A low-cost electric micromanipulator and its application to single-cell electroporation.

IF 1.6 Q4 BIOPHYSICS
Biophysics and physicobiology Pub Date : 2025-04-26 eCollection Date: 2025-01-01 DOI:10.2142/biophysico.bppb-v22.0010
Kazuma Shimizu, Norihiko Nishimura, Manato Oku, Chika Okimura, Yoshiaki Iwadate
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引用次数: 0

Abstract

Micromanipulation techniques are essential in studies of cell function, both for single cells and for cell collectives. Various types of micromanipulators are now commercially available. Hydraulic micromanipulators have the advantage of analogue operation, allowing the user to move the glass microneedle in direct response to their own hand movements. However, they require regular maintenance to maintain their performance. On the other hand, some electric micromanipulators can operate in minute steps of several hundred nanometers, but they are expensive. This paper describes our assembly of a low-cost electric micromanipulator. The device consists of three commercially available stages, three linear DC motors to drive them, and a lab-made control circuit. Using this device, we were able to direct a glass microneedle to cut an MDCK cell sheet. We also manipulated an aspiration pipette to aspirate a portion of a Dictyostelium cell. In addition, we were able to gently touch the tip of an electroporation pipette to the surface of a single target cell in a sheet of fish epidermal keratocytes and load FITC into the cell. Our device can be assembled at one-fourth the cost of commercially available hydraulic micromanipulators. This could make it easier, both economically and technically, to add micromanipulators to all of a laboratory's microscopes.

一种低成本的电动微机械臂及其在单细胞电穿孔中的应用。
微操作技术在细胞功能研究中是必不可少的,无论是单细胞还是细胞群。现在市面上有各种各样的微操纵器。液压微机械手具有模拟操作的优点,允许用户根据自己的手部运动直接移动玻璃微针。然而,它们需要定期维护以保持其性能。另一方面,一些电动微操纵器可以在几百纳米的微小步骤中操作,但它们很昂贵。本文介绍了一种低成本的电动微机械臂的组装。该装置由三个市售级、三个驱动级的直流电动机和一个实验室自制的控制电路组成。使用这个装置,我们能够引导玻璃微针切割MDCK细胞片。我们还操作了一个吸液管,吸出了盘基骨柱细胞的一部分。此外,我们还能够将电穿孔移液管的尖端轻轻触碰鱼表皮角化细胞中单个靶细胞的表面,并将FITC装载到细胞中。我们的设备组装成本是商用液压微机械的四分之一。这样,在经济上和技术上,为所有实验室的显微镜添加微操纵器都变得更加容易。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
2.10
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0.00%
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