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of Oxford and Valencia, on a large-scale European project. The focus of the postdoc project will be on using advanced numerical simulation modeling software and machine learning techniques to quantitatively
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collaborative environment with leading European academic and industrial partners, including the universities of Oxford and Valencia, on a large-scale European project. The focus of the postdoc project will be
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, pumps and transporters. Living cells maintain chemical gradients and electrical potential differences across their membranes using proteins that represent the majority of all current drug targets
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carried out by integral membrane protein channels, receptors, pumps and transporters. Living cells maintain chemical gradients and electrical potential differences across their membranes using proteins
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across these membranes is carried out by integral membrane protein channels, receptors, pumps and transporters. Living cells maintain chemical gradients and electrical potential differences across
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is the development of sustainable chemical synthetic processes. Electrochemical synthesis, electrocatalysis and photoredox-catalysis have the potential to replace current synthetic methods and allow
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synthesis, electrocatalysis and photoredox-catalysis have the potential to replace current synthetic methods and allow production based on low-cost electricity and low-waste transformations. Both in research
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benefits. Despite the growing impact of biocatalysis in industrial chemistry, the full potential of this technology is yet to be unlocked. Important current limitations are the following: i) only a limited
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potential to replace current synthetic methods and allow production based on low-cost electricity and low-waste transformations. Both in research and teaching, investment in high level electrochemical
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be unlocked. Important current limitations are the following: i) only a limited set of chemical reactions is amenable to biocatalysis; and ii) the unique enzymology encoded in the genome of organisms