Genetic Validation Of Stat3 As A Tractable Pharmacological Target In Gastrointestinal Disease
Funder
National Health and Medical Research Council
Funding Amount
$586,964.00
Summary
Cancers of the stomach and the colon are a major health burden. One of the central signaling molecules that drives these cancers is called Stat3. Here we propose to use a novel strain of mice that allows us to experimentally dial down the amount of Stat3 protein and hence to predict how effective a future anti-Stat3 cancer drug will be.
Stimulant laxatives are widely used and usually very effective in the short term, but how they work is very poorly understood. Our recent work has shown that they selectively excite sensory pathways from the colon which then trigger defaecation. This points to an undiscovered mechanism that potently affects colonic sensation and motility. This is likely to be a target for new treatments for other colonic disorders such as Irritable bowel syndrome and faecal incontinence.
Targeting The Interface Between Tumours And Their Microenvironment For The Treatment Of Gastrointestinal Cancers
Funder
National Health and Medical Research Council
Funding Amount
$785,045.00
Summary
This fellowship explores the synergistic interactions between intestinal cancer cells and the tumour microenvironment and which promote survival, expansion, migration and invasion as well as facilitating the development of resistance to anti-cancer therapy. Aided by the clinical expertise of my collaborators, my efforts are likely to yield translational outcomes, including the development of therapeutic IL-11 antagonists, and of a serum protein signature indicative of early stage gastric cancer.
Elucidating The Role Of Transthalamic Pathways In Cortical Processing
Funder
National Health and Medical Research Council
Funding Amount
$792,688.00
Summary
Your brain senses the world and produces a suitable motor response by processing information between brain regions, such as primary sensory cortex to secondary cortex. Surprisingly, cortical pathways have a parallel route through the thalamus (transthalamic pathways) but their function is entirely unknown. We will use novel genetic and viral tools to shut down neural pathways while mice make decisions, thus identifying new circuits in our understanding of disorders with cognitive deficits.
The human brain has many subdivisions (�areas�) that are dedicated to vision, but in many cases their functions remain unclear. This project will study an area located deep in the brain, about which very little is known, and which appears to be affected from early stages in conditions such as Alzheimer�s disease. By understanding the patterns of electrical activity of cells in this region, and their connections with other brain areas, we hope to decipher their contribution to sensory cognition.
The role of the immune system in pain is emerging from recent discoveries, and may hold the key to novel pain treatments. Most people experience brief gut infections from food or contagion without long-term consequences. Many others suffer symptoms for years afterwards - probably the best example of immune-based pain. Our project investigates how immune cells communicate with sensory nerves, and how these communications change from both angles after gut infection or inflammation.
Transient Receptor Potential Channels (TRPs) As Transducers And Targets In Primary Visceral Afferents
Funder
National Health and Medical Research Council
Funding Amount
$669,130.00
Summary
Transient receptor potential, or TRP channels, are involved in generating many of the sensations we perceive, such as heat, cold, touch and pain. Some TRP channels are specialized to signal pain from visceral organs, which we must investigate if we are to find treatments for visceral pain, which are currently lacking.
Identification Of The Pain Pathway From The Rectum And Its Mechanisms Of Activation
Funder
National Health and Medical Research Council
Funding Amount
$566,931.00
Summary
Abdominal pain is one of the most common reasons why patients seek medical attention. It is now known that irritable bowel syndrome (IBS) is one of the major causes of abdominal pain, but the reason why people experience pain from the gut is not known. This project will identify which sensory nerves in the gut wall signal pain to the spinal cord during conditions that mimic IBS and the precise mechanisms that activate these sensory neurons during IBS-like inflammation will be investigated.