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cheon,jinwoo
나노의학연구단
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In vivo magnetogenetics for cell-type-specific targeting and modulation of brain circuits

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Title
In vivo magnetogenetics for cell-type-specific targeting and modulation of brain circuits
Author(s)
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
Publication Date
2024-09
Journal
Nature Nanotechnology, v.19, pp.1333 - 1343
Publisher
Nature Publishing Group
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.
URI
https://pr.ibs.re.kr/handle/8788114/15691
DOI
10.1038/s41565-024-01694-2
ISSN
1748-3387
Appears in Collections:
Center for Nanomedicine (나노의학 연구단) > 1. Journal Papers (저널논문)
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