In vivo magnetogenetics for cell-type-specific targeting and modulation of brain circuits

IF 38.1 1区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY Nature nanotechnology Pub Date : 2024-07-02 DOI:10.1038/s41565-024-01694-2
Seo-Hyun Choi, Jihye Shin, Chanhyun Park, Jung-uk Lee, Jaegyeong Lee, Yuko Ambo, Wookjin Shin, Ri Yu, Ju-Young Kim, Jungsu David Lah, Donghun Shin, Gooreum Kim, Kunwoo Noh, Wuhyun Koh, C. Justin Lee, Jae-Hyun Lee, Minsuk Kwak, Jinwoo Cheon
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Abstract

Neuromodulation technologies are crucial for investigating neuronal connectivity and brain function. Magnetic neuromodulation offers wireless and remote deep brain stimulations that are lacking in optogenetic- and wired-electrode-based tools. However, due to the limited understanding of working principles and poorly designed magnetic operating systems, earlier magnetic approaches have yet to be utilized. Furthermore, despite its importance in neuroscience research, cell-type-specific magnetic neuromodulation has remained elusive. Here we present a nanomaterials-based magnetogenetic toolbox, in conjunction with Cre-loxP technology, to selectively activate genetically encoded Piezo1 ion channels in targeted neuronal populations via torque generated by the nanomagnetic actuators in vitro and in vivo. We demonstrate this cell-type-targeting magnetic approach for remote and spatiotemporal precise control of deep brain neural activity in multiple behavioural models, such as bidirectional feeding control, long-term neuromodulation for weight control in obese mice and wireless modulation of social behaviours in multiple mice in the same physical space. Our study demonstrates the potential of cell-type-specific magnetogenetics as an effective and reliable research tool for life sciences, especially in wireless, long-term and freely behaving animals. Minimally invasive cellular-level target-specific neuromodulation is needed to decipher brain function and neural circuitry. Here nano-magnetogenetics using magnetic force actuating nanoparticles has been reported, enabling wireless and remote stimulation of targeted deep brain neurons in freely behaving animals.

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体内磁遗传学用于细胞类型特异性定位和调节脑回路
神经调控技术对于研究神经元连接和大脑功能至关重要。磁性神经调控技术可提供无线和远程脑深部刺激,这是基于光遗传学和有线电极的工具所缺乏的。然而,由于对工作原理的了解有限以及磁性操作系统设计不完善,早期的磁性方法尚未得到利用。此外,尽管磁性神经调控在神经科学研究中非常重要,但细胞类型特异性磁性神经调控仍然难以实现。在这里,我们介绍了一种基于纳米材料的磁遗传工具箱,它与 Cre-loxP 技术相结合,通过纳米磁驱动器在体外和体内产生的扭矩,选择性地激活目标神经元群中基因编码的 Piezo1 离子通道。我们在多个行为模型中展示了这种细胞类型靶向磁性方法对大脑深部神经活动的远程和时空精确控制,例如双向进食控制、肥胖小鼠体重控制的长期神经调控以及同一物理空间中多只小鼠社交行为的无线调控。我们的研究证明了细胞类型特异性磁遗传学作为生命科学领域有效、可靠的研究工具的潜力,特别是在无线、长期和自由行为的动物中。
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来源期刊
Nature nanotechnology
Nature nanotechnology 工程技术-材料科学:综合
CiteScore
59.70
自引率
0.80%
发文量
196
审稿时长
4-8 weeks
期刊介绍: Nature Nanotechnology is a prestigious journal that publishes high-quality papers in various areas of nanoscience and nanotechnology. The journal focuses on the design, characterization, and production of structures, devices, and systems that manipulate and control materials at atomic, molecular, and macromolecular scales. It encompasses both bottom-up and top-down approaches, as well as their combinations. Furthermore, Nature Nanotechnology fosters the exchange of ideas among researchers from diverse disciplines such as chemistry, physics, material science, biomedical research, engineering, and more. It promotes collaboration at the forefront of this multidisciplinary field. The journal covers a wide range of topics, from fundamental research in physics, chemistry, and biology, including computational work and simulations, to the development of innovative devices and technologies for various industrial sectors such as information technology, medicine, manufacturing, high-performance materials, energy, and environmental technologies. It includes coverage of organic, inorganic, and hybrid materials.
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