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支持跨左侧腹外侧前额叶皮质亚区域记忆检索的皮质-皮质通路的组织

Organization of cortico-cortical pathways supporting memory retrieval across subregions of the left ventrolateral prefrontal cortex.

作者信息

Barredo Jennifer, Verstynen Timothy D, Badre David

机构信息

Department of Neuroscience, Brown University, Providence, Rhode Island; Brown Institute for Brain Sciences, Brown University, Providence, Rhode Island;

Department of Psychology, Carnegie Mellon University, Pittsburgh, Pennsylvania; and Center for the Neural Basis of Cognition, Carnegie Mellon University, Pittsburgh, Pennsylvania.

出版信息

J Neurophysiol. 2016 Sep 1;116(3):920-37. doi: 10.1152/jn.00157.2016. Epub 2016 Jun 8.

Abstract

Functional magnetic resonance imaging (fMRI) evidence indicates that different subregions of ventrolateral prefrontal cortex (VLPFC) participate in distinct cortical networks. These networks have been shown to support separable cognitive functions: anterior VLPFC [inferior frontal gyrus (IFG) pars orbitalis] functionally correlates with a ventral fronto-temporal network associated with top-down influences on memory retrieval, while mid-VLPFC (IFG pars triangularis) functionally correlates with a dorsal fronto-parietal network associated with postretrieval control processes. However, it is not known to what extent subregional differences in network affiliation and function are driven by differences in the organization of underlying white matter pathways. We used high-angular-resolution diffusion spectrum imaging and functional connectivity analysis in unanesthetized humans to address whether the organization of white matter connectivity differs between subregions of VLPFC. Our results demonstrate a ventral-dorsal division within IFG. Ventral IFG as a whole connects broadly to lateral temporal cortex. Although several different individual white matter tracts form connections between ventral IFG and lateral temporal cortex, functional connectivity analysis of fMRI data indicates that these are part of the same ventral functional network. By contrast, across subdivisions, dorsal IFG was connected with the midfrontal gyrus and correlated as a separate dorsal functional network. These qualitative differences in white matter organization within larger macroanatomical subregions of VLPFC support prior functional distinctions among these regions observed in task-based and functional connectivity fMRI studies. These results are consistent with the proposal that anatomical connectivity is a crucial determinant of systems-level functional organization of frontal cortex and the brain in general.

摘要

功能磁共振成像(fMRI)证据表明,腹外侧前额叶皮层(VLPFC)的不同亚区域参与不同的皮层网络。这些网络已被证明支持可分离的认知功能:前额叶腹外侧皮层前部[眶额下回(IFG)眶部]在功能上与一个腹侧额颞网络相关,该网络对记忆检索具有自上而下的影响,而前额叶腹外侧皮层中部(IFG三角部)在功能上与一个背侧额顶网络相关,该网络与检索后控制过程有关。然而,尚不清楚网络归属和功能的亚区域差异在多大程度上是由潜在白质通路组织的差异所驱动的。我们在未麻醉的人类中使用高角分辨率扩散谱成像和功能连接分析,以探讨VLPFC亚区域之间的白质连接组织是否存在差异。我们的结果显示了IFG内的腹侧 - 背侧划分。整个腹侧IFG广泛连接到外侧颞叶皮层。虽然有几条不同的个体白质束在腹侧IFG和外侧颞叶皮层之间形成连接,但fMRI数据的功能连接分析表明,这些是同一个腹侧功能网络的一部分。相比之下,在各个细分区域中,背侧IFG与额中回相连,并作为一个独立的背侧功能网络存在相关性。VLPFC较大宏观解剖亚区域内白质组织的这些定性差异支持了在基于任务和功能连接fMRI研究中观察到的这些区域之间先前的功能差异。这些结果与以下观点一致,即解剖连接性是额叶皮层乃至整个大脑系统水平功能组织的关键决定因素。

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