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Field
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deciphering the mechanisms of cellular plasticity. Technological advances and cryogenic sample preparation now make it possible to visualise cellular structures, membrane arrangements, contacts between
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process. Project**: Identification of a pharmacogenomic signature for anti-B cell precision therapy in membranous nephropathy (CONFUCIUS)** For an information package including full details of the post
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charge measurements, and nanoscale membrane electrostatics. You will also adapt existing scientific techniques and develop new experimental techniques to investigate how molecular and membrane
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(approximately 50%) to contribute to other aspects of the lab’s research. These aspects include investigating the molecular mechanisms of membrane proteins using an integrative approach combining biochemistry
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University School of Medicine. We are seeking a highly motivated and independent scientist to investigate the molecular mechanisms of membrane transport proteins and ion channels essential to human health
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and characterizing new materials and membranes for critical minerals separations. The ideal candidate will have expertise in membrane development and electrochemical processes. This position will be
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-generation diamond membrane quantum sensors to enable precision electromagnetic field mapping in HEP experiments. This position bridges detector R&D, materials science, and quantum information science
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months. The project involves the synthesis of molecular machines capable of interfacing with lipid bilayer membranes, including mechanically interlocked molecules and shuttles; and systems with
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microscopy, image analysis, and programming for the automation of image quantification - In-depth knowledge of membrane biology, particularly regarding the structure, content, and dynamics of the endoplasmic
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viral vectors, transfections, neutralization, western blotting, molecular cloning, ligand-binding, fluorescent imaging, structural characterization of membrane-bound or soluble viral proteins, preparation