The comparative physiology of oxygen delivery to the kidney. The kidney is in danger of hyperoxia because the kidney receives so much blood relative to its mass. It is proposed that shunting oxygen between arteries and veins substantially mitigates the risk of hyperoxia, but under certain circumstances shunting substantially increases the risk of kidney hypoxia. Using a combination of synchrotron and histological imaging, This project will carefully define the three-dimensional vasculature of th ....The comparative physiology of oxygen delivery to the kidney. The kidney is in danger of hyperoxia because the kidney receives so much blood relative to its mass. It is proposed that shunting oxygen between arteries and veins substantially mitigates the risk of hyperoxia, but under certain circumstances shunting substantially increases the risk of kidney hypoxia. Using a combination of synchrotron and histological imaging, This project will carefully define the three-dimensional vasculature of the renal cortex in several different species and interpret its functional significance using computational modeling. The outcome of this project will be a new understanding in the comparative physiology of oxygen transport and shunting in the kidney.Read moreRead less
Physiology of oxygen transport in the mammalian kidney. This project aims to improve understanding of oxygen regulation in renal tissue and knowledge of the physiology of the kidney. The mammalian kidney receives more oxygen than it uses or needs, and yet renal tissue is commonly found to be hypoxic. This project proposes that oxygen transport to the renal tissue is limited by blood vessel surface area. The project expects to generate anatomical data currently missing from the renal physiology c ....Physiology of oxygen transport in the mammalian kidney. This project aims to improve understanding of oxygen regulation in renal tissue and knowledge of the physiology of the kidney. The mammalian kidney receives more oxygen than it uses or needs, and yet renal tissue is commonly found to be hypoxic. This project proposes that oxygen transport to the renal tissue is limited by blood vessel surface area. The project expects to generate anatomical data currently missing from the renal physiology community, and potentially change the accepted story of oxygen homeostasis in the kidney. This will provide significant benefits, such as the provision of the foundational physiological science behind a determinant of kidney health and its flow-on impact to quality of life.Read moreRead less
Discovery Early Career Researcher Award - Grant ID: DE130101660
Funder
Australian Research Council
Funding Amount
$375,000.00
Summary
The secret of bee navigation: magnetic field sensitive cells in the honeybee Apis mellifera. Honeybees are known to use the Earth's geomagnetic field to orient themselves and carry out their vital role as crop pollinators and honey producers. Locating and characterising the cells responsible for this magnetic sense is of great significance to neuroscience and will provide important new insights into animal behaviour and ecology.
Computed microscopy: solving the inverse problem of optical microscopy to image deeper into biological tissue. This project aims to enable 3D optical microscopy to image deeper within tissue, ultimately aiding research fields such as neurobiology. This will be achieved by a foundational approach called computed cicroscopy that combines novel numerical methods, high performance computing and optical microscopy. This project aims to develop a 3D quantitative imaging method that will provide unprec ....Computed microscopy: solving the inverse problem of optical microscopy to image deeper into biological tissue. This project aims to enable 3D optical microscopy to image deeper within tissue, ultimately aiding research fields such as neurobiology. This will be achieved by a foundational approach called computed cicroscopy that combines novel numerical methods, high performance computing and optical microscopy. This project aims to develop a 3D quantitative imaging method that will provide unprecedented insight into the structure of tissue with sub-cellular detail. This information can then be used to computationally reverse light scattering within the sample, allowing fluorescence microscopy at unprecedented depths within tissue.Read moreRead less