心理学
焦虑
社交焦虑
认知心理学
背景(考古学)
功能磁共振成像
社会学习
任务(项目管理)
概率逻辑
人工神经网络
动力学(音乐)
发展心理学
社交网络(社会语言学)
社会动力
人工智能
网络动力学
亚临床感染
社会抑制
动作选择
机器学习
社会关系
社会心理学
脑电图
机制(生物学)
贝叶斯概率
社会神经科学
贝叶斯推理
作者
Hanjie Liu,Melle J. W. van der Molen
标识
DOI:10.1523/jneurosci.2161-25.2026
摘要
Social anxiety is reliably characterized by biases toward avoidance and aversive learning. Frontal-midline theta (FM-theta) oscillations have been implicated as a key neural mechanism underlying these learning biases. Here we combined a dynamic network neuroscience approach with computational modeling to investigate how FM-theta oscillatory activity coordinates large-scale functional network interactions on a trial-to-trial basis during feedback-guided learning. Additionally, we examined how these neural dynamics are altered in social anxiety across different social contexts. A sample of 146 human participants (129 female, mean age = 20.4 years) with varying levels of social anxiety completed a probabilistic selection task while performing alone and under scrutiny. Using non-negative matrix factorization, we identified two functional neural subgraphs supported by FM-theta. Fronto-parietal connectivity increased following aversive outcomes and scaled with positive prediction errors, consistent with error-monitoring and belief-updating. Fronto-occipital connectivity scaled with prediction errors when performing alone but not under scrutiny, indicative of context-sensitive disruption of belief-updating. Participants with elevated social anxiety showed increased fronto-occipital connectivity, as well as stronger subgraph coupling, indexing cross-network integration. This latter effect facilitated learning of simple stimulus-reward associations, but hampered learning of difficult stimulus-reward associations. Together, these findings reveal that social anxiety amplifies fronto-occipital FM-theta connectivity and cross-network integration, facilitating learning under low demand while hampering learning under high demand. Significance statement Social anxiety is reliably characterized by biases toward avoidance and aversive learning. Frontal-midline (FM) theta dynamics in the EEG have been proposed as a robust neural marker underlying these biases, yet how FM-theta coordinates large-scale brain networks to support feedback-guided learning remains unclear. Here, we show that elevated levels of social anxiety selectively amplify theta-dependent fronto-occipital connectivity during contextual learning, and that stronger coupling between FM-theta-dependent neural networks predicts better learning performance.
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