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integrated hardware systems. Experience in integrating camera modules and sensors (I2C, SPI, UART) is advantageous, as is knowledge of microfluidic automation, including actuators like pumps, valves, and
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); extending these findings to other secretory cells and identifing the underlying molecular mechanisms. Second, by using programmable microfluidic devices to construct complex environments in a controlled way
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separate CTCs from blood. This will include, cell culturing, microfluidic and flow cytometer cell sorting and operation of mass spectrometers (MS), as well as multi-omics data integration and analysis
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knowledge of microfluidic automation, including actuators like pumps, valves, and electromagnetic components, along with heat transfer concepts. Familiarity with 3D printing or other rapid prototyping methods
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periods. b) Relevant experience in the development of 3D in vitro models and technologies based on microfluidics and nanomedicine for application in cancer research. 5. Formalization of the applications
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fluorescence microscopy. Experience in 3D modeling (e.g., SOLIDWORKS), fabrication of biotechnological devices, and microfluidics for organ-on-chip development. d) Experience in transcriptomic, proteomic, and
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studies and post-doctoral periods. b) Relevant experience in the area of biomaterials and biofabrication of microphysiological models based on 3D bioprinting and microfluidics for cardiovascular
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cell models and in molecular and biochemical characterization techniques (qPCR, western blotting, immunocytochemistry, ELISA). Research experience in cancer and microfluidics will be valued. 5
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based on 3D bioprinting and microfluidics. 5. Formalization of the applications: Applications are formalized through a request addressed to the Rector of Universidade do Minho, under the terms defined in
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. Department of Biomedical Engineering at the University of Kentucky has an opening for a postdoctoral scholar research position. https://www.bmesulab.org/ The prospective candidate will be expected