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Franzen, C. J.

Publications and source records attributed to Franzen, C. J..

2 recordsLinked to original sources

Different growth pattern during microbial electrosynthesis using C. ljungdahlii evolutionary adapted on iron

Clostridium ljungdahlii is an acetogen used for syngas fermentation and capable of microbial electrosynthesis. While C. ljungdahlii has potential for industrial application because of its broad spectrum of metabolites and substrates, including CO2 and CO, the efficiency of extracellular electron uptake in a bioelectrochemical system is low. Therefore, C. ljungdahlii was evolutionary adapted on iron as sole electron source with the aim to improve extracellular electron uptake. Over 38 batches, 95% of the culture was replaced with fresh medium biweekly to retain iron-attached C. ljungdahlii, leading to improved acetate production rates with each cycle. Eight isolated strains were tested on fructose, H2 and CO2, and iron to screen evolved mutants with desired mutations. Compared to the wild-type, growth on fructose was similar and growth on H2 and CO2 was, surprisingly, worse, with only minor differences between isolates. The isolated mutants produced acetate at a rate of 0.14 {+/-} 0.01 mM/d on iron, while the wild-type strain produced 0.75 {+/-} 0.14 mM/d. Whole genome sequencing of isolated mutants revealed 16 mutations, of which seven mutations were found in all isolates. Mostly, membrane proteins were mutated. In a BES reactor, acetate production ceased after day 1. The optical density (OD) of isolate #8 stopped increasing after day 2, reaching 0.122 {+/-} 0.005, followed by the production of formate and ethanol. The wild-type strain continued to grow until day 4, reaching an OD of 0.177 {+/-} 0.003. These results may indicate that C. ljungdahlii slows down growth and produces ethanol as an energy reserve as an evolutionary strategy for survival in an electron-limited environment.

microbiology↗

Heterologous expression of pyruvate formate lyase enhances cell growth of Clostridium ljungdahlii during microbial electrosynthesis

Slow cell growth and low biomass yields are hurdles for gas fermentation by acetogens. Microbial electrosynthesis (MES) utilizes acetogens as biocatalysts to reduce CO2 and produce commodity chemicals using electricity. However, limited electron supply in a bioelectrochemical system (BES) aggravates the poor cell growth of acetogens resulting in low productivities. Formate is a soluble C1 feedstock that can be produced by CO2 reduction (1). Thus, assimilation of formate can unburden the amount of electrons required for MES. Acetobacterium woodii posseses multiple pyruvate formate lyase (PFL) genes that are upregulated during formatotrophic growth. In this study, Clostridium ljugdahlii was engineered to heterologously express a pfl geneset of A. woodii to increase the cell growth of C. ljungdahlii during microbial electrosynthesis. Different combinations of pfl A and pfl B from A. woodii were tested in C. ljungdahlii to find the best working combination under control of Pfdx-riboswitch expression system. Expression of pfl B1 and pflA of A. woodii showed higher maximum OD of C. ljugdahlii under H2:CO2 condition with supplementation of 80 mM sodium formate. More than 40 mM of sodium formate caused significantly longer lag phase but the lag phase could be shortened after adaptation in 80 mM of sodium formate. At the end, the engineered strain showed improved cell growth (ODmax 0.22 {+/-} 0.05) and acetate production (21.8 {+/-} 5.6 mM) during microbial electrosynthesis compared to the control strain (ODmax 0.10 {+/-}0.06 and 10.2 {+/-}2.5 mM acetate). These results will be useful for strain development for microbial electrosynthesis, as well as gas fermentation. HighlightsO_LIDifferent combinations of pyruvate formate lyases (pfl Bs) and pyruvate formate lyase acting enzymes (pfl As) from Acetobacterium woodii were tested to improve the cell growth of Clostridium ljungdahlii during gas fermentation and microbial electrosynthesis C_LIO_LIHeterologous expression of pfl B1 and pfl A using riboswitch expression system improved cell growth of C. ljungdahlii under H2:CO2 condition, even without inducer and formate supplementation. C_LIO_LIHigh concentraton of sodium formate caused longer lag phase, which was shortened by adaptation when pfl from A. woodii was heterologously expressed. C_LIO_LICell growth and acetate production of the engineered C. ljungdahlii strain improved during microbial electrosynthesis C_LI

microbiology↗