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April 12, 2026GCB Bioenergy0 citationsOpen Access

Biowaste Composting as a Sustainable Platform for Bacterial CO Production: Evidence From cooS Gene Expression and Microbial Community Profiling

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KSKarolina SobierajAUAneta UrbanekZSZofia Steczkiewicz

Key Points

  • The study aims to characterize microbial communities and investigate cooS gene expression related to CO production during biowaste composting.
  • Conducted composting experiments at mesophilic (45°C) and thermophilic (70°C) temperatures.
  • Analyzed microbial community diversity and CO production during the composting process.
  • Performed cooS gene expression analysis to assess CODH enzyme activity.
  • Confirmed higher CO production under thermophilic conditions compared to mesophilic conditions.
  • Observed a significant increase in cooS expression at 45°C, with an 11,016-fold rise within a week.
  • Identified a diverse microbial community at 45°C, including known CODH producers.

Abstract

ABSTRACT Current industrial carbon monoxide (CO) production depends mainly on fossil fuels. Composting offers a sustainable alternative, where CO can be produced by compost‐inhabiting bacteria synthesizing the CO dehydrogenase (CODH) enzyme. This study aimed to characterize the microbial community and, for the first time, to investigate the expression of the cooS gene encoding CODH during biowaste composting under laboratory conditions. Composting was performed at mesophilic (45°C) and thermophilic (70°C) temperatures to evaluate CO production under conditions known to stimulate elevated CO emissions. The results confirmed biotechnological potential for microbial CO production within the mesophilic range, potentially reducing costs compared with thermophilic composting. Although the study revealed higher CO concentrations under thermophilic conditions (average 208 ppm; maximum 818 ppm) compared to mesophilic conditions (average 102 ppm; maximum 499 ppm), the compost obtained at 45°C exhibited a more diverse and balanced microbial community than that observed at higher temperatures. In the 45°C compost, bacteria previously reported as CODH or CO producers were identified, including Bacillus licheniformis and representatives of Alphaproteobacteria and Streptomyces . The cooS gene expression analysis showed a significant increase during composting at 45°C, reaching an 11,016‐fold rise within the week. The expression was likely induced by CO and not inhibited by oxygen. This first report demonstrating cooS expression during composting confirmed the biological origin of CO under mesophilic conditions through the activity of anaerobic Ni, Fe‐CODH.

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Cite This Study

Sobieraj et al. (2026) studied this question.

synapsesocial.com/papers/69db380f4fe01fead37c6270https://doi.org/10.1111/gcbb.70116
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