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用于体外无线神经调节和体内无束缚脑刺激的开源磁系统。

Open-source magnetic system for wireless neuromodulations in vitro and for untethered brain stimulation in vivo.

作者信息

Huang Jun-Xuan, Yen Ping-Hsiang, Cheng Chao-Chun, Fang Yi-Cheng, Chiang Po-Han

机构信息

Institute of Biomedical Engineering, National Yang Ming Chiao Tung University, Hsinchu, Taiwan.

出版信息

Sci Rep. 2025 May 22;15(1):17814. doi: 10.1038/s41598-025-03076-7.

Abstract

In recent years, significant advances have been made in magnetic neuromodulation technologies, enabling the manipulation of deep brain neurons without invasive implants. Wireless approaches, such as those leveraging magnetic nanoparticles and magnetosensitive proteins, have gained considerable attention. Among these, methods requiring low magnetic field density (< 50 mT) and low frequencies (< 20 Hz) show promise for broader applications due to their scalability and energy efficiency. However, the lack of cost-effective, user-friendly instruments for in vitro and in vivo experiments has hindered broader adoption. To address this, we demonstrate an open-source magnetic stimulation system that integrates Arduino-based hardware, electromagnetic coils, and real-time feedback sensors to monitor environmental parameters, including temperature, sound, vibration, and magnetic field density. Additionally, the system employs a closed-loop design, enabling adaptive control of magnetic stimulation based on tracking the subject's position and environmental feedback. A Python-based graphical user interface (GUI) allows researchers to design and control stimulation protocols while monitoring feedback signals in real-time. The system includes multiple solenoid designs optimized for diverse applications, such as cell culture studies, fluorescence microscopy, and in vivo behavioral experiments, ensuring compatibility across experimental scales. The stability and versatility of the system were evaluated in multiple behavioral paradigms, including light-dark box and place preference tests. This low-cost, easy-access, and flexible platform can facilitate magnetic neuromodulation research and promote accessibility for basic and translational studies in neuroscience and bioelectronics.

摘要

近年来,磁神经调节技术取得了重大进展,能够在不进行侵入性植入的情况下操纵深部脑神经元。无线方法,如利用磁性纳米颗粒和磁敏蛋白的方法,受到了广泛关注。其中,需要低磁场密度(<50 mT)和低频(<20 Hz)的方法因其可扩展性和能源效率而有望得到更广泛的应用。然而,缺乏用于体外和体内实验的经济高效、用户友好的仪器阻碍了其更广泛的采用。为了解决这一问题,我们展示了一种开源磁刺激系统,该系统集成了基于Arduino的硬件、电磁线圈和实时反馈传感器,以监测环境参数,包括温度、声音、振动和磁场密度。此外,该系统采用闭环设计,能够基于跟踪受试者的位置和环境反馈对磁刺激进行自适应控制。基于Python的图形用户界面(GUI)允许研究人员在实时监测反馈信号的同时设计和控制刺激方案。该系统包括多种针对不同应用优化的螺线管设计,如细胞培养研究、荧光显微镜检查和体内行为实验,确保了跨实验规模的兼容性。该系统的稳定性和通用性在多种行为范式中进行了评估,包括明暗箱试验和位置偏爱试验。这个低成本、易于使用且灵活的平台可以促进磁神经调节研究,并推动神经科学和生物电子学基础研究及转化研究的可及性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1e1a/12098840/2661458ed363/41598_2025_3076_Fig1_HTML.jpg

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