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Noninvasive functional imaging of cerebral blood volume with vascular-space-occupancy (VASO) MRI

机译:血管空间占用(VASO)MRI对脑血容量的无创功能成像

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摘要

Functional MRI (fMRI) based on changes in cerebral blood volume (CBV) can probe directly vasodilatation and vasoconstriction during brain activation or physiologic challenges, and can provide important insights into the mechanism of blood oxygenation level-dependent (BOLD) signal changes. At present, the most widely used CBV fMRI technique in humans is called vascular-space-occupancy (VASO) MRI, and this article provides a technical review of this method. VASO MRI utilizes T_1 differences between blood and tissue to distinguish between these two compartments within a voxel, and employs a blood-nulling inversion recovery sequence to yield an MR signal proportional to 1 – CBV. As such, vasodilatation will result in a VASO signal decrease and vasoconstriction will have the reverse effect. The VASO technique can be performed dynamically with a temporal resolution comparable with several other fMRI methods, such as BOLD or arterial spin labeling (ASL), and is particularly powerful when conducted in conjunction with these complementary techniques. The pulse sequence and imaging parameters of VASO can be optimized such that the signal change is predominantly of CBV origin, but careful considerations should be taken to minimize other contributions, such as those from the BOLD effect, cerebral blood flow (CBF) and cerebrospinal fluid (CSF). The sensitivity of the VASO technique is the primary disadvantage when compared with BOLD, but this technique is increasingly demonstrating its utility in neuroscientific and clinical applications.
机译:基于脑血容量(CBV)变化的功能性MRI(fMRI)可以在脑部激活或生理挑战期间直接探测血管舒张和血管收缩,并且可以提供对血液氧合水平依赖性(BOLD)信号变化机制的重要见解。目前,在人类中使用最广泛的CBV fMRI技术称为血管空间占用(VASO)MRI,本文对这种方法进行了技术综述。 VASO MRI利用血液和组织之间的T_1差异来区分体素内的这两个区室,并采用零血液倒置恢复序列产生与1 – CBV成比例的MR信号。这样,血管舒张将导致VASO信号降低,而血管收缩将具有相反的作用。 VASO技术可以动态地以与其他几种功能磁共振成像方法(如BOLD或动脉自旋标记(ASL))相当的时间分辨率执行,并且在与这些互补技术结合使用时特别强大。可以优化VASO的脉冲序列和成像参数,使信号变化主要来自CBV,但应谨慎考虑以尽量减少其他影响,例如来自BOLD效应,脑血流量(CBF)和脑脊液的影响(CSF)。与BOLD相比,VASO技术的灵敏度是主要缺点,但该技术越来越证明其在神经科学和临床应用中的实用性。

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