Chen Yi, Qian Wei, Razansky Daniel, Yu Xin, Qian Chunqi
Department of Radiology, Michigan State University, East Lansing, MI, USA.
Department of High-field Magnetic Resonance, Max Planck Institute for Biological Cybernetics, Tübingen, Germany.
Nat Methods. 2025 Sep 8. doi: 10.1038/s41592-025-02798-w.
Concurrent recording of electroencephalogram (EEG) and functional magnetic resonance imaging (fMRI) signals reveals cross-scale neurovascular dynamics crucial for explaining fundamental linkages between function and behaviors. However, MRI scanners generate artifacts for EEG detection. Despite existing denoising methods, cabled connections to EEG receivers are susceptible to environmental fluctuations inside MRI scanners, creating baseline drifts that complicate EEG signal retrieval from the noisy background. Here we show that a wireless integrated sensing detector for simultaneous EEG and MRI can encode fMRI and EEG signals on distinct sidebands of the detector's oscillation wave for detection by a standard MRI console over the entire duration of the fMRI sequence. Local field potential and fMRI maps are retrieved through low-pass and high-pass filtering of frequency-demodulated signals. From optogenetically stimulated somatosensory cortex in ChR2-transfected Sprague Dawley rats, positive correlation between evoked local field potential and fMRI signals validates strong neurovascular coupling, enabling cross-scale brain mapping with this two-in-one transducer.
同步记录脑电图(EEG)和功能磁共振成像(fMRI)信号揭示了跨尺度神经血管动力学,这对于解释功能与行为之间的基本联系至关重要。然而,MRI扫描仪会产生影响EEG检测的伪影。尽管存在去噪方法,但连接到EEG接收器的电缆容易受到MRI扫描仪内部环境波动的影响,产生基线漂移,这使得从嘈杂背景中检索EEG信号变得复杂。在此,我们展示了一种用于同步EEG和MRI的无线集成传感探测器,它可以在探测器振荡波的不同边带上对fMRI和EEG信号进行编码,以便在fMRI序列的整个持续时间内由标准MRI控制台进行检测。通过对频率解调信号进行低通和高通滤波来检索局部场电位和fMRI图谱。在ChR2转染的Sprague Dawley大鼠中,从光遗传学刺激的体感皮层获得的诱发局部场电位与fMRI信号之间的正相关验证了强大的神经血管耦合,从而能够使用这种二合一换能器进行跨尺度脑图谱绘制。