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Published on: June 9, 2016
Magnetically compatible and fiberless fNIRS enables simultaneous multimodal imaging with optically pumped
Rui Yang1, Xingyu Ru1, Jingqi Song1
1Laboratory for Medical Physics and Engineering, School of Physics, Peking University, Beijing, 100871, China; Center for MRI Research, Academy for Advanced Interdisciplinary Studies, Peking University, Beijing, 100871, China; National Biomedical Imaging Center, Peking University, Beijing, 100871, China.
We developed a magnetically compatible fiberless functional near-infrared spectroscopy (fNIRS) system for seamless integration with optically pumped magnetometer (OPM) magnetoencephalography (MEG). This breakthrough enables robust multimodal neuroimaging for studying brain function and connectivity.
Area of Science:
- Neuroscience
- Biomedical Engineering
- Medical Imaging
Background:
- Simultaneous functional near-infrared spectroscopy (fNIRS) and magnetoencephalography (MEG) offer complementary insights into neurovascular coupling.
- Previous implementations used fiber-based fNIRS, which has limitations.
- Fiberless fNIRS is lighter and more flexible but faces magnetic compatibility challenges with MEG.
Purpose of the Study:
- To develop a magnetically compatible, fiberless fNIRS system for integration with optically pumped magnetometer (OPM) MEG.
- To overcome magnetic interference issues for robust multimodal neuroimaging.
- To enable flexible and non-invasive studies of neurovascular coupling.
Main Methods:
- Designed magnetically compatible source/detector optodes for fiberless fNIRS.
- Implemented a multipole moment flexible printed circuit design to suppress magnetic fields.
- Tested the system's magnetic compatibility and impact on OPM sensitivity.
- Demonstrated simultaneous fiberless fNIRS and OPM-MEG acquisition in a somatosensory paradigm.
Main Results:
- The developed optodes and cables generated minimal magnetic fields (<1 nT at ~1 cm), ensuring no measurable impact on OPM sensitivity.
- Achieved >1000-fold suppression of driving-current-induced magnetic fields.
- Successfully captured concurrent hemodynamic (fNIRS) and evoked magnetic (MEG) responses.
- Demonstrated the feasibility and robustness of the integrated fiberless fNIRS and OPM-MEG system.
Conclusions:
- This work presents a novel, magnetically compatible fiberless fNIRS system integrated with OPM-MEG.
- It addresses a key barrier, enabling flexible and non-invasive multimodal neuroimaging.
- Paves the way for advanced neurovascular coupling studies, wearable neuroimaging, and brain-computer interfaces.
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