Inter-Network Effective Connectivity During Emotional Working Memory Task in two independent samples of young adults.

Renata Rozovsky, Michele Bertocci, Vaibhav Diwadkar, Richelle S Stiffler, Genna Bebko, Alexander S Skeba, Haris Aslam, Mary L Phillips
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Abstract

Background: Effective connectivity (EC) analysis provides valuable insights into the directionality of neural interactions, crucial for understanding the mechanisms underlying cognitive and emotional regulation in depressive and anxiety disorders. This study examined EC within key neural networks during working memory (WM) and emotional regulation (ER) tasks in young adults, both healthy and seeking help from mental health professionals for emotional distress.

Methods: Dynamic Causal Modeling (DCM) was employed to analyze EC in two independent samples (n=97 and n=94). Participants performed an emotional n-back task to assess EC across the Central Executive Network (CEN), Default Mode Network (DMN), Salience Network (SN), and Face Processing Network. Group-level Parametric Empirical Bayes (PEB) analyses were conducted to examine EC patterns, with sub-analyses comparing individuals with and without depression and anxiety.

Results: Consistent patterns of positive (posterior probability > 0.95) DMN→CEN and DMN→SN EC were observed in both samples, predominantly in Low and High WM conditions without ER. However, individuals without depressive or anxiety disorders exhibited a significantly greater number of preserved connections that were replicated across both samples.

Conclusions: This study highlights the different patterns of DMN→CEN EC in conditions with High and Low WM loads with/without ER, suggesting that in higher WM loads with ER, the integration of the DMN with the CEN is reduced to facilitate successful cognitive task performance. The findings also suggest that DMN→CEN and DMN→SN EC are significantly reduced in depressive and anxiety disorders, highlighting this pattern of reduced EC as a potential neural marker of these disorders.

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两个独立样本青年情绪工作记忆任务中的网络有效连通性。
背景:有效连接(EC)分析为神经相互作用的方向性提供了有价值的见解,对于理解抑郁和焦虑障碍的认知和情绪调节机制至关重要。本研究检测了年轻成年人在工作记忆(WM)和情绪调节(ER)任务中关键神经网络中的EC,这些年轻人既健康,也因情绪困扰寻求心理健康专家的帮助。方法:采用动态因果模型(DCM)对两个独立样本(n=97和n=94)的EC进行分析。参与者通过一项情绪n-back任务来评估EC在中央执行网络(CEN)、默认模式网络(DMN)、显著性网络(SN)和面部处理网络中的表现。群体水平参数经验贝叶斯(PEB)分析用于检查EC模式,并对有和没有抑郁和焦虑的个体进行了亚分析。结果:在两个样本中都观察到一致的阳性模式(后验概率> 0.95)DMN→CEN和DMN→SN - EC,主要是在无ER的低WM和高WM条件下。然而,没有抑郁或焦虑障碍的个体表现出明显更多的保存连接,这些连接在两个样本中都被复制。结论:本研究突出了在有ER和没有ER的高和低WM负荷条件下DMN→CEN EC的不同模式,表明在有ER的高WM负荷下,DMN与CEN的整合减少,有助于成功的认知任务表现。研究结果还表明,DMN→CEN和DMN→SN EC在抑郁症和焦虑症中显著减少,强调这种减少的EC模式是这些疾病的潜在神经标志物。
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