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用于选择性热磁遗传学的多通道电力电子学与磁性纳米颗粒

Multichannel power electronics and magnetic nanoparticles for selective thermal magnetogenetics.

作者信息

Wang Boshuo, Li Zhongxi, Sebesta Charles, Torres Hinojosa Daniel, Zhang Qingbo, Robinson Jacob T, Bao Gang, Peterchev Angel V, Goetz Stefan M

机构信息

Department of Psychiatry and Behavior Sciences, School of Medicine, Duke University, Durham, NC 27710, United States of America.

Department of Electrical and Computer Engineering, School of Engineering, Duke University, Durham, NC 27708, United States of America.

出版信息

J Neural Eng. 2022 Mar 29;19(2). doi: 10.1088/1741-2552/ac5b94.

Abstract

We present a combination of a power electronics system and magnetic nanoparticles that enable frequency-multiplexed magnetothermal-neurostimulation with rapid channel switching between three independent channels spanning a wide frequency range.The electronics system generates alternating magnetic field spanning 50 kHz to 5 MHz in the same coil by combining silicon (Si) and gallium-nitride (GaN) transistors to resolve the high spread of coil impedance and current required throughout the wide bandwidth. The system drives a liquid-cooled field coil via capacitor banks, forming three series resonance channels which are multiplexed using high-voltage contactors. We characterized the system by the output channels' frequencies, field strength, and switching time, as well as the system's overall operation stability. Using different frequency-amplitude combinations of the magnetic field to target specific magnetic nanoparticles with different coercivity, we demonstrate actuation of iron oxide nanoparticles in all three channels, including a novel nanoparticle composition responding to magnetic fields in the megahertz range.The system achieved the desired target field strengths for three frequency channels, with switching speed between channels on the order of milliseconds. Specific absorption rate measurements and infrared thermal imaging performed with three types of magnetic nanoparticles demonstrated selective heating and validated the system's intended use.The system uses a hybrid of Si and GaN transistors in bridge configuration instead of conventional amplifier circuit concepts to drive the magnetic field coil and contactors for fast switching between different capacitor banks. Series-resonance circuits ensure a high output quality while keeping the system efficient. This approach could significantly improve the speed and flexibility of frequency-multiplexed nanoparticle actuation, such as magnetogenetic neurostimulation, and thus provide the technical means for selective stimulation below the magnetic field's fundamental spatial focality limits.

摘要

我们展示了一种电力电子系统和磁性纳米颗粒的组合,该组合能够实现频率复用的磁热神经刺激,并在跨越很宽频率范围的三个独立通道之间进行快速通道切换。该电子系统通过结合硅(Si)和氮化镓(GaN)晶体管,在同一线圈中产生50kHz至5MHz的交变磁场,以解决在整个宽带宽范围内所需的线圈阻抗和电流的高分散性问题。该系统通过电容器组驱动液冷励磁线圈,形成三个串联谐振通道,这些通道使用高压接触器进行复用。我们通过输出通道的频率、场强、切换时间以及系统的整体运行稳定性对该系统进行了表征。利用磁场的不同频率 - 幅度组合来靶向具有不同矫顽力的特定磁性纳米颗粒,我们展示了在所有三个通道中对氧化铁纳米颗粒的驱动,包括一种对兆赫兹范围内磁场有响应的新型纳米颗粒组合物。该系统实现了三个频率通道所需的目标场强,通道之间的切换速度在毫秒量级。使用三种类型的磁性纳米颗粒进行的比吸收率测量和红外热成像证明了选择性加热,并验证了该系统的预期用途。该系统采用桥接配置的Si和GaN晶体管混合体,而不是传统的放大器电路概念来驱动磁场线圈和接触器,以便在不同电容器组之间进行快速切换。串联谐振电路在保持系统高效的同时确保了高输出质量。这种方法可以显著提高频率复用纳米颗粒驱动(如磁遗传神经刺激)的速度和灵活性,从而为在磁场基本空间聚焦极限以下的选择性刺激提供技术手段。

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