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Interaction of Periplasmic Fab Production and Intracellular Redox Balance in Affects Product Yield

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Journal ACS Synth Biol
Date 2022 Jan 18
PMID 35041397
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Abstract

Antibody fragments such as Fab's require the formation of disulfide bonds to achieve a proper folding state. During their recombinant, periplasmic expression in , oxidative folding is mediated by the DsbA/DsbB system in concert with ubiquinone. Thereby, overexpression of Fab's is linked to the respiratory chain, which is not only immensely important for the cell's energy household but also known as a major source of reactive oxygen species. However, the effects of an increased oxidative folding demand and the consequently required electron flux via ubiquinone on the host cell have not been characterized so far. Here, we show that Fab expression in BL21(DE3) interfered with the intracellular redox balance, thereby negatively impacting host cell performance. Production of four different model Fab's in lab-scale fed-batch cultivations led to increased oxygen consumption rates and strong cell lysis. An RNA sequencing analysis revealed transcription activation of the oxidative stress-responsive gene in the Fab-producing strains. We attributed this to the accumulation of intracellular superoxide, which was measured using flow cytometry. An exogenously supplemented ubiquinone analogue improved Fab yields up to 82%, indicating that partitioning of the quinone pool between aerobic respiration and oxidative folding limited ubiquinone availability and hence disulfide bond formation capacity. Combined, our results provide a more in-depth understanding of the profound effects that periplasmic Fab expression and in particular disulfide bond formation has on the host cell. Thereby, we show new possibilities to elaborate cell engineering and process strategies for improved host cell fitness and process outcome.

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References
1.
Nitzschke A, Bettenbrock K . All three quinone species play distinct roles in ensuring optimal growth under aerobic and fermentative conditions in E. coli K12. PLoS One. 2018; 13(4):e0194699. PMC: 5882134. DOI: 10.1371/journal.pone.0194699. View

2.
Pomposiello P, Bennik M, Demple B . Genome-wide transcriptional profiling of the Escherichia coli responses to superoxide stress and sodium salicylate. J Bacteriol. 2001; 183(13):3890-902. PMC: 95271. DOI: 10.1128/JB.183.13.3890-3902.2001. View

3.
Feige M, Hendershot L, Buchner J . How antibodies fold. Trends Biochem Sci. 2009; 35(4):189-98. PMC: 4716677. DOI: 10.1016/j.tibs.2009.11.005. View

4.
Kim D, Paggi J, Park C, Bennett C, Salzberg S . Graph-based genome alignment and genotyping with HISAT2 and HISAT-genotype. Nat Biotechnol. 2019; 37(8):907-915. PMC: 7605509. DOI: 10.1038/s41587-019-0201-4. View

5.
Tu B, Weissman J . The FAD- and O(2)-dependent reaction cycle of Ero1-mediated oxidative protein folding in the endoplasmic reticulum. Mol Cell. 2002; 10(5):983-94. DOI: 10.1016/s1097-2765(02)00696-2. View