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behavioural neuroscience, computational neuroscience, translational and clinical neuroscience as well as cellular and molecular neuroscience. In addition to ongoing support from their primary adviser, doctoral
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dynamics, biological membranes, the underlying cytoskeleton, motor proteins, cell division and intracellular transport, communication and sensory processes as well as structure and pattern formation in
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requirements are Experience in working with large-scale spatial-temporal traffic and/or travel behavior data, e.g., loop detector, floating car data, GPS data, cellphone data. Experience with transport
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of novel catalysts by electrochemical flow cell measurements that will be coupled to on-line analytics (c.f. https://www.nature.com/articles/s41563-019-0555-5). Specifically, an in-house designed flow cell
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techniques and 3D cell culture, you will grow human microvascular tissue on chip whose architecture self-organizes in response to vasoactive substances. Your work will lead the way to applications of flow
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transported nutrients. Combining micro-fluidic techniques and 3D cell culture, you will grow human microvascular tissue on chip whose morphology self-organizes in response to vasoactive sub-stances. Your work