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, purified and tested for biological activity together, in a single operation taking as little as a week. You will apply this new approach to real drug targets in cancer, working at the interface of synthetic
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this: new chemistry methods that let around 100 candidate compounds be made, purified and tested for biological activity together, in a single operation taking as little as a week. You will apply this new
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hypothesise that malignant¿stromal crosstalk within defined genetic contexts drives distinct mechanisms of resistance to KRAS inhibition. In support of this, our work indicates that cancer-associated
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protection benefits provided by restored saltmarshes. The successful PhD candidate will work with laboratory experiments and develop numerical and AI models capable of supporting coastal management and
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integrating power electronic converters and electrical machines we can use common structures and systems to greatly reduce, material usage and energy consumption. Through a multidisciplinary research approach
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the shear-thinning and thixotropic behaviour of mucus. This work will incorporate mucus rheology, microfabrication and testing the resulting device on suitable benchtop intestinal models. You will gain
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The University of Oxford is a stimulating work environment, which enjoys an international reputation as a world-class centre of excellence. Our research plays a key role in tackling many global
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major threat to human health, which is for a large part driven by plasmids (mobile pieces of DNA) that facilitate AMR gene spread between bacteria. In this project you will develop new tools based
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mechanisms involved in wear of rubber materials Investigate the generation and dispersion of particulate matter in the tyre-road interaction Describe and characterise particle morphology as a function of usage
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, equipment, and travel related to the project. Overview Deep geothermal reservoirs can provide a long-term, sustainable supply of heat and energy to serve society’s needs. The performance and operational