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用于非侵入式光学细胞刺激的 G-Optrode 生物界面:设计与评估。

G-Optrode Bio-Interfaces for Non-Invasive Optical Cell Stimulation: Design and Evaluation.

机构信息

Department of Electronic Engineering, Howard College, University of KwaZulu-Natal, Durban 4041, South Africa.

Department of Pharmacy, Annamalai University, Chidambaram 608 002, India.

出版信息

Biosensors (Basel). 2022 Sep 30;12(10):808. doi: 10.3390/bios12100808.

Abstract

Biocompatibility and potential efficacy in biological applications rely on the bio-interactions of graphene nanoparticles with biological tissues. Analyzing and modulating cellular and device-level activity requires non-invasive electrical stimulation of cells. To address these needs, G-optrodes, bio-interfaces based on graphene, have been developed. These devices use light to stimulate cells without modifying their genetic code. Optoelectronic capabilities, in particular the capacity to transform light energy into electrical energy, will be maintained throughout the procedures of neural stimulation. G-optrodes have also been studied as thin films on a range of substrates, and they have been designed to function at a very small scale. This study examines the impact of G-optrode-based substrate designs on the optical stimulation of pheochromocytoma (PC-12). Graphene electrodes, known as G-optrodes, are responsible for converting light into electrical pulses with stimulating effects. G-optrode bio-interfaces provide a stimulus that is independent of wavelength range but is sensitive to changes in illuminance. The authors have performed a comprehensive investigation based on the correct effects of the medication in vitro, employing substrate-based G-optrode biointerfaces. In substrate-based systems, the authors have proven that graphene is biocompatible. PC-12 cells were cultured on graphene for 7 days. Based on the findings, 20-nm and 50-nm thick G-optrodes are being studied for possible use in biological and artificial retinal applications. The findings of this study highlight the significance of biocompatibility in the selection and use of G-optrodes for biomedical purposes.

摘要

生物相容性和在生物应用中的潜在功效依赖于石墨烯纳米粒子与生物组织的生物相互作用。分析和调节细胞和器件级别的活性需要对细胞进行非侵入性的电刺激。为了满足这些需求,已经开发出基于石墨烯的生物界面 G-optrodes。这些设备使用光来刺激细胞,而不会改变它们的遗传密码。光电能力,特别是将光能转化为电能的能力,将在整个神经刺激过程中得以维持。G-optrodes 也已经在各种衬底上作为薄膜进行了研究,并且被设计为在非常小的尺度上工作。本研究考察了基于 G-optrode 的衬底设计对嗜铬细胞瘤(PC-12)的光学刺激的影响。石墨烯电极,称为 G-optrodes,负责将光转化为具有刺激作用的电脉冲。G-optrode 生物界面提供了一种与波长范围无关但对光照度变化敏感的刺激。作者基于体外药物的正确作用,使用基于衬底的 G-optrode 生物界面进行了全面研究。在基于衬底的系统中,作者已经证明了石墨烯是生物相容的。PC-12 细胞在石墨烯上培养了 7 天。根据这些发现,正在研究 20nm 和 50nm 厚的 G-optrodes 是否可用于生物和人工视网膜应用。这项研究的结果强调了在选择和使用 G-optrodes 进行生物医学应用时,生物相容性的重要性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4a7f/9599383/d2993e8551ad/biosensors-12-00808-g001.jpg

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