A new machine called an MR Linac will combine an MRI scanner with a radiation beam to track tumours in real time during each treatment session. Current radiotherapy relies on a single CT scan taken before treatment begins, which cannot show tumours clearly or account for daily movement—such as a lung tumour shifting with each breath. To avoid missing the target, clinicians add large safety margins around the tumour, exposing healthy tissue to unnecessary radiation and causing side effects that range from temporary discomfort to permanent, life-altering damage. The MR Linac solves this by using MRI’s superior ability to distinguish tumour from normal tissue, without additional radiation exposure. It will image the tumour’s position during each fraction and track its motion as it happens. This allows clinicians to shrink safety margins, deliver higher doses to the tumour, and spare healthy tissue. For patients, this means more effective treatment with fewer side effects. For clinicians, the machine’s functional imaging capability could also enable dose escalation to the most dangerous parts of a tumour. Before this becomes routine, the research must solve challenges in acquiring accurate images while delivering precise radiation to moving targets.
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Radiation therapy involves delivering high-energy X-ray beams to tumours in order to kill cancer cells. For many people with cancer, radiation therapy is very effective and frequently cures their disease. Unfortunately, when treating tumours, nearby normal tissues will inevitably receive some of the radiation and this is associated with side effects. These side effects can vary from mild, temporary changes that disappear completely to severe, life-threatening, permanent effects that chronically affect a patient's quality of life. Therefore, when treating patients with radiotherapy, there is a clear need to ensure that the treatment is delivered as accurately as possible in order to avoid unnecessary treatment of normal tissues. In most cases, radiotherapy is planned using a CT scan to show the position of the tumour, but this is usually only done once before the treatment starts. One of the major problems with accurate delivery of radiation lies in the fact that it can be very difficult to determine precisely where the tumour is, because it can be difficult to see on standard CT scans. The problem is compounded by the fact that radiation therapy is usually given as a series of doses (called fractions) divided over a period of weeks and the tumour may be in a slightly different position each day or may shrink during the course of treatment. To make matters even more difficult, tumours often occur in tissues that move. For example, lung tumours can move quite significantly as a patient breathes in and out. Therefore, when planning a course of radiation therapy, it is necessary to include a large margin around the tumour to make sure that the radiation beams do not miss their target. As a result, large volumes of normal tissues may receive unnecessarily high radiation doses. In this research project, we aim to revolutionise the technique for delivering radiation therapy by developing a new type of machine called an MR Linac (or magnetic resonance imaging-guided linear accelerator). This machine combines a state-of-the-art radiation machine (called a linear accelerator) with a magnetic resonance imaging (MRI) scanner. MRI scanning is better than CT scanning at being able to tell the difference between tumour and normal tissues and does not expose patients to additional radiation doses. Therefore, such a machine will allow us to see very accurately where the tumour is at the time of each fraction of radiation therapy and it will also be able to track the movements of a tumour as they occur in real-time within a patient during a dose of radiation. With these improvements, we aim to be able to reduce the margins we place around tumours before we start a course of radiation therapy and yet still be confident that we are hitting the tumour target all of the time. For patients, this will have a number of benefits including greater confidence that the treatment will be effective against their disease with fewer side effects. The greater level of accuracy and the avoidance of normal tissues also means that we may be able to prescribe higher radiation doses to the tumour. For clinicians and scientists, the diagnostic power of MRI scanning will allow them to use the MR Linac to develop new approaches to modify the pattern of radiation delivery such that extra dose can be deposited in tumour areas that pose the greatest threat to the patient. Such areas can be identified using so-called functional imaging techniques on an MRI scanner. Before MR-guided radiation therapy can become a reality, there are a number of challenges that need to be met to ensure that treatment can be delivered accurately and safely. The programme of research described in this proposal will enable us to use the MRI scanner to acquire accurate images of tumour and normal tissues while delivering precise radiation doses, even to moving tumour targets.
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