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Track‐Weighted Dynamic Functional Connectivity Profiles and Topographic Organization of the Human Pulvinar

机译:人体 Pulvinar 的轨迹加权动态功能连接剖面和地形组织

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摘要

The human pulvinar is considered a prototypical associative thalamic nucleus as it represents a key node in several cortico‐subcortical networks. Through this extensive connectivity to widespread brain areas, it has been suggested that the pulvinar may play a central role in modulating cortical oscillatory dynamics of complex cognitive and executive functions. Additionally, derangements of pulvinar activity are involved in different neuropsychiatric conditions including Lewy‐body disease, Alzheimer's disease, and schizophrenia. Anatomical investigations in nonhuman primates have demonstrated a topographical organization of cortico‐pulvinar connectivity along its dorsoventral and rostrocaudal axes; this specific organization shows only partial overlap with the traditional subdivision into subnuclei (anterior, lateral, medial, and inferior) and is thought to coordinate information processing within specific brain networks. However, despite its relevance in mediating higher‐order cognitive functions, such a structural and functional organization of the pulvinar in the human brain remains poorly understood. Track‐weighted dynamic functional connectivity (tw‐dFC) is a recently developed technique that combines structural and dynamic functional connectivity, allowing the identification of white matter pathways underlying the fluctuations observed in functional connectivity between brain regions over time. Herein, we applied a data‐driven parcellation approach to reveal topographically organized connectivity clusters within the human pulvinar complex, in two large cohorts of healthy human subjects. Unsupervised clustering of tw‐dFC time series within the pulvinar complex revealed dorsomedial, dorsolateral, ventral anterior, and ventral posterior connectivity clusters. Each of these clusters shows functional coupling to specific, widespread cortico‐subcortical white matter brain networks. Altogether, our findings represent a relevant step towards a better understanding of pulvinar anatomy and function, and a detailed characterization of his role in healthy and pathological conditions.
机译:人类丘脑被认为是原型联想丘脑核,因为它代表了几个皮层-皮层下网络中的关键节点。通过与广泛大脑区域的广泛连接,有人提出丘脑可能在调节复杂认知和执行功能的皮质振荡动力学中发挥核心作用。此外,丘脑活动紊乱与不同的神经精神疾病有关,包括 Lewy-body 病、阿尔茨海默病和精神分裂症。对非人灵长类动物的解剖学研究表明,皮质-丘脑连接的地形组织沿其背腹轴和前尾轴;这种特定组织与传统的细分为亚核(前、外、内和下)仅部分重叠,并被认为协调特定大脑网络内的信息处理。然而,尽管它在介导高阶认知功能方面具有相关性,但人们对人脑中丘脑的这种结构和功能组织仍然知之甚少。轨道加权动态功能连接 (tw-dFC) 是最近开发的一种技术,它结合了结构和动态功能连接,可以识别随着时间的推移观察到的大脑区域之间功能连接波动的基础白质通路。在此,我们应用了一种数据驱动的分组方法,在两个大群健康人类受试者中揭示了人类丘脑复合体内地形组织的连接集群。丘脑复合体内 tw‐dFC 时间序列的无监督聚类揭示了背内侧、背外侧、腹侧前和腹侧后连接簇。这些簇中的每一个都显示出与特定、广泛的皮质-皮质下白质脑网络的功能耦合。总而言之,我们的研究结果代表了朝着更好地理解丘脑解剖和功能以及详细描述他在健康和病理条件下的作用迈出的相关一步。

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