与高强度间歇训练和中等强度持续训练引起的中枢疲劳相关的小鼠M1和CA1局部场电位和神经元发射变化的比较

IF 4.3 3区 材料科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC
ACS Applied Electronic Materials Pub Date : 2024-08-15 eCollection Date: 2024-01-01 DOI:10.3389/fnins.2024.1428901
Yuncheng Liu, Weiyi Lao, Haojie Mao, Yaoyao Zhong, Jihui Wang, Wei Ouyang
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引用次数: 0

摘要

背景:高强度间歇训练(HIIT)和中等强度持续训练(MICT)诱发中枢疲劳(CF)的机制尚未完全明了:为了探索这些训练对大脑皮层和皮层下神经网络功能的影响,本研究调查了 HIIT 和 MICT 对小鼠初级运动皮层(M1)和海马 CA1 区局部场电位(LFP)和神经元发射的影响。在 C57BL/6 小鼠身上进行了 HIIT 和 MICT,并在 M1 运动皮层和 CA1 海马区同时进行了多通道记录:结果:小鼠产生了一系列反应,包括两个区域 LFP 节律的一致性值降低,慢功率谱密度(PSD,n = 7-9)分别增加和减少。HIIT/MICT 还降低了 M1 和 CA1 的重力频率(GF,n = 7-9)。这两种运动都降低了M1和CA1的总体发射率,增加了发射时滞,降低了爆发发射率和爆发中的尖峰数量,并缩短了爆发持续时间(BD)(n = 7-9)。虽然一些神经元的发射特性出现了恢复趋势,但 LFP 参数的改变在 HIIT/MICT 后的 10 分钟内更为持续。在影响LFP参数、神经元发射率和爆发发射特性方面,MICT似乎比HIIT更有效,尤其是在CA1。两种运动都明显影响了M1和CA1的神经网络活动和局部神经元发射,而MICT对M1和CA1之间功能整合的抑制作用更大、更一致:我们的研究通过考察 M1 和 CA1 区域之间功能连接和协调的变化,对运动诱发中枢疲劳的神经机制提供了有价值的见解。这些发现可能有助于运动者优化运动强度和时间,以提高运动表现并防止过度疲劳。此外,这些发现还可能对开发旨在控制与运动引起的疲劳相关的疾病的干预措施具有临床意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Comparison of alterations in local field potentials and neuronal firing in mouse M1 and CA1 associated with central fatigue induced by high-intensity interval training and moderate-intensity continuous training.

Background: The mechanisms underlying central fatigue (CF) induced by high-intensity interval training (HIIT) and moderate-intensity continuous training (MICT) are still not fully understood.

Methods: In order to explore the effects of these exercises on the functioning of cortical and subcortical neural networks, this study investigated the effects of HIIT and MICT on local field potential (LFP) and neuronal firing in the mouse primary motor cortex (M1) and hippocampal CA1 areas. HIIT and MICT were performed on C57BL/6 mice, and simultaneous multichannel recordings were conducted in the M1 motor cortex and CA1 hippocampal region.

Results: A range of responses were elicited, including a decrease in coherence values of LFP rhythms in both areas, and an increase in slow and a decrease in fast power spectral density (PSD, n = 7-9) respectively. HIIT/MICT also decreased the gravity frequency (GF, n = 7-9) in M1 and CA1. Both exercises decreased overall firing rates, increased time lag of firing, declined burst firing rates and the number of spikes in burst, and reduced burst duration (BD) in M1 and CA1 (n = 7-9). While several neuronal firing properties showed a recovery tendency, the alterations of LFP parameters were more sustained during the 10-min post-HIIT/MICT period. MICT appeared to be more effective than HIIT in affecting LFP parameters, neuronal firing rate, and burst firing properties, particularly in CA1. Both exercises significantly affected neural network activities and local neuronal firing in M1 and CA1, with MICT associated with a more substantial and consistent suppression of functional integration between M1 and CA1.

Conclusion: Our study provides valuable insights into the neural mechanisms involved in exercise-induced central fatigue by examining the changes in functional connectivity and coordination between the M1 and CA1 regions. These findings may assist individuals engaged in exercise in optimizing their exercise intensity and timing to enhance performance and prevent excessive fatigue. Additionally, the findings may have clinical implications for the development of interventions aimed at managing conditions related to exercise-induced fatigue.

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