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光控发酵用于微生物化学品和蛋白质生产。

Light-Controlled Fermentations for Microbial Chemical and Protein Production.

机构信息

Department of Chemical and Biological Engineering, Princeton University.

Department of Chemical and Biological Engineering, Princeton University; The Andlinger Center for Energy and the Environment, Princeton University; Department of Molecular Biology, Princeton University; High Meadows Environmental Institute, Princeton University;

出版信息

J Vis Exp. 2022 Mar 22(181). doi: 10.3791/63269.

Abstract

Microbial cell factories offer a sustainable alternative for producing chemicals and recombinant proteins from renewable feedstocks. However, overburdening a microorganism with genetic modifications can reduce host fitness and productivity. This problem can be overcome by using dynamic control: inducible expression of enzymes and pathways, typically using chemical- or nutrient-based additives, to balance cellular growth and production. Optogenetics offers a non-invasive, highly tunable, and reversible method of dynamically regulating gene expression. Here, we describe how to set up light-controlled fermentations of engineered Escherichia coli and Saccharomyces cerevisiae for the production of chemicals or recombinant proteins. We discuss how to apply light at selected times and dosages to decouple microbial growth and production for improved fermentation control and productivity, as well as the key optimization considerations for best results. Additionally, we describe how to implement light controls for lab-scale bioreactor experiments. These protocols facilitate the adoption of optogenetic controls in engineered microorganisms for improved fermentation performance.

摘要

微生物细胞工厂为利用可再生原料生产化学品和重组蛋白提供了一种可持续的替代方法。然而,对微生物进行过多的遗传修饰会降低宿主的适应性和生产力。这个问题可以通过使用动态控制来解决:诱导表达酶和途径,通常使用化学或营养添加剂,以平衡细胞生长和生产。光遗传学提供了一种非侵入性、高度可调谐和可逆的方法来动态调节基因表达。在这里,我们描述了如何建立工程化大肠杆菌和酿酒酵母的光控发酵,以生产化学品或重组蛋白。我们讨论了如何在选定的时间和剂量下应用光线,以解耦微生物的生长和生产,从而实现更好的发酵控制和生产力,以及为获得最佳结果所需的关键优化考虑因素。此外,我们还描述了如何为实验室规模的生物反应器实验实施光照控制。这些方案促进了在工程微生物中采用光遗传学控制以提高发酵性能。

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