小脑经颅交流刺激产生频率依赖的双峰小脑输出模式。

IF 2.7 3区 医学 Q3 NEUROSCIENCES
Devry Mourra, Angela M Cavalieri, Madison M Casey, Mesut Sahin, Eric J Lang
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引用次数: 0

摘要

小脑经颅交流电刺激(ctACS)有可能成为精神和神经疾病的一种有吸引力的非侵入性治疗选择。然而,由于我们对ctACS如何影响单细胞和群体水平的小脑输出的了解不足,这种潜力的实现受到了限制。在此之前,我们发现,施加于小脑表面的交流电刺激对浦肯野细胞(PC)和小脑核(CN)细胞活性产生强烈的频率依赖性调制。在这里,为了更接近ctACS条件,我们研究了在麻醉的成年雌性Sprague-Dawley大鼠身上,施加AC刺激于小腿1上的外颅骨表面如何改变PC和CN活性。在0.5 ~ 80 Hz的频率范围内,ctACS对PC和CN活性的响应表现出频率依赖性调制。大多数pc在所有频率上都表现出单峰响应,而随着刺激频率的增加,大多数CN细胞转变为双峰模式。CN细胞调制的局部极小值相位的频率依赖性与PC活性驱动的CN细胞相一致。此外,通过对同侧和对侧放置刺激电极记录部位的反应进行比较,发现夹带的强度和模式取决于刺激电极的位置,这表明ctACS电极放置可以用来靶向特定的小脑输出通道。综上所述,结果表明经颅刺激小脑皮层可以调节小脑输出,这对其用于治疗神经和精神疾病具有潜在的意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cerebellar Transcranial AC Stimulation Produces a Frequency-Dependent Bimodal Cerebellar Output Pattern.

Cerebellar transcranial alternating current stimulation (ctACS) has the potential to be an appealing, non-invasive treatment option for psychiatric and neurological disorders. However, realization of this potential has been limited by gaps in our knowledge of how ctACS affects cerebellar output on single cell and population levels. Previously, we showed that AC stimulation applied to the cerebellar surface produced a strong, frequency-dependent modulation of Purkinje cell (PC) and cerebellar nuclear (CN) cell activity. Here, to approximate more closely the ctACS conditions, we investigated how AC stimulation applied to the external skull surface overlying crus 1 altered PC and CN activity in anesthetized adult female Sprague-Dawley rats. PC and CN activity showed a frequency-dependent modulation in response to ctACS at frequencies ranging from 0.5 to 80 Hz. A unimodal response was seen for most PCs across all frequencies, whereas most CN cells transitioned to bimodal patterns as stimulus frequency increased. The frequency-dependence of the phases of the local minima of the CN cell modulation were consistent with CN cells being driven synaptically by PC activity. Furthermore, comparison of responses with ipsilateral and contralateral placement of the stimulus electrode with respect to the recording site showed that the strength and pattern of the entrainment depended on the stimulus electrode location, suggesting that ctACS electrode placement could be used to target specific cerebellar output channels. In sum, the results show that transcranial stimulation of the cerebellar cortex can modulate cerebellar output, which has potential implications for its use in treating neurological and psychiatric disorders.

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来源期刊
Cerebellum
Cerebellum 医学-神经科学
CiteScore
6.40
自引率
14.30%
发文量
150
审稿时长
4-8 weeks
期刊介绍: Official publication of the Society for Research on the Cerebellum devoted to genetics of cerebellar ataxias, role of cerebellum in motor control and cognitive function, and amid an ageing population, diseases associated with cerebellar dysfunction. The Cerebellum is a central source for the latest developments in fundamental neurosciences including molecular and cellular biology; behavioural neurosciences and neurochemistry; genetics; fundamental and clinical neurophysiology; neurology and neuropathology; cognition and neuroimaging. The Cerebellum benefits neuroscientists in molecular and cellular biology; neurophysiologists; researchers in neurotransmission; neurologists; radiologists; paediatricians; neuropsychologists; students of neurology and psychiatry and others.
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