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Winkelhorst, M.

Publications and source records attributed to Winkelhorst, M..

2 recordsLinked to original sources

Linking structure to function in high performing electrosynthetic biofilm communities

Biofilm-based microbial electrosynthesis (MES) is a promising technology that converts CO2 into industrially relevant organic compounds using renewable energy sources. The highest performing MES systems reported to date consist of biofilm-driven microbial communities. However, for a successful deployment of this technology, we still need to overcome key challenges, including the long colonization time of the biocathode and the difficulty of controlling the product profile. To address these challenges, it is crucial to better understand the key microbial components responsible for the desired metabolic products, and how they assemble and function as a community. In this study, we conducted an in-depth characterisation of three high-performing mixed MES communities using metagenomics, metaproteomics and advanced analysis of metagenome-derived metabolic networks. Our findings identified Eubacterium limosum, Sporomusa sphaeroides and Clostridium aromativorans as key contributors to the production of acetate, butyrate and caproate via the Wood-Ljungdahl and the reverse {beta}-oxidation pathways. A higher production of butyrate and caproate was observed in reactors with higher abundance of C. aromativorans, an organism only recently discovered and never reported in gas-fermenting systems before. The recovered genome of C. aromativorans, reconstructed in a single circular fragment, provides a more comprehensive genomic representation than the current reference. In addition, we found genes related to lactate and ethanol production from acetyl-CoA in the metagenomes, including proteomic evidence for lactate production. This study provides key insights into the microbial players, metabolic processes and microbial community features driving product formation in biofilm-based MES, bringing this technology closer to industrial application.

systems biology↗

Microbial Electrosynthesis from CO2 reaches Productivity of 1 Syngas and Chain Elongation Fermentations

Microbial electrosynthesis allows the electrochemical upgrading of CO2. However, higher productivities and energy efficiencies are needed to reach a viability that can make the technology transformative. Here we show how a biofilm-based microbial porous cathode in a directed flow-through electrochemical system can continuously reduce CO2 to even-chain C2-C6 carboxylic acids during 248 days. We demonstrate a 3-fold higher biofilm concentration, volumetric current density, and productivity than the state of the art, up to a new record of -35 kA m-3cathode and 69 kgC m-3cathode day-1, at 60-97% and 30-35% faradaic and energy efficiencies, respectively. Most notably, the volumetric productivity resembles those achieved in lab-scale and industrial syngas (CO-H2-CO2) fermentation and chain elongation fermentation. This work highlights key design parameters for efficient electricity-driven microbial CO2 reduction. There is need and room to improve the rates of electrode colonization and microbe-specific kinetics to scale-up the technology. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=114 SRC="FIGDIR/small/579422v1_ufig1.gif" ALT="Figure 1"> View larger version (70K): org.highwire.dtl.DTLVardef@259668org.highwire.dtl.DTLVardef@1b5adedorg.highwire.dtl.DTLVardef@ada588org.highwire.dtl.DTLVardef@4eb23a_HPS_FORMAT_FIGEXP M_FIG C_FIG

bioengineering↗