Novel Modes Of Regulating Serotonin 5HT2c Receptors.
Funder
National Health and Medical Research Council
Funding Amount
$457,267.00
Summary
The normal function of all living cells depends on how they respond to the multitude of physical and chemical stimuli to which they are constantly exposed. The majority of these stimuli acting on cells do so not by directly entering the cells, but rather by acting on specific types of receiver proteins on the cell's surface that are called receptors. The most important family of cell-surface receptors transmit their message to the inside of the cell by coupling to yet another type of protein kno ....The normal function of all living cells depends on how they respond to the multitude of physical and chemical stimuli to which they are constantly exposed. The majority of these stimuli acting on cells do so not by directly entering the cells, but rather by acting on specific types of receiver proteins on the cell's surface that are called receptors. The most important family of cell-surface receptors transmit their message to the inside of the cell by coupling to yet another type of protein known as a G protein, and are therefore commonly referred to as G protein-coupled receptors (or GPCRs). The current proposal focuses on a special family of GPCRs that mediate the actions of the neurochemical, serotonin (or 5HT), in the human brain. These serotonin GPCRs are major targets for antidepressant and antipsychotic medications, and also play a role in anxiety, migraine and the control of appetite. Despite the important role of serotonin GPCRs in health and disease, the mechanism of action of many drugs acting on these receptors remain unknown. Our project will specifically investigate novel molecular mechanisms associated with serotonin GPCR activity that may prove vital in understanding mechanisms of psychiatric illnesses, and how many psychiatric medicines actually work.Read moreRead less
Allosteric Regulation Of G Protein-coupled Receptors
Funder
National Health and Medical Research Council
Funding Amount
$509,017.00
Summary
The normal function of all living cells depends on how they respond to the multitude of physical and chemical stimuli to which they are constantly exposed. The majority of these stimuli acting on cells do so not by directly entering the cells, but rather by acting on specific types of receiver proteins on the cell's surface that are called receptors. The most important family of cell-surface receptors transmit their message to the inside of the cell by coupling to yet another type of protein kno ....The normal function of all living cells depends on how they respond to the multitude of physical and chemical stimuli to which they are constantly exposed. The majority of these stimuli acting on cells do so not by directly entering the cells, but rather by acting on specific types of receiver proteins on the cell's surface that are called receptors. The most important family of cell-surface receptors transmit their message to the inside of the cell by coupling to yet another type of protein known as a G protein, and are therefore commonly referred to as G protein-coupled receptors (or GPCRs). Aberrations in the normal function of these GPCRs have been implicated in a wide variety of disorders, including neuropsychiatric conditions, endocrine disorders, cardiovascular disease and many cancers. To date, the majority of drugs acting at GPCRs do so by binding to specific regions on these receptors. Although many breakthroughs in disease treatment have been achieved using this approach, there remain a number of acknowledged limitations, including lack of drug selectivity, toxicity and reduced responsiveness with prolonged therapy. Our current proposal focuses on targeting drugs to alternative regions of GPCRs that may overcome many of the limitations associated with current drug therapies. An understanding of the properties of these alternative drug binding sites, which will be investigated in our current grant, can lead to more effective treatments for a variety of diseases.Read moreRead less