Wearable Magnetoencephalography in a Lightly Shielded Environment.
IEEE Transactions on Bio-Medical Engineering
|September 20, 2024
Summary
Optically pumped magnetometer magnetoencephalography (OPM-MEG) can now be performed in lightly shielded rooms. Spatiotemporal signal space separation (tSSS) effectively filters interference, enabling accurate brain activity measurement outside specialized magnetic shielding.
Area of Science:
- Neuroscience
- Biophysics
- Biomedical Engineering
Background:
- Optically pumped magnetometer magnetoencephalography (OPM-MEG) offers advanced brain activity measurement.
- OPM-MEG requires specialized, large, and expensive magnetically shielded rooms (MSRs) due to high sensitivity to interference.
- Current MSRs limit the accessibility and widespread adoption of OPM-MEG technology.
Purpose of the Study:
- To investigate the efficacy of Maxwell filtering techniques, specifically signal space separation (SSS) and spatiotemporal SSS (tSSS), for OPM-MEG.
- To determine if OPM-MEG data can be accurately analyzed in a lightly shielded environment, reducing reliance on heavy MSRs.
- To assess the potential for making OPM-MEG more accessible and affordable.
Main Methods:
- Phantom recordings and human participant data (motor task) were collected in both a state-of-the-art 5-layer MSR and a lightly shielded room.
- Spatiotemporal signal space separation (tSSS) was applied to OPM-MEG data acquired in both environments.
- The accuracy of source localization was compared between the MSR and lightly shielded room conditions.
Main Results:
- Application of tSSS to OPM-MEG data recorded in a lightly shielded room successfully isolated neural signals.
- Accurate localization of a dipole source in phantom recordings was achieved in the lightly shielded room.
- Neuronal sources in the human brain were accurately localized using OPM-MEG data collected in the lightly shielded room with tSSS.
Conclusions:
- Maxwell filtering techniques, particularly tSSS, can effectively mitigate interference in OPM-MEG.
- OPM-MEG can be performed with high fidelity in less restrictive, lightly shielded rooms.
- This advancement paves the way for smaller, more affordable, and widely deployable OPM-MEG systems.


