White matter lesions in the brain—spots of damage that disrupt the wiring between neurons—are now known to appear early in multiple sclerosis, dementia, and Parkinson’s disease, and their presence predicts problems with thinking and movement. Most research on neurodegenerative diseases has focused on grey matter, the brain’s neuron-rich tissue. But white matter lesions are increasingly recognised as a possible driver of disease progression, not just a side effect. In MS, these lesions can be repaired by specialised stem cells, allowing full recovery of symptoms—yet this repair fails over time, especially with age. When repair fails, inflammation persists, and neurons are lost. The researchers’ early animal data suggest that repairing white matter lesions actually reduces inflammation in both grey and white matter, and that inflammation and neuronal changes are needed to trigger repair in the first place. This creates a puzzle: the very process that drives disease may also be necessary for healing. This project will study how white matter lesions alter brain function, how they interact with grey matter inflammation, and how repair is regulated. If successful, it could reveal whether boosting white matter repair can halt neurodegeneration—opening a new treatment strategy that targets the brain’s wiring, not just its neurons or immune system.
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Multiple sclerosis (MS) and other neurodegenerative disorders like dementia, Alzheimer's, and Parkinson's disease have a large impact on people's lives and society. There are no fully effective treatments available to stop these diseases from progressing. The human brain is divided into two equal halves: grey and white matter. Most of the research on neurodegenerative disorders has focused on the grey matter of the brain, which contains the neurons, but has overlooked the role of the white matter. New research is showing that lesions within the brain's white matter occur in neurodegenerative disorders. The number of these lesions is linked to problems with thinking and movement. Importantly, these lesions can appear before people experience any symptoms, indicating that these lesions may have a role to play in the disease progression. MS is characterised by white matter lesions in the brain, and from MS research we know that white matter lesions can be repaired, which allows for full symptomatic recovery. This is because in our brain we have specialised stem cells that can repair white matter lesions. Although white matter lesions can be repaired in MS, this regeneration process eventually fails, more so as we age. The failure of repairing white matter lesions can lead the loss of neurons (neurodegeneration), ongoing brain inflammation, and disability. Inflammation in the brain, which is a low-level and ongoing process, is common in both neurodegenerative conditions and MS. Our early results from animal studies suggest that repairing white matter lesions reduces inflammation in both the grey and white matter of the brain. It seems that the failure to repair white matter lesions properly may be causing the ongoing brain inflammation. Our data show that inflammation in the brain and changes in neurons are necessary to trigger white matter repair. This suggests that we need to understand how inflammation, neurons, and white matter lesions interact in order to develop effective treatments, as targeting only one part, like the grey matter or the immune system, may not be enough to prevent further damage. Our research aims to fill this knowledge gap by studying how white matter lesions affect brain function, grey matter inflammation and how repair of white matter lesions is regulated. We hope to learn more about neurodegenerative diseases and whether repairing white matter lesions can reduce brain inflammation, which may be causing the loss of neurons. This research could lead to the development of new treatments that focus on repairing the brain's white matter to preserve brain function. Ultimately, our goal is to reduce the burden of these diseases on individuals, families, and society as a whole.
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