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High-Speed Real-Time Resting-State fMRI Using Multi-Slab Echo-Volumar Imaging

机译:使用多板回波体积成像的高速实时静止状态功能磁共振成像

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摘要

We recently demonstrated that ultra-high-speed real-time fMRI using multi-slab echo-volumar imaging (MEVI) significantly increases sensitivity for mapping task-related activation and resting-state networks (RSNs) compared to echo-planar imaging (Posse et al., ). In the present study we characterize the sensitivity of MEVI for mapping RSN connectivity dynamics, comparing independent component analysis (ICA) and a novel seed-based connectivity analysis (SBCA) that combines sliding-window correlation analysis with meta-statistics. This SBCA approach is shown to minimize the effects of confounds, such as movement, and CSF and white matter signal changes, and enables real-time monitoring of RSN dynamics at time scales of tens of seconds. We demonstrate highly sensitive mapping of eloquent cortex in the vicinity of brain tumors and arterio-venous malformations, and detection of abnormal resting-state connectivity in epilepsy. In patients with motor impairment, resting-state fMRI provided focal localization of sensorimotor cortex compared with more diffuse activation in task-based fMRI. The fast acquisition speed of MEVI enabled segregation of cardiac-related signal pulsation using ICA, which revealed distinct regional differences in pulsation amplitude and waveform, elevated signal pulsation in patients with arterio-venous malformations and a trend toward reduced pulsatility in gray matter of patients compared with healthy controls. Mapping cardiac pulsation in cortical gray matter may carry important functional information that distinguishes healthy from diseased tissue vasculature. This novel fMRI methodology is particularly promising for mapping eloquent cortex in patients with neurological disease, having variable degree of cooperation in task-based fMRI. In conclusion, ultra-high-real-time speed fMRI enhances the sensitivity of mapping the dynamics of resting-state connectivity and cerebro-vascular pulsatility for clinical and neuroscience research applications.
机译:我们最近证明,与回声平面成像相比,使用多板回声-体腔成像(MEVI)的超高速实时功能性MRI显着提高了绘制与任务相关的激活和静止状态网络(RSN)的映射的敏感性(Posse等等)。在本研究中,我们比较了独立分量分析(ICA)和将滑动窗口相关性分析与元统计数据相结合的新型基于种子的连通性分析(SBCA),比较了MEVI映射RSN连接动力学的敏感性。该SBCA方法显示出可将诸如运动,CSF和白质信号变化等混杂因素的影响降至最低,并能够在数十秒的时间尺度上实时监控RSN动态。我们证明了在脑肿瘤和动静脉畸形附近的雄辩性皮层的高灵敏度映射,以及癫痫中异常静止状态连接的检测。在运动障碍患者中,与基于任务的功能磁共振成像中的更多弥散激活相比,静止状态功能磁共振成像提供感觉运动皮层的局灶性定位。 MEVI的快速采集速度使得能够使用ICA分离与心脏相关的信号搏动,从而显示出明显的区域性脉动幅度和波形差异,动静脉畸形患者的信号脉动升高以及患者灰质的搏动性降低趋势健康的控制。在皮层灰质中绘制心脏搏动可能会携带重要的功能信息,以区分健康组织和病变组织脉管系统。这种新颖的功能磁共振成像方法特别适合在神经疾病患者中绘制雄辩的皮层,在基于任务的功能磁共振成像中具有可变程度的协作。总之,超高速实时功能磁共振成像增强了针对临床和神经科学研究应用的静息状态连通性和脑血管搏动图绘制动态的敏感性。

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