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Alterations of white matter tracts and topological properties of structural networks in hemifacial spasm

面肌痉挛 神经科学 白质 磁共振弥散成像 胼胝体 纤维束成像 心理学 医学 解剖 磁共振成像 面神经 放射科
作者
Jingqiang Wang,Xiaoming Liu,Xinyi Wang,Yuhuan Hu,Qingrun Zeng,Zhicheng Lin,Nian Xiong,Yuanjing Feng
出处
期刊:NMR in Biomedicine [Wiley]
卷期号:35 (9) 被引量:3
标识
DOI:10.1002/nbm.4756
摘要

Hemifacial spasm (HFS) is characterized by involuntary and paroxysmal muscle contractions on the hemiface. It is generally believed that HFS is caused by neurovascular compression at the root exit zone of the facial nerve. In recent years, the structural alterations of brains with HFS have aroused growing concern. However, little attention has been directed towards the possible involvement of specific white matter (WM) tracts and the topological properties of structural networks in HFS. In the present study, diffusion magnetic resonance imaging tractography was utilized to construct structural networks and perform tractometric analysis. The diffusion tensor imaging scalar parameters along with the WM tracts, and the topological parameters of global networks and subnetworks, were assessed in 62 HFS patients and 57 demographically matched healthy controls (HCs). Moreover, we investigated the correlation of these parameters with disease‐clinical‐level (DCL) and disease‐duration‐time (DDT) of HFS patients. Compared with HCs, HFS patients had additional hub regions including the amygdala, ventromedial putamen, lateral occipital cortex, and rostral cuneus gyrus. Furthermore, HFS patients showed significant alternations with specific topological properties in some structural subnetworks, including the limbic, default mode, dorsal attention, somato‐motor, and control networks, as well as diffusion properties in some WM tracts, including the superior longitudinal fasciculus, cingulum bundle, thalamo‐frontal, and corpus callosum. These subnetworks and tracts were associated with the regulation of emotion, motor function, vision, and attention. Notably, we also found that the parameters with subnetworks and tracts exhibited correlations with DCL and DDT. In addition to corroborating previous findings in HFS, this study demonstrates the changed microstructures in specific locations along with the fiber tracts and changed topological properties in structural subnetworks.

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