Pushing the Boundaries of Multi-modal Biospectroscopic Microscopies. In order to understand the fundamentals of life processes, diseases, and their treatments, it is essential to probe fundamental changes in molecular processes in cells, tissues and whole organisms. Much of our understanding of these processes has involved the introduction of chemical probes for biospectroscopy, but these have inherent problems because the probe can often change the biochemistry that is being probed. This projec ....Pushing the Boundaries of Multi-modal Biospectroscopic Microscopies. In order to understand the fundamentals of life processes, diseases, and their treatments, it is essential to probe fundamental changes in molecular processes in cells, tissues and whole organisms. Much of our understanding of these processes has involved the introduction of chemical probes for biospectroscopy, but these have inherent problems because the probe can often change the biochemistry that is being probed. This project will push the boundaries of a variety of micro and nano "probe-free" microscopies to provide fundamental insights into these life processes, which could ultimately lead to improvements in the diagnosis, prevention and treatment of diseases.Read moreRead less
The role of copper in the early ubiquitination pathway. This project aims to explore the role of copper in ageing and protein turnover. The removal of damaged or excess proteins is achieved by ubiquitin-tagging in all kingdoms of life. It has recently been observed that one of the earliest steps of this process appears to be driven by copper. This project aims to elaborate the precise biochemical mechanisms by which copper regulates this important tagging and protein turnover system. It proposes ....The role of copper in the early ubiquitination pathway. This project aims to explore the role of copper in ageing and protein turnover. The removal of damaged or excess proteins is achieved by ubiquitin-tagging in all kingdoms of life. It has recently been observed that one of the earliest steps of this process appears to be driven by copper. This project aims to elaborate the precise biochemical mechanisms by which copper regulates this important tagging and protein turnover system. It proposes to characterise the structure and function of a newly identified copper-dependent form of cell enzyme which could be involved in amplifying ubiquitin-tagged protein breakdown. Copper is essential for life in all domains. Identifying copper as a major regulator in protein clearance is important in understanding this fundamental biological machinery.Read moreRead less
Discovery Early Career Researcher Award - Grant ID: DE210101176
Funder
Australian Research Council
Funding Amount
$445,000.00
Summary
Fluorescent probes for super-resolution imaging of the amyloid architecture. The goal of this project is to develop chemical tools that enable molecular-level imaging of the amyloid structure. The Nobel Prize-winning super-resolution microscopy provides nanoscale imaging capabilities, but surprisingly there have been no substantive efforts to design fluorescent sensors that are compatible with this cutting-edge technology. In this project, new fluorescent super-resolution sensors will be develop ....Fluorescent probes for super-resolution imaging of the amyloid architecture. The goal of this project is to develop chemical tools that enable molecular-level imaging of the amyloid structure. The Nobel Prize-winning super-resolution microscopy provides nanoscale imaging capabilities, but surprisingly there have been no substantive efforts to design fluorescent sensors that are compatible with this cutting-edge technology. In this project, new fluorescent super-resolution sensors will be developed that enable nanoscale visualisation of amyloid assemblies. These chemical and biochemical studies will establish rational design strategies to develop fluorescent sensors for super-resolution imaging applications and significantly advance our understanding of fundamental differences functional and toxic protein assemblies.Read moreRead less
Molecular study of copper-promoted ubiquitination. This project aims to study copper-promoted ubiquitination, a novel discovery that a conserved copper binding site in conjugating enzyme UBE2D2 promotes ubiquitination of a range of proteins including tumor suppressor p53. It predicts a correlation between copper homeostasis and cellular proteostasis and may rationalise an inverse relationship between Alzheimer's disease and cancer. This project will employ a range of integrated approaches to ill ....Molecular study of copper-promoted ubiquitination. This project aims to study copper-promoted ubiquitination, a novel discovery that a conserved copper binding site in conjugating enzyme UBE2D2 promotes ubiquitination of a range of proteins including tumor suppressor p53. It predicts a correlation between copper homeostasis and cellular proteostasis and may rationalise an inverse relationship between Alzheimer's disease and cancer. This project will employ a range of integrated approaches to illuminate the molecular nature of this copper action. Expected outcomes include an understanding of the molecular mechanisms of this process, and enhanced interdisciplinary collaboration. Potential benefits include new strategies to intervene in copper-related disorders.Read moreRead less
Gallium, Copper and Metal Fluoride Complexes Designed for Brain Imaging. This project aims to develop fundamental synthetic coordination chemistry directed toward the development of new agents for imaging brain perfusion using positron emission tomography. The research will focus on developing new coordination complexes containing positron-emitting isotopes of copper, gallium and fluorine. The goal is incorporate in these radionuclides into small molecules that can be used for the molecular imag ....Gallium, Copper and Metal Fluoride Complexes Designed for Brain Imaging. This project aims to develop fundamental synthetic coordination chemistry directed toward the development of new agents for imaging brain perfusion using positron emission tomography. The research will focus on developing new coordination complexes containing positron-emitting isotopes of copper, gallium and fluorine. The goal is incorporate in these radionuclides into small molecules that can be used for the molecular imaging of the brain. This chemistry will have the potential to replace existing technologies that rely on single-photon emission from technetium and the technique of single photon emission computed tomography.Read moreRead less
Emergent properties in spin crossover materials. This project aims to develop ‘intelligent’ materials in which emergent properties arise due to the strategic combination of spin switching with other functionalities. Spin crossover is a versatile form of molecular switch which can reversibly change structure, colour and magnetism using convenient external stimuli. In probing new and interesting forms of interplay between technologically relevant properties, this work addresses the science of host ....Emergent properties in spin crossover materials. This project aims to develop ‘intelligent’ materials in which emergent properties arise due to the strategic combination of spin switching with other functionalities. Spin crossover is a versatile form of molecular switch which can reversibly change structure, colour and magnetism using convenient external stimuli. In probing new and interesting forms of interplay between technologically relevant properties, this work addresses the science of host-guest and electronic/magnetic systems and could lead to materials worthy of commercial development to underpin a range of future high-level technologies spanning low energy separations, molecular sensing, data storage, and electronic/magnetic/optical device componentry.Read moreRead less
Multifunctional hybrid spin crossover materials. Spin-crossover is a fascinating class of molecular switching transition for which pronounced changes in molecular structure, colour and magnetism can be induced reversibly through variation of temperature, pressure, light irradiation, magnetic field and chemical environment. This project targets the strategic development of new spin-crossover systems where cooperativity between switching centres will lead to advanced molecules and materials having ....Multifunctional hybrid spin crossover materials. Spin-crossover is a fascinating class of molecular switching transition for which pronounced changes in molecular structure, colour and magnetism can be induced reversibly through variation of temperature, pressure, light irradiation, magnetic field and chemical environment. This project targets the strategic development of new spin-crossover systems where cooperativity between switching centres will lead to advanced molecules and materials having unprecedented host-guest capabilities, magnetic ordering, memory retention and a range of exotic multifunctional properties. The work addresses several fundamental questions in the science of electronic systems and will lead to advanced switchable materials worthy of commercial development.Read moreRead less
Molecular based materials for nanoscale technology. With the miniaturisation of electronic devices via top-down methods now approaching the nanoscale there are many economic and physical challenges arising. This project, explores a class of miniaturised magnetically switching molecular-based materials prepared via bottom-up methods, which provide an alternate path to such nano-scale technology.
Enhancing single-molecule magnets. This project aims to design, synthesise and investigate single-molecule magnets that can function at higher temperatures for use in quantum computing and molecular spintronics. Materials science increasingly benefit from molecular approaches, and lanthanoid-based single-molecule magnets could achieve otherwise inaccessible technological developments such as the development of molecular materials for quantum computing and molecular spintronics. Advances in funda ....Enhancing single-molecule magnets. This project aims to design, synthesise and investigate single-molecule magnets that can function at higher temperatures for use in quantum computing and molecular spintronics. Materials science increasingly benefit from molecular approaches, and lanthanoid-based single-molecule magnets could achieve otherwise inaccessible technological developments such as the development of molecular materials for quantum computing and molecular spintronics. Advances in fundamental chemistry are anticipated, and this project is expected to benefit Australia's participation in related high-end technology industries.Read moreRead less