Amygdala-centered fusional connections characterized nonmotor symptoms in Parkinson's disease.

IF 2.9 2区 医学 Q2 NEUROSCIENCES Cerebral cortex Pub Date : 2025-01-22 DOI:10.1093/cercor/bhaf002
Yi Zhang, Sixiu Li, Jiali Yu, Rong Li, Wei Liao, Qin Chen, Haoyang Xing, Fengmei Lu, Xiaofei Hu, Huafu Chen, Qing Gao
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Abstract

The importance of nonmotor symptoms in understanding the pathogenesis of the heterogeneity of Parkinson's disease has been highlighted. However, the validation of specific brain network biomarkers in nonmotor symptom subtypes is currently lacking. By performing a new approach to compute functional connectivity with structural prior using magnetic resonance imaging, the present study computed both functional connectivity and fusional connectivity features in the nonmotor symptom subtypes of Parkinson's disease, one characterized by cognitive impairment with late onset and the other depression with early onset. The functional connectivity and fusional connectivity features centered at the left amygdala were both detected. The fusional features significantly enhanced the classification performance. The amygdala-postcentral and amygdala-orbital frontal features were critical for cognitive impairment with late onset detection, while the amygdala-temporooccipital features were crucial for depression with early onset detection. Additionally, the fusional connectivity features between the amygdala and the junction sulcus of parietooccipital and temporooccipital regions contributed significantly to differentiating cognitive impairment with late onset and depression with early onset. The within-subtype correlation analysis revealed that age at onset and cognitive scores were associated with features of amygdala-somatosensory/visual-motor processing areas in cognitive impairment with late onset, while related to features of amygdala-emotional processing areas in depression with early onset. Our findings highlighted distinct amygdala-centered fusional connectivity features related to diverse nonmotor symptoms in Parkinson's disease, offering new insights for pathogenesis-targeted treatments for specific Parkinson's disease subtypes.

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以杏仁核为中心的融合连接是帕金森病非运动症状的特征。
非运动症状在理解帕金森病异质性发病机制中的重要性已得到强调。然而,目前缺乏对非运动症状亚型特异性脑网络生物标志物的验证。本研究采用一种新的方法,利用磁共振成像计算结构先验的功能连通性,计算了帕金森病非运动症状亚型的功能连通性和融合连通性特征,其中一种以晚发型认知障碍为特征,另一种以早发型抑郁为特征。检测到以左侧杏仁核为中心的功能连通性和融合性连通性特征。融合特征显著提高了分类性能。杏仁核-中央后区和杏仁核-眶额区特征对认知障碍的晚发性检测至关重要,而杏仁核-颞枕区特征对抑郁症的早发性检测至关重要。此外,杏仁核与顶枕区和颞枕区连接沟的融合连通性特征对区分晚发性认知障碍和早发性抑郁有重要意义。亚型内相关分析显示,发病年龄和认知评分与晚发性认知障碍患者的杏仁核-体感/视觉-运动加工区特征相关,而与早发性抑郁症患者的杏仁核-情绪加工区特征相关。我们的研究结果强调了与帕金森病各种非运动症状相关的独特的杏仁核中心的融合连接特征,为特定帕金森病亚型的病因靶向治疗提供了新的见解。
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来源期刊
Cerebral cortex
Cerebral cortex 医学-神经科学
CiteScore
6.30
自引率
8.10%
发文量
510
审稿时长
2 months
期刊介绍: Cerebral Cortex publishes papers on the development, organization, plasticity, and function of the cerebral cortex, including the hippocampus. Studies with clear relevance to the cerebral cortex, such as the thalamocortical relationship or cortico-subcortical interactions, are also included. The journal is multidisciplinary and covers the large variety of modern neurobiological and neuropsychological techniques, including anatomy, biochemistry, molecular neurobiology, electrophysiology, behavior, artificial intelligence, and theoretical modeling. In addition to research articles, special features such as brief reviews, book reviews, and commentaries are included.
期刊最新文献
Developmental maturation of millimeter-scale functional networks across brain areas. Amygdala-centered fusional connections characterized nonmotor symptoms in Parkinson's disease. MDD-SSTNet: detecting major depressive disorder by exploring spectral-spatial-temporal information on resting-state electroencephalography data based on deep neural network. Genetic analyses identify brain functional networks associated with the risk of Parkinson's disease and drug-induced parkinsonism. Exploring common and distinct neural basis of procrastination and impulsivity through elastic net regression.
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