Circuit Breaker: Investigating The Regulatory Circuits Controlling Expression Of Drug Efflux Pumps In The Nosocomial Pathogen Acinetobacter Baumannii
Funder
National Health and Medical Research Council
Funding Amount
$515,244.00
Summary
Hospital-acquired infections caused by drug resistant pathogenic bacteria cost billions of dollars and increase patient pain and morbidity. This research will study the genes controlling multidrug efflux pumps in a major hospital-acquired bacterial pathogen, Acinetobacter baumannii. These efflux pumps make the bacteria resistant to antimicrobials by pumping them out of the cell. The results will allow us to better track drug resistant strains and will inform treatment options.
Antibiotic Tolerance And Small RNA Networks In Staphylococcus Aureus
Funder
National Health and Medical Research Council
Funding Amount
$521,559.00
Summary
Treatment of MRSA is restricted to last line antibiotics and treatment failure is associated with an intermediate tolerance to vancomycin. Regulatory molecules termed small RNA mediate responses to antibiotic challenge but their functions are poorly understood. This proposal will profile sRNA function to understand how they adapt S. aureus to antibiotic challenge. A molecular understanding of vancomycin-tolerance will inform development of diagnostics and treatment strategies.
Essential Gene Regulation In Multi-drug Resistant Golden Staph: A New Path Towards Control
Funder
National Health and Medical Research Council
Funding Amount
$784,452.00
Summary
New antibiotics effective against Golden Staph are urgently needed. This project will investigate a new approach to weaken Golden Staph defences with the potential to make existing antibiotics more effective at killing these bacteria.
Understanding The Role Of The Essential Regulator WalKR In Staphylococcus Aureus
Funder
National Health and Medical Research Council
Funding Amount
$555,239.00
Summary
Staphylococcus aureus is one of the most common human bacterial pathogens. This project aims to characterise an important global control system in S. aureus, and determine if chemical inhibitors of this control system could be used to treat S. aureus disease in the future.
Combating E. Coli Diarrhoea By Disarming Bacterial Virulence
Funder
National Health and Medical Research Council
Funding Amount
$674,737.00
Summary
E. coli causes severe and persistent diarrhoea which affects the health of millions of people worldwide. Although antibiotics may alleviate E. coli diarrhoea, these bacteria are becoming resistant to most drugs. In this study, we will use state-of-the-art technology to discover novel types of drug that treat and prevent infection with E. coli, without harming the beneficial bacteria in the gut.
Global Regulatory Networks That Control Virulence In Clostridium Perfringens
Funder
National Health and Medical Research Council
Funding Amount
$531,557.00
Summary
This research focuses on the bacterium that is responsible for clostridial myonecrosis, or gas gangrene, an often fatal human infection. The objective is to determine how this bacterium controls the production of the various factors that are required to cause disease. The aims will be achieved by the integrated application of the latest techniques in microbiology and molecular biology and will result in a significant advancement in our knowledge of this complex regulatory process.
Regulation Of Virulence Gene Expression In Clostridium Perfringens
Funder
National Health and Medical Research Council
Funding Amount
$585,497.00
Summary
This project involves the analysis of a bacterium that causes gas gangrene. We have shown that a previously unknown regulatory protein modulates the ability of this bacterium to cause disease. We aim to determine what turns on the protein's activity, how it controls the factors that contribute towards disease and what specific factors are involved in disease. The major outcome will be a better understanding of the mechanisms of virulence gene regulation, which will lead to improved methods of di ....This project involves the analysis of a bacterium that causes gas gangrene. We have shown that a previously unknown regulatory protein modulates the ability of this bacterium to cause disease. We aim to determine what turns on the protein's activity, how it controls the factors that contribute towards disease and what specific factors are involved in disease. The major outcome will be a better understanding of the mechanisms of virulence gene regulation, which will lead to improved methods of disease control.Read moreRead less
Structural Studies Of Bacterial Pore-forming Protein Toxins
Funder
National Health and Medical Research Council
Funding Amount
$509,017.00
Summary
In this project the three-dimensional structures of proteins that form pores in membrane cell walls will be determined. These proteins are bacterial toxins and knowledge of their structure may prove useful in the design of new antibiotics. This project will focus on a class of toxins called the cholesterol-dependent cytolysins which are released by Gram positive bacteria such as Clostridia and Streptococcus and which cause a variety of nasty infectious diseases such as gas gangrene, pneumonia an ....In this project the three-dimensional structures of proteins that form pores in membrane cell walls will be determined. These proteins are bacterial toxins and knowledge of their structure may prove useful in the design of new antibiotics. This project will focus on a class of toxins called the cholesterol-dependent cytolysins which are released by Gram positive bacteria such as Clostridia and Streptococcus and which cause a variety of nasty infectious diseases such as gas gangrene, pneumonia and meningitis. The three-dimensional structures will be elucidated using X-ray crystallography. Protein crystallography is the study of three-dimensional shapes of proteins at near atomic resolution. In this method proteins are made to form crystals. X-ray beams are then shone on the crystals causing the X-rays to scatter in a pattern which is characteristic of the protein's three-dimensional shape. Knowledge of the structure of proteins is necessary for the complete understanding of their biological activity and is also very useful for the rational design of new drugs that may alter their activity.Read moreRead less
Optimisation Of Salmonella Genotyping And Epidemiological Data Analysis For Detection And Investigation Of Outbreaks
Funder
National Health and Medical Research Council
Funding Amount
$508,051.00
Summary
Bacteria known as salmonella are the most important causes of food-borne diarrhoeal disease. They occasionally cause potentially fatal septicaemia, especially in young children and people with underlying disease. We estimate that more than 80,000 cases of salmonella infection occur in Australia, each year, at a cost to the community of $37 million. Salmonella are divided into more than 2000 different types, but one - called Typhimurium - causes about 40% of infections and a few others cause most ....Bacteria known as salmonella are the most important causes of food-borne diarrhoeal disease. They occasionally cause potentially fatal septicaemia, especially in young children and people with underlying disease. We estimate that more than 80,000 cases of salmonella infection occur in Australia, each year, at a cost to the community of $37 million. Salmonella are divided into more than 2000 different types, but one - called Typhimurium - causes about 40% of infections and a few others cause most of the rest. This means that is difficult to distinguish cases of salmonella infection that have originated from one source (an outbreak) from cases that have originated from another. Without this information, is it hard to track the source, which is usually inadequately cooked meat or chicken another food that has been contaminated with salmonella after preparation. There are several existing methods for fingerprinting salmonella, but they are quite slow or do not distinguish different strains well enough to identify outbreaks quickly. This means that sources of contaminated food are often not identified in time to prevent more cases occurring. We aim to develop a faster and more discriminatory system for fingerprinting salmonella, based on novel technology that can identify many small genetic sequences that occur in different combinations in different strains. As well, we will develop electronic scanning tools that will link the fingerprints of the salmonella strains with information about the people infected with them, such as the types of food and places where they have eaten, to identify patterns or clusters that indicate a common source. The more rapidly this can be done the sooner the source of contaminated food can be found and eliminated and additional cases can be prevented. This has important implications for public health - it will increase food safety and reduce illness and economic loss.Read moreRead less