生物电子学
电生理学
缺氧(环境)
心脏电生理学
细胞内
细胞外
神经科学
生物
化学
细胞生物学
纳米技术
材料科学
生物传感器
氧气
有机化学
作者
Haitao Liu,Olurotimi A. Bolonduro,Ning Hu,Jie Ju,Akshita A. Rao,Breanna M. Duffy,Zhaohui Huang,Lauren D. Black,Brian P. Timko
出处
期刊:Nano Letters
[American Chemical Society]
日期:2020-02-24
卷期号:20 (4): 2585-2593
被引量:186
标识
DOI:10.1021/acs.nanolett.0c00076
摘要
We demonstrated a bioelectronic heart-on-a-chip model for studying the effects of acute hypoxia on cardiac function. A microfluidic channel enabled rapid modulation of medium oxygenation, which mimicked the regimes induced by a temporary coronary occlusion and reversibly activated hypoxia-related transduction pathways in HL-1 cardiac model cells. Extracellular bioelectronics provided continuous readouts demonstrating that hypoxic cells experienced an initial period of tachycardia followed by a reduction in beat rate and eventually arrhythmia. Intracellular bioelectronics consisting of Pt nanopillars temporarily entered the cytosol following electroporation, yielding action potential (AP)-like readouts. We found that APs narrowed during hypoxia, consistent with proposed mechanisms by which oxygen deficits activate ATP-dependent K+ channels that promote membrane repolarization. Significantly, both extra- and intracellular devices could be multiplexed, enabling mapping capabilities unachievable by other electrophysiological tools. Our platform represents a significant advance toward understanding electrophysiological responses to hypoxia and could be applicable to disease modeling and drug development.
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