Publication:
Engineering of a highly efficient Escherichia coli strain for mevalonate fermentation through chromosomal integration

dc.contributor.authorWang J.
dc.contributor.authorNiyompanich S.
dc.contributor.authorTai Y.-S.
dc.contributor.authorWang J.
dc.contributor.authorBai W.
dc.contributor.authorMahida P.
dc.contributor.authorGao T.
dc.contributor.authorZhang K.
dc.date.accessioned2021-04-05T03:24:47Z
dc.date.available2021-04-05T03:24:47Z
dc.date.issued2016
dc.date.issuedBE2559
dc.description.abstractChromosomal integration of heterologous metabolic pathways is optimal for industrially relevant fermentation, as plasmidbased fermentation causes extra metabolic burden and genetic instabilities. In this work, chromosomal integration was adapted for the production of mevalonate, which can be readily converted into β-methyl-δ-valerolactone, a monomer for the production of mechanically tunable polyesters. The mevalonate pathway, driven by a constitutive promoter, was integrated into the chromosome of Escherichia coli to replace the native fermentation gene adhE or ldhA. The engineered strains (CMEV-1 and CMEV-2) did not require inducer or antibiotic and showed slightly higher maximal productivities (0.38 to~0.43 g/liter/h) and yields (67.8 to~71.4% of the maximum theoretical yield) than those of the plasmid-based fermentation. Since the glycolysis pathway is the first module for mevalonate synthesis, atpFH deletion was employed to improve the glycolytic rate and the production rate of mevalonate. Shake flask fermentation results showed that the deletion of atpFH in CMEV-1 resulted in a 2.1- fold increase in the maximum productivity. Furthermore, enhancement of the downstream pathway by integrating two copies of the mevalonate pathway genes into the chromosome further improved the mevalonate yield. Finally, our fedbatch fermentation showed that, with deletion of the atpFH and sucA genes and integration of two copies of the mevalonate pathway genes into the chromosome, the engineered strain CMEV-7 exhibited both high maximal productivity (~1.01 g/liter/h) and high yield (86.1% of the maximum theoretical yield, 30 g/liter mevalonate from 61 g/liter glucose after 48 h in a shake flask). © 2016, American Society for Microbiology. All Rights Reserved.
dc.format.mimetypeapplication/pdf
dc.identifier.citationApplied and Environmental Microbiology. Vol 82, No.24 (2016), p.7176-7184
dc.identifier.doi10.1128/AEM.02178-16
dc.identifier.issn992240
dc.identifier.other2-s2.0-84997173327
dc.identifier.urihttps://hdl.handle.net/20.500.14740/5970
dc.rights.holderScopus
dc.subject.otherBottles
dc.subject.otherEscherichia coli
dc.subject.otherGenes
dc.subject.otherIntegration
dc.subject.otherMetabolism
dc.subject.otherProductivity
dc.subject.otherChromosomal integration
dc.subject.otherConstitutive promoters
dc.subject.otherFed-batch fermentation
dc.subject.otherGenetic instability
dc.subject.otherMaximum productivity
dc.subject.otherMetabolic pathways
dc.subject.otherMevalonate pathway
dc.subject.otherShake flask fermentations
dc.subject.otherFermentation
dc.subject.otherBioengineering
dc.subject.otherChromosome
dc.subject.otherFecal coliform
dc.subject.otherFermentation
dc.subject.otherGene expression
dc.subject.otherGlucose
dc.subject.otherMetabolism
dc.subject.otherPlasmid
dc.subject.otherPolymer
dc.subject.otherEscherichia coli
dc.subject.otherGlucose
dc.subject.otherMevalonic acid
dc.subject.otherBacterial chromosome
dc.subject.otherEscherichia coli
dc.subject.otherFermentation
dc.subject.otherGenetics
dc.subject.otherMetabolic engineering
dc.subject.otherMetabolism
dc.subject.otherPlasmid
dc.subject.otherChromosomes, Bacterial
dc.subject.otherEscherichia coli
dc.subject.otherFermentation
dc.subject.otherGlucose
dc.subject.otherMetabolic Engineering
dc.subject.otherMevalonic Acid
dc.subject.otherPlasmids
dc.titleEngineering of a highly efficient Escherichia coli strain for mevalonate fermentation through chromosomal integration
dc.typeArticle
dspace.entity.typePublication
swu.datasource.scopushttps://www.scopus.com/inward/record.uri?eid=2-s2.0-84997173327&doi=10.1128%2fAEM.02178-16&partnerID=40&md5=b951855ffd7b58198ce5e5ce4efb3204

Files