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颅内刺激和 EEG 特征分析揭示情感突显网络的专业化。

Intracranial stimulation and EEG feature analysis reveal affective salience network specialization.

机构信息

Department of Psychology, Swarthmore College, Swarthmore, PA 19081, USA.

Department of Neurosurgery, Baylor College of Medicine, Houston, TX 77030, USA.

出版信息

Brain. 2023 Oct 3;146(10):4366-4377. doi: 10.1093/brain/awad200.

Abstract

Emotion is represented in limbic and prefrontal brain areas, herein termed the affective salience network (ASN). Within the ASN, there are substantial unknowns about how valence and emotional intensity are processed-specifically, which nodes are associated with affective bias (a phenomenon in which participants interpret emotions in a manner consistent with their own mood). A recently developed feature detection approach ('specparam') was used to select dominant spectral features from human intracranial electrophysiological data, revealing affective specialization within specific nodes of the ASN. Spectral analysis of dominant features at the channel level suggests that dorsal anterior cingulate (dACC), anterior insula and ventral-medial prefrontal cortex (vmPFC) are sensitive to valence and intensity, while the amygdala is primarily sensitive to intensity. Akaike information criterion model comparisons corroborated the spectral analysis findings, suggesting all four nodes are more sensitive to intensity compared to valence. The data also revealed that activity in dACC and vmPFC were predictive of the extent of affective bias in the ratings of facial expressions-a proxy measure of instantaneous mood. To examine causality of the dACC in affective experience, 130 Hz continuous stimulation was applied to dACC while patients viewed and rated emotional faces. Faces were rated significantly happier during stimulation, even after accounting for differences in baseline ratings. Together the data suggest a causal role for dACC during the processing of external affective stimuli.

摘要

情绪在边缘和前额叶大脑区域中得到体现,这些区域被称为情感突显网络 (ASN)。在 ASN 中,关于效价和情绪强度如何被处理存在许多未知之处——具体来说,哪些节点与情感偏向(一种现象,即参与者以与自己情绪一致的方式解释情绪)有关。最近开发的特征检测方法(“specparam”)被用于从人类颅内电生理数据中选择主导频谱特征,揭示了 ASN 特定节点内的情感专业化。通道水平上主导特征的频谱分析表明,背侧前扣带(dACC)、前岛叶和腹内侧前额叶皮层(vmPFC)对效价和强度敏感,而杏仁核主要对强度敏感。Akaike 信息准则模型比较证实了频谱分析的结果,表明与效价相比,这四个节点对强度的敏感性更高。该数据还表明,dACC 和 vmPFC 的活动可以预测表情评定中情感偏向的程度——即时情绪的替代测量。为了研究 dACC 在情感体验中的因果关系,在患者观看和评定情绪面孔时,对 dACC 施加 130Hz 的连续刺激。即使在考虑了基线评分差异后,在刺激期间,面孔被评定为明显更快乐。这些数据共同表明 dACC 在处理外部情感刺激时具有因果作用。

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