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超声刺激可诱导水蛭神经元产生长时间去极化和快速动作电位。

Ultrasound Stimulations Induce Prolonged Depolarization and Fast Action Potentials in Leech Neurons.

作者信息

Dedola Francesca, Severino Francesco Paolo Ulloa, Meneghetti Nicolo, Lemaire Theo, Cafarelli Andrea, Ricotti Leonardo, Menciassi Arianna, Cutrone Annarita, Mazzoni Alberto, Micera Silvestro

机构信息

1 The Biorobotics InstituteScuola Superiore Sant'Anna Pisa 56025 Italy.

Department of Excellence in Robotics and AIScuola Superiore Sant'Anna Pisa 56025 Italy.

出版信息

IEEE Open J Eng Med Biol. 2020 Feb 14;1:23-32. doi: 10.1109/OJEMB.2019.2963474. eCollection 2020.

Abstract

Ultrasound (US) stimulation carries the promise of a selective, reversible, and non-invasive modulation of neural activity without the need for genetic manipulation of neural structures. However, the mechanisms of US-induced generation of action potentials (APs) are still unclear. Here we address this issue by analyzing intracellularly recorded responses of leech nociceptive neurons to controlled delivery of US. US induced a depolarization linearly accumulating in time and outlasting the duration of the stimulation. Spiking activity was reliably induced for an optimal US intensity range. Moreover, we found that APs induced by US differ in smaller amplitude and faster repolarization from those induced by electrical stimulation in the same cell but display the same repolarization rate. These results shed light on the mechanism by which spikes are induced by US and pave the way for designing more efficient US stimulation patterns.

摘要

超声(US)刺激有望对神经活动进行选择性、可逆且非侵入性的调节,而无需对神经结构进行基因操作。然而,超声诱导动作电位(AP)产生的机制仍不清楚。在这里,我们通过分析细胞内记录的水蛭伤害性神经元对可控超声传递的反应来解决这个问题。超声诱导了一个随时间线性积累且持续时间超过刺激时长的去极化。在最佳超声强度范围内可可靠地诱导出放电活动。此外,我们发现超声诱导的动作电位与同一细胞中电刺激诱导的动作电位相比,幅度较小且复极化更快,但复极化速率相同。这些结果揭示了超声诱导动作电位的机制,并为设计更有效的超声刺激模式铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2afe/8979621/ab7c4b1c35af/micer1-2963474.jpg

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