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培养鳞翅目背血管组织的电刺激:生物执行器开发的实验。

Electrical stimulation of cultured lepidopteran dorsal vessel tissue: an experiment for development of bioactuators.

机构信息

Department of Bio-Mechanics and Intelligent Systems, Tokyo University of Agriculture and Technology, 2-24-16 Naka-cho, Koganei, Tokyo, 184-8588, Japan.

出版信息

In Vitro Cell Dev Biol Anim. 2010 May;46(5):411-5. doi: 10.1007/s11626-009-9268-4. Epub 2010 Jan 9.

Abstract

An insect dorsal vessel (DV) is well suited for a bioactuator since it is capable of contracting autonomously, and its tissue and cells are more environmentally robust under culturing conditions compared with mammalian tissue. In this study, electrical pulse stimulation was examined so as to regulate a bioactuator using the DV tissue. The DV tissue of a larva of Ctenoplusia agnate was assembled on a micropillar array, which was stimulated after culturing for about 3 wk. The contraction of the DV tissue was evaluated by image analysis to measure lateral displacements at the micropillar top. As a result, suitable stimulation conditions in a 35-mm petri dish were determined as: applied voltage of 10 V with 20-ms duration. Next, the time lag between the onset of electrical stimulus and the onset of mechanical contraction (electromechanical delay (EMD)) was estimated. A light-emitting diode (LED) was connected serially with the petri dish, and the LED flashed when electrical pulses were given. Movie images were analyzed in which electrical pulses made the DV tissue contract and the LED flashed virtually simultaneously; from these, the EMD was estimated as approximately 50 ms. These results suggest that the electrical pulse stimulation is capable of regulating the DV tissue, and the micropillar array is a useful biological tool to investigate physiological properties of muscle tissue.

摘要

昆虫背脉(DV)非常适合用作生物致动器,因为它能够自主收缩,并且与哺乳动物组织相比,其组织和细胞在培养条件下更具环境稳健性。在这项研究中,研究了电脉冲刺激,以便使用 DV 组织来调节生物致动器。将约 3 周培养后的幼虫 Ctenoplusia agnate 的 DV 组织组装在微柱阵列上,然后对其进行刺激。通过图像分析评估 DV 组织的收缩,以测量微柱顶部的横向位移。结果确定了在 35mm 培养皿中的合适刺激条件:施加 10V 电压,持续 20ms。接下来,估计电刺激开始和机械收缩(机电延迟(EMD))开始之间的时间延迟。将发光二极管(LED)与培养皿串联连接,当施加电脉冲时,LED 会闪烁。分析了使 DV 组织收缩并且 LED 几乎同时闪烁的电影图像;由此,估计 EMD 约为 50ms。这些结果表明,电脉冲刺激能够调节 DV 组织,并且微柱阵列是研究肌肉组织生理特性的有用生物工具。

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