Department of Chemical and Biological Engineering, Center for Biotechnology and Interdisciplinary Studies, Rensselaer Polytechnic Institute, Troy, NY, United States.
Plant Biochemistry and Biotechnology Laboratory, Department of Agriculture, School of Agriculture and Food Technology, Technological & Educational Institute of Crete, Crete, Greece.
Curr Opin Biotechnol. 2015 Dec;36:205-14. doi: 10.1016/j.copbio.2015.09.007. Epub 2015 Nov 2.
Natural metabolic pathways are dynamically regulated at the transcriptional, translational, and protein levels. Despite this, traditional pathway engineering has relied on static control strategies to engender changes in metabolism, most likely due to ease of implementation and perceived predictability of design outcome. Increasingly in recent years, however, metabolic engineers have drawn inspiration from natural systems and have begun to harness dynamically controlled regulatory machinery to improve design of engineered microorganisms for production of specialty and commodity chemicals. Here, we review recent enabling technologies for engineering static control over pathway expression levels, and we discuss state-of-the-art dynamic control strategies that have yielded improved outcomes in the field of microbial metabolic engineering. Furthermore, we emphasize design of a novel class of genetically encoded controllers that will facilitate automatic, transient tuning of synthetic and endogenous pathways.
天然代谢途径在转录、翻译和蛋白质水平上受到动态调控。尽管如此,传统的途径工程仍然依赖于静态控制策略来改变代谢,这很可能是由于实施的便利性和设计结果的可预测性。然而,近年来,代谢工程师们从自然系统中汲取灵感,并开始利用动态控制的调节机制来改进用于生产特种和大宗商品化学品的工程微生物的设计。在这里,我们回顾了用于工程途径表达水平静态控制的最新使能技术,并讨论了在微生物代谢工程领域产生了更好结果的最先进的动态控制策略。此外,我们强调设计一类新型的遗传编码控制器,这将有助于自动、瞬态地调整合成和内源性途径。