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TRPV1 介导的运动皮层声遗传学神经调节在自由活动的小鼠中。

TRPV1-mediated sonogenetic neuromodulation of motor cortex in freely moving mice.

机构信息

Department of Biomedical Engineering, Washington University in St. Louis, Saint Louis, MO 63130, United States of America.

Mallinckrodt Institute of Radiology, Washington University School of Medicine, Saint Louis, MO 63110, United States of America.

出版信息

J Neural Eng. 2023 Feb 27;20(1):016055. doi: 10.1088/1741-2552/acbba0.

Abstract

Noninvasive and cell-type-specific neuromodulation tools are critically needed for probing intact brain function. Sonogenetics for noninvasive activation of neurons engineered to express thermosensitive transient receptor potential vanilloid 1 (TRPV1) by transcranial focused ultrasound (FUS) was recently developed to address this need. However, using TRPV1-mediated sonogenetics to evoke behavior by targeting the cortex is challenged by its proximity to the skull due to high skull absorption of ultrasound and increased risks of thermal-induced tissue damage.This study evaluated the feasibility and safety of TRPV1-mediated sonogenetics in targeting the motor cortex to modulate the locomotor behavior of freely moving mice.Adeno-associated viral vectors was delivered to the mouse motor cortex via intracranial injection to express TRPV1 in excitatory neurons. A wearable FUS device was installed on the mouse head after a month to control neuronal activity by activating virally expressed TRPV1 through FUS sonication at different acoustic pressures. Immunohistochemistry staining ofbrain slices was performed to verify neuron activation and evaluate safety.TRPV1-mediated sonogenetic stimulation at 0.7 MPa successfully evoked rotational behavior in the direction contralateral to the stimulation site, activated cortical neurons as indicated by the upregulation of c-Fos, and did not induce significant changes in inflammatory or apoptotic markers (GFAP, Iba1, and Caspase-3). Sonogenetic stimulation of TRPV1 mice at a higher acoustic pressure, 1.1 MPa, induced significant changes in motor behavior and upregulation of c-Fos compared with FUS sonication of naïve mice at 1.1 MPa. However, signs of damage at the meninges were observed at 1.1 MPa.TRPV1-mediated sonogenetics can achieve effective and safe neuromodulation at the cortex with carefully selected FUS parameters. These findings expand the application of this technique to include superficial brain targets.

摘要

非侵入性和细胞类型特异性的神经调节工具对于探测完整的大脑功能至关重要。最近开发了声遗传学,通过颅穿透聚焦超声(FUS)无创地激活经工程改造表达热敏瞬时受体电位香草酸 1(TRPV1)的神经元,以满足这一需求。然而,由于颅骨对超声的高吸收率和热诱导组织损伤的风险增加,使用 TRPV1 介导的声遗传学通过靶向皮层来引发行为受到限制。本研究评估了 TRPV1 介导的声遗传学靶向运动皮层调节自由活动小鼠运动行为的可行性和安全性。通过颅内注射将腺相关病毒载体递送至小鼠运动皮层,以在兴奋性神经元中表达 TRPV1。一个月后,在小鼠头部安装一个可穿戴的 FUS 设备,通过 FUS 声处理以不同声压激活病毒表达的 TRPV1,从而控制神经元活动。进行脑切片免疫组织化学染色以验证神经元激活并评估安全性。在 0.7 MPa 下进行 TRPV1 介导的声遗传刺激成功地诱发了与刺激部位相反方向的旋转行为,如 c-Fos 的上调所示,激活了皮质神经元,并且没有诱导炎症或凋亡标志物(GFAP、Iba1 和 Caspase-3)的显著变化。与 1.1 MPa 的 FUS 声处理相比,在 1.1 MPa 时,TRPV1 介导的声遗传刺激在较高声压下刺激 TRPV1 小鼠会引起运动行为的显著变化和 c-Fos 的上调。然而,在 1.1 MPa 时观察到脑膜有损伤迹象。TRPV1 介导的声遗传学可以通过仔细选择的 FUS 参数在皮层实现有效和安全的神经调节。这些发现将该技术的应用扩展到包括浅层脑目标。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8dac/9969813/5c1d874ed9d8/jneacbba0f1_lr.jpg

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