Interactions Between H5N1 And The Respiratory Epithelium
Funder
National Health and Medical Research Council
Funding Amount
$623,065.00
Summary
This project examines the hypothesis that the severity of H5N1 infection is due to activation of signalling pathways in the lung not activated by human influenza and leads to fluid accumulation in the lungs death of respiratory cells. This study will improve our understanding of influenza infection and identify targets for treatment of H5N1.
Physiological Function Of Nedd4-2 In Regulating The Epithelial Sodium Channel And Cystic Fibrosis Transmembrane Conductance Regulator
Funder
National Health and Medical Research Council
Funding Amount
$949,572.00
Summary
Optimal transport of sodium and chloride ions is essential for the maintenance of electrolyte balance, blood volume, blood pressure and lung function. We are studying the control of a key sodium channel (the epithelial sodium channel) and a key chloride channel (cystic fibrosis transmembrane conductance regulator) by an enzyme called Nedd4-2. This project will enable us to understand how Nedd4-2 regulates these two ion channels and to study the pathological consequences of the loss of Nedd4-2.
Regulation Of The Activity And The Surface Expression Of Sodium Channels
Funder
National Health and Medical Research Council
Funding Amount
$466,980.00
Summary
The regulation of transport of salt into and out of the body is essential for the maintenance of blood pressure, and for the maintenance of the correct amount of fluid in the respiratory passages and gut. A critical component of the mechanism by which the body transports salt are sodium channels. Overactivity of these channels leads to increased blood pressure and clogging of the gut and the bronchi due to thick and sticky secretions. Reduced activity leads to abnormally low blood pressure, as w ....The regulation of transport of salt into and out of the body is essential for the maintenance of blood pressure, and for the maintenance of the correct amount of fluid in the respiratory passages and gut. A critical component of the mechanism by which the body transports salt are sodium channels. Overactivity of these channels leads to increased blood pressure and clogging of the gut and the bronchi due to thick and sticky secretions. Reduced activity leads to abnormally low blood pressure, as well as to accumulation of fluid in the lungs such as occurs in influenza and in altitude sickness. The present project will examine the mechanisms by which sodium channels are regulated. It will particularly focus on the mechanisms by which sodium channels are switched off when the salt content of cells is too high.Read moreRead less
Interactions Between Systems That Control Sodium Channels In Renal Epithelia
Funder
National Health and Medical Research Council
Funding Amount
$227,036.00
Summary
The transport of sodium ions by the kidney, gut and lungs not only regulates blood pressure, it also regulates the amount of fluid in the gut and in the lungs. One of the most important proteins that underlie the transport of sodium in these tissues is the so-called epithelial sodium channel. The activity of these epithelial sodium channels is regulated by a wide variety of systems. Some of these regulatory systems act in response to changes in the body's requirements for sodium transport. Other ....The transport of sodium ions by the kidney, gut and lungs not only regulates blood pressure, it also regulates the amount of fluid in the gut and in the lungs. One of the most important proteins that underlie the transport of sodium in these tissues is the so-called epithelial sodium channel. The activity of these epithelial sodium channels is regulated by a wide variety of systems. Some of these regulatory systems act in response to changes in the body's requirements for sodium transport. Others act in response to changes in capacity of cells in which the sodium channels are found to continue transporting sodium. In this project we will study the mechanisms that regulate the activity of the epithelial sodium channels, and in particular, how these mechanisms interact so as to maintain a level of sodium channel activity that is appropriate to both the needs of the organism and to the needs of the sodium transporting cells. The outcomes of this project will be improved understanding of the function of the kidney, gut and lungs in both health and disease. It may also lead to novel drug targets for treatment of major diseases in which the activity of sodium channels is abnormal. These disease include hypertension, cystic fibrosis, pulmonary oedema and influenza.Read moreRead less
Regulation Of The Epithelial Sodium Channel By Cytosolic Chloride And Pro-inflammatory Cytokines
Funder
National Health and Medical Research Council
Funding Amount
$219,750.00
Summary
The regulation of sodium transport by the epithelial sodium channel is essential for the maintenance of blood pressure and the correct amount of fluid in the respiratory tract and gut. Hyperactivity of the sodium channels leads to increased blood pressure and clogging of the gut and bronchi due to dehydration of the surface fluid. Reductions in the activity of the sodium channels lead to abnormally low blood pressure and the accumulation of fluid in the lungs such as occurs in influenza, high al ....The regulation of sodium transport by the epithelial sodium channel is essential for the maintenance of blood pressure and the correct amount of fluid in the respiratory tract and gut. Hyperactivity of the sodium channels leads to increased blood pressure and clogging of the gut and bronchi due to dehydration of the surface fluid. Reductions in the activity of the sodium channels lead to abnormally low blood pressure and the accumulation of fluid in the lungs such as occurs in influenza, high altitude pulmonary oedema and in cardiogenic pulmonary oedema. The present project will examine the mechanisms by which sodium channels are regulated. It will focus on the mechanisms by which cytosolic chloride and inflammatory mediators regulate the activity of the channels.Read moreRead less
This work will analyse how cells, the building blocks of tissues, are organized together to form functioning organs. It focuses on the adhesion molecules that allow cells to recognize one another, which cooperate with the internal skeleton of cells to link them together. We aim to understand how these cellular systems work normally and how they are targeted to disrupt tissue integrity in diseases like cancer and inflammation.