Key result
Tibetan Buddhist meditation is linked to transient modulations of neural heartbeat responses and EEG network reconfigurations.
Why the study?
Little is known about how the brain and peripheral systems interact to produce behavioral and mental changes during meditation.
Does traditional Tibetan Buddhist meditation alter the neural representation of cardiac activity and whole-brain spatiotemporal dynamics in long-term practitioners?
Observational
Does traditional Tibetan Buddhist meditation alter the neural representation of cardiac activity and whole-brain spatiotemporal dynamics in long-term practitioners?
Traditional Tibetan Buddhist meditation induces changes in the neural representation of cardiac activity and large-scale brain network integrations, suggesting a mechanism for meditation-induced cortical plasticity.
Meditation may alter neural-cardiac coupling; leaves open mechanistic and clinical implications for well-being.
Despite accumulating evidence suggesting improvement in one's well-being as a result of meditation, little is known about if or how the brain and the periphery interact to produce these behavioral and mental changes. We hypothesize that meditation reflects changes in the neural representations of visceral activity, such as cardiac behavior, and investigated the integration of neural and visceral systems and the spontaneous whole brain spatiotemporal dynamics underlying traditional Tibetan Buddhist meditation. In a large cohort of long-term Tibetan Buddhist monk meditation practitioners, we found distinct transient modulations of the neural response to heartbeats in the default mode network (DMN), along with large-scale network reconfigurations in the gamma and theta bands of electroencephalography (EEG) activity induced by meditation. Additionally, temporal-frontal network connectivity in the EEG theta band was negatively correlated with the duration of meditation experience, and gamma oscillations were uniquely, directionally coupled to theta oscillations during meditation. Overall, these data suggest that the neural representation of cardiac activity in the DMN and large-scale spatiotemporal network integrations underlie the fundamental neural mechanism of meditation and further imply that meditation may utilize cortical plasticity, inducing both immediate and long-lasting changes in the intrinsic organization and activity of brain networks.
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Jiang et al. (2019) conducted an observational in Meditation practitioners. Traditional Tibetan Buddhist meditation was evaluated on Neural response to heartbeats in the default mode network and EEG activity. Traditional Tibetan Buddhist meditation induced distinct transient modulations of the neural response to heartbeats in the default mode network and large-scale EEG network reconfigurations.
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