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Optimization of Recombinant Membrane Protein Production in the Engineered Escherichia coli Strains SuptoxD and SuptoxR

Thumbnail
Autore
Michou M., Kapsalis C., Pliotas C., Skretas G.
Data
2019
Language
en
DOI
10.1021/acssynbio.9b00120
Soggetto
membrane protein
recombinant protein
Escherichia coli protein
membrane protein
recombinant protein
Article
bacterial gene
biochemical analysis
biotechnological production
controlled study
cytotoxicity
djla gene
Escherichia coli
fluorescence
gene overexpression
genetic engineering
nonhuman
plasmid
priority journal
process optimization
protein folding
rraa gene
structure analysis
biomass
Escherichia coli
gene expression
genetics
Biomass
Escherichia coli
Escherichia coli Proteins
Gene Expression
Membrane Proteins
Recombinant Proteins
American Chemical Society
Mostra tutti i dati dell'item
Abstract
Membrane proteins (MPs) execute a wide variety of critical biological functions in all living organisms and constitute approximately half of current targets for drug discovery. As in the case of soluble proteins, the bacterium Escherichia coli has served as a very popular overexpression host for biochemical/structural studies of membrane proteins as well. Bacterial recombinant membrane protein production, however, is typically hampered by poor cellular accumulation and severe toxicity for the host, which leads to low levels of final biomass and minute volumetric yields. In previous work, we generated the engineered E. coli strains SuptoxD and SuptoxR, which upon coexpression of the effector genes djlA or rraA, respectively, can suppress the cytotoxicity caused by MP overexpression and produce enhanced MP yields. Here, we systematically looked for gene overexpression and culturing conditions that maximize the accumulation of membrane-integrated and well-folded recombinant MPs in these strains. We have found that, under optimal conditions, SuptoxD and SuptoxR achieve greatly enhanced recombinant production for a variety of MP, irrespective of their archaeal, eubacterial, or eukaryotic origin. Furthermore, we demonstrate that the use of these engineered strains enables the production of well-folded recombinant MPs of high quality and at high yields, which are suitable for functional and structural studies. We anticipate that SuptoxD and SuptoxR will become broadly utilized expression hosts for recombinant MP production in bacteria. © 2019 American Chemical Society.
URI
http://hdl.handle.net/11615/76625
Collections
  • Δημοσιεύσεις σε περιοδικά, συνέδρια, κεφάλαια βιβλίων κλπ. [19735]

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