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Research Topic : Colon
Australian State/Territory : VIC
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  • Funded Activity

    Molecular Characterisation Of Early Precursor Lesions Of A Novel Ñserrated Pathwayî Of Colorectal Cancer Using Gene Expression And Proteomics.

    Funder
    National Health and Medical Research Council
    Funding Amount
    $318,338.00
    Summary
    In Australia, CRC is the second highest cause of all cancer-related deaths. If detected early, CRC has a high success rate of cure, but a percentage of precursor lesions escape detection and show aggressive clinical behaviour to progress to CRC. These are difficult to diagnosis with existing technologies. We aim to understand the biology behind sessile serrated adenoma pathways and hence enhance early detection, diagnosis and treatments strategies.
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    Funded Activity

    Genomic Profiling For The Prevention Of Colorectal Cancer

    Funder
    National Health and Medical Research Council
    Funding Amount
    $425,048.00
    Summary
    Bowel cancer is a major health issue but is also a preventable disease. Identifying who has a high risk of developing bowel cancer from someone who has a low risk is an important way to ensure preventative medical treatment is targeted to those who are at the highest risk and will ultimately save lives. I will utilise different genomic profiling approaches to identify risk factors for bowel cancer so that they can be used to identify high risk people in the population.
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    Funded Activity

    Mechanistic Basis Of AP-1-regulated Gene Expression During Colorectal Cancer Progression

    Funder
    National Health and Medical Research Council
    Funding Amount
    $597,802.00
    Summary
    The spread of colorectal cancers in the body poses a major clinical problem for which current treatment options are inadequate. This project aims to unravel how a specific DNA-binding protein regulates the expression of genes involved in the spread of these cancers. The research is expected to provide a better mechanistic understanding of how disease progression occurs and to identify novel strategies to treat aggressive tumours.
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    Funded Activity

    Developmental Therapeutics For The Treatment Of Gastrointestinal Cancers

    Funder
    National Health and Medical Research Council
    Funding Amount
    $5,392,649.00
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    Funded Activity

    Novel Approaches For Activation And Expansion Of Genetically Modified T Cells In Vivo

    Funder
    National Health and Medical Research Council
    Funding Amount
    $115,660.00
    Summary
    Killer T lymphocytes can penetrate tumors and their propagation and transfer into cancer patients has demonstrated some encouraging results, but this form of adoptive immunotherapy remains ineffective in most cancer patients. We propose to improve the tumor trafficking and anti-tumor activities of killer cells by genetically engineering them with proteins that will enable them to recognise and destroy cancer cells. Our previous work has indicated that killer T lymphocytes can be genetically engi .... Killer T lymphocytes can penetrate tumors and their propagation and transfer into cancer patients has demonstrated some encouraging results, but this form of adoptive immunotherapy remains ineffective in most cancer patients. We propose to improve the tumor trafficking and anti-tumor activities of killer cells by genetically engineering them with proteins that will enable them to recognise and destroy cancer cells. Our previous work has indicated that killer T lymphocytes can be genetically engineered in culture with tumor recognition receptors. When transferred into mice, these genetically engineered cells can release toxic and inflammatory proteins that cause tumor destruction. In this proposal we wish to further test this approach in mice by enginneering the mouse killer T cells with (i) receptors that provide stronger signals for killing and proliferation; and (ii) with receptors targeting other structures on tumor cells including the tumor vasculature as a means to overcome tumor escape. In addition, we wish to test a novel approach of combining both genetic engineering and vaccination strategies for expanding gene-modified cells after adoptive transfer. These studies will allow the best receptor genes to be transferred to human white blood cells and examined for anti-tumor effects in immune-deficient mice.
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