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单单位记录显示聚焦脉冲超声可提高外周神经传导速度。

single-unit recordings reveal increased peripheral nerve conduction velocity by focused pulsed ultrasound.

作者信息

Ilham S J, Chen L, Guo T, Emadi S, Hoshino K, Feng B

机构信息

Department of Biomedical Engineering, University of Connecticut, Storrs, CT 06269, USA.

出版信息

Biomed Phys Eng Express. 2018;4(4). doi: 10.1088/2057-1976/aabef1. Epub 2018 May 3.

Abstract

Ultrasound that is widely used in medical diagnosis has drawn growing interests as a noninvasive means of neuromodulation. Focused pulsed ultrasound (FPUS) effectively modulates neural encoding and transmission in the peripheral nervous system (PNS) with unclear mechanism of action, which is further confounded by contradictory experimental outcomes from recordings of compound action potentials (CAP). To address that, we developed a novel set up to achieve simultaneous single-unit recordings from individual mouse sciatic nerve axon and systematically studied the neuromodulation effects of FPUS on individual axon. Unlike previous CAP recordings, our single-unit recordings afford superior spatial and temporal resolution to reveal the subtle but consistent effects of ultrasonic neuromodulation. Our results indicate that, 1) FPUS did not evoke action potentials directly in mouse sciatic nerve at all the tested intensities (spatial peak temporal average intensity, I of 0.91 to 28.2 W/cm); 2) FPUS increases the nerve conduction velocity (CV) in both fast-conducting A- and slow-conducting C- type axons with effects more pronounced at increased stimulus duration and intensity; and 3) effects of increased CV is reversible and cannot be attributed to the change of local temperature. Our results support existing theories of non-thermal mechanisms underlying ultrasonic neuromodulation with low-intensity FPUS, including NICE, flexoelectricity, and solition models. This work also provides a solid experimental basis to further advance our mechanistic understandings of ultrasonic neuromodulation in the PNS.

摘要

作为一种非侵入性神经调节手段,广泛应用于医学诊断的超声波已引起越来越多的关注。聚焦脉冲超声(FPUS)能有效调节外周神经系统(PNS)中的神经编码和传递,但其作用机制尚不清楚,复合动作电位(CAP)记录得到的相互矛盾的实验结果进一步混淆了这一机制。为了解决这一问题,我们开发了一种新颖的装置,以实现对单个小鼠坐骨神经轴突的同步单单元记录,并系统地研究了FPUS对单个轴突的神经调节作用。与之前的CAP记录不同,我们的单单元记录具有更高的空间和时间分辨率,能够揭示超声神经调节的细微但一致的效果。我们的结果表明,1)在所有测试强度(空间峰值时间平均强度,I为0.91至28.2 W/cm)下,FPUS均未直接在小鼠坐骨神经中诱发动作电位;2)FPUS可提高快速传导的A类和慢速传导的C类轴突的神经传导速度(CV),在增加刺激持续时间和强度时效果更明显;3)CV增加的效果是可逆的,且不能归因于局部温度的变化。我们的结果支持了现有的关于低强度FPUS超声神经调节的非热机制的理论,包括NICE、挠曲电和孤立子模型。这项工作也为进一步深化我们对PNS中超声神经调节机制的理解提供了坚实的实验基础。

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