Hoffman Shannon M, Tang Allison Y, Avalos José L
Department of Chemical and Biological Engineering, Princeton University, Princeton, New Jersey, USA; email:
The Andlinger Center for Energy and the Environment, Department of Molecular Biology, and High Meadows Environmental Institute, Princeton University, Princeton, New Jersey, USA.
Annu Rev Chem Biomol Eng. 2022 Jun 10;13:373-403. doi: 10.1146/annurev-chembioeng-092120-092340. Epub 2022 Mar 23.
Optogenetics has been used in a variety of microbial engineering applications, such as chemical and protein production, studies of cell physiology, and engineered microbe-host interactions. These diverse applications benefit from the precise spatiotemporal control that light affords, as well as its tunability, reversibility, and orthogonality. This combination of unique capabilities has enabled a surge of studies in recent years investigating complex biological systems with completely new approaches. We briefly describe the optogenetic tools that have been developed for microbial engineering, emphasizing the scientific advancements that they have enabled. In particular, we focus on the unique benefits and applications of implementing optogenetic control, from bacterial therapeutics to cybergenetics. Finally, we discuss future research directions, with special attention given to the development of orthogonal multichromatic controls. With an abundance of advantages offered by optogenetics, the future is bright in microbial engineering.
光遗传学已被应用于各种微生物工程领域,如化学品和蛋白质生产、细胞生理学研究以及工程微生物与宿主的相互作用研究。这些不同的应用受益于光所提供的精确时空控制,以及其可调性、可逆性和正交性。这些独特能力的结合使得近年来涌现出大量采用全新方法研究复杂生物系统的研究。我们简要介绍了为微生物工程开发的光遗传学工具,重点阐述了它们所带来的科学进展。特别是,我们关注实施光遗传学控制的独特优势和应用,从细菌治疗到控制论遗传学。最后,我们讨论未来的研究方向,特别关注正交多色控制的发展。鉴于光遗传学具有诸多优势,微生物工程的未来一片光明。