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Process intensification at the expression system level for the production of 1-phosphate aldolase in antibiotic-free E. coli fed-batch cultures
Author(s) -
Martina Pasini,
Alfred FernándezCastané,
Glòria Caminal,
Tim W. Overton,
Pau Ferrer
Publication year - 2022
Publication title -
journal of industrial microbiology and biotechnology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.857
H-Index - 112
eISSN - 1476-5535
pISSN - 1367-5435
DOI - 10.1093/jimb/kuac018
Subject(s) - biology , plasmid , bioprocess , aldolase a , auxotrophy , lac operon , recombinant dna , biochemistry , expression vector , escherichia coli , enzyme , gene , paleontology
To successfully design expression systems for industrial biotechnology and biopharmaceutical applications; plasmid stability, efficient synthesis of the desired product and the use of selection markers acceptable to regulatory bodies are of utmost importance. In this work we demonstrate the application of a set of IPTG-inducible protein expression systems -- harboring different features namely, antibiotic vs auxotrophy marker; two-plasmids vs single plasmid expression system; expression levels of the repressor protein (LacI) and the auxotrophic marker (glyA) -- in high-cell density cultures to evaluate their suitability in bioprocess conditions that resemble industrial settings. Results revealed that the first generation of engineered strain showed a 50% reduction in the production of the model recombinant protein fuculose-1-phosphate aldolase (FucA) compared to the reference system from QIAGEN. The over-transcription of glyA was found to be a major factor responsible for the metabolic burden. The second- and third-generation of expression systems presented an increase in FucA production and advantageous features. In particular, the third-generation expression system is antibiotic-free, autotrophy-selection based and single-plasmid and, is capable to produce FucA at similar levels compared to the original commercial expression system. These new tools open new avenues for high-yield and robust expression of recombinant proteins in E. coli.

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