Sensitive and prolonged intracellular electrophysiological recording by three‐dimensional nanodensity regulation

Author:

Liu Xingxing1,Xu Dongxin2,Fang Jiaru2,Liao Yuheng3,Zhang Mingyue2,Li Hongbo2,Yang Wenjian3,Wu Yue3ORCID,Xu Zhongyuan3,Hu Ning45ORCID,Zhang Diming3

Affiliation:

1. Guangdong Provincial Key Laboratory of Industrial Surfactant Institute of Chemical Engineering Guangdong Academy of Sciences Guangzhou China

2. State Key Laboratory of Optoelectronic Materials and Technologies Guangdong Province Key Laboratory of Display Material and Technology School of Electronics and Information Technology Sun Yat‐sen University Guangzhou China

3. Research Center for Intelligent Sensing Systems Zhejiang Laboratory Hangzhou China

4. Department of Chemistry Zhejiang University Hangzhou China

5. Zhejiang‐Israel Joint Laboratory of Self‐Assembling Functional Materials ZJU‐Hangzhou Global Scientific and Technological Innovation Center Zhejiang University Hangzhou China

Abstract

AbstractWith the advancement of micro/nanotechnologies, multielectrodes arrays (MEAs) with different three‐dimensional (3D) micro/nanostructures have been developed to achieve intracellular action potential recording of cardiomyocytes. However, the effect of the 3D micro/nanostructures density on the intracellular recording has not been fully investigated. In this work, 3D tunable nanodensity electrode arrays (TNDEA) are fabricated by hydrothermal synthesis and standard microfabrication to explore the effect of nanodensity regulation on intracellular biosensing. By low‐voltage electroporation, the signal quality of intracellular potentials recorded by the low‐nanodensity TNDEA showed was significantly improved compared to those recorded by the high‐nanodensity TNDEA. The low‐nanodensity TNDEA improved the amplitude (up to 7.7 mV), signal‐to‐noise ratio (SNR) (up to 69.46 dB), recording duration (up to 83 min), and recording yield (∼100%). The 3D nanodensity regulating strategy has achieved sensitive and prolonged intracellular biosensing of action potentials and is expected to be a powerful electrophysiological research tool in the biomedical field.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Biomedical Engineering,Biomaterials

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