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人类大脑皮层外区中 BOLD 反应在柱和皮层深度上的扩散函数。

Point-spread function of the BOLD response across columns and cortical depth in human extra-striate cortex.

机构信息

University of Glasgow, Institute of Neuroscience and Psychology, Glasgow, Scotland, United Kingdom.

Experimental Psychology, Helmholtz Institute, Utrecht University, Utrecht, the Netherlands; Spinoza Center for Neuroimaging, Amsterdam, the Netherlands; Experimental and Applied Psychology, VU University Amsterdam, the Netherlands.

出版信息

Prog Neurobiol. 2021 Jul;202:102034. doi: 10.1016/j.pneurobio.2021.102034. Epub 2021 Mar 16.

Abstract

Columns and layers are fundamental organizational units of the brain. Well known examples of cortical columns are the ocular dominance columns (ODCs) in primary visual cortex and the column-like stripe-based arrangement in the second visual area V2. The spatial scale of columns and layers is beyond the reach of conventional neuroimaging, but the advent of high field magnetic resonance imaging (MRI) scanners (UHF, 7 T and above) has opened the possibility to acquire data at this spatial scale, in-vivo and non-invasively in humans. The most prominent non-invasive technique to measure brain function is blood oxygen level dependent (BOLD) fMRI, measuring brain activity indirectly, via changes in hemodynamics. A key determinant of the ability of high-resolution BOLD fMRI to accurately resolve columns and layers is the point-spread function (PSF) of the BOLD response in relation to the spatial extent of neuronal activity. In this study we take advantage of the stripe-based arrangement present in visual area V2, coupled with sub-millimetre anatomical and gradient-echo BOLD (GE BOLD) acquisition at 7 T to obtain PSF estimates and along cortical depth in human participants. Results show that the BOLD PSF is maximal in the superficial part of the cortex (1.78 mm), and it decreases with increasing cortical depth (0.83 mm close to white matter).

摘要

柱和层是大脑的基本组织单元。众所周知的皮质柱的例子有初级视觉皮层中的眼优势柱(ODC)和第二视觉区 V2 中的柱状条纹排列。柱和层的空间尺度超出了传统神经影像学的范围,但高磁场磁共振成像(MRI)扫描仪(UHF、7T 及以上)的出现为在体内非侵入性地以这个空间尺度获取人类数据提供了可能。测量大脑功能最突出的非侵入性技术是血氧水平依赖(BOLD)fMRI,通过血液动力学的变化间接测量大脑活动。高分辨率 BOLD fMRI 准确解析柱和层的能力的一个关键决定因素是 BOLD 响应的点扩散函数(PSF)与神经元活动的空间范围之间的关系。在这项研究中,我们利用 V2 中存在的条纹排列,结合亚毫米解剖结构和梯度回波 BOLD(GE BOLD)在 7T 下的采集,在人类参与者中获得了 PSF 估计值和沿皮质深度的 PSF 估计值。结果表明,BOLD PSF 在皮质的浅层最大(1.78mm),并随着皮质深度的增加而减小(接近白质的 0.83mm)。

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