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多层聚合物悬臂梁与全桥应变传感器集成,以提高心肌收缩力测量中的力灵敏度。

Multi-layered polymer cantilever integrated with full-bridge strain sensor to enhance force sensitivity in cardiac contractility measurement.

机构信息

School of Mechanical Engineering Chonnam National University, Gwangju, 61186, Republic of Korea.

Department of Precision Mechanical Engineering Kyungpook National University, Sangju, Gyeongsangbuk-do, 37224, Republic of Korea.

出版信息

Analyst. 2021 Nov 22;146(23):7160-7167. doi: 10.1039/d1an01208h.

Abstract

In this study, we developed a multi-layered functional cantilever for real-time force measurement of cardiomyocytes in cell culture media. The functional cantilever with a full-bridge circuit configuration was composed of one polydimethylsiloxane (PDMS) and two polyimide (PI) layers, forming two resistive sensors on each upper side of the two PI layers. The PI layers were chemically bonded using an oxygen plasma treatment, with a thin composite layer consisting of Cr/SiO/PDMS. These greatly improved the force sensitivity and the long-term reliability of the integrated strain sensor operating in liquids. The nanogrooved PDMS top layer bonded on the upper PI layer was employed to further improve the growth of cardiomyocytes on the functional cantilever. The difference in resistance changes and response characteristics was confirmed by evaluating the characteristics of the multi-layered polymer cantilevers with half-bridge and full-bridge circuit configurations. We also employed the cantilever devices to measure the contraction force of cardiomyocytes for 16 days and side effects in real time in human-induced pluripotent stem cells treated with the cardiovascular drug verapamil. The sensor-integrated cantilever devices are expected to be utilized as a novel biomedical sensor for evaluating the mechanobiology of cardiomyocytes, as well as in drug screening tests.

摘要

在这项研究中,我们开发了一种多层功能悬臂梁,用于实时测量细胞培养介质中的心肌细胞的力。该功能悬臂梁采用全桥电路配置,由一个聚二甲基硅氧烷(PDMS)和两个聚酰亚胺(PI)层组成,在两个 PI 层的每一侧上形成两个电阻式传感器。PI 层通过氧等离子体处理进行化学键合,形成由 Cr/SiO/PDMS 组成的薄复合层。这极大地提高了集成应变传感器在液体中的力灵敏度和长期可靠性。粘合在上面 PI 层上的纳米槽 PDMS 顶层被用来进一步提高心肌细胞在功能悬臂梁上的生长。通过评估具有半桥和全桥电路配置的多层聚合物悬臂梁的特性,确认了电阻变化和响应特性的差异。我们还使用悬臂梁装置实时测量了人诱导多能干细胞中用心血管药物维拉帕米处理后的心肌细胞的收缩力和副作用。预计传感器集成的悬臂梁装置将被用作评估心肌细胞机械生物学的新型生物医学传感器,以及在药物筛选测试中。

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