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Systematic engineering of artificial metalloenzymes for new-to-nature reactions

机译:人工金属酶的系统工程,用于新的自然反应

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Artificial metalloenzymes (ArMs) catalyzing new-to-nature reactions could play an important role in transitioning toward a sustainable economy. While ArMs have been created for various transformations, attempts at their genetic optimization have been case specific and resulted mostly in modest improvements. To realize their full potential, methods to rapidly discover active ArM variants for ideally any reaction of interest are required. Here, we introduce a reaction-independent, automation-compatible platform, which relies on periplasmic compartmentalization in Escherichia coli to rapidly and reliably engineer ArMs based on the biotin-streptavidin technology. We systematically assess 400 ArM mutants for five bioorthogonal transformations involving different metals, reaction mechanisms, and reactants, which include novel ArMs for gold-catalyzed hydroamination and hydroarylation. Activity enhancements up to 15-fold highlight the potential of the systematic approach. Furthermore, we suggest smart screening strategies and build machine learning models that accurately predict ArM activity from sequence, which has crucial implications for future ArM development.
机译:人工金属酶(武器)催化新的性质反应可能在转换到可持续经济方面发挥重要作用。虽然为各种转型创建了武器,但在遗传优化的尝试是特定的,并且主要是在适度的改进。为了实现它们的全部潜力,需要快速发现活性臂变体的方法,理想地需要任何感兴趣的反应。在这里,我们介绍了一个反应无关的自动化兼容平台,依赖于大肠杆菌的周质舱分区,以基于生物素 - 链霉抗生物素素技术快速且可靠地工程臂。我们系统地评估了400个臂突变体,涉及不同金属,反应机制和反应物的五种生物正交变换,包括用于金催化的水醋酸的新型臂。活动增强可高达15倍突出系统方法的潜力。此外,我们建议智能筛选策略和构建机器学习模型,可准确预测序列的ARM活动,这对未来的臂开发具有重要影响。

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