| Literature DB >> 31063692 |
Si Cheng1, Xue Liu1, Guozhen Jiang1, Jihua Wu1, Jin-Lai Zhang1, Dengwei Lei1, Ying-Jin Yuan1,2, Jianjun Qiao1,2, Guang-Rong Zhao1,2.
Abstract
Limonene, a plant-derived natural cyclic monoterpene, is widely used in the pharmaceutical, food, and cosmetics industries. The conventional limonene biosynthetic (CLB) pathway in engineered Saccharomyces cerevisiae consists of heterologous limonene synthase (LS) using endogenous substrate geranyl diphosphate (GPP) and suffers from poor production of limonene. In this study, we report on an orthogonal engineering strategy in S. cerevisiae for improving the production of limonene. We reconstructed the orthogonal limonene biosynthetic (OLB) pathway composed of SlNDPS1 that catalyzes IPP and DMAPP to NPP ( cis-GPP) and plant LS that converts NPP to limonene. We find that the OLB pathway is more efficient for production of limonene than the CLB pathway. When expression of the competing gene ERG20 was chromosomally regulated by the glucose-sensing promoter HXT1, the OLB pathway-harboring strain produced 917.7 mg/L of limonene in fed-batch fermentation, a 6-fold increase of the CLB pathway, representing the highest titer reported to date. Orthogonal engineering exhibits great potential for production of terpenoids in S. cerevisiae.Entities:
Keywords: Saccharomyces cerevisiae; limonene biosynthesis; orthogonal engineering; pathway and metabolic engineering; synthetic biology
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Year: 2019 PMID: 31063692 DOI: 10.1021/acssynbio.9b00135
Source DB: PubMed Journal: ACS Synth Biol ISSN: 2161-5063 Impact factor: 5.110