Linkage Infrastructure, Equipment And Facilities - Grant ID: LE160100097
Funder
Australian Research Council
Funding Amount
$675,000.00
Summary
An Automated Protein Nano-Crystallisation Facility. An automated protein nano-crystallisation facility:
The project aims to establish a high throughput protein nanocrystallisation and imaging facility for protein crystallography. Protein crystallography is an important field of biological research, however there are many proteins, such as integral membrane proteins and transient molecular complexes that are more challenging to crystallise. The facility aims to use state-of-the-art imaging and c ....An Automated Protein Nano-Crystallisation Facility. An automated protein nano-crystallisation facility:
The project aims to establish a high throughput protein nanocrystallisation and imaging facility for protein crystallography. Protein crystallography is an important field of biological research, however there are many proteins, such as integral membrane proteins and transient molecular complexes that are more challenging to crystallise. The facility aims to use state-of-the-art imaging and crystallisation techniques, including second order nonlinear imaging of chiral crystals (SONICC) imaging and lipid cubic phase approaches, to enable structural studies to be undertaken on challenging proteins. This information is often used for the rational development of therapeutics. The facility would support cutting-edge biological research In Australia.Read moreRead less
Determining Regulators Of ILC3 In Mucosal Barrier Function And Immune Homeostasis
Funder
National Health and Medical Research Council
Funding Amount
$705,209.00
Summary
Innate lymphoid cells (ILCs) are specialized cells that defend the body against invading microorganisms at the body’s surfaces, mediate pathogen clearance and tissue repair but may also drive inflammatory conditions such as allergic asthma and inflammatory bowel disease. We will investigate the molecular switches that regulate this novel cell type and potentially uncover novel molecules or pathways for therapeutic targets.
Elucidating the roles of steroid receptors in mitochondria. This project aims to elucidate the roles of newly discovered steroid receptors in the functions of mitochondria. The project will characterise their impact on cellular respiration, oxidative stress, and the induction of inflammation. By defining these processes in the healthy state and in response to common environmental challenges of infection and smoke exposure, the project will characterise the fundamental biology of entirely new pro ....Elucidating the roles of steroid receptors in mitochondria. This project aims to elucidate the roles of newly discovered steroid receptors in the functions of mitochondria. The project will characterise their impact on cellular respiration, oxidative stress, and the induction of inflammation. By defining these processes in the healthy state and in response to common environmental challenges of infection and smoke exposure, the project will characterise the fundamental biology of entirely new processes of how normal body hormones and administered steroids may function. This may eventually lead to new and more effective ways to control inflammation that will have significant benefits to mammalian health and improve health care and agriculture outcomes.Read moreRead less
Regulation Of Toxoplasma By The NLRP1 Inflammasome
Funder
National Health and Medical Research Council
Funding Amount
$623,070.00
Summary
Toxoplasmosa is an endemic pathogen worldwide, approaching 80% of the population in some areas, with a large burden of disease, particularly of immunocompromised and pregnant individuals. Our preliminary data identifies a receptor protein in immune cells that detects Toxoplasma. This can defeat the parasite, but also causes pathology for the host. The outcome of our project will work out what part of Toxoplasma is recognized by this receptor, with significance for the treatment of Toxoplasmosis.
Pattern Recognition Receptors In Inflammation And Infection
Funder
National Health and Medical Research Council
Funding Amount
$622,655.00
Summary
Innate immunity provides our first line of defence against infections, but pathogens can overcome this system. Understanding how microbes disable innate immunity can teach us how to prevent and/or treat infectious diseases. Innate immunity acts by initiating inflammation. Many important acute and chronic diseases develop when this process is dysregulated. Blocking innate immunity thus has potential to treat many diseases. This project aims to understand innate immunity in these contexts.
Excess inflammation is a major problem after injury and in many diseases. Upon injury molecules are release that act as danger signals to alert the immune system to start the repair process. However, high levels of these dangers signals can impair the final stages of healing. Understanding how to prevent the immune system being excessively stimulated by these danger signals is key to being able to dampen inflammation after injury improve the healing response.
Investigation Of The Use Of Innate And CD1-mediated Immune Responses As Biomarkers In Tuberculosis
Funder
National Health and Medical Research Council
Funding Amount
$144,836.00
Summary
Tuberculosis and other non-tuberculosis mycobacterial infections are major health problems worldwide. There are multiple challenges facing treatment and identification of active versus latent TB infections currently. This project aims to identify and characterise several aspects of the immune system which may be responsible for people developing active infections, including ones which may enable development of diagnostic tests and to monitor treatment. Such a biomarker may also help hasten new d ....Tuberculosis and other non-tuberculosis mycobacterial infections are major health problems worldwide. There are multiple challenges facing treatment and identification of active versus latent TB infections currently. This project aims to identify and characterise several aspects of the immune system which may be responsible for people developing active infections, including ones which may enable development of diagnostic tests and to monitor treatment. Such a biomarker may also help hasten new drug therapies for tuberculosis.Read moreRead less
My work focuses on cells of the immune system that act as sentinels on the lookout for invading pathogens and danger. These cells are called dendritic cells. I am particularly interested in understanding how these cells function within the bone marrow environment and how they may sense viral infection or cancerous cells within this tissue. We aim to understand their function in specific diseases including Lupus and in pre-leukemia conditions, and also in infectious and parasitic diseases.
Sterile inflammation as a determinant of adaptive immunity. When we injure ourselves, the site of injury becomes inflamed, which may help healing or cause trouble. This project aims to understand how the normal response to injury is controlled and why the process may sometimes go wrong.
The Identification And Characterisation Of A New DNA Receptor
Funder
National Health and Medical Research Council
Funding Amount
$656,498.00
Summary
The immune system has evolved to fight disease-causing microbes. First, it has to recognize that an infectious agent has invaded. To do this we have developed many probes (receptors) that sense microbial products. Detecting microbial DNA is a critical alarm bell. However, distinguishing pathogen DNA from our own DNA is difficult because both look alike. We have identified a new receptor that helps us identify bacterial DNA and alerts the immune system to the imminent danger.