells after exposure by detergent Triton™ X-100 was successfully determined using the modified ISFET with enhanced sensitivity as compared with conventional hemolysis assays.
细胞外离子微环境与生物活性密切相关,如细胞呼吸、癌症发展和免疫反应等。由离子敏感场效应晶体管(ISFET)、细胞和程控流体ics组成的系统能够通过pH测量获取有关细胞膜完整性的实时信息。在这里,我们旨在将该系统扩展到诸如T淋巴细胞等悬浮细胞,以通过质膜完整性的变化来研究补体激活和药代动力学。我们用油酸连接的膦酸对ISFET的氧化钽栅极绝缘体表面进行功能化,以便与悬浮细胞的质膜相互作用而不影响细胞信号传导。通过X射线光电子能谱和水接触角测量对表面改性进行了表征。在37℃下,表面改性的ISFET获得了-37.8 mV/pH的能斯特响应。油酸基功能化的栅极绝缘体在流体条件下成功捕获了Jurkat T细胞,且无急性细胞毒性。该系统能够记录氯化铵即时添加和撤出过程中细胞/ISFET界面pH变化的时间进程。此外,与传统溶血试验相比,使用灵敏度增强的改性ISFET成功测定了去污剂Triton™ X-100暴露后悬浮细胞的质膜损伤。