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cell failure and its implications for system-level battery design. By creating a new scientifically robust framework to assess and mitigate thermal runaway, this PhD project will develop a unique
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. Combining expertise in nanomaterials, colloid and analytical science, cellular biology and bioengineering, we investigate how nanoparticle structure and composition influence biological function. A particular
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a recently discovered cellular structure known as the nitroplast, which is capable of fixing nitrogen directly within a eukaryotic cell. The nitroplast challenges long-held assumptions about how
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advanced cell imaging. The successful candidate will work in a highly interdisciplinary research environment and will have access to state-of-the-art technological platforms, including cleanroom
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isolated from Streptomyces species. Tubercidin and structurally related natural antibiotics, including toyocamycin and sangivamycin, exhibit pronounced cytotoxic activity in numerous cellular models and
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Neoplasms’ together with Professor George Vassiliou, Cambridge Stem Cell Institute, University of Cambridge, United Kingdom funded by a ‘Molecular Mechanisms Linking Obesity and Cancer (MMLOC)’ grant from
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biological samples preparation for histological analysis, specifically of hard tissue (bone) processing, embedding, sectioning, and staining for histological evaluation. Experience with cell culture models
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antigens targeting conserved B-cell and T-cell epitopes of respiratory pathogens. • Development of de novo protein scaffolds, nanoparticles, and multivalent immunogens. • Application of generative protein
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for the creation of cellular machines. These synthetic designer de novo chromosomes allow us to address fundamental biological questions, systematically re-engineer genetic components, incorporate large-scale
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mapping out disease processes using single cell data, and using mathematics to simulate gigantic ash plumes after a volcanic eruption. In other words: there is plenty of room at the faculty for ground