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Mindfulness meditation styles differently modulate source-level MEG microstate dynamics and complexity

Antea D’Andrea, Pierpaolo Croce, Jordan O’Byrne, Karim Jerbi, Annalisa Pascarella, Antonino Raffone, Vittorio Pizzella, Vittorio Pizzella, Laura Marzetti, Laura Marzetti

Frontiers in Neuroscience February 2, 2024 DOI: 10.3389/fnins.2024.1295615 via DOAJ

Summary

AI-generated from the abstract

Theravada Buddhist monks with extensive meditation experience underwent magnetoencephalography during focused attention meditation, open monitoring meditation, and resting states. Brain microstate coverage and occurrence differed between meditation and rest and between the two meditation styles. The Hurst exponent, a measure of long-range memory in brain dynamics, was lower during both meditation conditions than during rest. Lempel-Ziv complexity, which quantifies signal complexity, increased progressively from rest to focused attention meditation to open monitoring meditation. These changes in brain criticality indices suggest that meditation shifts brain dynamics toward a more critical state, paralleling changes in cognitive state.

Study at a glance

Characteristics Observational cohort Randomized Peer reviewed
Sample size 10
Population Theravada Buddhist monks with at least 2,265 hours of meditation experience
Interventions Focused attention meditation Open monitoring meditation
Duration 6 minutes per meditation condition, with each block preceded and followed by 3 minutes of resting state
Keywords Microstate analysis Brain criticality Complexity Mindfulness meditation Open monitoring meditation
Citations 13
Key finding Brain criticality indices (Hurst exponent and Lempel-Ziv complexity) are modulated by meditation state and style, with open monitoring meditation showing the highest complexity and both meditation types reducing the Hurst exponent relative to rest.

Abstract

BackgroundThe investigation of mindfulness meditation practice, classically divided into focused attention meditation (FAM), and open monitoring meditation (OMM) styles, has seen a long tradition of theoretical, affective, neurophysiological and clinical studies. In particular, the high temporal resolution of magnetoencephalography (MEG) or electroencephalography (EEG) has been exploited to fill the gap between the personal experience of meditation practice and its neural correlates. Mounting evidence, in fact, shows that human brain activity is highly dynamic, transiting between different brain states (microstates). In this study, we aimed at exploring MEG microstates at source-level during FAM, OMM and in the resting state, as well as the complexity and criticality of dynamic transitions between microstates.MethodsTen right-handed Theravada Buddhist monks with a meditative expertise of minimum 2,265 h participated in the experiment. MEG data were acquired during a randomized block design task (6 min FAM, 6 min OMM, with each meditative block preceded and followed by 3 min resting state). Source reconstruction was performed using eLORETA on individual cortical space, and then parcellated according to the Human Connect Project atlas. Microstate analysis was then applied to parcel level signals in order to derive microstate topographies and indices. In addition, from microstate sequences, the Hurst exponent and the Lempel-Ziv complexity (LZC) were computed.ResultsOur results show that the coverage and occurrence of specific microstates are modulated either by being in a meditative state or by performing a specific meditation style. Hurst exponent values in both meditation conditions are reduced with respect to the value observed during rest, LZC shows significant differences between OMM, FAM, and REST, with a progressive increase from REST to FAM to OMM.DiscussionImportantly, we report changes in brain criticality indices during meditation and between meditation styles, in line with a state-like effect of meditation on cognitive performance. In line with previous reports, we suggest that the change in cognitive state experienced in meditation is paralleled by a shift with respect to critical points in brain dynamics.

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