Generation And Characterisation Of An Animal Model For Age-related Macular Degeneration
Funder
National Health and Medical Research Council
Funding Amount
$226,650.00
Summary
Age-Related Macular Degeneration (AMD) is the leading cause of irreversible blindness in the aged population in the developed world, and it is one of the least understood retinal diseases. AMD is a slow, progressive and painless condition that affects the macula, the small central part of the retina that allows one to see fine detail clearly. With the ever-increasing human life expectancy, the prevalence of AMD (15-30%) in the age group of over 75 years will significantly increase, causing enorm ....Age-Related Macular Degeneration (AMD) is the leading cause of irreversible blindness in the aged population in the developed world, and it is one of the least understood retinal diseases. AMD is a slow, progressive and painless condition that affects the macula, the small central part of the retina that allows one to see fine detail clearly. With the ever-increasing human life expectancy, the prevalence of AMD (15-30%) in the age group of over 75 years will significantly increase, causing enormous social and financial problems for the community. In spite of the significance of this problem, the exact cause of AMD is not yet known, and there is no permanent effective treatment or cure for the condition. One of the major obstacles hindering any advances towards the development of intervention strategies or therapies is the lack of an appropriate animal model. Currently, the animal models that are available for ocular diseases do not fit the human AMD situation. This project aims to characterize the first animal model for retinal degeneration caused by abnormal functioning of the retinal pigment epithelial cells (RPE). The main role of RPE cells is the phagocytosis and digestion of the continuously growing and shed light receptor segments in the eye. Their normal functioning therefore is vital to maintaining good vision. The availability of such an animal model will allow us to learn more about the changes that might occur in the eye leading to the development of AMD and to design strategies to prevent or delay progression of the condition.Read moreRead less
Analysis Of FGF Receptor Signalling Involved In Lens Cell Proliferation And Differentiation
Funder
National Health and Medical Research Council
Funding Amount
$343,028.00
Summary
Cataract, the loss of transparency of the eye lens, is the leading cause of blindness in the world. An eventual cure for cataract depends on a better understanding of the basic molecular processes in the normal and cataractous lens. Our research has focussed on identifying the molecules that control the formation and maintenance of the lens. Growth factors are important regulators of cell behaviour and our studies have provided compelling evidence that members of the FGF growth factor family pla ....Cataract, the loss of transparency of the eye lens, is the leading cause of blindness in the world. An eventual cure for cataract depends on a better understanding of the basic molecular processes in the normal and cataractous lens. Our research has focussed on identifying the molecules that control the formation and maintenance of the lens. Growth factors are important regulators of cell behaviour and our studies have provided compelling evidence that members of the FGF growth factor family play pivotal roles in lens developmental biology by influencing lens cell proliferation and differentiation. An important finding from our laboratory is that FGF induces lens epithelial cell proliferation and differentiation at different concentrations. The FGFs elicit intracellular responses upon binding to and activating cell surface FGF receptors (FGFRs). The FGFRs are membrane bound tyrosine kinases which upon activation, activate specific signalling pathways leading to a specific cellular response. To understand how FGFs mediate and regulate different responses in lens cells, namely cell proliferation and fibre differentiation, we plan to examine the role of FGFRs in normal lens development using genetically altered FGFRs that will be expressed specifically in lenses of transgenic mice. While it is known that four different FGF receptor genes are expressed by the normal developing lens, it is unknown what role each of these play in the process of lens cell proliferation and differentiation. In addition, as we can reproduce a specific FGF-induced lens cellular response in vitro, we will use our lens explant culture system to dissect the signalling pathway(s) downstream from specific receptor activation and correlate this with a specific cellular response. By identifying the molecules and mechanisms that control the cellular processes essential for normal lens development, we can better understand how disruptions of these processes lead to cataract formation.Read moreRead less
Roles For MAPK-ERK1-2, -catenin-TCF And Smad3 Mediated Signalling Pathways In TGF -induced Cataract
Funder
National Health and Medical Research Council
Funding Amount
$339,071.00
Summary
Posterior capsular opacification (PCO) is a common and costly complication of cataract surgery that is caused by aberrant growth of lens cells. The TGF growth factor family causes PCO. TGF activates three signalling pathways in the lens, MAPK-ERK1-2, -catenin-TCF and Smad3; however currently we do not know which one induces PCO. This project will identify the pathway(s) that prevent TGF from causing cataracts. This is critical for the development of pharmaceuticals to prevent PCO.