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NeuroPATUS: Imaging the brain with light and sound

In plain English

AI plain-English summary

A new type of brain scanner uses pulses of laser light to generate ultrasound waves deep inside the skull, creating images that reveal both blood flow and tissue structure without needing a large hospital machine. Current scanners like MRI and X-ray CT are bulky, expensive, and often unavailable at the bedside or in remote settings. They also miss certain brain abnormalities because they cannot capture both optical and mechanical tissue properties at once. This project combines two imaging techniques—photoacoustic tomography and ultrasound computed tomography—into a single portable device. One method detects blood by measuring how haemoglobin absorbs light; the other maps tissue stiffness by recording how ultrasound waves travel through the brain. Together, they can spot bleeding, swelling, tumours, and stroke damage that standard scans might overlook. If the scanner works, it could transform emergency care for stroke, traumatic brain injury, and brain cancer. Paramedics could use it in ambulances, doctors could scan patients in intensive care without moving them, and clinics in low-resource settings could diagnose serious brain disorders without access to MRI or CT. The device is compact and designed for bedside use, so it could quietly change how quickly and accurately brain injuries are detected in everyday hospitals.

View original technical description
The aim of this project is to develop a new type of scanner for non-invasively imaging the human brain. This approach will leverage two imaging modalities based on different physical interactions; photoacoustic tomography (PAT) which works by using pulses of laser light to generate ultrasound waves deep in the brain and ultrasound computed tomography (UST) which transmits ultrasound into tissue and records the transmitted and scattered wavefield. Each modality provides different but complementary image contrast. PAT contrast is based on light absorption enabling it to detect blood with high sensitivity due to the strong optical absorption of haemoglobin. This lends it to visualising brain pathologies characterised by vascular changes such as tumours, or bleeding and ischaemia produced by strokes or injury. UST interrogates the mechanical properties of tissue providing anatomical contrast with the potential to visualise haemorrhage, ventricular swelling or white or grey matter lesions. This combination of previously unavailable optical and mechanical contrast offers the prospect of visualising brain abnormalities indistinguishable with conventional neuroimaging modalities such as X-ray CT or MRI. Moreover, it can be implemented using compact, portable instruments that can be used at the bedside and other scenarios where conventional imaging cannot be used. If successful, this approach could transform the clinical management of serious brain disorders such as stroke, traumatic brain injury or cancer, especially in scenarios where conventional neuroimaging modalities are unavailable.

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Researchers

Paul Beard (Principal Investigator)

Related Research

Grants with similar aims, by meaning.

Preclinical photoacoustic neuroimaging using a reverberant cavity
Multimodal neuroimaging: novel engineering solutions for clinical applications and assistive technologies
Full-Waveform Imaging of the Human Brain
Imaging the brain with ultrasound full-waveform inversion
Dynamic High Resolution Photoacoustic Tomography System

Original classification

Research and Innovation

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