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Feasibility of functional MRI at ultralow magnetic field via changes in cerebral blood volume

机译:通过脑血容量的变化,超级磁场函数MRI的可行性

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摘要

We investigate the feasibility of performing functional MRI (fMRI) at ultralow field (ULF) with a Superconducting QUantum Interference Device (SQUID), as used for detecting magnetoencephalography (MEG) signals from the human head. While there is negligible magnetic susceptibility variation to produce blood oxygenation level-dependent (BOLD) contrast at ULF, changes in cerebral blood volume (CBV) may be a sensitive mechanism for fMRI given the five-fold spread in spin-lattice relaxation time (T-1) values across the constituents of the human brain. We undertook simulations of functional signal strength for a simplified brain model involving activation of a primary cortical region in a manner consistent with a blocked task experiment. Our simulations involve measured values of T-1 at ULF and experimental parameters for the performance of an upgraded ULFMRI scanner. Under ideal experimental conditions we predict a functional signal-to-noise ratio of between 3.1 and 7.1 for an imaging time of 30 min, or between 1.5 and 3.5 for a blocked task experiment lasting 7.5 min. Our simulations suggest it may be feasible to perform fMRI using a ULFMRI system designed to perform MRI and MEG in situ.
机译:我们研究了用超导量子干扰装置(鱿鱼)在超导场(ULF)上执行功能MRI(FMRI)的可行性,用于检测来自人头的磁性脑图(MEG)信号。虽然在ULF的血液氧合水平依赖性(粗体)对比中具有可忽略的磁性敏感性变化,但脑血容量(CBV)的变化可以是FMRI的敏感机制,因为旋转晶格松弛时间(T -1)人脑成分的值。我们对涉及与封闭任务实验一致的方式激活初级皮质区域的简化脑模型进行了模拟功能信号强度。我们的模拟涉及在ULF和升级的ULFMRI扫描仪的性能下测量T-1的值。在理想的实验条件下,我们预测了3.1和7.1的功能信噪比,用于成像时间为30分钟,或在1.5和3.5之间,用于持续7.5分钟的封闭任务实验。我们的模拟表明,使用旨在以原位执行MRI和MEG的ULFMRI系统执行FMRI可能是可行的。

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