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Updated: Mar 13, 2026

Studying Brain Function in Children Using Magnetoencephalography
Published on: April 8, 2019
BabyMEG: A whole-head pediatric magnetoencephalography system for human brain development research
Yoshio Okada1, Matti Hämäläinen2, Kevin Pratt3
1Division of Newborn Medicine, Department of Medicine, Boston Children's Hospital, Boston, Massachusetts 02115, USA.
Insights
A new 375-channel whole-head magnetoencephalography (MEG) system, BabyMEG, enables real-time brain activity monitoring in infants. This advanced system allows clear detection of cortical evoked responses without averaging, advancing pediatric neuroscience research.
Area of Science:
- Neuroscience
- Biophysics
- Medical Engineering
Background:
- Studying early human brain development requires sensitive electrophysiological tools.
- Existing magnetoencephalography (MEG) systems are often not optimized for infant head sizes or continuous operation.
Purpose of the Study:
- To introduce the BabyMEG, a novel 375-channel whole-head magnetoencephalography system designed for pediatric neuroscience research.
- To detail the system's unique design features, operational capabilities, and noise-cancellation techniques.
Main Methods:
- Development of a two-layer sensor array (270 magnetometers, 35 three-axis magnetometers) with adjustable spacing.
- Integration of superconducting quantum interference devices (SQUIDs) with high sensitivity (4-7.5 fT/√Hz).
- Implementation of a closed-cycle helium recycler for continuous, maintenance-free operation and advanced noise shielding techniques.
Main Results:
- The BabyMEG system accommodates up to 95% of 36-month-old boys' head sizes.
- Real-time monitoring of spontaneous brain activity and clear detection of evoked cortical responses without averaging are achieved.
- The system operates continuously without helium and is shielded from external magnetic noise.
Conclusions:
- The BabyMEG system represents a significant advancement in magnetoencephalography technology for infant studies.
- Its design enhances the utility of MEG in basic neuroscience, clinical research, and patient studies.
- The system facilitates detailed investigation of electrophysiological brain development in early life.
Abstract:
We developed a 375-channel, whole-head magnetoencephalography (MEG) system ("BabyMEG") for studying the electrophysiological development of human brain during the first years of life. The helmet accommodates heads up to 95% of 36-month old boys in the USA. The unique two-layer sensor array consists of: (1) 270 magnetometers (10 mm diameter, ∼15 mm coil-to-coil spacing) in the inner layer, (2) thirty-five three-axis magnetometers (20 mm × 20 mm) in the outer layer 4 cm away from the inner layer. Additionally, there are three three-axis reference magnetometers. With the help of a remotely operated position adjustment mechanism, the sensor array can be positioned to provide a uniform short spacing (mean 8.5 mm) between the sensor array and room temperature surface of the dewar. The sensors are connected to superconducting quantum interference devices (SQUIDs) operating at 4.2 K with median sensitivity levels of 7.5 fT/√Hz for the inner and 4 fT/√Hz for the outer layer sensors. SQUID outputs are digitized by a 24-bit acquisition system. A closed-cycle helium recycler provides maintenance-free continuous operation, eliminating the need for helium, with no interruption needed during MEG measurements. BabyMEG with the recycler has been fully operational from March, 2015. Ongoing spontaneous brain activity can be monitored in real time without interference from external magnetic noise sources including the recycler, using a combination of a lightly shielded two-layer magnetically shielded room, an external active shielding, a signal-space projection method, and a synthetic gradiometer approach. Evoked responses in the cortex can be clearly detected without averaging. These new design features and capabilities represent several advances in MEG, increasing the utility of this technique in basic neuroscience as well as in clinical research and patient studies.
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