4.6 Article

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

期刊

JOURNAL OF CEREBRAL BLOOD FLOW AND METABOLISM
卷 40, 期 11, 页码 2225-2239

出版社

SAGE PUBLICATIONS INC
DOI: 10.1177/0271678X19887777

关键词

Calcium signalling; electrophysiology; mitochondria; neurometabolic coupling; neuronal activity

资金

  1. Deutsche Forschungsgemeinschaft (Collaborative Research Center) [1134, FOR2289, BA1007/9-1, BA3679/4-2]
  2. UK Medical Research Council
  3. Alzheimer's Research UK
  4. Alzheimer's Society
  5. BBSRC [BB/P00122X/1] Funding Source: UKRI
  6. MRC [MR/K013750/1, UKDRI-4001] Funding Source: UKRI

向作者/读者索取更多资源

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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