将丝网印刷电极快速集成到热塑性芯片上的有机物设备中,用于实时监测跨内皮电阻。

IF 3 4区 医学 Q3 ENGINEERING, BIOMEDICAL
Satoru Kawakita, Shaopei Li, Huu Tuan Nguyen, Surjendu Maity, Reihaneh Haghniaz, Jamal Bahari, Ning Yu, Kalpana Mandal, Praveen Bandaru, Lei Mou, Menekse Ermis, Enam Khalil, Safoora Khosravi, Arne Peirsman, Rohollah Nasiri, Annie Adachi, Aya Nakayama, Remy Bell, Yangzhi Zhu, Vadim Jucaud, Mehmet Remzi Dokmeci, Ali Khademhosseini
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引用次数: 0

摘要

跨内皮电阻(TEER)是量化内皮层屏障完整性最广泛使用的指标之一。在过去的十年里,将TEER传感器集成到片上组织(OOC)平台中,因其在OOC中高效有效地测量TEER而引起了越来越多的兴趣。迄今为止,微加工电极或直接插入导线已被用于将TEER传感器集成到OOC中,每种方法都有优点和缺点。在这项研究中,我们开发了一种TEER-SPE芯片,该芯片由嵌入聚甲基丙烯酸甲酯(PMMA)基多层微流体设备中的碳基丝网印刷电极(SPE)组成,中间有多孔聚对苯二甲酸乙二醇酯膜。作为概念的证明,我们证明了hCMEC/D3细胞的成功培养和在TEER-SPE芯片中融合单层的形成,并获得了4天的TEER测量结果。此外,TEER-SPE芯片可以检测由于剪切应力或炎症细胞因子(即肿瘤坏死因子-α)引起的屏障完整性的变化。这种新方法能够在PMMA基板上低成本、方便地制造碳基SPE,并随后组装PMMA层以进行快速原型制作。我们的方法具有成本效益且无洁净室,降低了现有的物流和技术障碍,这是向更广泛采用具有TEER测量能力的OOC迈出的又一步。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Rapid integration of screen-printed electrodes into thermoplastic organ-on-a-chip devices for real-time monitoring of trans-endothelial electrical resistance

Rapid integration of screen-printed electrodes into thermoplastic organ-on-a-chip devices for real-time monitoring of trans-endothelial electrical resistance

Trans-endothelial electrical resistance (TEER) is one of the most widely used indicators to quantify the barrier integrity of endothelial layers. Over the last decade, the integration of TEER sensors into organ-on-a-chip (OOC) platforms has gained increasing interest for its efficient and effective measurement of TEER in OOCs. To date, microfabricated electrodes or direct insertion of wires has been used to integrate TEER sensors into OOCs, with each method having advantages and disadvantages. In this study, we developed a TEER-SPE chip consisting of carbon-based screen-printed electrodes (SPEs) embedded in a poly(methyl methacrylate) (PMMA)-based multi-layered microfluidic device with a porous poly(ethylene terephthalate) membrane in-between. As proof of concept, we demonstrated the successful cultures of hCMEC/D3 cells and the formation of confluent monolayers in the TEER-SPE chip and obtained TEER measurements for 4 days. Additionally, the TEER-SPE chip could detect changes in the barrier integrity due to shear stress or an inflammatory cytokine (i.e., tumor necrosis factor-α). The novel approach enables a low-cost and facile fabrication of carbon-based SPEs on PMMA substrates and the subsequent assembly of PMMA layers for rapid prototyping. Being cost-effective and cleanroom-free, our method lowers the existing logistical and technical barriers presenting itself as another step forward to the broader adoption of OOCs with TEER measurement capability.

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来源期刊
Biomedical Microdevices
Biomedical Microdevices 工程技术-工程:生物医学
CiteScore
6.90
自引率
3.60%
发文量
32
审稿时长
6 months
期刊介绍: Biomedical Microdevices: BioMEMS and Biomedical Nanotechnology is an interdisciplinary periodical devoted to all aspects of research in the medical diagnostic and therapeutic applications of Micro-Electro-Mechanical Systems (BioMEMS) and nanotechnology for medicine and biology. General subjects of interest include the design, characterization, testing, modeling and clinical validation of microfabricated systems, and their integration on-chip and in larger functional units. The specific interests of the Journal include systems for neural stimulation and recording, bioseparation technologies such as nanofilters and electrophoretic equipment, miniaturized analytic and DNA identification systems, biosensors, and micro/nanotechnologies for cell and tissue research, tissue engineering, cell transplantation, and the controlled release of drugs and biological molecules. Contributions reporting on fundamental and applied investigations of the material science, biochemistry, and physics of biomedical microdevices and nanotechnology are encouraged. A non-exhaustive list of fields of interest includes: nanoparticle synthesis, characterization, and validation of therapeutic or imaging efficacy in animal models; biocompatibility; biochemical modification of microfabricated devices, with reference to non-specific protein adsorption, and the active immobilization and patterning of proteins on micro/nanofabricated surfaces; the dynamics of fluids in micro-and-nano-fabricated channels; the electromechanical and structural response of micro/nanofabricated systems; the interactions of microdevices with cells and tissues, including biocompatibility and biodegradation studies; variations in the characteristics of the systems as a function of the micro/nanofabrication parameters.
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