Fabrication of Multiple-Channel Electrochemical Microneedle Electrode Array via Separated Functionalization and Assembly Method

Author:

Huang Xin-Shuo1,Huang Shuang12,Zheng Shan-Tao1,Liang Bao-Ming1,Zhang Tao2,Yue Wan3,Liu Fan-Mao4,Shi Peng5,Xie Xi1,Chen Hui-Jiuan1

Affiliation:

1. State Key Laboratory of Optoelectronic Materials and Technologies, School of Electronics and Information Technology, Sun Yat-sen University, Guangzhou 510006, China

2. School of Biomedical Engineering, Shenzhen Campus of Sun Yat-sen University, Shenzhen 518107, China

3. School of Materials Science and Engineering, Sun Yat-sen University, Guangzhou 510006, China

4. Division of Hypertension and Vascular Diseases, NHC Key Laboratory of Assisted Circulation and Vascular Diseases (Sun Yat-sen University), The First Affiliated Hospital, Sun Yat-sen University, Guangzhou 510080, China

5. Department of Biomedical Engineering, City University of Hong Kong, Hong Kong SAR, China

Abstract

Real-time monitoring of physiological indicators inside the body is pivotal for contemporary diagnostics and treatments. Implantable electrodes can not only track specific biomarkers but also facilitate therapeutic interventions. By modifying biometric components, implantable electrodes enable in situ metabolite detection in living tissues, notably beneficial in invasive glucose monitoring, which effectively alleviates the self-blood-glucose-managing burden for patients. However, the development of implantable electrochemical electrodes, especially multi-channel sensing devices, still faces challenges: (1) The complexity of direct preparation hinders functionalized or multi-parameter sensing on a small scale. (2) The fine structure of individual electrodes results in low spatial resolution for sensor functionalization. (3) There is limited conductivity due to simple device structures and weakly conductive electrode materials (such as silicon or polymers). To address these challenges, we developed multiple-channel electrochemical microneedle electrode arrays (MCEMEAs) via a separated functionalization and assembly process. Two-dimensional microneedle (2dMN)-based and one-dimensional microneedle (1dMN)-based electrodes were prepared by laser patterning, which were then modified as sensing electrodes by electrochemical deposition and glucose oxidase decoration to achieve separated functionalization and reduce mutual interference. The electrodes were then assembled into 2dMN- and 1dMN-based multi-channel electrochemical arrays (MCEAs), respectively, to avoid damaging functionalized coatings. In vitro and in vivo results demonstrated that the as-prepared MCEAs exhibit excellent transdermal capability, detection sensitivity, selectivity, and reproducibility, which was capable of real-time, in situ glucose concentration monitoring.

Funder

National Key R&D Program of China

National Natural Science Foundation of China

Guangdong Basic and Applied Basic Research Foundation

Science and Technology Program of Guangzhou, China

Opening Project of Key Laboratory of State Key Laboratory of Optoelectronic Materials and Technologies

Open Fund of the State Key Laboratory of Luminescent Materials and Devices

Opening Project of State Key Laboratory of Digital Medical Engineering

Central Nervous System Drug Key Laboratory of Sichuan Province

Publisher

MDPI AG

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