经颅磁声刺激对兴奋性和抑制性神经元放电模式的影响。

IF 3.1 3区 工程技术 Q2 NEUROSCIENCES
Cognitive Neurodynamics Pub Date : 2025-12-01 Epub Date: 2025-06-30 DOI:10.1007/s11571-025-10290-6
Yiming Li, Haoyu Qiu, Haijun Zhu
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引用次数: 0

摘要

经颅磁声刺激(TMAS)是一种创新、高效、无创的脑刺激方式。神经元作为神经网络的组成部分,在信息传递中起着至关重要的作用。然而,TMAS对兴奋性和抑制性神经元放电模式的影响尚不完全清楚。为了解决这一差距,使用改进的欧拉方法对霍奇金-赫胥黎神经元模型进行了分析。通过系统调节离子通道参数和刺激参数,对神经元放电模式进行了全面的研究。结果表明,超声频率对神经元动作电位的影响很小。相反,随着静磁场强度和超声功率的增强,两类神经元的兴奋性逐渐增强。然而,与兴奋性神经元相比,抑制性神经元的动作电位的电特性变化不那么明显。此外,离子通道参数的改变显著影响这两种神经元的放电特性。本研究表明,TMAS对兴奋性和抑制性神经元的放电模式有显著影响。兴奋性神经元对静磁场和超声功率的增强表现出更强的规律性放电,而抑制性神经元对低强度静磁场没有反应。此外,我们的系统分析揭示了离子通道参数和TMAS刺激参数之间的协同效应。这些发现揭示了神经元类型特异性和离子通道动力学如何共同影响TMAS的疗效,从而推进了先前的研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effects of transcranial magneto-acoustical stimulation on excitatory and inhibitory neuronal discharge patterns.

Transcranial Magneto-Acoustical Stimulation (TMAS) represents an innovative, highly efficacious, and non-invasive modality for brain stimulation. Neurons, as integral components of neural networks, are crucial for the transmission of information. Nevertheless, the impact of TMAS on the discharge patterns of both excitatory and inhibitory neurons is not yet fully understood. To address this gap, the Hodgkin-Huxley neuronal model is analyzed using the improved Euler method. The neuronal discharge patterns are comprehensively examined by systematically adjusting ion channel parameters and stimulation parameters. The results indicate that ultrasound frequency exerted minimal influence on the properties of neuronal action potentials. Conversely, as the static magnetic field strength and ultrasound power are augmented, the excitability of both types of neurons progressively enhances. However, the changes in the electrical properties of action potentials are less pronounced in inhibitory neurons compared to excitatory neurons. Furthermore, alterations in ion channel parameters significantly influence the firing characteristics of both types of neurons. The present study elucidates that TMAS has a significant effect on the firing patterns of excitatory and inhibitory neurons. Excitatory neurons showed stronger regular discharges in response to static magnetic fields and increased ultrasound power, whereas inhibitory neurons did not respond to low-intensity static magnetic fields. In addition, our systematic analysis revealed synergistic effects between ion channel parameters and TMAS stimulation parameters. These findings shed light on how neuron type specificity and ion channel dynamics work together to shape the efficacy of TMAS, thus advancing previous studies.

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来源期刊
Cognitive Neurodynamics
Cognitive Neurodynamics 医学-神经科学
CiteScore
6.90
自引率
18.90%
发文量
140
审稿时长
12 months
期刊介绍: Cognitive Neurodynamics provides a unique forum of communication and cooperation for scientists and engineers working in the field of cognitive neurodynamics, intelligent science and applications, bridging the gap between theory and application, without any preference for pure theoretical, experimental or computational models. The emphasis is to publish original models of cognitive neurodynamics, novel computational theories and experimental results. In particular, intelligent science inspired by cognitive neuroscience and neurodynamics is also very welcome. The scope of Cognitive Neurodynamics covers cognitive neuroscience, neural computation based on dynamics, computer science, intelligent science as well as their interdisciplinary applications in the natural and engineering sciences. Papers that are appropriate for non-specialist readers are encouraged. 1. There is no page limit for manuscripts submitted to Cognitive Neurodynamics. Research papers should clearly represent an important advance of especially broad interest to researchers and technologists in neuroscience, biophysics, BCI, neural computer and intelligent robotics. 2. Cognitive Neurodynamics also welcomes brief communications: short papers reporting results that are of genuinely broad interest but that for one reason and another do not make a sufficiently complete story to justify a full article publication. Brief Communications should consist of approximately four manuscript pages. 3. Cognitive Neurodynamics publishes review articles in which a specific field is reviewed through an exhaustive literature survey. There are no restrictions on the number of pages. Review articles are usually invited, but submitted reviews will also be considered.
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