Exercise enhances hippocampal-cortical ripple interactions in the human brain

Cardenas AR, Ramirez Villegas JF, Kovach CK, Gander PE, Cole RC, Grossbach AJ, Kawasaki H, Greenlee JDW, Howard MA, Nourski KV, Banks MI, Voss MW. 2026. Exercise enhances hippocampal-cortical ripple interactions in the human brain. Brain Communications. 8(2), fcag041.

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Journal Article | Published | English

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Author
Cardenas, Araceli R.; Ramirez Villegas, Juan FISTA; Kovach, Christopher K.; Gander, Phillip E.; Cole, Rachel C.; Grossbach, Andrew J.; Kawasaki, Hiroto; Greenlee, Jeremy D.W.; Howard, Matthew A.; Nourski, Kirill V.; Banks, Matthew I.; Voss, Michelle W.
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Abstract
Physical exercise acutely improves hippocampus-dependent memory. Whereas animal studies have offered cellular- and synaptic-level accounts of these effects, human neuroimaging studies show that exercise improves hippocampal-cortical connectivity at the macroscale level. However, the neurophysiological basis of exercise-induced effects on hippocampal-cortical circuits remains unknown. Experimental evidence supports the idea that hippocampal sharp wave-ripples (SWR) play a critical role in learning and memory. Coupling between SWRs in the hippocampus and neocortex may reflect modulations in inter-regional connectivity required by mnemonic processes. Here, we examine the hypothesis that exercise modulates hippocampal-cortical ripple dynamics in the human brain. We performed intracranial recordings in epilepsy patients undergoing pre-surgical evaluation, during awake resting state, before and after an exercise session. Exercise increased ripple rate in the hippocampus. Exercise also enhanced the coupling and phase-synchrony between cortical ripples in the limbic and the default mode (DM) cortical networks and hippocampal SWRs. Further, a higher heart rate during exercise, reflecting exercise intensity, was related to a subsequent increase in resting state ripples across specific cortical networks, including the DM network. These results offer the first direct evidence that a single exercise session elicits changes in ripple events, a well-established neurophysiological marker of mnemonic processing. The characterisation and anatomical distribution of the described modulation points to hippocampal ripples as a potential mechanism by which exercise elicits its reported short-term effects in cognition.
Publishing Year
Date Published
2026-03-09
Journal Title
Brain Communications
Publisher
Oxford University Press
Acknowledgement
We acknowledge the generosity of the patients, who contributed time and effort to take part in this study.
Volume
8
Issue
2
Article Number
fcag041
eISSN
IST-REx-ID

Cite this

Cardenas AR, Ramirez Villegas JF, Kovach CK, et al. Exercise enhances hippocampal-cortical ripple interactions in the human brain. Brain Communications. 2026;8(2). doi:10.1093/braincomms/fcag041
Cardenas, A. R., Ramirez Villegas, J. F., Kovach, C. K., Gander, P. E., Cole, R. C., Grossbach, A. J., … Voss, M. W. (2026). Exercise enhances hippocampal-cortical ripple interactions in the human brain. Brain Communications. Oxford University Press. https://doi.org/10.1093/braincomms/fcag041
Cardenas, Araceli R., Juan F Ramirez Villegas, Christopher K. Kovach, Phillip E. Gander, Rachel C. Cole, Andrew J. Grossbach, Hiroto Kawasaki, et al. “Exercise Enhances Hippocampal-Cortical Ripple Interactions in the Human Brain.” Brain Communications. Oxford University Press, 2026. https://doi.org/10.1093/braincomms/fcag041.
A. R. Cardenas et al., “Exercise enhances hippocampal-cortical ripple interactions in the human brain,” Brain Communications, vol. 8, no. 2. Oxford University Press, 2026.
Cardenas AR, Ramirez Villegas JF, Kovach CK, Gander PE, Cole RC, Grossbach AJ, Kawasaki H, Greenlee JDW, Howard MA, Nourski KV, Banks MI, Voss MW. 2026. Exercise enhances hippocampal-cortical ripple interactions in the human brain. Brain Communications. 8(2), fcag041.
Cardenas, Araceli R., et al. “Exercise Enhances Hippocampal-Cortical Ripple Interactions in the Human Brain.” Brain Communications, vol. 8, no. 2, fcag041, Oxford University Press, 2026, doi:10.1093/braincomms/fcag041.
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2026-03-23
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