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Socio-Economic Objective : Infectious diseases
Research Topic : myopia therapy
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  • Funded Activity

    Linkage Infrastructure, Equipment And Facilities - Grant ID: LE0561013

    Funder
    Australian Research Council
    Funding Amount
    $220,000.00
    Summary
    X-ray diffraction System for Protein Crystallography and Structural Biology. Knowledge of protein structures enables researchers to explain cellular function at a molecular level. In particular, it provides essential information to understand the mechanism of diseases, such as cancer or AIDS, and it ultimately leads to the design of better drugs. An in-house X-ray protein crystallography facility will allow us to determine the structures of key proteins effectively and competitively, opening up .... X-ray diffraction System for Protein Crystallography and Structural Biology. Knowledge of protein structures enables researchers to explain cellular function at a molecular level. In particular, it provides essential information to understand the mechanism of diseases, such as cancer or AIDS, and it ultimately leads to the design of better drugs. An in-house X-ray protein crystallography facility will allow us to determine the structures of key proteins effectively and competitively, opening up extensive possibilities for multi-disciplinary ground-breaking research. The University research portfolio has evolved to embrace the revolution in structural biology with numerous projects and collaborations focusing on proteins involved in bacterial infections, degenerative disorders and biotechnological applications.
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    Funded Activity

    Linkage Projects - Grant ID: LP0347269

    Funder
    Australian Research Council
    Funding Amount
    $69,099.00
    Summary
    Mammalian chitinases and gene therapy: new weapons to combat fungal and insect attack in mammals. Plants combat fungal and insect attack by producing chitin degrading enzymes. Related, chitinolytic enzymes have been identified in mammals, but their functions are unclear. We found that chitinases from human macrophages inhibited fungal growth. We hypothesise that, like plants, mammalian chitinases are produced to fight chitin containing pathogens. We will transform cells with a chitotriosidase ge .... Mammalian chitinases and gene therapy: new weapons to combat fungal and insect attack in mammals. Plants combat fungal and insect attack by producing chitin degrading enzymes. Related, chitinolytic enzymes have been identified in mammals, but their functions are unclear. We found that chitinases from human macrophages inhibited fungal growth. We hypothesise that, like plants, mammalian chitinases are produced to fight chitin containing pathogens. We will transform cells with a chitotriosidase gene and encapsulate them, creating bioreactors secreting chitinases. Therapeutic effects will be tested by grafting bioreactors to mice inoculated with Aspergillus. The research is a new approach to fighting chitin containing pathogens, with potential applications from parasite infestations in livestock to fungal infections in humans.
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    Funded Activity

    Discovery Projects - Grant ID: DP0343499

    Funder
    Australian Research Council
    Funding Amount
    $209,035.00
    Summary
    A hierarchical quantum mechanical and classical simulation of biological ion channels. I aim to develop a methodology incorporating molecular quantum mechanics and classical Brownian mechanics in a way that can be applied practically to large macromolecular systems, thus relating fine structural details to experimentally measurable properties. Specifically, I will apply this methodology to study ion channels in which the challenge is to relate electronic and atomic structure to the conduct .... A hierarchical quantum mechanical and classical simulation of biological ion channels. I aim to develop a methodology incorporating molecular quantum mechanics and classical Brownian mechanics in a way that can be applied practically to large macromolecular systems, thus relating fine structural details to experimentally measurable properties. Specifically, I will apply this methodology to study ion channels in which the challenge is to relate electronic and atomic structure to the conductance properties of the channel. Accurately determining these relationships provides a pathway to developing cures for many neurological, cardiac, and muscular diseases.
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    Funded Activity

    Discovery Projects - Grant ID: DP0987227

    Funder
    Australian Research Council
    Funding Amount
    $360,000.00
    Summary
    Role of the GxxxG domain in the function of mammalian prion proteins. Prion proteins have been associated with a number of diseases of humans and animals (such as Creutzfeldt-Jakob Disease in humans and BSE, or 'mad-cow' disease in cattle) which have had major public health, social and economic consequences in countries where they have been detected. This project will identify mechanisms by which a highly conserved region of the prion protein plays a role in the conversion to the disease associa .... Role of the GxxxG domain in the function of mammalian prion proteins. Prion proteins have been associated with a number of diseases of humans and animals (such as Creutzfeldt-Jakob Disease in humans and BSE, or 'mad-cow' disease in cattle) which have had major public health, social and economic consequences in countries where they have been detected. This project will identify mechanisms by which a highly conserved region of the prion protein plays a role in the conversion to the disease associated form. This will provide avenues for identifying the normal function of the prion protein, and increase our knowledge of prion biology. This will benefit both in terms of healthy ageing and in protecting the agriculture sector from prion diseases in farmed animals.
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