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颞叶的结构连接梯度作为大脑组织和皮质进化的多尺度轴。

Structural Connectivity Gradients of the Temporal Lobe Serve as Multiscale Axes of Brain Organization and Cortical Evolution.

机构信息

McConnell Brain Imaging Centre, Montreal Neurological Institute, McGill University, Montreal, Quebec, H3A 2B4, Canada.

Wellcome Centre for Integrative Neuroimaging, Nuffield Department of Clinical Neurosciences, John Radcliffe Hospital, University of Oxford, Oxford, OX3 9DU, UK.

出版信息

Cereb Cortex. 2021 Oct 1;31(11):5151-5164. doi: 10.1093/cercor/bhab149.

Abstract

The temporal lobe is implicated in higher cognitive processes and is one of the regions that underwent substantial reorganization during primate evolution. Its functions are instantiated, in part, by the complex layout of its structural connections. Here, we identified low-dimensional representations of structural connectivity variations in human temporal cortex and explored their microstructural underpinnings and associations to macroscale function. We identified three eigenmodes which described gradients in structural connectivity. These gradients reflected inter-regional variations in cortical microstructure derived from quantitative magnetic resonance imaging and postmortem histology. Gradient-informed models accurately predicted macroscale measures of temporal lobe function. Furthermore, the identified gradients aligned closely with established measures of functional reconfiguration and areal expansion between macaques and humans, highlighting their potential role in shaping temporal lobe function throughout primate evolution. Findings were replicated in several datasets. Our results provide robust evidence for three axes of structural connectivity in human temporal cortex with consistent microstructural underpinnings and contributions to large-scale brain network function.

摘要

颞叶参与高级认知过程,是灵长类动物进化过程中经历了大量重组的区域之一。其功能部分体现在其结构连接的复杂布局上。在这里,我们确定了人类颞叶皮质结构连接变化的低维表示,并探讨了它们的微观结构基础及其与宏观功能的关联。我们确定了三个本征模式,这些模式描述了结构连接的梯度。这些梯度反映了来自定量磁共振成像和死后组织学的皮质微观结构的区域间变化。梯度信息模型准确地预测了颞叶功能的宏观尺度测量。此外,所确定的梯度与猕猴和人类之间功能重新配置和区域扩展的既定测量值非常吻合,突出了它们在塑造整个灵长类动物进化过程中的颞叶功能方面的潜在作用。这些发现得到了多个数据集的复制。我们的结果为人类颞叶皮质的三个结构连接轴提供了有力的证据,这些轴具有一致的微观结构基础,并对大规模脑网络功能有贡献。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d916/8491677/f00fcf704e14/bhab149f1.jpg

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