Brain activity regulates loose coupling between mitochondrial and cytosolic Ca<sup>2+</sup> transients.

Lin, Yuan; Li, Lin-Lin; Nie, Wei; Liu, Xiaolei; Adler, Avital; Xiao, Chi; Lu, Fujian; Wang, Liping et al. · Nat Commun · 2019

basic_science · Level V

Where this comes from

Abstract

Mitochondrial calcium ([Ca<sup>2+</sup>]<sub>mito</sub>) dynamics plays vital roles in regulating fundamental cellular and organellar functions including bioenergetics. However, neuronal [Ca<sup>2+</sup>]<sub>mito</sub> dynamics in vivo and its regulation by brain activity are largely unknown. By performing two-photon Ca<sup>2+</sup> imaging in the primary motor (M1) and visual cortexes (V1) of awake behaving mice, we find that discrete [Ca<sup>2+</sup>]<sub>mito</sub> transients occur synchronously over somatic and dendritic mitochondrial network, and couple with cytosolic calcium ([Ca<sup>2+</sup>]<sub>cyto</sub>) transients in a probabilistic, rather than deterministic manner. The amplitude, duration, and frequency of [Ca<sup>2+</sup>]<sub>cyto</sub> transients constitute important determinants of the coupling, and the coupling fidelity is greatly increased during treadmill running (in M1 neurons) and visual stimulation (in V1 neurons). Moreover, Ca<sup>2+</sup>/calmodulin kinase II is mechanistically involved in modulating the dynamic coupling process. Thus, activity-dependent dynamic [Ca<sup>2+</sup>]<sub>mito</sub>-to-[Ca<sup>2+</sup>]<sub>cyto</sub> coupling affords an important mechanism whereby [Ca<sup>2+</sup>]<sub>mito</sub> decodes brain activity for the regulation of mitochondrial bioenergetics to meet fluctuating neuronal energy demands as well as for neuronal information processing.

Medical subject headings