Temporal dynamics of electroencephalographic microstates during sustained pain

Author:

Qiu Shuang12,Lyu Xiaohan3,Zheng Qianqian3,He Huiguang12,Jin Richu4,Peng Weiwei3

Affiliation:

1. Laboratory of Brain Atlas and Brain-Inspired Intelligence, State Key Laboratory of Multimodal Artificial Intelligence Systems, Institute of Automation, Chinese Academy of Science , Beijing 100190 , China

2. School of Artificial Intelligence, University of Chinese Academy of Sciences , Beijing 100049 , China

3. School of Psychology, Shenzhen University , Shenzhen, Guangdong 518060 , China

4. Department of Computer Science and Engineering, Southern University of Science and Technology , Shenzhen, Guangdong 518055 , China

Abstract

Abstract Brain dynamics can be modeled by a sequence of transient, nonoverlapping patterns of quasi-stable electrical potentials named “microstates.” While electroencephalographic (EEG) microstates among patients with chronic pain remained inconsistent in the literature, this study characterizes the temporal dynamics of EEG microstates among healthy individuals during experimental sustained pain. We applied capsaicin (pain condition) or control (no-pain condition) cream to 58 healthy participants in different sessions and recorded resting-state EEG 15 min after application. We identified 4 canonical microstates (A–D) that are related to auditory, visual, salience, and attentional networks. Microstate C had less occurrence, as were bidirectional transitions between microstate C and microstates A and B during sustained pain. In contrast, sustained pain was associated with more frequent and longer duration of microsite D, as well as more bidirectional transitions between microstate D and microstates A and B. Microstate D duration positively correlated with intensity of ongoing pain. Sustained pain improved global integration within microstate C functional network, but weakened global integration and efficiency within microstate D functional network. These results suggest that sustained pain leads to an imbalance between processes that load on saliency (microstate C) and processes related to switching and reorientation of attention (microstate D).

Funder

National Natural Science Foundation of China

Shenzhen Basic Research Project

Beijing Natural Science Foundation

Publisher

Oxford University Press (OUP)

Subject

Cellular and Molecular Neuroscience,Cognitive Neuroscience

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