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Toward a brain functional connectivity mapping modality by simultaneous imaging of coherent brainwaves

机译:通过同时成像相干脑波对脑功能连通性映射模型

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Matching the proton-magnetic-resonance frequency to the frequency of a periodic neural oscillation (e.g., alpha or gamma band waves) by magnetic resonance imaging techniques, enables direct visualization of brain functional connectivity. Functional connectivity has been studied by analyzing the correlation between coherent neural oscillations in different areas of the brain. In electro- or magneto-encephalography, coherent source reconstruction in a source-space is very tricky due to power leaking from the correlation among the sources. For this reason, most studies have been limited to sensor-space analyses, which give doubtful results because of volume current mixing. The direct visualization of coherent brain oscillations can circumvent this problem. The feasibility of this idea was demonstrated by conducting phantom experiments with a SQUID-based, micro-Tesla NMR/MRI system. We introduce an experimental trick, an effective step-up of the measurement B-field in a pulse sequence, to decouple the magnetic resonance signal from the strong magneto-encephalographic signal at the same frequency.
机译:将质子磁共振频率与磁共振成像技术匹配到周期性神经振荡(例如,alpha或伽马带波)的频率,可以直接可视化脑功能连通性。通过分析大脑不同区域的相干神经振荡之间的相关性研究了功能连接。在电气或磁性脑置,由于从源之间的相关性泄漏,源空间中的相干源重建是非常棘手的。因此,大多数研究仅限于传感器空间分析,这使得由于体积电流混合而导致可疑结果。相干脑振荡的直接可视化可以避免这个问题。通过用基于鱿鱼的微TesLA NMR / MRI系统进行幻影实验来证明该想法的可行性。我们介绍了一个实验技巧,在脉冲序列中有效升压测量B场,以在相同频率下与强磁体倾角信号与强磁脑置偏振信号分离的磁共振信号。

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