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of course includes AI. Meanwhile we are pushing the limits of applied mathematics, for example mapping out disease processes using single cell data, and using mathematics to simulate gigantic ash plumes after
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of applied mathematics, for example 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
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are pushing the limits of applied mathematics, for example mapping out disease processes using single cell data, and using mathematics to simulate gigantic ash plumes after a volcanic eruption. In other words
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neurological diseases pose major challenges to modern healthcare. Despite their apparent differences, these conditions share striking cellular-level similarities, including altered cell–cell communication
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infections and vaccination strategies in farm and laboratory animals; design immunological study plans (e.g. T cell phenotyping, intracellular cytokine staining, immune correlates of protection) and translate
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AD, yet the mechanisms through which it shapes immune responses in the human brain remain poorly understood. This PhD project aims to uncover how genetic risk influences immune cell function in AD by
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an essential process for life. When a cell is at a diseased state, the interaction landscape can drastically change. We develop chemical tools to investigate these interactions to understand health and
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system-wide manner. Your job Molecules in our body constantly make interactions. This is an essential process for life. When a cell is at a diseased state, the interaction landscape can drastically change
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flow injection of water-based slugs into a push solvent followed by NMR detection of metabolites[1] . This platform included automated sample handling robotics, a custom-built flow cell, and precise
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of patient cells Transcript and transcriptome analyses of the transduced cells Functional readouts of protein (immunohistochemistry, western blotting, enzymatic readouts) Present findings at local and (inter