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导电聚合物涂层支架将 3D 细胞培养与电化学生物传感集成。

Conductive Polymer Coated Scaffold to Integrate 3D Cell Culture with Electrochemical Sensing.

机构信息

Key Laboratory of Analytical Chemistry for Biology and Medicine (Ministry of Education), College of Chemistry and Molecular Sciences , Wuhan University , Wuhan 430072 , China.

出版信息

Anal Chem. 2019 Apr 2;91(7):4838-4844. doi: 10.1021/acs.analchem.9b00478. Epub 2019 Mar 21.

Abstract

Remarkable progresses have been made in electrochemical monitoring of living cells based on one-dimensional (1D) or two-dimensional (2D) sensors, but the cells cultured on 2D substrate under these circumstances are departed from their three-dimensional (3D) microenvironments in vivo. Significant advances have been made in developing 3D culture scaffolds to simulate the 3D microenvironment yet most of them are insulated, which greatly restricts their application in electrochemical sensing. Herein, we propose a versatile strategy to endow 3D insulated culture scaffolds with electrochemical performance while granting their biocompatibility through conductive polymer coating. More specifically, 3D polydimethylsiloxane scaffold is uniformly coated by poly(3,4-ethylenedioxythiophene) and further modified by platinum nanoparticles. The integrated 3D device demonstrates desirable biocompatibility for long-term 3D cell culture and excellent electrocatalytic ability for electrochemical sensing. This allows real-time monitoring of reactive oxygen species release from cancer cells induced by a novel potential anticancer drug and reveals its promising application in cancer treatment. This work provides a new idea to construct 3D multifunctional electrochemical sensors, which will be of great significance for physiological and pathological research.

摘要

基于一维(1D)或二维(2D)传感器,电化学监测活细胞方面已经取得了显著进展,但在这些情况下,在 2D 基底上培养的细胞已经脱离了体内的三维(3D)微环境。在开发用于模拟 3D 微环境的 3D 培养支架方面已经取得了重大进展,但大多数支架都是绝缘的,这极大地限制了它们在电化学传感中的应用。在此,我们提出了一种通用策略,通过导电聚合物涂层赋予 3D 绝缘培养支架电化学性能,同时保持其生物相容性。更具体地说,3D 聚二甲基硅氧烷支架通过聚(3,4-亚乙基二氧噻吩)均匀涂覆,并进一步通过铂纳米颗粒进行修饰。集成的 3D 器件对长期 3D 细胞培养具有理想的生物相容性,并对电化学传感具有优异的电催化能力。这使得能够实时监测新型潜在抗癌药物诱导的癌细胞中活性氧的释放,并揭示了其在癌症治疗中的应用前景。这项工作为构建 3D 多功能电化学传感器提供了新的思路,这对于生理和病理研究将具有重要意义。

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