Molecular Mechanisms In The Regulation Of Allergy And Inflammation
Funder
National Health and Medical Research Council
Funding Amount
$4,977,215.00
Summary
To understand the fundamental cellular and molecular processes that underpin the development of allergic disorders, viral infections of the respiratory tract and chronic inflammatory diseases of the lung. There is particular interest in the role of immune cells, such T cells and granulocytes in these disorders, and in the processes that control their function. Understanding these processes will provide new insights into the immune system's role in health and disease, and help develop better ther ....To understand the fundamental cellular and molecular processes that underpin the development of allergic disorders, viral infections of the respiratory tract and chronic inflammatory diseases of the lung. There is particular interest in the role of immune cells, such T cells and granulocytes in these disorders, and in the processes that control their function. Understanding these processes will provide new insights into the immune system's role in health and disease, and help develop better therapies to treat inflammatory disorders.Read moreRead less
Immunodominance And Protective Immunity In The Context Of A Complex Host-pathogen System.
Funder
National Health and Medical Research Council
Funding Amount
$899,832.00
Summary
In experimental infection models with simple organisms, pathogen-specific immune responses recognize only a small fraction of potential epitopes encoded by the genome. This phenomenon is termed immunodominance. We propose the first comprehensive study of immunodominance in humans in response to a complex pathogen, the Plasmodium parasite that causes malaria. This will provide valuable new knowledge of host-pathogen immunity and facilitate rational vaccine design.
I am an immunologist investigating the interactions between the liver and the immune system in order to understand the tolerogenic property of this organ.
In type 1 diabetes the body becomes deficient in insulin production from pancreatic b cells because the immune system mistakenly attacks and destroys b cells as if they were an invading infection. Recurrence of autoimmune destruction of b cells also occurs following transplantation of whole pancreas or islet cells and may occur in the future when other engineered insulin producing cells are transplanted. The focus of this program is to better understand how b cells are killed by the immune syste ....In type 1 diabetes the body becomes deficient in insulin production from pancreatic b cells because the immune system mistakenly attacks and destroys b cells as if they were an invading infection. Recurrence of autoimmune destruction of b cells also occurs following transplantation of whole pancreas or islet cells and may occur in the future when other engineered insulin producing cells are transplanted. The focus of this program is to better understand how b cells are killed by the immune system and to test ways of protecting beta cells from these mechanisms. Because of the inaccessibility of the pancreas to study (particularly biopsy) in humans with diabetes, much of the proposed work will be carried out in b cells derived from non-obese diabetic (NOD) mice, the best available mouse model of type 1 diabetes. It is clear from the literature that a molecule called perforin found in cytoxic T lymphocytes (CTL) is a major, if not the major, mechanism the immune system uses against b cells. For this reason we will try to better understand the interaction between b cells and perforin and ultimately design ways of them from perforin-mediated cell death. It is equally clear that there are other mechanisms besides perforin that can cause b cell death and the program will also address discovery of these mechanisms and new ways to block them. Beta cells in NOD mice will be protected from perforin or other mechanisms by the addition of protective genes or removal of harmful genes using transgenic knockout technology. Addition or removal of genes involved in cell death can be done systematically and each protocol tested using NOD mouse model. The process of cell death that b cell undergo in type 1 diabetes is called apoptosis. Apoptosis is a general mechanism by which cells of all types die. Experts in the biology of apoptosis and perforin are important members of the program, providing the opportunity to translate the latest advances in cell death research to diabetes. This research addresses several of the specific research areas of interest to JDRF. It focuses on the prevention of b cell death in individuals with type 1 diabetes receiving islet transplants. It may be applicable in the future to protection of stem or precursor cells that have been differentiated into b cells or even to devising strategies to prevent the development of diabetes.Read moreRead less
A Vaccine To Break Tolerance To Cervical Carcinoma Oncoprotein
Funder
National Health and Medical Research Council
Funding Amount
$212,036.00
Summary
Evidence that cervical cancer is caused by Human Papillomavirus is compelling. Once the virus enters the cells of the cervix, it produces a protein named E7 which functions to make the cells cancerous. Cervical cancer is the fifth commonest cause of death in women in Australia, and the major killer of women world-wide. The E7 protein is the ideal target for a vaccine since it occurs only in the tumour cells. Cervical tumour cells are killed by specialised immune system cells termed CTLs which re ....Evidence that cervical cancer is caused by Human Papillomavirus is compelling. Once the virus enters the cells of the cervix, it produces a protein named E7 which functions to make the cells cancerous. Cervical cancer is the fifth commonest cause of death in women in Australia, and the major killer of women world-wide. The E7 protein is the ideal target for a vaccine since it occurs only in the tumour cells. Cervical tumour cells are killed by specialised immune system cells termed CTLs which recognised fragments of the E7 molecule on their surface, bound to 'self' MHC molecules. Our laboratory has developed several mouse models of human cervical cancer, and has worked out which parts of the E7 protein are important in developing an appropriate immune response to control tumour growth. However a major finding is that the E7 molecules render the CTL cell population incapable of making an appropriate response to kill the tumour cells. We believe that this process, termed 'tolerance induction' can be overcome by using a novel approach as follows. Specialised antigen presenting cells , termed 'dendritic cells' (DCs) will be isolated and made to produce E7 protein by infecting them with a geneticlly modified virus (Adenovirus) which expresses E7 and specialised DC activators molecules, but is incapable of itself replicating. The dendritic cells will be re-introduced into the host as a vaccine, and will present the E7 to the immune system in such a way that tolerance will be broken. In other words the vaccine recipient will again be able to make a CTL immune response to the E7 protein in their tumours, and so be able to kill the tumour cells.Read moreRead less
The Impact Of Obesity On Immunological Tolerance Of The Fetus
Funder
National Health and Medical Research Council
Funding Amount
$378,366.00
Summary
Obesity increases the risk of miscarriage during pregnancy. The reasons for this are not known, although it is thought that abnormal levels of hormones and metabolic parameters are a contributing factor. We hypothesise that the immune system plays a role. In this project we will determine if obesity upsets the fine-tuning of the immune system that is crucial for successful pregnancy. Understanding the reason behind adverse pregnancy outcome will allow appropriate management of maternal obesity.
The Molecular Determinants Of Immunological Tolerance
Funder
National Health and Medical Research Council
Funding Amount
$473,477.00
Summary
Autoimmune diseases, such as type I diabetes and multiple sclerosis, are debilitating disorders that impose a massive toll on wellbeing in Australia and worldwide. This fellowship will support research aimed at determining the genes and mechanisms that control autoimmunity. New technologies will be brought to bear to track immune cells throughout their development, maturity and malfunction in disease settings. We aim to uncover new therapeutic targets to prevent and reverse autoimmune disease.