Laboratory of FMRI Technology (LOFT), USC Stevens Neuroimaging and Informatics Institute, Keck School of Medicine, University of Southern California, 2025 Zonal Ave, Los Angeles, CA 90033, USA.
State Key Laboratory of Brain and Cognitive Science, Beijing MRI Center for Brain Research, Institute of Biophysics, Chinese Academy of Sciences, Beijing 100101, China.
Neuroimage. 2021 Dec 15;245:118724. doi: 10.1016/j.neuroimage.2021.118724. Epub 2021 Nov 12.
Laminar fMRI based on BOLD and CBV contrast at ultrahigh magnetic fields has been applied for studying the dynamics of mesoscopic brain networks. However, the quantitative interpretations of BOLD/CBV fMRI results are confounded by different baseline physiology across cortical layers. Here we introduce a novel 3D zoomed pseudo-continuous arterial spin labeling (pCASL) technique at 7T that offers the capability for quantitative measurements of laminar cerebral blood flow (CBF) both at rest and during task activation with high spatial specificity and sensitivity. We found arterial transit time in superficial layers is ∼100 ms shorter than in middle/deep layers revealing the time course of labeled blood flowing from pial arteries to downstream microvasculature. Resting state CBF peaked in the middle layers which is highly consistent with microvascular density measured from human cortex specimens. Finger tapping induced a robust two-peak laminar profile of CBF increases in the superficial (somatosensory and premotor input) and deep (spinal output) layers of M1, while finger brushing task induced a weaker CBF increase in superficial layers (somatosensory input). This observation is highly consistent with reported laminar profiles of CBV activation on M1. We further demonstrated that visuospatial attention induced a predominant CBF increase in deep layers and a smaller CBF increase on top of the lower baseline CBF in superficial layers of V1 (feedback cortical input), while stimulus driven activity peaked in the middle layers (feedforward thalamic input). With the capability for quantitative CBF measurements both at baseline and during task activation, high-resolution ASL perfusion fMRI at 7T provides an important tool for in vivo assessment of neurovascular function and metabolic activities of neural circuits across cortical layers.
基于 BOLD 和 CBV 对比的层流 fMRI 在超高磁场中已被应用于研究介观脑网络的动力学。然而,BOLD/CBV fMRI 结果的定量解释受到皮质层间不同基线生理学的影响。在这里,我们在 7T 下引入了一种新的 3D 缩放伪连续动脉自旋标记(pCASL)技术,该技术具有在静息和任务激活期间对皮层血流(CBF)进行高空间特异性和灵敏度的定量测量的能力。我们发现,浅层的动脉渡越时间比中层/深层短约 100ms,这揭示了标记血液从软脑膜动脉流到下游微血管的时间过程。静息状态下的 CBF 在中层达到峰值,与从人类皮层标本测量到的微血管密度高度一致。手指敲击引起 M1 浅层(感觉运动和运动前输入)和深层(脊髓输出)的 CBF 增加呈双峰层流分布,而手指刷任务引起浅层(感觉输入)的 CBF 增加较弱。这一观察结果与 M1 上报道的 CBV 激活的层流分布高度一致。我们进一步证明,视觉空间注意力诱导深层 CBF 增加,浅层 CBF 在较低的基线 CBF 之上增加较小(反馈皮层输入),而刺激驱动的活动在中层达到峰值(前馈丘脑输入)。7T 下高分辨率 ASL 灌注 fMRI 具有基线和任务激活期间定量 CBF 测量的能力,为活体评估跨皮质层的神经血管功能和神经回路的代谢活动提供了重要工具。