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Shewanella oneidensis as a living electrode for controlled radical polymerization

机译:拟南芥(Shewanella oneidensis)作为可控自由基聚合的活性电极

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摘要

Metabolic engineering has facilitated the production of pharmaceuticals, fuels, and soft materials but is generally limited to optimizing well-defined metabolic pathways. We hypothesized that the reaction space available to metabolic engineering could be expanded by coupling extracellular electron transfer to the performance of an exogenous redox-active metal catalyst. Here we demonstrate that the electroactive bacterium Shewanella oneidensis can control the activity of a copper catalyst in atom-transfer radical polymerization (ATRP) via extracellular electron transfer. Using S. oneidensis, we achieved precise control over the molecular weight and polydispersity of a bioorthogonal polymer while similar organisms, such as Escherichia coli, showed no significant activity. We found that catalyst performance was a strong function of bacterial metabolism and specific electron transport proteins, both of which offer potential biological targets for future applications. Overall, our results suggest that manipulating extracellular electron transport pathways may be a general strategy for incorporating organometallic catalysis into the repertoire of metabolically controlled transformations.
机译:代谢工程促进了药物,燃料和软材料的生产,但通常仅限于优化定义明确的代谢途径。我们假设可以通过将细胞外电子转移与外源性氧化还原活性金属催化剂的性能偶联来扩展代谢工程可用的反应空间。在这里,我们证明电活性细菌onewanensis可以通过细胞外电子转移控制铜催化剂在原子转移自由基聚合(ATRP)中的活性。使用沙门氏菌,我们可以精确控制生物正交聚合物的分子量和多分散性,而类似的生物(例如大肠杆菌)则没有明显的活性。我们发现催化剂的性能是细菌代谢和特定的电子转运蛋白的强大功能,两者均为未来的应用提供了潜在的生物学靶标。总体而言,我们的研究结果表明,操纵细胞外电子传输途径可能是将有机金属催化纳入代谢控制转化库的一般策略。

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