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Field
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projects aim to gain a better understanding of how unicellular photosymbiosis works by combining subcellular microscopy approaches (3D electron microscopy). This thesis is funded by a European ERC
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single filaments and single droplets to composite networks using techniques such as optical tweezers, fluorescence microscopy and atomic force microscopy. The concrete activities during the project will
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elucidation of membrane protein complexes and integrates fundamental cell biology and structural biology by cryo- electron microscopy. The lab has a strong track record in investigating scramblases and their
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microscopy, structural biology, cryo-electron microscopy. Interest in learning quantitative image analysis methods and/or structural biology methods. Team-oriented and proactive mindset. Excellent oral and
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laser diffractometry and fluorescence microscopy • Investigate bacteria on a single-cell level using microfluidics and flow-cytometry • Quantify the production of amino acids and metabolic fluxes via mass
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certificate or equivalent for animal handling • Familiarity with neuroimmunology models (e.g., EAE) • Histological techniques and imaging (e.g., immunohistochemistry, confocal microscopy) • Isolation of single
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(including the Composites Suite, the new high-temperature polymer processing equipment, the new electron microscopy unit, the aerial robotic flying arena) and to develop skills in polymer (nano)composites
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mechanisms characterised using advanced electron microscopy and modelling. The research will provide opportunities to collaborate closely with leading industry partners in this field, offering valuable
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laser diffractometry and fluorescence microscopy • Investigate bacteria on a single-cell level using microfluidics and flow-cytometry • Quantify the production of amino acids and metabolic fluxes via mass
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update your knowledge related to the project by reading relevant literature and attending seminars and conferences. - Participate in team responsibilities: training new staff in confocal microscopy and