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Research Topic : EXTRACELLULAR MATRIX
Scheme : Project Grants
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  • Funded Activity

    Defective Cell Migration As A Mechanism Of Dysregulated Asthmatic Airway Repair

    Funder
    National Health and Medical Research Council
    Funding Amount
    $616,712.00
    Summary
    Injury of the airway epithelium (cells lining the airways) is normally repaired by a process involving the deposition of specific proteins by the airway epithelial cells, promoting them to attach and migrate to cover the injury. These cells appear to be abnormal in asthmatics, in that they fail to repair. By studying specimens from healthy, allergic and asthmatic children we will determine the factors that influence the ability of these cells to repond to an injury in a normal manner specificall .... Injury of the airway epithelium (cells lining the airways) is normally repaired by a process involving the deposition of specific proteins by the airway epithelial cells, promoting them to attach and migrate to cover the injury. These cells appear to be abnormal in asthmatics, in that they fail to repair. By studying specimens from healthy, allergic and asthmatic children we will determine the factors that influence the ability of these cells to repond to an injury in a normal manner specifically through their ability to migrate.
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    Funded Activity

    Bridging The Gap Between Cartilage Biology And Osteoarthritis Risk Prediction

    Funder
    National Health and Medical Research Council
    Funding Amount
    $512,256.00
    Summary
    Osteoarthritis is a painful and debilitating cartilage disease affecting just under 1 in 10 Australians and costs the Australian economy roughly $12 billion per year. This project will develop computational models of cartilage with the ability to incorporate genetic and environmental risk factors into a predictive model of cartilage disease.
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    Funded Activity

    The Role Of Force-sensing Ion Channels In Melanoma Migration

    Funder
    National Health and Medical Research Council
    Funding Amount
    $553,848.00
    Summary
    Metastasis of melanoma cells away from the primary tumour site carries a very poor patient prognosis.This research aims to characterise a novel signalling pathway that can regulate the migration (movement) of melanoma cells. This signalling pathway depends on force-sensing platforms that can rapidly convert physical inputs from the environment into an electrical signal within the cell. We are working to understand how these force-sensors function.
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    Funded Activity

    Evaluation Of Tissue Engineered Decellularised Biphasic Constructs For Periodontal Regeneration

    Funder
    National Health and Medical Research Council
    Funding Amount
    $578,031.00
    Summary
    This project aims to regenerate the tissues lost as a result of gum disease. This will be done using scaffolds that replicate the complex structure of periodontal tissues.The scaffolds will be loaded with cells and allowed to mature before the cellular component is removed. The resultant construct is then inserted back into periodontal defects where it will be repopulated by host cells. This approach has the potential to be developed into an off-the-shelf clinical treatment.
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    Funded Activity

    Improving Cancer Diagnostic Imaging And Drug Delivery By Breaking Down Extracellular Matrix Barriers

    Funder
    National Health and Medical Research Council
    Funding Amount
    $748,152.00
    Summary
    Solid tumours are stiffer than normal tissues. This stiffness is caused by over-production of non-cellular components known as extracellular matrix (ECM). ECM creates a barrier that restricts drug access in tumours. New methods to overcome tumour stiffness are crucial to improve drug delivery. We will study the use of a new compound to degrade tumour ECM to improve anti-cancer drug delivery. Our compound will be useful in treatment-resistant solid tumours such as breast and liver cancers.
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    Funded Activity

    Glycomic Control Of Cartilage Extra Cellular Matrix Turnover

    Funder
    National Health and Medical Research Council
    Funding Amount
    $706,289.00
    Summary
    Small, naturally occurring glycomic molecules control cartilage matrix turnover. We have synthesised small synthetic analogues of the naturally occurring molecules, and demonstrated their ability to regulate signalling pathways. This project will test and mathematical model the synthetic molecules in cell and tissue assays to define their properties and tissue effects, and assess their suitability as a drug delivery system. The results will be an important step towards designing new ways of trea .... Small, naturally occurring glycomic molecules control cartilage matrix turnover. We have synthesised small synthetic analogues of the naturally occurring molecules, and demonstrated their ability to regulate signalling pathways. This project will test and mathematical model the synthetic molecules in cell and tissue assays to define their properties and tissue effects, and assess their suitability as a drug delivery system. The results will be an important step towards designing new ways of treating osteoarthritis and other cartilage diseases.
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    Funded Activity

    Mechanoelectrical Transduction In Chondrocytes

    Funder
    National Health and Medical Research Council
    Funding Amount
    $441,114.00
    Summary
    The cells that produce and maintain our cartilage, known as chondrocytes, do so by sensing changes in the mechanical environment, but precisely how chondrocytes detect these changes is not known. We are investigating the role of ion channels that are opened in direct response to mechanical movements within the cartilage.This project plans to identify the specific molecules that are participating in this process and to determine if they are therapeutic targets for treatment of osteoarthritis
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    Funded Activity

    Using Mechanotransduction To Regulate Stem Cell Fate In Heart Tissue

    Funder
    National Health and Medical Research Council
    Funding Amount
    $385,983.00
    Summary
    Emerging new interdisciplinary field, mechanotransduction, combines efforts from biology, engineering, and material science to understand how cells sense/feel their surroundings mechanically e.g. soft vs. stiff and transfer these signals to biochemical signalling to initiate cellular changes. This project aims to develop high-throughput hydrogel platform with stiffness patterns to study cellular mechanosensing mechanism and to generate better heart muscle cells for heart stem cell therapy.
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    Funded Activity

    Epithelial-Mesenchymal Cell Communication; Towards New Therapeutic Targets For Fibrosis

    Funder
    National Health and Medical Research Council
    Funding Amount
    $794,596.00
    Summary
    Fibrosis causes disability and death with millions of people affected each year. Current treatments are limited and there is a need to better understand the changes that drive fibrosis. In this study we will investigate how cells communicate to initiate and drive fibrosis. Using readily available drugs we will test new ways to alter cell communication to stop the disease and thus, develop a common and effective therapy that will change the future for people living with fibrosis.
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    Funded Activity

    SPARC Regulates Tendon Homeostasis

    Funder
    National Health and Medical Research Council
    Funding Amount
    $512,556.00
    Summary
    Tendon injury is one of the most common health problems worldwide and affects almost everyone at some point in particular the aging populaiton. However, the current treatments are not well defined. We identifed an extracellular molecules SPARC that potentially plays an important role in tendon function. The aim of this study is to examine the role of SPARC in tendon development, homestasis and degenerative using transgenic mice and gene therapy. We predict that SPARC will have therapeutic value .... Tendon injury is one of the most common health problems worldwide and affects almost everyone at some point in particular the aging populaiton. However, the current treatments are not well defined. We identifed an extracellular molecules SPARC that potentially plays an important role in tendon function. The aim of this study is to examine the role of SPARC in tendon development, homestasis and degenerative using transgenic mice and gene therapy. We predict that SPARC will have therapeutic value for the treatment of tendinopathy.
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    Showing 1-10 of 31 Funded Activites

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