The mitochondrial calcium uniporter is crucial for the generation of fast cortical network rhythms

C. Bas-Orth, Justus Schneider, A. Lewen, Jamie McQueen, K. Hasenpusch-Theil, T. Theil, G. Hardingham, H. Bading, O. Kann
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引用次数: 14

Abstract

The role of the mitochondrial calcium uniporter (MCU) gene (Mcu) in cellular energy homeostasis and generation of electrical brain rhythms is widely unknown. We investigated this issue in mice and rats using Mcu-knockout and -knockdown strategies in vivo and in situ and determined the effects of these genetic manipulations on hippocampal gamma oscillations (30–70 Hz) and sharp wave-ripples. These physiological network states require precise neurotransmission between pyramidal cells and inhibitory interneurons, support spike-timing and synaptic plasticity and are associated with perception, attention and memory. Absence of the MCU resulted in (i) gamma oscillations with decreased power (by >40%) and lower synchrony, including less precise neural action potential generation (‘spiking'), (ii) sharp waves with decreased incidence (by about 22%) and decreased fast ripple frequency (by about 3%) and (iii) lack of activity-dependent pyruvate dehydrogenase dephosphorylation. However, compensatory adaptation in gene expression related to mitochondrial function and glucose metabolism was not detected. These data suggest that the neuronal MCU is crucial for the generation of network rhythms, most likely by influences on oxidative phosphorylation and perhaps by controlling cytoplasmic Ca2+ homeostasis. This work contributes to an increased understanding of mitochondrial Ca2+ uptake in cortical information processing underlying cognition and behaviour.
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线粒体钙单转运体对快速皮层网络节律的产生至关重要
线粒体钙单转运基因(MCU)在细胞能量稳态和脑电节律产生中的作用尚不清楚。我们在小鼠和大鼠体内和原位使用mcu敲除和敲低策略研究了这一问题,并确定了这些基因操作对海马伽马振荡(30-70 Hz)和尖锐波纹的影响。这些生理网络状态需要锥体细胞和抑制性中间神经元之间精确的神经传递,支持峰值定时和突触可塑性,并与感知、注意和记忆有关。MCU的缺失导致(i)伽马振荡功率降低(>40%),同步性降低,包括神经动作电位产生的准确性降低(“尖峰”),(ii)尖峰波发生率降低(约22%),快速波纹频率降低(约3%),以及(iii)缺乏活性依赖性丙酮酸脱氢酶去磷酸化。然而,与线粒体功能和糖代谢相关的基因表达的代偿性适应未被检测到。这些数据表明,神经元MCU对网络节律的产生至关重要,最可能的是通过影响氧化磷酸化和控制细胞质Ca2+稳态。这项工作有助于增加对皮层信息处理中潜在认知和行为的线粒体Ca2+摄取的理解。
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