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用于在转染hsTRPA1的细胞中进行靶向声遗传学的微尺度音乐厅声学,以产生均匀的超声刺激。

Microscale concert hall acoustics to produce uniform ultrasound stimulation for targeted sonogenetics in hsTRPA1-transfected cells.

作者信息

Vasan Aditya, Allein Florian, Duque Marc, Magaram Uri, Boechler Nicholas, Chalasani Sreekanth H, Friend James

机构信息

Medically Advanced Devices Laboratory, Department of Mechanical and Aerospace Engineering, Jacobs School of Engineering and Department of Surgery, School of Medicine, University of California San Diego, La Jolla CA 92093 USA.

Department of Mechanical and Aerospace Engineering, University of California San Diego, La Jolla CA 92093 USA.

出版信息

Adv Nanobiomed Res. 2022 May;2(5). doi: 10.1002/anbr.202100135. Epub 2022 Feb 16.

Abstract

The field of ultrasound neuromodulation has rapidly developed over the past decade, a consequence of the discovery of strain-sensitive structures in the membrane and organelles of cells extending into the brain, heart, and other organs. Notably, clinical trials are underway for treating epilepsy using focused ultrasound to elicit an organized local electrical response. A key limitation to this approach is the formation of standing waves within the skull. In standing acoustic waves, the maximum ultrasound intensity spatially varies from near zero to double the mean in one half a wavelength, and has lead to localized tissue damage and disruption of normal brain function while attempting to evoke a broader response. This phenomenon also produces a large spatial variation in the actual ultrasound exposure in tissue, leading to heterogeneous results and challenges with interpreting these effects. One approach to overcome this limitation is presented herein: transducer-mounted diffusers that result in spatiotemporally incoherent ultrasound. Herein, we numerically and experimentally quantified the effect of a diffuser in an enclosed domain, and show that adding the diffuser leads to a two-fold increase in ultrasound responsiveness of hsTRPA1 transfected HEK cells. Furthermore, we demonstrate the diffuser allow us to produce an uniform spatial distribution of pressure in the rodent skull. Collectively, we propose that our approach leads to a means to deliver uniform ultrasound into irregular cavities for sonogenetics.

摘要

在过去十年中,超声神经调节领域发展迅速,这是由于在延伸至大脑、心脏和其他器官的细胞的膜和细胞器中发现了应变敏感结构。值得注意的是,目前正在进行使用聚焦超声引发有组织的局部电反应来治疗癫痫的临床试验。这种方法的一个关键限制是颅骨内驻波的形成。在驻波中,最大超声强度在空间上从接近零变化到一个半波长内平均值的两倍,并且在试图引发更广泛反应时导致局部组织损伤和正常脑功能的破坏。这种现象还会在组织中的实际超声暴露中产生很大的空间变化,导致结果异质性以及解释这些效应时面临挑战。本文提出了一种克服这一限制的方法:安装在换能器上的扩散器,其可产生时空不相干的超声。在此,我们通过数值模拟和实验量化了扩散器在封闭区域中的效果,并表明添加扩散器可使转染了hsTRPA1的HEK细胞的超声反应性提高两倍。此外,我们证明了扩散器使我们能够在啮齿动物颅骨中产生均匀的压力空间分布。总体而言,我们提出我们的方法为在声遗传学中向不规则腔体内输送均匀超声提供了一种手段。

相似文献

本文引用的文献

1
Ultrasound Mediated Cellular Deflection Results in Cellular Depolarization.超声介导的细胞偏转导致细胞去极化。
Adv Sci (Weinh). 2022 Jan;9(2):e2101950. doi: 10.1002/advs.202101950. Epub 2021 Nov 7.
8
Focused Ultrasound for Neuromodulation.聚焦超声神经调控
Neurotherapeutics. 2019 Jan;16(1):88-99. doi: 10.1007/s13311-018-00691-3.
9
Noninvasive Ultrasonic Neuromodulation in Freely Moving Mice.在自由活动的小鼠中进行无创超声神经调节。
IEEE Trans Biomed Eng. 2019 Jan;66(1):217-224. doi: 10.1109/TBME.2018.2821201. Epub 2018 Apr 2.

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