Investigating The Potential Of Human Stem Cells To Repair The Degenerating Auditory Nerve After Deafness
Funder
National Health and Medical Research Council
Funding Amount
$310,787.00
Summary
One in four Australians is predicted to experience some form of hearing loss by 2050. Hearing loss is irreversible and the chief clinical treatment available for severe to profound hearing loss is a cochlear implant. However, cochlear implant efficacy is limited by the degeneration of the auditory nerve following hearing loss. Using stem cells, this project will develop techniques to restore function to the auditory nerve through replacement of the specialised cells that comprise it.
Deciphering The Mechanisms Underlying LRP-mediated Axon Guidance
Funder
National Health and Medical Research Council
Funding Amount
$370,659.00
Summary
Nerve damage can develop post injury or disease and are often very debilitating, slow to heal and cause increased pain. Our work aims to examine a new class of molecules that we show can activate selected fat-receptors on nerve cells to guide the growth of regenerating nerves. We will determine how these receptors function with the aim of developing a novel class of therapeutics directed at healing nerve damage.
Functional Maturation Of Adult Neural Progenitor Cells
Funder
National Health and Medical Research Council
Funding Amount
$701,390.00
Summary
This proposal seeks to understand how the production of functional nerve cells in the brain is regulated. Specifically we will focus on the way in which adult neuronal precursor cells (neuroblasts) in the brain acquire their functional characteristics as they mature into active entities capable of forming neural networks. We will examine the expression and activation of specific membrane proteins (ion channels) on the differentiation and migration of neuronal precursor cells.
Toward Cell-replacement Therapy For Parkinson's Disease: Investigating Endogenous Dopamine Neurogenesis In The Adult Mouse Substantia Nigra
Funder
National Health and Medical Research Council
Funding Amount
$577,957.00
Summary
Death of a particular type of cell in the brain causes the movement symptoms of Parkinson's disease (PD) (e.g. tremor). This study investigates how these cells are normally replaced, and whether stimulating their replacement can alleviate movement symptoms in an animal model of PD. Fulfillment of these aims will deliver vital information about how we might delay and better treat the movement symptoms of PD.
Therapeutic Development Of A Novel EphA4 Antagonist For Spinal Cord Injuries
Funder
National Health and Medical Research Council
Funding Amount
$687,105.00
Summary
Spinal cord injuries impose a significant burden on patients and their carers. At present, there are no treatments for spinal cord injury that provide functional improvement. This research program will develop a novel therapeutic molecule, EphA4-Fc, which promotes axonal regeneration and delivers significant functional improvement. We will determine the most effective protocol for EphA4-Fc administration and the physiological and functional outcomes of these treatment regimes.
Determination Of Sympathetic Preganglionic Neuronal Phenotype
Funder
National Health and Medical Research Council
Funding Amount
$241,527.00
Summary
The nervous system is the single most complex part of our body. Its function depends on millions of connections between neurons, all of which must form correctly during development. Furthermore, each neuron must select a neurotransmitter with which to talk to its target neuron. A neurotransmitter is a chemical released from a neuron, which passes a signal to a target cell. Some neurotransmitters cause excitation of the target cell, others inhibition. Each neurotransmitter signals to the target c ....The nervous system is the single most complex part of our body. Its function depends on millions of connections between neurons, all of which must form correctly during development. Furthermore, each neuron must select a neurotransmitter with which to talk to its target neuron. A neurotransmitter is a chemical released from a neuron, which passes a signal to a target cell. Some neurotransmitters cause excitation of the target cell, others inhibition. Each neurotransmitter signals to the target cell via receptor molecule, matched to the neurotransmitter. Thus, a neuron is faced not only with making choices about what connections to make within the developing brain, but also it must select from a range of potential neurotransmitters and receptor molecules. We are interested in how neurons select the appropriate neurotransmitter. There are a number of ways that a neuron might be guided to the correct choice. It is possible that it could receive from the target cell a signal that guides the choice of neurotransmitter. We wish to examine this hypothesis to see if it is applicable to the autonomic nervous system, that part of the nervous system that controls functions like changes in blood pressure and heart rate. Our laboratory is expert in identifying the chemistry of autonomic neurons. We will use this knowledge to see what happens when we deliberately perturb the normal connections of autonomic neurons. Do they persist in expressing the neurotransmitters they would have done prior to the perturbation? Alternatively, do they adapt to the change of target via a signal received from the new target cell and express the appropriate phenotype? The results of these experiments will give insights into how the brain develops. The results will be important for both our basic understanding of biology and as a basis for the development of techniques for reversing neuronal damage.Read moreRead less
Cellular And Molecular Mechanisms Of Development And Regeneration In The Olfactory System
Funder
National Health and Medical Research Council
Funding Amount
$345,773.00
Summary
During development of the fetal brain, cells are wired together. The correct wiring patterns are essential for normal function of the brain. Growth and formation of new connections decreases after birth. For this reason, the repair of the damaged adult nervous system is limited. However, there is one region in the nervous system that exhibits continual growth and repair throughout life. This is the nerve that is responsible for smell and connects the nose to the brain. The aim of this study is t ....During development of the fetal brain, cells are wired together. The correct wiring patterns are essential for normal function of the brain. Growth and formation of new connections decreases after birth. For this reason, the repair of the damaged adult nervous system is limited. However, there is one region in the nervous system that exhibits continual growth and repair throughout life. This is the nerve that is responsible for smell and connects the nose to the brain. The aim of this study is to identify the processes that permit continual growth within this region of the nervous system.Read moreRead less
Promoting Regrowth Of Nerve Fibres Into The Epidermis During Diabetic Neuropathy By LRP Agonists
Funder
National Health and Medical Research Council
Funding Amount
$427,102.00
Summary
Nerve damage can develop post injury or disease and is often very debilitating, slow to heal and can cause increased pain. Our work aims to examine a new class of molecules that we show can activate selected fat-receptors on nerve cells to guide the growth of regenerating nerves. We will determine how these receptors function with the aim of developing a novel class of therapeutics directed at healing nerve damage.
Studies On Induction Of Antigen Specific T Regulatory Cells To Control Autoimmunity
Funder
National Health and Medical Research Council
Funding Amount
$353,033.00
Summary
The immune system has natural control mechanisms, called regulatory cells. Our group was the first in the world to correctly identify these cells. There is now a world-wide interest in these cells as they can prevent unwanted immune mediated injury. In autoimmune diseases such as multiple sclerosis, regulatory cells can prevent relapse and progression. This project will identify ways of producing potent specific regulatory cells to control multiple sclerosis and other debilitating neurological d ....The immune system has natural control mechanisms, called regulatory cells. Our group was the first in the world to correctly identify these cells. There is now a world-wide interest in these cells as they can prevent unwanted immune mediated injury. In autoimmune diseases such as multiple sclerosis, regulatory cells can prevent relapse and progression. This project will identify ways of producing potent specific regulatory cells to control multiple sclerosis and other debilitating neurological diseases.Read moreRead less
Each year more than one million people in the US alone suffer serious nerve injury significantly impairing quality of life and costing more than US$7 billion. This research will develop nerve conduits based on polymers and the natural constituents of nerve to provide an alternative to the current practice of nerve grafting. It is envisaged that this conduit will provide an effective platform for nerve repair and will expedite the development of regenerative platforms for other neural tissues.