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Structural covariance network of the hippocampus–amygdala complex in medication-nale patients with first-episode major depressive disorder 被引量:3
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作者 Lianqing Zhang Xinyue Hu +7 位作者 Yongbo Hu Mengyue Tang Hui Qiu Ziyu Zhu Yingxue Gao Hailong Li Weihong Kuang Weidong Ji 《Psychoradiology》 2022年第4期190-198,共9页
Background The hippocampus and amygdala are densely interconnected structures that work together in multiple affective and cognitive processes that are important to the etiology of major depressive disorder(MDD).Each ... Background The hippocampus and amygdala are densely interconnected structures that work together in multiple affective and cognitive processes that are important to the etiology of major depressive disorder(MDD).Each of these structures consists of several heterogeneous subfields.We aim to explore the topologic properties of the volume-based intrinsic network within the hippocampus–amygdala complex in medication-nale patients with first-episode MDD.Methods High-resolution T1-weighted magnetic resonance imaging scans were acquired from 123 first-episode,medication-nale,and noncomorbid MDD patients and 81 age-,sex-,and education level-matched healthy control participants(HCs).The structural covariance network(SCN)was constructed for each group using the volumes of the hippocampal subfields and amygdala subregions;the weights of the edges were defined by the partial correlation coefficients between each pair of subfields/subregions,controlled for age,sex,education level,and intracranial volume.The global and nodal graphmetrics were calculated and compared between groups.Results Compared with HCs,the SCN within the hippocampus–amygdala complex in patients with MDD showed a shortened mean characteristic path length,reduced modularity,and reduced small-worldness index.At the nodal level,the left hippocampal tail showed increased measures of centrality,segregation,and integration,while nodes in the left amygdala showed decreased measures of centrality,segregation,and integration in patients with MDD compared with HCs.Conclusion Our results provide the first evidence of atypical topologic characteristics within the hippocampus–amygdala complex in patients with MDD using structure network analysis.It provides more delineate mechanism of those two structures that underlying neuropathologic process in MDD. 展开更多
关键词 Major depressive disorder hippocampus-amygdala complex structural covariance network global network metrics local network metrics
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Brain morphological changes across behaviour spectrums in attention-deficit/hyperactivity disorder
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作者 Tianzheng Zhong Feng Wang +1 位作者 Jianfeng Qiu Weizhao Lu 《General Psychiatry》 2025年第6期458-467,共10页
Background Attention-deficit/hyperactivity disorder(ADHD)is a common neurodevelopmental disorder with behavioural symptoms and grey matter volume(GMV)changes.However,previous studies have not fully elucidated the prog... Background Attention-deficit/hyperactivity disorder(ADHD)is a common neurodevelopmental disorder with behavioural symptoms and grey matter volume(GMV)changes.However,previous studies have not fully elucidated the progressive and causal GMV changes associated with behavioural symptoms in ADHD.Aims This study aimed to explore the causal relationship between GMV alterations and behavioural symptoms in children and adolescents with ADHD using behaviourcausal structural covariance network(BCaSCN)analysis.Methods Structural magnetic resonance imaging(sMRI)data from 135 children and adolescents with ADHD and182 neurotypical controls(NCs)were analysed.ADHD subtypes were identified based on GMV using a clustering algorithm to address the neuroanatomical heterogeneity.To investigate the causal relationships of GMV changes related to behavioural symptoms,sMRI data were sequentially ordered by ADHD index,inattentive index and hyperactive/impulsive index values to generate pseudotime series data.These data were then analysed using region-of-interest-based BCaSCN analysis to explore potential progressive patterns of GMV change.Results Neuroanatomical subtyping revealed two ADHD subtypes with distinct GMV patterns compared with NCs.BCaSCN analysis showed that ADHD subtype 1 was closely associated with inattentiveness,involving prominent nodes in the frontal regions and cerebellum.In contrast,ADHD subtype 2 was more strongly linked to overall disease severity,with the cerebellum and hippocampus as primary hubs.Conclusions ADHD is associated with heterogeneous changes in GMV corresponding to distinct behavioural domains,highlighting the need for subtype-specific diagnostic and therapeutic strategies. 展开更多
关键词 structural magnetic resonance imaging neurodevelopmental disorder cerebellum behavioural symptoms neuroanatomical subtyping attention deficit hyperactivity disorder behaviourcausal structural covariance network bcascn analysismethods behaviour causal structural covariance network
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Neural basis underlying the association between thought control ability and happiness:The moderating role of the amygdala
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作者 Min Li Yuchi Yan +3 位作者 Hui Jia Yixin Gao Jiang Qiu Wenjing Yang 《PsyCh Journal》 2024年第4期625-638,共14页
Thought control ability(TCA)plays an important role in individuals'health and happiness.Previous studies demonstrated that TCA was closely conceptually associated with happiness.However,empirical research supporti... Thought control ability(TCA)plays an important role in individuals'health and happiness.Previous studies demonstrated that TCA was closely conceptually associated with happiness.However,empirical research supporting this relationship was limited.In addition,the neural basis underlying TCA and how this neural basis influences the relationship between TCA and happiness remain unexplored.In the present study,the voxel-based morphometry(VBM)method was adopted to investigate the neuroanatomical basis of TCA in 314 healthy subjects.The behavioral results revealed a significant positive association between TCA and happiness.On the neural level,there was a significant negative correlation between TCA and the gray matter density(GMD)of the bilateral amygdala.Split-half validation analysis revealed similar results,further confirming the stability of the VBM analysis findings.Furthermore,gray matter covariance network and graph theoretical analyses showed positive association between TCA and both the node degree and node strength of the amygdala.Moderation analysis revealed that the GMD of the amygdala moderated the relationship between TCA and happiness.Specifically,the positive association between TCA and self-perceived happiness was stronger in subjects with a lower GMD of the amygdala.The present study indicated the neural basis underlying the association between TCA and happiness and offered a method of improving individual well-being. 展开更多
关键词 amygdala gray matter density happiness structural covariance network thought control ability
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