Modulation of deep neural circuits with sonogenetics

Author:

Xian Quanxiang1,Qiu Zhihai12ORCID,Murugappan Suresh1,Kala Shashwati1ORCID,Wong Kin Fung1,Li Danni1,Li Guofeng3,Jiang Yizhou1ORCID,Wu Yong1,Su Min1ORCID,Hou Xuandi1,Zhu Jiejun12,Guo Jinghui1,Qiu Weibao3,Sun Lei1ORCID

Affiliation:

1. Department of Biomedical Engineering, The Hong Kong Polytechnic University, Hung Hom, Hong Kong SAR 999077, P.R. China

2. Guangdong Institute of Intelligence Science and Technology, Hengqin, Zhuhai, Guangdong 519031, P.R. China

3. Paul C. Lauterbur Research Center for Biomedical Imaging, Institute of Biomedical and Health Engineering, Shenzhen Institutes of Advanced Technology, Chinese Academy of Sciences, Shenzhen 518055, P.R. China

Abstract

Noninvasive control of neuronal activity in the deep brain can be illuminating for probing brain function and treating dysfunctions. Here, we present a sonogenetic approach for controlling distinct mouse behavior with circuit specificity and subsecond temporal resolution. Targeted neurons in subcortical regions were made to express a mutant large conductance mechanosensitive ion channel (MscL-G22S), enabling ultrasound to trigger activity in MscL-expressing neurons in the dorsal striatum and increase locomotion in freely moving mice. Ultrasound stimulation of MscL-expressing neurons in the ventral tegmental area could activate the mesolimbic pathway to trigger dopamine release in the nucleus accumbens and modulate appetitive conditioning. Moreover, sonogenetic stimulation of the subthalamic nuclei of Parkinson’s disease model mice improved their motor coordination and mobile time. Neuronal responses to ultrasound pulse trains were rapid, reversible, and repeatable. We also confirmed that the MscL-G22S mutant is more effective to sensitize neurons to ultrasound compared to the wild-type MscL. Altogether, we lay out a sonogenetic approach which can selectively manipulate targeted cells to activate defined neural pathways, affect specific behaviors, and relieve symptoms of neurodegenerative disease.

Funder

Research Grant Council General Research Fund

Hong Kong Innovation Technology Fund

Key-area Research and Development Program of Guangdong Province

The Hong Kong Polytechnic University

Research Institute for Smart Ageing of the Hong Kong Polytechnic University

Guangdong High Level Innovation Research Institute

Shenzhen-Hong Kong-Macau Science and Technology Program

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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1. The advance of ultrasound-enabled diagnostics and therapeutics;Journal of Controlled Release;2024-11

2. Programming mammalian cell behaviors by physical cues;Trends in Biotechnology;2024-08

3. Electrophysiological insights with brain organoid models: a brief review;BMB Reports;2024-07-03

4. Airy-beam holographic sonogenetics for advancing neuromodulation precision and flexibility;Proceedings of the National Academy of Sciences;2024-06-17

5. Force-Based Neuromodulation;Accounts of Chemical Research;2024-04-24

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