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血管结构对跨皮质深度的梯度回波和自旋回波BOLD功能磁共振成像信号的影响:基于逼真的三维血管网络的模拟方法

On the influence of the vascular architecture on Gradient Echo and Spin Echo BOLD fMRI signals across cortical depth: a simulation approach based on realistic 3D vascular networks.

作者信息

Báez-Yáñez Mario Gilberto, Siero Jeroen C W, Curcic Vanja, van Osch Matthias J P, Petridou Natalia

机构信息

Translational Neuroimaging Group, Center for Image Sciences, University Medical Center Utrecht, Utrecht, the Netherlands.

Spinoza Centre for Neuroimaging Amsterdam, Amsterdam, the Netherlands.

出版信息

bioRxiv. 2024 May 30:2024.05.30.596593. doi: 10.1101/2024.05.30.596593.

Abstract

GE-BOLD contrast stands out as the predominant technique in functional MRI experiments for its high sensitivity and straightforward implementation. GE-BOLD exhibits rather similar sensitivity to vessels independent of their size at submillimeter resolution studies like those examining cortical columns and laminae. However, the presence of nonspecific macrovascular contributions poses a challenge to accurately isolate neuronal activity. SE-BOLD increases specificity towards small vessels, thereby enhancing its specificity to neuronal activity, due to the effective suppression of extravascular contributions caused by macrovessels with its refocusing pulse. However, even SE-BOLD measurements may not completely remove these macrovascular contributions. By simulating hemodynamic signals across cortical depth, we gain insights into vascular contributions to the laminar BOLD signal. In this study, we employed four realistic 3D vascular models to simulate oxygen saturation states in various vascular compartments, aiming to characterize both intravascular and extravascular contributions to GE and SE signals, and corresponding BOLD signal changes, across cortical depth at 7T. Simulations suggest that SE-BOLD cannot completely reduce the macrovascular contribution near the pial surface. Simulations also show that both the specificity and signal amplitude of BOLD signals at 7T depend on the spatial arrangement of large vessels throughout cortical depth and on the pial surface.

摘要

GE-BOLD对比作为功能磁共振成像实验中的主要技术脱颖而出,因其具有高灵敏度和易于实施的特点。在亚毫米分辨率研究(如检查皮质柱和板层的研究)中,GE-BOLD对不同大小血管的灵敏度相当相似。然而,非特异性大血管贡献的存在对准确分离神经元活动构成了挑战。SE-BOLD对小血管的特异性增加,从而增强了其对神经元活动的特异性,这是由于其重聚焦脉冲有效抑制了大血管引起的血管外贡献。然而,即使是SE-BOLD测量也可能无法完全消除这些大血管贡献。通过模拟跨皮质深度的血流动力学信号,我们深入了解了血管对层流BOLD信号的贡献。在本研究中,我们采用了四个逼真的3D血管模型来模拟不同血管腔室中的氧饱和度状态,旨在表征血管内和血管外对GE和SE信号的贡献,以及在7T时跨皮质深度相应的BOLD信号变化。模拟结果表明,SE-BOLD不能完全减少软脑膜表面附近的大血管贡献。模拟还表明,7T时BOLD信号的特异性和信号幅度都取决于整个皮质深度和软脑膜表面大血管的空间排列。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a2d3/11160811/3f51cc5d1285/nihpp-2024.05.30.596593v1-f0001.jpg

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