Cargando…

The mechanosensitive ion channel Piezo1 contributes to ultrasound neuromodulation

Transcranial low-intensity ultrasound is a promising neuromodulation modality, with the advantages of noninvasiveness, deep penetration, and high spatiotemporal accuracy. However, the underlying biological mechanism of ultrasonic neuromodulation remains unclear, hindering the development of efficaci...

Descripción completa

Detalles Bibliográficos
Autores principales: Zhu, Jiejun, Xian, Quanxiang, Hou, Xuandi, Wong, Kin Fung, Zhu, Tingting, Chen, Zihao, He, Dongming, Kala, Shashwati, Murugappan, Suresh, Jing, Jianing, Wu, Yong, Zhao, Xinyi, Li, Danni, Guo, Jinghui, Qiu, Zhihai, Sun, Lei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10161134/
https://www.ncbi.nlm.nih.gov/pubmed/37098060
http://dx.doi.org/10.1073/pnas.2300291120
_version_ 1785037428279476224
author Zhu, Jiejun
Xian, Quanxiang
Hou, Xuandi
Wong, Kin Fung
Zhu, Tingting
Chen, Zihao
He, Dongming
Kala, Shashwati
Murugappan, Suresh
Jing, Jianing
Wu, Yong
Zhao, Xinyi
Li, Danni
Guo, Jinghui
Qiu, Zhihai
Sun, Lei
author_facet Zhu, Jiejun
Xian, Quanxiang
Hou, Xuandi
Wong, Kin Fung
Zhu, Tingting
Chen, Zihao
He, Dongming
Kala, Shashwati
Murugappan, Suresh
Jing, Jianing
Wu, Yong
Zhao, Xinyi
Li, Danni
Guo, Jinghui
Qiu, Zhihai
Sun, Lei
author_sort Zhu, Jiejun
collection PubMed
description Transcranial low-intensity ultrasound is a promising neuromodulation modality, with the advantages of noninvasiveness, deep penetration, and high spatiotemporal accuracy. However, the underlying biological mechanism of ultrasonic neuromodulation remains unclear, hindering the development of efficacious treatments. Here, the well-known Piezo1 was studied through a conditional knockout mouse model as a major mediator for ultrasound neuromodulation ex vivo and in vivo. We showed that Piezo1 knockout (P1KO) in the right motor cortex of mice significantly reduced ultrasound-induced neuronal calcium responses, limb movement, and muscle electromyogram (EMG) responses. We also detected higher Piezo1 expression in the central amygdala (CEA), which was found to be more sensitive to ultrasound stimulation than the cortex was. Knocking out the Piezo1 in CEA neurons showed a significant reduction of response under ultrasound stimulation, while knocking out astrocytic Piezo1 showed no-obvious changes in neuronal responses. Additionally, we excluded an auditory confound by monitoring auditory cortical activation and using smooth waveform ultrasound with randomized parameters to stimulate P1KO ipsilateral and contralateral regions of the same brain and recording evoked movement in the corresponding limb. Thus, we demonstrate that Piezo1 is functionally expressed in different brain regions and that it is an important mediator of ultrasound neuromodulation in the brain, laying the ground for further mechanistic studies of ultrasound.
format Online
Article
Text
id pubmed-10161134
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher National Academy of Sciences
record_format MEDLINE/PubMed
spelling pubmed-101611342023-05-06 The mechanosensitive ion channel Piezo1 contributes to ultrasound neuromodulation Zhu, Jiejun Xian, Quanxiang Hou, Xuandi Wong, Kin Fung Zhu, Tingting Chen, Zihao He, Dongming Kala, Shashwati Murugappan, Suresh Jing, Jianing Wu, Yong Zhao, Xinyi Li, Danni Guo, Jinghui Qiu, Zhihai Sun, Lei Proc Natl Acad Sci U S A Biological Sciences Transcranial low-intensity ultrasound is a promising neuromodulation modality, with the advantages of noninvasiveness, deep penetration, and high spatiotemporal accuracy. However, the underlying biological mechanism of ultrasonic neuromodulation remains unclear, hindering the development of efficacious treatments. Here, the well-known Piezo1 was studied through a conditional knockout mouse model as a major mediator for ultrasound neuromodulation ex vivo and in vivo. We showed that Piezo1 knockout (P1KO) in the right motor cortex of mice significantly reduced ultrasound-induced neuronal calcium responses, limb movement, and muscle electromyogram (EMG) responses. We also detected higher Piezo1 expression in the central amygdala (CEA), which was found to be more sensitive to ultrasound stimulation than the cortex was. Knocking out the Piezo1 in CEA neurons showed a significant reduction of response under ultrasound stimulation, while knocking out astrocytic Piezo1 showed no-obvious changes in neuronal responses. Additionally, we excluded an auditory confound by monitoring auditory cortical activation and using smooth waveform ultrasound with randomized parameters to stimulate P1KO ipsilateral and contralateral regions of the same brain and recording evoked movement in the corresponding limb. Thus, we demonstrate that Piezo1 is functionally expressed in different brain regions and that it is an important mediator of ultrasound neuromodulation in the brain, laying the ground for further mechanistic studies of ultrasound. National Academy of Sciences 2023-04-25 2023-05-02 /pmc/articles/PMC10161134/ /pubmed/37098060 http://dx.doi.org/10.1073/pnas.2300291120 Text en Copyright © 2023 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/This open access article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle Biological Sciences
Zhu, Jiejun
Xian, Quanxiang
Hou, Xuandi
Wong, Kin Fung
Zhu, Tingting
Chen, Zihao
He, Dongming
Kala, Shashwati
Murugappan, Suresh
Jing, Jianing
Wu, Yong
Zhao, Xinyi
Li, Danni
Guo, Jinghui
Qiu, Zhihai
Sun, Lei
The mechanosensitive ion channel Piezo1 contributes to ultrasound neuromodulation
title The mechanosensitive ion channel Piezo1 contributes to ultrasound neuromodulation
title_full The mechanosensitive ion channel Piezo1 contributes to ultrasound neuromodulation
title_fullStr The mechanosensitive ion channel Piezo1 contributes to ultrasound neuromodulation
title_full_unstemmed The mechanosensitive ion channel Piezo1 contributes to ultrasound neuromodulation
title_short The mechanosensitive ion channel Piezo1 contributes to ultrasound neuromodulation
title_sort mechanosensitive ion channel piezo1 contributes to ultrasound neuromodulation
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10161134/
https://www.ncbi.nlm.nih.gov/pubmed/37098060
http://dx.doi.org/10.1073/pnas.2300291120
work_keys_str_mv AT zhujiejun themechanosensitiveionchannelpiezo1contributestoultrasoundneuromodulation
AT xianquanxiang themechanosensitiveionchannelpiezo1contributestoultrasoundneuromodulation
AT houxuandi themechanosensitiveionchannelpiezo1contributestoultrasoundneuromodulation
AT wongkinfung themechanosensitiveionchannelpiezo1contributestoultrasoundneuromodulation
AT zhutingting themechanosensitiveionchannelpiezo1contributestoultrasoundneuromodulation
AT chenzihao themechanosensitiveionchannelpiezo1contributestoultrasoundneuromodulation
AT hedongming themechanosensitiveionchannelpiezo1contributestoultrasoundneuromodulation
AT kalashashwati themechanosensitiveionchannelpiezo1contributestoultrasoundneuromodulation
AT murugappansuresh themechanosensitiveionchannelpiezo1contributestoultrasoundneuromodulation
AT jingjianing themechanosensitiveionchannelpiezo1contributestoultrasoundneuromodulation
AT wuyong themechanosensitiveionchannelpiezo1contributestoultrasoundneuromodulation
AT zhaoxinyi themechanosensitiveionchannelpiezo1contributestoultrasoundneuromodulation
AT lidanni themechanosensitiveionchannelpiezo1contributestoultrasoundneuromodulation
AT guojinghui themechanosensitiveionchannelpiezo1contributestoultrasoundneuromodulation
AT qiuzhihai themechanosensitiveionchannelpiezo1contributestoultrasoundneuromodulation
AT sunlei themechanosensitiveionchannelpiezo1contributestoultrasoundneuromodulation
AT zhujiejun mechanosensitiveionchannelpiezo1contributestoultrasoundneuromodulation
AT xianquanxiang mechanosensitiveionchannelpiezo1contributestoultrasoundneuromodulation
AT houxuandi mechanosensitiveionchannelpiezo1contributestoultrasoundneuromodulation
AT wongkinfung mechanosensitiveionchannelpiezo1contributestoultrasoundneuromodulation
AT zhutingting mechanosensitiveionchannelpiezo1contributestoultrasoundneuromodulation
AT chenzihao mechanosensitiveionchannelpiezo1contributestoultrasoundneuromodulation
AT hedongming mechanosensitiveionchannelpiezo1contributestoultrasoundneuromodulation
AT kalashashwati mechanosensitiveionchannelpiezo1contributestoultrasoundneuromodulation
AT murugappansuresh mechanosensitiveionchannelpiezo1contributestoultrasoundneuromodulation
AT jingjianing mechanosensitiveionchannelpiezo1contributestoultrasoundneuromodulation
AT wuyong mechanosensitiveionchannelpiezo1contributestoultrasoundneuromodulation
AT zhaoxinyi mechanosensitiveionchannelpiezo1contributestoultrasoundneuromodulation
AT lidanni mechanosensitiveionchannelpiezo1contributestoultrasoundneuromodulation
AT guojinghui mechanosensitiveionchannelpiezo1contributestoultrasoundneuromodulation
AT qiuzhihai mechanosensitiveionchannelpiezo1contributestoultrasoundneuromodulation
AT sunlei mechanosensitiveionchannelpiezo1contributestoultrasoundneuromodulation