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Circuit based anti-correlation, attention orienting, and major depression

机译:基于电路的反相关,注意定向和重大抑郁

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Major depression is a multidimensional disorder producing emotional dysregulation, cognitive impairment, and neuro-vegetative symptoms. A pathophysiological model of depression needs to explain how these dimensions interact to produce specific clinical phenotypes and how these interactions may predict remission to specific treatments. It is unlikely that major depression results from discrete brain lesions. Here we propose to define major depression as a disorder of neural networks. We review evidence suggesting that the dynamics of neural networks involved in allocation of attention resources to the internal and external world contribute to cognitive impairment, increased self-focus, and dysfunctional saliency detection in depression. We describe cognitive and emotional tasks that reveal abnormal cooperation between the Central Executive Network and the Default Mode Network. Finally we suggest that depression is associated with increased social rejection sensitivity. Studies on social rejection will shed light on how attachment relates to impairment in allocation of attention resources to produce depressive symptoms such as rumination and cognitive problems.
机译:主要抑郁症是一种多维疾病,产生情绪失调,认知障碍和神经营养症状。抑郁症的病理生理模型需要解释这些尺寸如何相互作用,以产生特定的临床表型以及这些相互作用如何预测特定治疗的缓解。它不太可能是来自离散的脑病变产生的主要抑郁症。在这里,我们建议将重大抑郁症定义为神经网络的疾病。我们审查了证据表明,涉及关注资源的神经网络的动态对内部和外部世界有助于抑郁症的认知障碍,增加自我焦点和功能失调效力检测。我们描述了揭示中央行政网络与默认模式网络之间异常合作的认知和情感任务。最后,我们建议抑郁症与社交抑制敏感度增加有关。关于社会拒绝的研究将阐明附着在关注资源分配中的损伤如何产生抑郁症状,例如谣言和认知问题。

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