Airy-beam holographic sonogenetics for advancing neuromodulation precision and flexibility

Author:

Hu Zhongtao1ORCID,Yang Yaoheng1,Yang Leqi1ORCID,Gong Yan1ORCID,Chukwu Chinwendu1,Ye Dezhuang1,Yue Yimei1,Yuan Jinyun1,Kravitz Alexxai V.2ORCID,Chen Hong134ORCID

Affiliation:

1. Department of Biomedical Engineering, Washington University in St. Louis, Saint Louis, MO 63130

2. Department of Psychiatry, Washington University School of Medicine, Saint Louis, MO 63110

3. Department of Neurosurgery, Washington University School of Medicine, Saint Louis, MO 63110

4. Mallinckrodt Institute of Radiology, Washington University School of Medicine, Saint Louis, MO 63110

Abstract

Advancing our understanding of brain function and developing treatments for neurological diseases hinge on the ability to modulate neuronal groups in specific brain areas without invasive techniques. Here, we introduce Airy-beam holographic sonogenetics (AhSonogenetics) as an implant-free, cell type–specific, spatially precise, and flexible neuromodulation approach in freely moving mice. AhSonogenetics utilizes wearable ultrasound devices manufactured using 3D-printed Airy-beam holographic metasurfaces. These devices are designed to manipulate neurons genetically engineered to express ultrasound-sensitive ion channels, enabling precise modulation of specific neuronal populations. By dynamically steering the focus of Airy beams through ultrasound frequency tuning, AhSonogenetics is capable of modulating neuronal populations within specific subregions of the striatum. One notable feature of AhSonogenetics is its ability to flexibly stimulate either the left or right striatum in a single mouse. This flexibility is achieved by simply switching the acoustic metasurface in the wearable ultrasound device, eliminating the need for multiple implants or interventions. AhSonogentocs also integrates seamlessly with in vivo calcium recording via fiber photometry, showcasing its compatibility with optical modalities without cross talk. Moreover, AhSonogenetics can generate double foci for bilateral stimulation and alleviate motor deficits in Parkinson’s disease mice. This advancement is significant since many neurological disorders, including Parkinson’s disease, involve dysfunction in multiple brain regions. By enabling precise and flexible cell type–specific neuromodulation without invasive procedures, AhSonogenetics provides a powerful tool for investigating intact neural circuits and offers promising interventions for neurological disorders.

Funder

HHS | NIH | National Institute of Neurological Disorders and Stroke

HHS | NIH | BRAIN Initiative

HHS | NIH | National Institute of Biomedical Imaging and Bioengineering

Publisher

Proceedings of the National Academy of Sciences

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