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BigBrain 3D atlas of cortical layers: Cortical and laminar thickness gradients diverge in sensory and motor cortices

机译:皮质层数的Bigbrain 3D地图集:皮质和层状厚度梯度在感官和电机皮质中分歧

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Histological atlases of the cerebral cortex, such as those made famous by Brodmann and von Economo, are invaluable for understanding human brain microstructure and its relationship with functional organization in the brain. However, these existing atlases are limited to small numbers of manually annotated samples from a single cerebral hemisphere, measured from 2D histological sections. We present the first whole-brain quantitative 3D laminar atlas of the human cerebral cortex. It was derived from a 3D histological atlas of the human brain at 20-micrometer isotropic resolution (BigBrain), using a convolutional neural network to segment, automatically, the cortical layers in both hemispheres. Our approach overcomes many of the historical challenges with measurement of histological thickness in 2D, and the resultant laminar atlas provides an unprecedented level of precision and detail. We utilized this BigBrain cortical atlas to test whether previously reported thickness gradients, as measured by MRI in sensory and motor processing cortices, were present in a histological atlas of cortical thickness and which cortical layers were contributing to these gradients. Cortical thickness increased across sensory processing hierarchies, primarily driven by layers III, V, and VI. In contrast, motor-frontal cortices showed the opposite pattern, with decreases in total and pyramidal layer thickness from motor to frontal association cortices. These findings illustrate how this laminar atlas will provide a link between single-neuron morphology, mesoscale cortical layering, macroscopic cortical thickness, and, ultimately, functional neuroanatomy.
机译:脑皮层的组织学包装,例如由Brodmann和Von Meverom闻名的那些,对理解人脑微观结构及其与大脑功能组织的关系非常宝贵。然而,这些现有的地图集被限制为来自单个脑半球的少量手动注释样品,从2D组织学部分测量。我们介绍了人脑皮层的第一个全脑定量3D层状地图。它是从人脑的3D组织学阿特拉斯,以20微米的各向同性分辨率(Bigbrain),使用卷积神经网络自动,自动地,在两个半球中的皮质层。我们的方法克服了在2D中测量组织学厚度​​测量的许多历史挑战,所得的层状图表提供了前所未有的精度和细节。我们利用这种Bigbrain皮质图集来测试先前报告的厚度梯度是否通过MRI在感觉和电机加工皮质中测量的厚度梯度,以皮质厚度的组织学阿特拉斯存在于皮质厚度的组织学标志中,并且皮质层对这些梯度有贡献。皮质厚度横跨感觉处理层次结构增加,主要由层III,V和VI驱动。相比之下,电机 - 正面皮质显示出相反的图案,从电动机到正面关联皮质的总和占金字塔层厚度的降低。这些发现说明了该层状地图集是如何提供单神经元形态,Messcale皮质分层,宏观皮质厚度之间的联系,以及最终功能性神经肿瘤。

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