OptoLacI: optogenetically engineered lactose operon repressor LacI responsive to light instead of IPTG

Author:

Liu Meizi123,Li Zuhui124,Huang Jianfeng12,Yan Junjun125,Zhao Guoping26,Zhang Yanfei12ORCID

Affiliation:

1. Key Laboratory of Engineering Biology for Low-Carbon Manufacturing, Tianjin Institute of Industrial Biotechnology, Chinese Academy of Sciences , Tianjin  300308 , China

2. National Center of Technology Innovation for Synthetic Biology , Tianjin  300308 , China

3. Haihe Laboratory of Synthetic Biology , Tianjin  300308 , China

4. School of Biological Engineering, Tianjin University of Science & Technology , Tianjin  300457 , China

5. College of Life Sciences, University of Chinese Academy of Sciences , Beijing  101408 , China

6. CAS-Key Laboratory of Synthetic Biology, CAS Center for Excellence in Molecular Plant Sciences, Institute of Plant Physiology and Ecology, Chinese Academy of Sciences , Shanghai  200032 , China

Abstract

Abstract Optogenetics’ advancement has made light induction attractive for controlling biological processes due to its advantages of fine-tunability, reversibility, and low toxicity. The lactose operon induction system, commonly used in Escherichia coli, relies on the binding of lactose or isopropyl β-d-1-thiogalactopyranoside (IPTG) to the lactose repressor protein LacI, playing a pivotal role in controlling the lactose operon. Here, we harnessed the light-responsive light-oxygen-voltage 2 (LOV2) domain from Avena sativa phototropin 1 as a tool for light control and engineered LacI into two light-responsive variants, OptoLacIL and OptoLacID. These variants exhibit direct responsiveness to light and darkness, respectively, eliminating the need for IPTG. Building upon OptoLacI, we constructed two light-controlled E. coli gene expression systems, OptoE.coliLight system and OptoE.coliDark system. These systems enable bifunctional gene expression regulation in E. coli through light manipulation and show superior controllability compared to IPTG-induced systems. We applied the OptoE.coliDark system to protein production and metabolic flux control. Protein production levels are comparable to those induced by IPTG. Notably, the titers of dark-induced production of 1,3-propanediol (1,3-PDO) and ergothioneine exceeded 110% and 60% of those induced by IPTG, respectively. The development of OptoLacI will contribute to the advancement of the field of optogenetic protein engineering, holding substantial potential applications across various fields.

Funder

National Key Research and Development Program of China

Tianjin Synthetic Biotechnology Innovation Capacity Improvement Project

Major Project of Haihe Laboratory of Synthetic Biology

Publisher

Oxford University Press (OUP)

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