Improved Ex-vivo Culture Of Keratinocytes For Clinical Applications
Funder
National Health and Medical Research Council
Funding Amount
$275,203.00
Summary
Skin cells grown for clinical applications currently require animal-derived cells and-or non-defined products for their expansion in the laboratory; these reagents can potentially infect patients who receive these therapies. This project will identify the essential components provided by these reagents and develop a fully synthetic and defined culture system. This improvement will provide safer, cost-effective grafts and cell-based therapies that will benefit patients suffering burns and wounds.
Complement Regulation: Protection Against Xenograft Rejection, Ischaemia And Reperfusion Injury
Funder
National Health and Medical Research Council
Funding Amount
$256,980.00
Summary
Organ transplantation is an accepted solution to treat kidney, heart, lung and liver failure, and is being keenly sought for diabetes treatment. With refined surgical techniques and better controlled immunosuppression, the expected graft survival times are in years. However, the number of individuals who would benefit from transplants exceeds the supply of donor organs, and this number will increase as the benefits of having a transplanted organ increase. There is an active program to research t ....Organ transplantation is an accepted solution to treat kidney, heart, lung and liver failure, and is being keenly sought for diabetes treatment. With refined surgical techniques and better controlled immunosuppression, the expected graft survival times are in years. However, the number of individuals who would benefit from transplants exceeds the supply of donor organs, and this number will increase as the benefits of having a transplanted organ increase. There is an active program to research the possibility of using animal organs (xenografts). This project addresses one of the many issues arising from xenograft transplantation - the rapid activation of the body's complement system, which without treatment results in the very rapid rejection of the graft. In principle this problem can be solved by the development of transgenic donor animals that carry one or more human genes that produce a complement regulating protein, such as CD46 (MCP) or CD55 (DAF). In practice, however, to get successful longterm organ function still requires the selection of the optimal complement regulator or combination of regulators and an understanding of how they function. This research work analyses how CD46 and CD55 function to protect tissues from complement activation, and will result in selection of appropriate transgenes for xenografting. Another aspect of transplantation that is addressed in this proposal is the damage that a graft suffers when the blood supply is temporarily removed during organ harvest and the grafting procedure. This is similar to what occurs during a heart attack when a portion of heart muscle is starved of blood: as the blood flows again through the tissue there is a powerful reaction, again involving complement activation, which is known as reperfusion injury. We have found that perfusing a graft with a soluble form of the CD46 complement regulator provides protection against this damage. The research will measure and optimise this protection.Read moreRead less
A Mechanotransduction Apparatus To Coordinate Epithelial Collective Cell Migration.
Funder
National Health and Medical Research Council
Funding Amount
$994,596.00
Summary
Epithelial cells migrate as physically coherent collective groups, which is necessary for normal development and is disrupted as cancers progress to become invasive and spread. Collective migration requires communication so that the behaviour of individual cells is properly coordinated. In this project we investigate how the transmission of physical force between cells allows them to communicate; and test how its disruption contributes to cancer invasion.
Investigating The Consequences Of Dysregulated Lipogenesis In Cancer
Funder
National Health and Medical Research Council
Funding Amount
$600,647.00
Summary
Reprogramming of cellular metabolism is a hallmark of cancer. As such, there has been growing interest in developing strategies to exploit metabolism for therapeutic gain. Our ability to do this is dependent on a thorough understanding of the mechanisms by which dysregulation of cellular metabolism contributes to tumour progression. In this project, we seek to the investigate the fundamental mechanisms by which aberrant activation of lipid metabolism contributes to the tumourigenic process.
Function Of The Lysophospholipid Receptor Family In Neuronal Stem Cells And Their Progenitors.
Funder
National Health and Medical Research Council
Funding Amount
$380,723.00
Summary
Stem cells have the potential to give rise to a vast array of differentiated cells. Neuronal stem cells (NSC) can differentiate into progenitor cells which can themselves differentiate into cells of the nervous system: neurons and macroglial cells (astrocytes, oligodendrocytes, Schwann cells). This in turn can assist in the treatment of degenerative diseases such as multiple sclerosis, Parkinson's disease, motoneuron desease etc. Our project aims to study the effects on NSC and their progenitor ....Stem cells have the potential to give rise to a vast array of differentiated cells. Neuronal stem cells (NSC) can differentiate into progenitor cells which can themselves differentiate into cells of the nervous system: neurons and macroglial cells (astrocytes, oligodendrocytes, Schwann cells). This in turn can assist in the treatment of degenerative diseases such as multiple sclerosis, Parkinson's disease, motoneuron desease etc. Our project aims to study the effects on NSC and their progenitor cells of the lysophospholipids lysophosphatidic acid (LPA) and sphingosine-1-phosphate (S1P), bioactive molecules known to play an essential role in the nervous system during development and inflammation. Our project aims to understand the mechanisms of action of these molecules in NSC maintenance, proliferation, differentiation and migration. By understanding how these molecules are able to regulate NSC biology will provide new avenues in the development of tools necessary for stem cell therapy.Read moreRead less