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full translational pipeline — from developing and optimizing cell enrichment and molecular profiling workflows, through single-cell characterization of circulating tumor-associated cell populations
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software • Team player with the ability to work independently Your project: • Develop and optimize co-culture lung models at the ALI (cell lines, primary cells, primary tissue). • Exposure of cells
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the growing demand, in MINDnet will investigate neuromorphic computing as a promising solution to support such a demand by getting inspired by the brain’s powerful and energy-efficient processing capabilities
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determine magnetic, electronic, catalytic, and soft-matter properties. Its research supports major challenges in energy conversion and storage, advanced materials, nanotechnology, and emerging life-science
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. By employing and advancing existing cell culture model systems, combined with state-of-the-art readouts including transcriptomics, epigenomics, metabolomics, flow cytometry and imaging, this project
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, artificial intelligence, renewable energies, and sustainability. In addition, next-generation computing and quantum computing are future-oriented topics that our researchers are working on. Our institute is
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, and for the training of talented students for a future career in science. In providing optimal conditions for female PhD students, HBRS aims to motivate and convince female academics to pursue a career
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workshops teaching communication skills, reasoning, problem-solving strategies in science, or simply showing how one can optimally budget energy, GRADE strengthens personal qualities and helps to transform
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adaptation is crucial for optimal perfusion. In living systems, network architecture constantly changes in response to environmental stimuli towards uniform flow to optimize transport. Combining microfluidic
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network adaptation is crucial for optimal perfusion. In self-organizing life forms, network morphology constantly adapts in response to environmental stimuli towards more homogeneous distribu-tion of flow