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内源性三重网络模型中受干扰的有效连接模式与创伤后应激障碍有关。

Disturbed effective connectivity patterns in an intrinsic triple network model are associated with posttraumatic stress disorder.

机构信息

Department of Medical Imaging, Jinling Hospital, Medical School of Nanjing University, 305 Zhongshan East Road, Xuanwu District, Nanjing, 210002, Jiangsu Province, China.

Mental Health Institute, the Second Xiangya Hospital, National Technology Institute of Psychiatry, Key Laboratory of Psychiatry and Mental Health of Hunan Province, Central South University, No.139 Middle Renmin Road, Changsha, 410011, Hunan Province, China.

出版信息

Neurol Sci. 2019 Feb;40(2):339-349. doi: 10.1007/s10072-018-3638-1. Epub 2018 Nov 17.

Abstract

BACKGROUND

Disturbance of the triple network model was recently proposed to be associated with the occurrence of posttraumatic stress disorder (PTSD) symptoms. Based on resting-state dynamic causal modeling (rs-DCM) analysis, we investigated the neurobiological model at a neuronal level along with potential neuroimaging biomarkers for identifying individuals with PTSD.

METHODS

We recruited survivors of a devastating typhoon including 27 PTSD patients, 33 trauma-exposed controls (TECs), and 30 healthy controls without trauma exposure. All subjects underwent resting-state functional magnetic resonance imaging. Independent components analysis was used to identify triple networks. Detailed effective connectivity patterns were estimated by rs-DCM analysis. Spearman correlation analysis was performed on aberrant DCM parameters with clinical assessment results relevant to PTSD diagnosis. We also carried out step-wise binary logistic regression and receiver operating characteristic curve (ROC) analysis to confirm the capacity of altered effective connectivity parameters to distinguish PTSD patients.

RESULTS

Within the executive control network, enhanced positive connectivity from the left posterior parietal cortex to the left dorsolateral prefrontal cortex was correlated with intrusion symptoms and showed good performance (area under the receiver operating characteristic curve = 0.879) in detecting PTSD patients. In the salience network, we observed a decreased causal flow from the right amygdala to the right insula and a lower transit value for the right amygdala in PTSD patients relative to TECs.

CONCLUSION

Altered effective connectivity patterns in the triple network may reflect the occurrence of PTSD symptoms, providing a potential biomarker for detecting patients. Our findings shed new insight into the neural pathophysiology of PTSD.

摘要

背景

最近提出的三重网络模型的紊乱与创伤后应激障碍(PTSD)症状的发生有关。基于静息态动态因果建模(rs-DCM)分析,我们在神经元水平上研究了神经生物学模型,以及潜在的神经影像学生物标志物,以识别患有 PTSD 的个体。

方法

我们招募了一场毁灭性台风的幸存者,包括 27 名 PTSD 患者、33 名创伤暴露对照(TEC)和 30 名无创伤暴露的健康对照。所有受试者均接受了静息态功能磁共振成像。独立成分分析用于识别三重网络。通过 rs-DCM 分析估计详细的有效连接模式。对异常 DCM 参数与 PTSD 诊断相关的临床评估结果进行 Spearman 相关分析。我们还进行了逐步二元逻辑回归和接收者操作特征曲线(ROC)分析,以确认改变的有效连接参数区分 PTSD 患者的能力。

结果

在执行控制网络中,左侧顶后皮质到左侧背外侧前额皮质的正连接增强与侵入症状相关,并且在检测 PTSD 患者方面表现出良好的性能(ROC 曲线下面积=0.879)。在突显网络中,我们观察到右侧杏仁核到右侧岛叶的因果流减少,以及 PTSD 患者的右侧杏仁核的转移值降低。

结论

三重网络中有效连接模式的改变可能反映了 PTSD 症状的发生,为检测患者提供了一个潜在的生物标志物。我们的发现为 PTSD 的神经病理生理学提供了新的见解。

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