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首页> 外文期刊>NeuroImage >Probabilistic model-based functional parcellation reveals a robust, fine-grained subdivision of the striatum
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Probabilistic model-based functional parcellation reveals a robust, fine-grained subdivision of the striatum

机译:基于概率模型的功能分割揭示了纹状体的强大,细粒度细分

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摘要

The striatum is involved in many different aspects of behaviour, reflected by the variety of cortical areas that provide input to this structure. This input is topographically organized and is likely to result in functionally specific signals. Such specificity can be examined using functional clustering approaches. Here, we propose a Bayesian model-based functional clustering approach applied solely to resting state striatal functional MRI timecourses to identify intrinsic striatal functional modules. Data from two sets of ten participants were used to obtain parcellations and examine their robustness. This stable clustering was used to initialize a more constrained model in order to obtain individualized parcellations in 57 additional participants. Resulting cluster time courses were used to examine functional connectivity between clusters and related to the rest of the brain in a GLM analysis. We find six distinct clusters in each hemisphere, with clear inter-hemispheric correspondence and functional relevance. These clusters exhibit functional connectivity profiles that further underscore their homologous nature and are consistent with existing notions on segregation and integration in parallel cortico-basal ganglia loops. Our findings suggest that multiple territories within both the affective and motor regions can be distinguished solely using resting state functional MRI from these regions.
机译:纹状体涉及行为的许多不同方面,反映出为该结构提供输入的各种皮质区域。此输入是按地形组织的,可能会导致功能特定的信号。可以使用功能聚类方法检查这种特异性。在这里,我们提出了一种基于贝叶斯模型的功能聚类方法,该方法仅适用于静息状态纹状体MRI时程,以识别内在的纹状体功能模块。来自十个参与者的两组的数据用于获得碎片并检查其稳健性。使用这种稳定的聚类来初始化一个更受约束的模型,以便在57个其他参与者中获得个性化的分类。所得的集群时间课程用于检查集群之间的功能连通性,并在GLM分析中与大脑的其余部分相关。我们在每个半球中发现了六个不同的星团,具有清晰的半球间对应关系和功能相关性。这些聚类展示出功能连通性特征,进一步强调了它们的同源性,并且与关于平行皮质-基底神经节环中的分离和整合的现有观念相一致。我们的发现表明,仅使用这些区域的静息状态功能MRI即可区分情感区域和运动区域内的多个区域。

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