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promise in understanding disease mechanisms and improving clinical decision-making. Recent studies suggest that generative models can uncover latent structures and improve classifier robustness across
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of the mechanical properties of the cellular actin cortex, the biomechanics of cell division, and the coupling between cell shape and mechanics and cellular state / fate during cellular transitions. The successful
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metamorphic conditions, the exact mechanisms (dissolution–precipitation vs. dynamic recrystallization vs. mechanical transport vs. partial melting), the extent of mobility and role of fluids remain debated
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developed at Manchester to include heterogeneous magnetohydrodynamic phenomena (including current density localisation), solid-dynamics and fracture mechanics. The development of such a robust mathematical
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focuses on exploring the molecular mechanisms underlying plant cell-cell adhesion. Cell-cell adhesion is a fundamental feature of multicellular organisms, but much remains to be discovered about how it
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ways, mechanical properties test (such as tensile test, etc.) and some highly advanced microstructural characterisation such as SEM (Scanning electron microscope), XRD (X-ray diffraction) and TEM
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of small model organisms (in case we need to validate experiments in a mouse model). Strong interest in basic and applied research, stem cell culturing, microscopy, electrophysiology, molecular mechanisms
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or more PhD researchers in the Drone Mechatronics research group with expertise in mechatronic design of drones. Experience in three or more of the following fields is required: Advanced mechanical design
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Cell Signaling” research unit. The “Bioanalytics and intermediary Metabolism” group, headed by Marcel Kwiatkowski, is specialised in mass spectrometric cross-OMICs to investigate molecular mechanisms
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for an enthusiastic, highly motivated PhD student who wants to contribute to cutting-edge research with a focus on lung organoid models to understand core mechanisms of lung alveolar development and disease