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Developing The Oxford Study for Biomarkers in Motor Neuron Disease (BioMOx): Capturing pre-symptomatic events and advancing clinical translation

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AI plain-English summary

People carrying genetic faults linked to motor neuron disease will undergo scans with two of the UK’s most powerful brain imaging machines to catch the earliest signs of nerve damage, years before symptoms appear. This matters because MND kills half of patients within three years of diagnosis, yet no effective treatment exists and diagnosis typically takes over a year. The project addresses two gaps: first, the lack of understanding of what happens in the brain and spinal cord before symptoms emerge; second, the absence of reliable biological markers—biomarkers—to speed diagnosis and monitor disease progression. If successful, the research could deliver two practical changes. First, biomarkers that distinguish MND from mimic conditions within weeks rather than months, cutting the distressing diagnostic delay and allowing earlier access to riluzole, the only marginally disease-slowing drug. Second, new targets for preventative therapies in at-risk individuals, and better ways to organise clinical trials by predicting how symptoms spread. The project is fundamentally about understanding the earliest biological events in MND. While immediate clinical impact is not guaranteed, similar fundamental neuroscience work has previously identified drug targets for conditions once considered untreatable.

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Motor neuron disease (MND) is a neurodegenerative condition in which the upper and lower motor neurons of the brain and spinal cord die prematurely. Also known as amyotrophic lateral sclerosis (ALS), it leads to progressive muscle weakness and wasting affecting the arms, legs, and speech and swallowing muscles. Involvement of the motor nerves supplying the respiratory muscles leads to death within three years of the onset of symptoms for half of patients. There is no effective treatment despite multiple drug trials over the last 20 years. About 5000 people suffer from MND in the UK, and many more are indirectly affected as their carers. It affects men and women and, although the peak incidence is in the early 60s, there is a wide age range. Little is understood about why people develop MND. Whilst for most patients there is no clear single genetic reason for developing the disease, in a small number of patients there are multiple family members at risk due to single mutations or expansions in the genetic code. This project will study healthy volunteers who are known to carry genetic abnormalities linked to the development of MND, in order to try and capture the very earliest signs of nerve damage. Such changes might reveal new targets for preventative drug therapy, that then also have value in slowing progress in those with established disease. This part of the project will use one of only two very strong magnetic field (7 Tesla) MRI scanners in the UK in order to detect subtle changes in brain function and structure. Developments in MRI mean that it is now possible to study the spinal cord as well as the brain, and to look non-invasively at chemical substances within the tissue using a technique known as Magnetic Resonance Spectroscopy. This will be coupled to an extremely sensitive magnetoencephalography (MEG) scanner, which can detect patterns of brain motor nerve activity in real-time. This unique combination has the potential to unlock previously unrecognised changes in the brain and spinal cord of individuals long before symptoms appear, with the aim of identifying new targets for therapy, and new ways to monitor future therapeutic agents. The symptoms of MND may initially not seem serious to the GP. Once referred to a hospital physician, making a diagnosis is not always straightforward without a diagnostic test. Currently diagnosis depends upon the opinion of an experienced neurologist and the exclusion of potential mimic disorders, which often involves lengthy investigations and a distressing period of uncertainty for patients. On average MND patients wait at least one year for a diagnosis. This delays the earlier administration of the only marginally disease-slowing medication, riluzole, and might be one reason that so many other drug trials have failed to show benefit. It is also precious time when individuals wish to maximise the quality of their remaining life. Finding reliable markers of disease activity in MND, called biomarkers, might help to speed up diagnosis, aid care-planning, and the assessment of new candidate drugs. The Oxford Study for Biomarkers in MND (BioMOx) is a group of more than 60 MND patients, of all sub-types, who volunteered to be followed throughout their disease, undergoing tests every six months to try and identify biomarkers. Advanced MRI brain scans and analysis of spinal fluid and blood have revealed several candidates, and shown that their combination improves accuracy. This project will test these in people whose symptoms make MND a likely diagnosis, and in people with disease mimics, in order to see which biomarkers perform most reliably. It will also allow BioMOx to continue studying new cases of MND at regular intervals in order to understand why the pattern and speed of spread of initially isolated symptoms varies between individuals. This might help with the more efficient organisation of clinical trials, as well as effective care-planning.

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Researchers

Martin Turner (Principal Investigator)

Related Research

Grants with similar aims, by meaning.

Biomarkers in motor neuron disease - a longitudinal translational neuroimaging and CSF study
Novel MRI Biomarkers in Neuromuscular Disease
Novel MRI Techniques for Brain Banking and Motor Neuron Disease Research
Developing the Oxford study for biomarkers in Motor Neurone Disease (BioMOx2): Capturing pre-symptomatic events and advancing clinical translation
A Multicentre Biomarker Study in Neurodegeneration AMBRoSIA

Original classification

Fellowship

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