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一种开源的 3D 打印记录平台,带有可定制的腔室,用于离体实验。

An Open-Source 3D-Printed Recording Stage with Customizable Chambers for Ex Vivo Experiments.

机构信息

Department of Cell Biology and Physiology, Brigham Young University, Provo, Utah 84602.

Neuroscience Center, Brigham Young University, Provo, Utah 84602.

出版信息

eNeuro. 2024 Sep 13;11(9). doi: 10.1523/ENEURO.0257-24.2024. Print 2024 Sep.

Abstract

Much of what has been discovered concerning neurophysiological mechanisms can be credited to ex vivo biomedical experiments. Beyond these discoveries, ex vivo research techniques have enhanced the global understanding of human physiology and pathology in almost every biomedical specialty. Naturally, ex vivo experiments are among the most desired methods of research, particularly in the field of neuroscience. Ex vivo experiment platforms may be purchased commercially. However, their substantial cost and sometimes limited availability can render them inaccessible to many research labs. Moreover, these manufactured systems are often rigid in function with no possibility of customization, severely narrowing their capabilities. However, developing essential components for ex vivo laboratory systems with a fused deposition modeling printer provides a practical solution to each of these obstacles. Here, we provide the designs and construction process for an easily accessible, highly adaptable recording stage with modifiable submersion chambers using a 3D printer for a total cost under $15.00. With the versatility afforded by the exchangeable custom chambers, the system may be used to conduct research on a variety of ex vivo tissue preparations, paving the way for novel research.

摘要

许多关于神经生理机制的发现都可以归功于离体生物医学实验。除了这些发现,离体研究技术还增强了几乎每个生物医学专业对人类生理学和病理学的全球理解。自然地,离体实验是最受欢迎的研究方法之一,特别是在神经科学领域。离体实验平台可以从商业途径购买。然而,它们的高成本和有时有限的可用性可能会使许多研究实验室无法获得。此外,这些制造的系统在功能上往往是刚性的,没有定制的可能性,严重限制了它们的能力。然而,使用熔丝制造建模打印机为离体实验室系统开发必要的组件,为每个这些障碍提供了一个实用的解决方案。在这里,我们提供了一个易于访问、高度适应的记录平台的设计和构建过程,该平台使用 3D 打印机可实现可修改的浸没式腔室,总成本低于 15.00 美元。通过可互换的定制腔室提供的多功能性,该系统可用于对各种离体组织制剂进行研究,为新的研究铺平道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8bc3/11404268/02a9a1b1d05f/eneuro-11-ENEURO.0257-24.2024-g001.jpg

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