The role of dysregulated signalling by TORC1 in mitochondrial disease. The mitochondria are tiny subcellular compartments responsible for producing over 90 per cent of the cell's energy. Mitochondrial defects feature both in genetic diseases that directly affect the mitochondria and in most neurodegenerative diseases. These incurable diseases are expected to eclipse cancer as the second major cause of death worldwide by 2040. Using a simple model organism, Dictyostelium, previous research showed ....The role of dysregulated signalling by TORC1 in mitochondrial disease. The mitochondria are tiny subcellular compartments responsible for producing over 90 per cent of the cell's energy. Mitochondrial defects feature both in genetic diseases that directly affect the mitochondria and in most neurodegenerative diseases. These incurable diseases are expected to eclipse cancer as the second major cause of death worldwide by 2040. Using a simple model organism, Dictyostelium, previous research showed that dysregulated intracellular signalling by a cellular energy-sensing alarm protein is responsible for diverse cellular pathologies in mitochondrially diseased cells. This project will determine the role in these pathways of a second cellular stress-sensing protein complex, TORC1. New treatment possibilities may emerge.Read moreRead less
Unravelling a novel stress-signalling system in bacteria. This project aims to investigate the cyclic-di-AMP signalling system in industrially important bacteria. The recently discovered cyclic-di-AMP is essential for normal bacterial growth and plays key roles in heat and antibiotic resistance, metabolism and virulence. This project will develop new biological assays to shed light on how bacteria sense and respond to environmental stress. Expected outcomes include a much deeper understanding of ....Unravelling a novel stress-signalling system in bacteria. This project aims to investigate the cyclic-di-AMP signalling system in industrially important bacteria. The recently discovered cyclic-di-AMP is essential for normal bacterial growth and plays key roles in heat and antibiotic resistance, metabolism and virulence. This project will develop new biological assays to shed light on how bacteria sense and respond to environmental stress. Expected outcomes include a much deeper understanding of signalling inputs and outputs. This should lead to benefits such as guiding the improvement of bacterial strains used in food and biochemical biotechnological applications, and may provide the foundation for the development of novel antibiotics.Read moreRead less