Sympathetic Nervous System Inhibition For The Treatment Of Diabetic Nephropathy
Funder
National Health and Medical Research Council
Funding Amount
$455,365.00
Summary
One of the commonest consequences of diabetes is the development of renal impairment, in the worst case scenario resulting in renal failure reuqiring renal replacement therapy. We aim to test a novel therapeutic strategy based on inhibition of the sympathetic nervous system to halt progression of renal failure and to improve outcomes in patients with this condition.
Understanding The Mechanistic Basis Of Microalbuminuria In Diabetic Nephropathy
Funder
National Health and Medical Research Council
Funding Amount
$613,757.00
Summary
The appearance of small amounts of albumin in the urine (microalbuminuria) in people with diabetes is a marker of progressive kidney disease, while microalbuminuria in the general population is a major risk factor for cardiovascular disease. The reason why microalbuminuria develops is poorly understood. This project will investigate dysfunction of kidney tubular cells as the mechanistic basis of microalbuminuria. If proven, this will provide a new link between kidney and cardiovascular disease.
Molecular Mechanisms Linking Proteinuria And Sodium Retention
Funder
National Health and Medical Research Council
Funding Amount
$211,527.00
Summary
The clinical association between protein loss in the urine and retention of salt, resulting in high blood pressure and progressive decline in kidney function, is well known. Under normal conditions, the kidneys filter 180 litres of water and reabsorb 1.7 kg of salt per day, a function which is principally performed by the kidney tubules in the kidney. Similarly the kidney tubule cells reabsorb and break down up to 3 grams of albumin per day. In the past, it has been considered that excessive pro ....The clinical association between protein loss in the urine and retention of salt, resulting in high blood pressure and progressive decline in kidney function, is well known. Under normal conditions, the kidneys filter 180 litres of water and reabsorb 1.7 kg of salt per day, a function which is principally performed by the kidney tubules in the kidney. Similarly the kidney tubule cells reabsorb and break down up to 3 grams of albumin per day. In the past, it has been considered that excessive protein loss in the urine is primarily due to problems in the filtering units of the kidneys, rather than due to abnormalities in the reabsorption of protein in the kidney tubules. However, we consider that common abnormalities in the processes within the kidney tubules that regulate both the reabsorption of salt and the excretion of acid may result in concomitant high blood pressure and increased protein loss in the kidney. Thus the overall aim of the project is to investigate the interrelationship between protein reabsorption and catabolism and Na+ reabsorption in the human kidney tubule. The project uses the combined methods of cultured human kidney tubules, biochemical and molecular biology techniques which are unavailable in other laboratories in Australia (and internationally). This project will comprehensively characterise the mechanisms of protein uptake and salt reabsorption in human kidney tubule cells when exposed to both normal and high concentrations of protein. The exact nature of the interaction of protein uptake with salt reabsorption and hence high blood pressure will be determined. As both hypertension and persistent proteinuria are the most important predictors of tubulointerstitial pathology and progressive decline in renal function in almost all renal disease, the understanding of the precise interaction between these two factors is essential in the design of renoprotective therapies.Read moreRead less
Role Of The Lysosomal Protein SCARB2 In Kidney Disease
Funder
National Health and Medical Research Council
Funding Amount
$475,658.00
Summary
Loss of protein in the urine is one of the most important things that happens before the kidneys fail. Losing protein seems to damage the kidneys, but we are still not sure how it happens in most people. We are studying the 'waste management system' of cells, that enables them to get rid of proteins that are no longer required. We have some evidence that this system is abnormal in inherited proteinuria and now want to find out if this is also a problem in more common diseases.