Abstract
The brain’s capacity for information processing depends on precisely regulated energy dynamics. Yet how metabolic supply adapts to shifting computational demands across brain states remains unclear. Using wide-field fluorescence imaging through the intact skull of live mice, we simultaneously monitored brain blood volume (BBV), astrocytic pyruvate, and neuronal ATP levels during natural sleep. We found that large-scale metabolic dynamics are coupled to neuronal activity but reorganize in a state-dependent manner. During non-rapid eye movement (NREM) sleep, theta-band electrocorticogram (ECoG) activity predicted subsequent blood volume changes, accompanied by rapid anterior-to-posterior vascular waves. In contrast, REM sleep was marked by a pronounced increase in BBV, originating in the posterior cortex and slowly propagating across the brain. This was accompanied by elevated astrocytic pyruvate; paradoxically, however, neuronal ATP levels declined sharply. These findings reveal a dynamic interplay among neurons, astrocytes, and the vasculature, suggesting that distinct energy-allocation strategies underlie the brain’s computational flexibility. (Figure presented.)
Cite
CITATION STYLE
Takahashi, Y., Ikoma, Y., & Matsui, K. (2026). Energy paradox in REM sleep: balancing supply and consumption in brain metabolism. Communications Biology, 9(1). https://doi.org/10.1038/s42003-026-10646-6
Register to see more suggestions
Mendeley helps you to discover research relevant for your work.