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based on a circularly permuted green fluorescent protein (cpGFP) inserted into the intracellular loop 3 sequence of the receptor endogen (RXFP3). This prototype will be optimised by multiple cycles
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and ability to step back allow you to tackle complex problems under multiple constraints (deadlines, major technical challenges). You enjoy teamwork and have a particular affinity for interdisciplinary
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with Catherine Quilliet (modelling), Olivier Stephan (3D manufacturing, hydrogels) and Pierre Recho (theory of porous media). Where to apply Website https://emploi.cnrs.fr/Candidat/Offre/UMR5588-PHIMAR-007
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role in intracellular transport. As such, they play an important role in nuclear positioning. Our team is studying, in a developmental context, how multiple microtubule networks cooperate to position
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the values are drawn independently from known distributions. These results have been widely applied in areas such as auction theory, resource allocation, and stochastic optimization. The interdependent value
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for four years. The project involves multiple partners: • OTFT characterizations : L2n-URCA Reims (O. Simonetti) • Polymer synthesis: ICPEES Strasbourg (N. Leclerc) • Material deposition: ICS Strasbourg (M
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" (ARMS) code, running on high-performance computing centers. The simulation domain will consist of a restricted portion of the solar atmosphere. The doctoral student will have to explore the simulation
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using 3D MHD numerical simulations with the ARMS code. For the first time, such a model will self-consistently generate induced jets in a realistic magnetic topological configuration, including polar
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. Their results will be convolved with advanced radiative codes to calculate fluxes and multi-messenger spectra. These simulations will also be supplemented by kinetic simulations of particle acceleration in
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on plausible solid-electrolyte interphase structures on the extreme surface. The applied computational methods will be periodic semi-empirical methods and density functional theory. The person recruited would