A Single-Plasmid Genome Editing System for Metabolic Engineering of Lactobacillus casei

Genome engineering of Lactobacillus casei, an important industrial microorganism for dairy fermented product, currently relies on inefficient and time-consuming double crossover events. In this study, we developed an easy-to-use genome engineering strategy for metabolic engineering of L. casei for a...

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Main Authors: Yongping Xin, Tingting Guo, Yingli Mu, Jian Kong
Format: Article
Language:English
Published: Frontiers Media S.A. 2018-12-01
Series:Frontiers in Microbiology
Subjects:
Online Access:https://www.frontiersin.org/article/10.3389/fmicb.2018.03024/full
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spelling doaj-e3e33606262c4e8cb7b2b1e833fb1aa82020-11-25T00:30:01ZengFrontiers Media S.A.Frontiers in Microbiology1664-302X2018-12-01910.3389/fmicb.2018.03024425848A Single-Plasmid Genome Editing System for Metabolic Engineering of Lactobacillus caseiYongping XinTingting GuoYingli MuJian KongGenome engineering of Lactobacillus casei, an important industrial microorganism for dairy fermented product, currently relies on inefficient and time-consuming double crossover events. In this study, we developed an easy-to-use genome engineering strategy for metabolic engineering of L. casei for acetoin production. Plasmid pMSP456-Cre, that contains prophage recombinase operon LCABL_13040-50-60 driven by the nisin-controlled inducible expression (NICE) system and the site-specific recombinase gene cre under the control of the promoter of the lactose operon from L. casei, was constructed. Using this plasmid, integration of a hicD3 gene linear donor cassette (up-lox66-cat-lox71-down) was catalyzed by the LCABL_13040-50-60 recombinase and the cat gene was excised by the Cre/lox system with an efficiency of 60%. To demonstrate this system for sequential and iterative knocking out genes in L. casei, another three genes (pflB, ldh and pdhC) related to acetoin production were deleted with the efficiencies of 60, 40, and 60%, respectively. The yielding quadruple mutant could produce a ∼18-fold higher amount of acetoin than the wild-type and converted 59.8% of glucose to acetoin in aerobic. Therefore, these results proved this simple genome engineering strategy have potential in metabolic engineering of L. casei for production of high value-added metabolites.https://www.frontiersin.org/article/10.3389/fmicb.2018.03024/fullLactobacillus caseiacetoinNICE systemlactose operonmetabolic engineering
collection DOAJ
language English
format Article
sources DOAJ
author Yongping Xin
Tingting Guo
Yingli Mu
Jian Kong
spellingShingle Yongping Xin
Tingting Guo
Yingli Mu
Jian Kong
A Single-Plasmid Genome Editing System for Metabolic Engineering of Lactobacillus casei
Frontiers in Microbiology
Lactobacillus casei
acetoin
NICE system
lactose operon
metabolic engineering
author_facet Yongping Xin
Tingting Guo
Yingli Mu
Jian Kong
author_sort Yongping Xin
title A Single-Plasmid Genome Editing System for Metabolic Engineering of Lactobacillus casei
title_short A Single-Plasmid Genome Editing System for Metabolic Engineering of Lactobacillus casei
title_full A Single-Plasmid Genome Editing System for Metabolic Engineering of Lactobacillus casei
title_fullStr A Single-Plasmid Genome Editing System for Metabolic Engineering of Lactobacillus casei
title_full_unstemmed A Single-Plasmid Genome Editing System for Metabolic Engineering of Lactobacillus casei
title_sort single-plasmid genome editing system for metabolic engineering of lactobacillus casei
publisher Frontiers Media S.A.
series Frontiers in Microbiology
issn 1664-302X
publishDate 2018-12-01
description Genome engineering of Lactobacillus casei, an important industrial microorganism for dairy fermented product, currently relies on inefficient and time-consuming double crossover events. In this study, we developed an easy-to-use genome engineering strategy for metabolic engineering of L. casei for acetoin production. Plasmid pMSP456-Cre, that contains prophage recombinase operon LCABL_13040-50-60 driven by the nisin-controlled inducible expression (NICE) system and the site-specific recombinase gene cre under the control of the promoter of the lactose operon from L. casei, was constructed. Using this plasmid, integration of a hicD3 gene linear donor cassette (up-lox66-cat-lox71-down) was catalyzed by the LCABL_13040-50-60 recombinase and the cat gene was excised by the Cre/lox system with an efficiency of 60%. To demonstrate this system for sequential and iterative knocking out genes in L. casei, another three genes (pflB, ldh and pdhC) related to acetoin production were deleted with the efficiencies of 60, 40, and 60%, respectively. The yielding quadruple mutant could produce a ∼18-fold higher amount of acetoin than the wild-type and converted 59.8% of glucose to acetoin in aerobic. Therefore, these results proved this simple genome engineering strategy have potential in metabolic engineering of L. casei for production of high value-added metabolites.
topic Lactobacillus casei
acetoin
NICE system
lactose operon
metabolic engineering
url https://www.frontiersin.org/article/10.3389/fmicb.2018.03024/full
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