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Australian State/Territory : QLD
Field of Research : Molecular Evolution
Research Topic : Evolution
Australian State/Territory : VIC
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  • Funded Activity

    Discovery Projects - Grant ID: DP0772814

    Funder
    Australian Research Council
    Funding Amount
    $715,000.00
    Summary
    Evolutionary venomics: Venom system diversification in the animal kingdom. This proposal represents a tremendous opportunity for biodiscovery from the Australian toxic fauna. This will be achieved through the researcher's unique approach of investigating previously unmapped venom systems for divergent, bioactive proteins. An understanding of venomous animal protein evolution has practical implications for the treatment of envenomations - an enormous problem in Australia - as well as great pot .... Evolutionary venomics: Venom system diversification in the animal kingdom. This proposal represents a tremendous opportunity for biodiscovery from the Australian toxic fauna. This will be achieved through the researcher's unique approach of investigating previously unmapped venom systems for divergent, bioactive proteins. An understanding of venomous animal protein evolution has practical implications for the treatment of envenomations - an enormous problem in Australia - as well as great potential in drug discovery and other commercial applications. This project will provide Australian graduate and post-graduate students with finely tuned skills in cutting edge methodological techniques and a fluent understanding of molecular evolution, preparing them to be internationally competitive scientists.
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    Funded Activity

    Discovery Projects - Grant ID: DP140101085

    Funder
    Australian Research Council
    Funding Amount
    $316,517.00
    Summary
    Fish venom as a model system for the molecular evolution of defensive toxins. The key aim of this study is to undertake a thorough investigation of venoms found in distinct fish lineages, including enigmatic species such as venomous and medically important species such as the stonefish. By characterising the biodiversity of toxins found in the venoms of different fish, the evolutionary history of venom in this major vertebrate lineage can be revealed. The investigations proposed here will also d .... Fish venom as a model system for the molecular evolution of defensive toxins. The key aim of this study is to undertake a thorough investigation of venoms found in distinct fish lineages, including enigmatic species such as venomous and medically important species such as the stonefish. By characterising the biodiversity of toxins found in the venoms of different fish, the evolutionary history of venom in this major vertebrate lineage can be revealed. The investigations proposed here will also determine the functional activities of different venoms and their components. This will not only help the understanding of the medical consequences of the annual thousands of fish envenomings but also explore a largely unstudied resource for the discovery of new pharmacological diagnostics and therapeutics.
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    Funded Activity

    Discovery Projects - Grant ID: DP180102363

    Funder
    Australian Research Council
    Funding Amount
    $550,496.00
    Summary
    Unravelling reef fish vision through gene-editing and behavioural ecology. This project aims to enhance understanding of visual neuroscience, genetic control of vision and environmental ecology on The Great Barrier Reef (GBR). Using the anemonefish as a model, together with new genetic, photographic and behavioural approaches, the project aims to reveal novel aspects of colour vision on the reef. Outcomes beyond multiple scientific disciplines include enhanced international collaboration and bui .... Unravelling reef fish vision through gene-editing and behavioural ecology. This project aims to enhance understanding of visual neuroscience, genetic control of vision and environmental ecology on The Great Barrier Reef (GBR). Using the anemonefish as a model, together with new genetic, photographic and behavioural approaches, the project aims to reveal novel aspects of colour vision on the reef. Outcomes beyond multiple scientific disciplines include enhanced international collaboration and building capacity for improved reef guardianship. The benefits are scientific discovery in multiple areas, providing greater community understanding of complex science and a desire to preserve the GBR for future generations.
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    Funded Activity

    Discovery Projects - Grant ID: DP1094464

    Funder
    Australian Research Council
    Funding Amount
    $440,000.00
    Summary
    The genomics of adaptation in Wolbachia pipientis, an emerging biocontrol agent. Australians are increasingly exposed to insect-transmitted diseases such as dengue fever. Novel biocontrol methods using the bacterium Wolbachia aim to control insect populations to reduce disease transmission. Our research will be the first to investigate genomic variation and the process of adaptation to new insect hosts in Wolbachia. The novel data and understanding of evolutionary processes we generate will be c .... The genomics of adaptation in Wolbachia pipientis, an emerging biocontrol agent. Australians are increasingly exposed to insect-transmitted diseases such as dengue fever. Novel biocontrol methods using the bacterium Wolbachia aim to control insect populations to reduce disease transmission. Our research will be the first to investigate genomic variation and the process of adaptation to new insect hosts in Wolbachia. The novel data and understanding of evolutionary processes we generate will be critical for screening bacterial biocontrol candidates and designing biocontrol release strategies. It will also strengthen the position of Australian research as a world-leader in the fusion of post-genomics and applied microbiology.
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    Funded Activity

    Discovery Projects - Grant ID: DP1095858

    Funder
    Australian Research Council
    Funding Amount
    $171,000.00
    Summary
    Molecular toxinology of Australia's lesser known venomous snakes. This proposal represents a tremendous opportunity for biodiscovery from venomous snakes. This will be achieved through the researchers' unique approach of investigating previously unmapped venom systems for divergent, bioactive proteins. An understanding of venomous animal protein evolution great potential in drug discovery and other commercial applications. This project will provide Australian graduate and post-graduate stude .... Molecular toxinology of Australia's lesser known venomous snakes. This proposal represents a tremendous opportunity for biodiscovery from venomous snakes. This will be achieved through the researchers' unique approach of investigating previously unmapped venom systems for divergent, bioactive proteins. An understanding of venomous animal protein evolution great potential in drug discovery and other commercial applications. This project will provide Australian graduate and post-graduate students with finely tuned skills in cutting edge methodological techniques and a fluent understanding of molecular evolution, preparing them to be internationally competitive scientists.
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    Funded Activity

    Discovery Projects - Grant ID: DP0880404

    Funder
    Australian Research Council
    Funding Amount
    $671,888.00
    Summary
    Dynamics and correlations of many-body systems. The proposed program will greatly enhance Australian science through linking innovative theoretical techniques with the successful ongoing Australian experimental program in atom lasers, atom chip interferometry and ultra-cold fermions. Pioneering theoretical methods in quantum phase-space are internationally recognized, and will be extended into new areas relevant to Australia. These have fundamental significance to fields ranging from nanotec .... Dynamics and correlations of many-body systems. The proposed program will greatly enhance Australian science through linking innovative theoretical techniques with the successful ongoing Australian experimental program in atom lasers, atom chip interferometry and ultra-cold fermions. Pioneering theoretical methods in quantum phase-space are internationally recognized, and will be extended into new areas relevant to Australia. These have fundamental significance to fields ranging from nanotechnology to astrophysics, as well as providing a route to improved atomic clocks and other instruments. Combining these theoretical and computational methods from the physical sciences with biology and genetics will provide future cross-disciplinary benefits to Australian biomedical science.
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    Showing 1-6 of 6 Funded Activites

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