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Quantum computers are on the horizon that could break the encryption protecting our banks, hospitals, and national infrastructure. This fully funded, part-time PhD studentship offers the chance to
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Radioconjugates Using In Vivo PET Imaging and Multimodal Ex Vivo Tissue Analysis. The Department of Radiology at the University of Cambridge, in partnership with AstraZeneca, is offering a funded PhD studentship to
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developed mouse models and human tissue processing pipelines. The candidate will learn and use cutting edge immunological methods (high parameter flow cytometry, multiplex imaging, single cell and spatial
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of breast cancer patients (the largest of their kind; making extensive use of imaging mass cytometry and spatial transcriptomics) that span observational studies and clinical trials. We must precisely define
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quantitative imaging, we work towards a multi-scale understanding of how molecular composition and subcellular organisation shape cell function, plasticity and disease. A central biology focus of the lab is
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magnetic resonance imaging (Flow MRI) is a powerful and non-invasive imaging technique that measures blood flow in time and space. It provides vital insights into key metrics for cardiovascular disease
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newly born neurons, combining developmental neuroscience with structural biology imaging. This research will uncover fundamental mechanisms of brain development and provide insight into processes
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mouse models, primary astrocyte culture, transcriptomics, and advanced imaging, you will identify the molecular signals linking neuronal JAKMIP1 dysfunction to altered astrocyte behaviour. Training across
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XID+ to exploit the hyperspectral imaging and spectroscopy that PRIMA will provide. You will develop methodologies to separate blended galaxy emission, test them using state-of-the-art galaxy evolution
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, microbiology, single-cell imaging and biochemistry, working across Exeter, Bath and Bristol. Patient and public involvement will help keep the project focused on clinically relevant questions and the future use