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Research Topic : primary
Field of Research : Genome Structure
Australian State/Territory : NSW
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Genome Structure (5)
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  • Funded Activity

    Linkage Projects - Grant ID: LP0347682

    Funder
    Australian Research Council
    Funding Amount
    $146,294.00
    Summary
    Integrons in Xanthomonas pathovars: Do they have a role in plant pathogenicity? Bacteria in the genus Xanthomonas cause serious diseases of plants, identification being based on the plant species from which they were originally recovered. Xanthomonads contain integrons, genetic elements capable of acquiring and expressing diverse genes. In other bacterial groups, the gene content of integrons varies significantly between strains of the same species, and in many cases these genes code for cell su .... Integrons in Xanthomonas pathovars: Do they have a role in plant pathogenicity? Bacteria in the genus Xanthomonas cause serious diseases of plants, identification being based on the plant species from which they were originally recovered. Xanthomonads contain integrons, genetic elements capable of acquiring and expressing diverse genes. In other bacterial groups, the gene content of integrons varies significantly between strains of the same species, and in many cases these genes code for cell surface proteins. These characteristics are precisely those we might expect to be responsible for interactions between plants and bacteria. This project aims to examine a large collection of xanthomonads for integrons, and determine whether particular integron gene contents are associated with host-pathogen specificity.
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    Funded Activity

    Linkage Infrastructure, Equipment And Facilities - Grant ID: LE0668507

    Funder
    Australian Research Council
    Funding Amount
    $260,000.00
    Summary
    Real time PCR and nanoparticle diagnostic facilities for high-throughput quantitative analysis of genomic structure and gene expression. Modern molecular tools have lead to an explosion in genome projects and unification of all areas of biology. The most basic need for such research is access to improving technologies for detecting DNA fingerprints that distinguish genetically-diverse genes, and determining which genes are "switched on" or 'off' in various situations. Real time PCR technology, .... Real time PCR and nanoparticle diagnostic facilities for high-throughput quantitative analysis of genomic structure and gene expression. Modern molecular tools have lead to an explosion in genome projects and unification of all areas of biology. The most basic need for such research is access to improving technologies for detecting DNA fingerprints that distinguish genetically-diverse genes, and determining which genes are "switched on" or 'off' in various situations. Real time PCR technology, pioneered by The University of Queensland (UQ) and Southern Cross University (SCU) using ARC funding in 1996, is now the technology of choice for much of this research. This project will provide high-throughput equipment for real time PCR, and will develop complementary high-throughput "nanoparticle" DNA genotyping technologies, with applications to medicine and agriculture.
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    Funded Activity

    Discovery Projects - Grant ID: DP0989050

    Funder
    Australian Research Council
    Funding Amount
    $720,000.00
    Summary
    Regulation of Plant Development by Small RNAs. Understanding the roles of small RNAs and their pathways is a new field of research that is giving, and will continue to give profound insights into how multicellular organisms regulate gene expression at a genomic level. Research in this area has already led to RNA interference technology, by which almost any gene can be switched off, and there is considerable potential for other gene silencing and trait modification technologies to emerge. The pro .... Regulation of Plant Development by Small RNAs. Understanding the roles of small RNAs and their pathways is a new field of research that is giving, and will continue to give profound insights into how multicellular organisms regulate gene expression at a genomic level. Research in this area has already led to RNA interference technology, by which almost any gene can be switched off, and there is considerable potential for other gene silencing and trait modification technologies to emerge. The project will yield insights into fundamental biological processes which are expected to engender applications in agriculture and biotechnology. It will maintain and enhance Australia's position in this area.
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    Funded Activity

    Federation Fellowships - Grant ID: FF0776510

    Funder
    Australian Research Council
    Funding Amount
    $2,006,210.00
    Summary
    Small RNAs: what makes a plant, a plant. Understanding the roles of small RNAs and their pathways is a young field of research that is giving, and will continue to give, profound insights into how multicellular organisms regulate gene expression at a genomic level. Research in this area has already led to RNA interference technology, by which almost any gene can be switched off, and there is considerable potential for other gene silencing and trait modification technologies to emerge. The projec .... Small RNAs: what makes a plant, a plant. Understanding the roles of small RNAs and their pathways is a young field of research that is giving, and will continue to give, profound insights into how multicellular organisms regulate gene expression at a genomic level. Research in this area has already led to RNA interference technology, by which almost any gene can be switched off, and there is considerable potential for other gene silencing and trait modification technologies to emerge. The project will yield insights into fundamental biological processes which are expected to engender applications in agriculture and biotechnology. It will maintain and enhance Australia's position in this area.
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    Funded Activity

    Linkage Infrastructure, Equipment And Facilities - Grant ID: LE0452392

    Funder
    Australian Research Council
    Funding Amount
    $155,645.00
    Summary
    Australian Robotic Biobank Facility. The Australian Robotic Biobank Facility is envisaged as the national DNA extraction centre for generating archival-quality DNA. It will integrate with the existing Australian Plant DNA Bank to accelerate scientific discovery in biodiversity conservation and plant genetic improvement. The facility will augment Southern Cross University's extensive research collaborations with other Australian universities, institutions and agencies. It will provide the funda .... Australian Robotic Biobank Facility. The Australian Robotic Biobank Facility is envisaged as the national DNA extraction centre for generating archival-quality DNA. It will integrate with the existing Australian Plant DNA Bank to accelerate scientific discovery in biodiversity conservation and plant genetic improvement. The facility will augment Southern Cross University's extensive research collaborations with other Australian universities, institutions and agencies. It will provide the fundamental infrastructure to support research aimed at sustainable utilization and conservation management of Australia's genetic resources. The unique capacity to provide high quality archived DNA will be made possible by the precision instrumentation platform of the Australian Robotic Biobank Facility.
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