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Updated: May 9, 2026

Neuroimaging-Guided TMS–EEG for Real-Time Cortical Network Mapping
Published on: June 13, 2025
Direct mapping of neural activity via glutamate-weighted magnetic resonance imaging
Qicheng Lu1, Yi Zhang1,2
1Zhejiang Key Laboratory of Intelligent Sensing Technology and Advanced Medical Instrument and Key Laboratory for Biomedical Engineering of Ministry of Education, College of Biomedical Engineering & Instrument Science, Zhejiang University, Hangzhou 310027, China.
Abstract:
Conventional functional magnetic resonance imaging (fMRI) indirectly maps neural activity via blood oxygenation level-dependent (BOLD) contrast. Directly probing glutamate, the primary excitatory neurotransmitter, during task-related stimulation offers a more precise neuroimaging approach. Chemical exchange saturation transfer (CEST), a molecular MRI technique, can provide insights into brain metabolites, including glutamate. While prior studies have attempted to apply CEST in fMRI contexts-either to detect glucose consumption in rats or to probe pH changes in the human brain (with the latter failing to detect significant changes)-none of these efforts successfully addressed the confounding influence of BOLD signal fluctuations on the acquired CEST contrast during task activation. Furthermore, to date, no study has reported task-evoked activation maps based on dynamic glutamate changes detected by CEST-MRI. Here, we are the first to propose and implement a dynamic signal model that integrates both BOLD and CEST effects. Derived from the analysis of temporal response amplitude, we introduce a metric potentially detecting changes in glutamate concentration during neural activity, along with corresponding glutamate-weighted activation maps. Simulation results based on this model show strong agreement with experimental results during block design visual tasks in the human brain on a 3 Tesla scanner, but only when incorporating increased glutamate concentration during the stimulation state. Furthermore, the glutamate-weighted activation maps obtained in our experiments demonstrate a more precise localization of visual cortex regions compared with the classical BOLD contrast activation maps. Our findings provide a potential explanation for the mechanism underlying CEST-fMRI and underscore the potential of this imaging modality to directly map neural activity by leveraging glutamate concentration detection.
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Magnetic Resonance Imaging
Brain Imaging
These technologies include computerized axial tomography (CAT or CT scans), positron-emission tomography (PET scans), magnetic resonance imaging (MRI), functional magnetic resonance imaging (fMRI), and Transcranial Magnetic Stimulation (TMS).

