Optimising Synchrotron Microbeam Radiation Therapy For Cancer Treatment
Funder
National Health and Medical Research Council
Funding Amount
$682,000.00
Summary
Over 50% of cancer patients receive radiotherapy (RT). Tumour control using RT is limited by adverse normal tissue reactions. Unlike conventional RT machines, the Australian synchrotron has the capability to deliver strong radiation in very thin slices, termed microbeam RT (MRT). Tumour control has been obtained in animal models with a remarkable sparing of normal tissue using MRT. We will optimize MRT as a crucial step towards a potentially revolutionary cancer treatment.
Single Shot X-ray Tomography For Real-Time Functional X-ray Imaging
Funder
National Health and Medical Research Council
Funding Amount
$322,641.00
Summary
Computed Tomography (CT) scanners produce three-dimensional images of vital organs that cannot be obtained by conventional two-dimensional (single projection) x-ray radiographs. However, the radiation exposure is hundreds of times higher than conventional radiography. We will develop the world’s first CT scanner that uses no more radiation than a single conventional x-ray image that will provide four-dimensional reconstructions of a patient’s moving internal organs.
Improved Identification Of At-risk Brain Tissue In Patients With Stroke
Funder
National Health and Medical Research Council
Funding Amount
$279,044.00
Summary
Stroke is one of the most frequent causes of death and the major cause of adult neurological disability. Diagnostic tools to improve its management are therefore crucial. This project is dedicated to improving the magnetic resonance imaging techniques for measuring blood flow to the brain, and to applying these to patients who have had a stroke. Improved methods will enable better prediction of tissue outcome following stroke, thus enabling optimal early management decisions to be taken.
The Effects Of Inherent Inaccuracies In DXA In Vivo BMD Measurements On Osteopenic/Osteoporotic Diagnostics/Prognositics
Funder
National Health and Medical Research Council
Funding Amount
$411,980.00
Summary
Osteoporosis (porous bone) and consequent associated bone fractures of mainly post-menopausal women and the elderly of both genders constitutes a significant, widespread and rapidly growing public health problem. It is already a major health-cost burden in Australia and worldwide and is set to increase dramatically over the next few decades as the proportion of the population at or above the osteoporosis-prone age increases sharply. Current diagnostic evaluations of osteoporosis, bone mineral st ....Osteoporosis (porous bone) and consequent associated bone fractures of mainly post-menopausal women and the elderly of both genders constitutes a significant, widespread and rapidly growing public health problem. It is already a major health-cost burden in Australia and worldwide and is set to increase dramatically over the next few decades as the proportion of the population at or above the osteoporosis-prone age increases sharply. Current diagnostic evaluations of osteoporosis, bone mineral status of the skeleton, mechanical integrity of bone, and bone fracture risk are mainly based on X-ray absorption measurements of a given individual's bone mineral density (BMD) using Dual-energy X-ray Absorptiometric (DXA) bone densitometer instrumentation. New drugs to retard, ameliorate, or reverse the low bone mineral density condition of osteoporosis are now becoming available, but cannot be prescribed unless sufficiently low BMD is demonstrated for a given patient. The efficacy of these drugs is usually held to be greatest at the earliest stage of osteoporosis (osteopenia) and their effectiveness evaluated on the basis of DXA-measured bone mineral density. The Chief Investigator of this project has already shown by published quantitative analysis and simulation studies that such BMD measurements are inherently inaccurate; that errors of 20% and greater can readily pertain, particularly for those patients at the early stages of osteoporosis and those at or above the osteoporosis-prone age -- the very individuals for whom bone mineral density values are often of paramount interest and concern. These systematic DXA inaccuracies can be large enough to either mask the presence of osteoporosis or lead to false diagnoses and patient monitoring results. The present project, for the first time anywhere, is desiged to quantitatively establish the extent of these inaccuracies using actual DXA densitometers utilizing sophisitcated and precise methods.Read moreRead less
Low Cost High Precision Radiotherapy: A Synergistic Framework For Tumour Tracking During Treatment
Funder
National Health and Medical Research Council
Funding Amount
$318,768.00
Summary
Advances in technology have enabled radiotherapy to become more sophisticated and more efficient at treating cancer. Yet, despite its sophistication, today radiotherapy suffers from a major problem: whilst we routinely image patients prior to treatment, no anatomical information is available during treatment. This project aims to solve this problem by making use of a number of sensors that are already available in a radiotherapy to track the tumours positions during treatment, when it counts.
Real-time In-vivo Imaging During Lung Cancer Radiotherapy
Funder
National Health and Medical Research Council
Funding Amount
$318,768.00
Summary
Lung tumours move in clinically significant and unpredicable ways. Current radiotherapy is limited by the lack of real-time imaging to monitor tumour motion. The aim of this project is to develop and clinically implement Real-time In-vivo Imaging to enable motion-adaptive radiotherapy and thereby improve treatment outcomes. Real-time In-vivo Imaging is a software technology that will be applicalbe to 90% of modern radiotherapy systems globally and will enable wide access to advanced cancer care.
We will create a new class of cancer radiotherapy system that solves the complex problem of how to target a tumour with precision and accuracy even as the patient’s anatomy changes during treatment. Our Nano-X system is built with real-time imaging guidance and treatment adaptation at the heart of the design process; and complex processing tasks have been moved from hardware to software, enabling radical changes to machine design. Together these innovations will ensure better treatment outcomes.
Improving Patient Safety In Radiation Therapy With The Watchdog Real-time Treatment Delivery Verification System
Funder
National Health and Medical Research Council
Funding Amount
$593,742.00
Summary
Radiation therapy is a highly effective cancer treatment with extremely high doses delivered using very complex treatment machines. Unfortunately errors have occurred resulting in cases of patient death and mistreatment. We have developed a novel method to assess the treatment delivery in real-time to prevent errors. The method uses imaging devices that are already present on the treatment machine meaning that this method could have a major impact on patient safety in modern radiation therapy.
Investigation Of A New Electronic Portal Imaging Device For Radiation Therapy Dose Delivery Verification
Funder
National Health and Medical Research Council
Funding Amount
$408,101.00
Summary
In external beam radiotherapy highly complex radiation fields are used to deliver high doses of radiation to the tumour while sparing normal tissues. Inaccurate treatment could result in poor patient outcome or damage to normal tissues. We aim to investigate a novel imaging device to measure the dose accuracy of these fields. This work has the potential to make a significant and fundamental difference to existing verification techniques for radiotherapy treatments to ensure patient outcomes.
Novel MRI Approaches To Map Focal Cortical Dysplasia In Focal Epilepsy
Funder
National Health and Medical Research Council
Funding Amount
$465,489.00
Summary
Focal cortical dysplasia (FCD) is a common cause of focal epilepsy that is resistant to medication. When it can be identified clearly, surgical removal can cure the epilepsy but better methods of detecting and mapping FCD are required because standard imaging techniques are negative in 30% of patients. In this project, we plan to develop new MRI methods to diagnose FCD, thereby creating a new MRI-based diagnostic tool for patients with focal epilepsy who are potential surgical candidates.