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用弥散加权成像的概率追踪技术在灵长类动物大脑中绘制的区域内视觉地形图。

Intra-Areal Visual Topography in Primate Brains Mapped with Probabilistic Tractography of Diffusion-Weighted Imaging.

机构信息

Department of Physiology Anatomy and Genetics, University of Oxford, Oxford, OX1 3PT, UK.

Ernst Strüngmann Institute (ESI) for Neuroscience in cooperation with Max Planck Society, 60528 Frankfurt, Germany.

出版信息

Cereb Cortex. 2022 Jun 7;32(12):2555-2574. doi: 10.1093/cercor/bhab364.

Abstract

Noninvasive diffusion-weighted magnetic resonance imaging (dMRI) can be used to map the neural connectivity between distinct areas in the intact brain, but the standard resolution achieved fundamentally limits the sensitivity of such maps. We investigated the sensitivity and specificity of high-resolution postmortem dMRI and probabilistic tractography in rhesus macaque brains to produce retinotopic maps of the lateral geniculate nucleus (LGN) and extrastriate cortical visual area V5/MT based on their topographic connections with the previously established functional retinotopic map of primary visual cortex (V1). We also replicated the differential connectivity of magnocellular and parvocellular LGN compartments with V1 across visual field positions. Predicted topographic maps based on dMRI data largely matched the established retinotopy of both LGN and V5/MT. Furthermore, tractography based on in vivo dMRI data from the same macaque brains acquired at standard field strength (3T) yielded comparable topographic maps in many cases. We conclude that tractography based on dMRI is sensitive enough to reveal the intrinsic organization of ordered connections between topographically organized neural structures and their resultant functional organization.

摘要

非侵入性扩散加权磁共振成像(dMRI)可用于绘制完整大脑中不同区域之间的神经连接,但所达到的标准分辨率从根本上限制了这些图谱的灵敏度。我们研究了恒河猴大脑高分辨率死后 dMRI 和概率追踪的灵敏度和特异性,以根据其与先前建立的初级视觉皮层(V1)功能视敏度图的地形连接,生成外侧膝状体核(LGN)和外侧视皮质区 V5/MT 的视敏度图。我们还复制了大细胞和小细胞 LGN 区与 V1 在视场位置上的差异连接。基于 dMRI 数据的预测地形图在很大程度上与 LGN 和 V5/MT 的既定视敏度相匹配。此外,在标准场强(3T)下从同一猕猴大脑中获得的活体 dMRI 数据的追踪在许多情况下产生了类似的地形图。我们得出结论,基于 dMRI 的追踪足够灵敏,可以揭示地形组织的神经结构之间有序连接的内在组织及其产生的功能组织。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6e07/9201591/df906c0d7bc7/bhab364f1.jpg

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