Completed Brain & Nervous System Heart, Stroke & Blood

Moving functional brain imaging into the real world: A wearable, cryogen-free, magnetoencephalography (MEG) system

In plain English

AI plain-English summary

A wearable brain scanner now lets people walk, talk, and interact while their brain activity is recorded in real time. Current functional neuroimaging systems—such as fMRI and conventional MEG—require participants to lie motionless inside a narrow tube or sit rigidly with their head clamped in place. This artificial environment excludes many people who cannot stay still, such as young children, people with movement disorders, or patients needing pre-surgical epilepsy evaluation. It also prevents researchers from studying brain function during natural behaviours like navigating a room or having a conversation. The new system uses quantum sensors that do not need cryogenic cooling, so they can be placed directly on the scalp inside a lightweight helmet. This gives five to ten times the sensitivity of current MEG and higher spatial resolution, because the sensors sit closer to the brain. If this succeeds, it could transform clinical diagnostics and fundamental neuroscience. Children needing epilepsy surgery could be scanned without sedation. Patients with Parkinson’s disease could be studied while walking. Researchers could finally ask how the healthy human brain coordinates movement, social interaction, and spatial navigation in real-world settings—questions that current scanners simply cannot answer.

View original technical description
Functional neuroimaging systems currently comprise cumbersome equipment built around a small bore into which a participant’s head is gently clamped. This artificial environment restricts both the subject groups that can be scanned, and the experimental questions that can be addressed. Here, we aim to develop a new type of magnetoencephalography (MEG) system which will be worn on the subject’s head, allowing them to move freely whilst being scanned. This is possible due to the introduction of new quantum sensors which do not rely on superconducting technology. The new system will offer higher spatial resolution and 5-10 times the sensitivity of current state-of-the-art MEG instrumentation because the sensors can be placed directly on the scalp. This will allow non-invasive electrophysiological measurements to be made with unparalleled spatiotemporal accuracy while participants operate in an unconstrained environment, e.g. navigating in space, or interacting with other people. Importantly, the device opens up the possibility of scanning almost any subject or patient group ranging from children requiring pre-surgical epilepsy evaluation, to patients with movement disorders. The low cost, wear-ability and enhanced sensitivity of the new system will be transformative, offering new opportunities to study ‘real world’ human brain function in health and disease.

View the original record at the funder ↗

Researchers

Gareth Barnes (EPMC Awardee)Matthew Brookes (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Next Generation Electrophysiological Imaging - Development and Application in Epilepsy
Clinical deployment of wearable functional neuroimaging
Wearable Magnetoencephalography (MEG) to detect brain activity.
Concurrent non-invasive millisecond imaging of brain and spinal cord in health and disease
Development of a lifespan compliant magnetoencephalography system

Original classification

Collaborative Award in Science

Plain English summaries and category classifications on this site are generated by AI and may not perfectly reflect the original research.