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A groundbreaking artificial intelligence tool called FastGlioma has been developed, enabling surgeons to detect residual cancerous brain tumours within 10 seconds during surgery. The innovation, detailed in a recent study in Nature, is seen as a significant advancement in neurosurgery, outperforming traditional tumour detection methods. Researchers from the University of Michigan and the University of California, San Francisco, led the study, highlighting its potential to improve surgical outcomes for patients with diffuse gliomas.

Todd Hollon, M.D., a neurosurgeon at the University of Michigan Health, described FastGlioma as a transformative diagnostic tool that provides a faster and more accurate method for identifying tumour remnants. He noted its ability to reduce reliance on current methods, such as intraoperative MRI or fluorescent imaging agents, which are often inaccessible or unsuitable for all tumour types.

Addressing Residual Tumours During Surgery

As per the study from Michigan Medicine – University of Michigan, residual tumours, which often resemble healthy brain tissue, are a common challenge in neurosurgery. Surgeons have traditionally struggled to differentiate between healthy brain and remaining cancerous tissue, leading to incomplete tumour removal. FastGlioma addresses this by combining high-resolution optical imaging with artificial intelligence to identify tumour infiltration rapidly and accurately.

In an international study, the model was tested on specimens from 220 patients with low- or high-grade diffuse gliomas. FastGlioma achieved an average accuracy of 92%, significantly outperforming conventional methods, which had a higher miss rate for high-risk tumour remnants. Co-senior author Shawn Hervey-Jumper, M.D., professor of neurosurgery at UCSF, emphasised its ability to enhance surgical precision while minimising the dependence on imaging agents or time-consuming procedures.

Future Applications in Cancer Surgery

FastGlioma is based on foundation models, a type of AI trained on vast datasets, allowing adaptation across various tasks. The model has shown potential for application in other cancers, including lung, prostate, and breast tumours, without requiring extensive retraining.

Aditya S. Pandey, M.D., chair of neurosurgery at the University of Michigan, affirmed its role in improving surgical outcomes globally, aligning with recommendations to integrate AI into cancer surgery. Researchers aim to expand its use to additional tumour types, potentially reshaping cancer treatment approaches worldwide.

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Researchers Discover New Plasma Wave in Jupiter’s Auroral Skies

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Scientists at the University of Minnesota Twin Cities have detected a new plasma wave in Jupiter’s aurora using NASA’s Juno spacecraft. The finding, published in Physical Review Letters, reveals how Jupiter’s magnetic field shapes auroral activity differently from Earth. The study opens new directions for understanding planetary auroras and magnetic field intera…

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Rocket Lab Launches Five Classified Satellites on 70th Electron Mission

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Rocket Lab reached a key milestone with its 70th Electron rocket launch, successfully sending five secret satellites into orbit on Aug. 23, 2025. The mission, called “Live, Laugh, Launch,” lifted off from New Zealand and ended its live stream early at the request of the undisclosed customer. Rocket Lab now looks ahead to the debut of its larger Neutron rocket late…

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Researcher Photographs Giant Solar Tornado and Massive Plasma Eruption at the Same Time

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On August 20, researcher Maximilian Teodorescu captured a rare photo of two dramatic solar events — a giant tornado of plasma rising 130,000 km and an eruptive prominence spanning 200,000 km. Both were shaped by the sun’s unstable magnetic fields. While the prominence did release a CME, it is not aimed at Earth.

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