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February 24, 2026Total Environment Microbiology0 citationsOpen Access

Incubation temperature and urea addition impact bacterial composition and voltage output by electroactive bacteria

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KDKatie L. Duggan DiDominicRJRobert M. JonesSSScott Michael Slone

Key Points

  • This study investigates how diurnal temperature cycles and urea addition influence bacterial communities and voltage outputs in microbial fuel cells.
  • Constructed soil-based microbial fuel cells with urea or water under static and cyclic temperature conditions.
  • Measured voltage output over 30 days.
  • Destructively sampled electrodes to analyze bacterial taxonomy.
  • Applied machine learning to differentiate microbial compositions based on voltage responses.
  • Voltage output was significantly lower in urea-exposed MFCs (692 mV) compared to controls (1011 mV).
  • Cyclic temperature conditions resulted in lower maximum voltage output (p-values of 0.004 and 0.037).
  • Bacterial diversity was significantly higher in control MFCs (p-value < 0.0001) and higher at the cathode under cyclic conditions (p-value = 0.003).
  • Machine learning models identified contamination with 99% accuracy.

Abstract

• Microbial fuel cells (MFC) can act as biosensors via electrochemical signal shifts. • Urea contamination reduces voltage output and diversity in soil-based MFCs. • Diurnal temperature cycles have minimal impact on voltage or community structure. • Bacterial diversity is higher in controls (no urea) and under cyclic temperatures. • Machine learning identified contamination in tMFCs with 99% accuracy. Soil based terrestrial microbial fuel cells (tMFCs), traditionally used as batteries, could also serve as biosensors whereby the addition of an anthropogenic compound changes their voltage output. The ability and rate of electron transmission at the anode surface shifts based on external stimuli (e.g., temperature or contaminant concentration and frequency). This study investigates microbial response to diurnal temperature cycles and whether the shifts obscure voltage changes induced by the addition of urea. Replicate tMFCs were constructed with either 70 mg/ml urea or water and incubated at either a 25°C static or 10°C to 25°C cycling temperature regime. Voltage was measured for 30 days and the tMFC electrodes were destructively sampled to determine bacterial taxonomy. Though voltage of all tMFCs increased throughout the incubation period, those exposed to urea had an output of 692 mV compared to 1011 mV observed in the controls. In both control and urea tMFCs, maximum voltage output during peak performance was significantly greater in the static temperature incubation than in cyclic (p-value = 0.004 and 0.037, respectively). Bacterial diversity was significantly higher (p-value < 0.0001) in the control tMFCs and was significantly higher (p-value = 0.003) at the cathode surface under cyclic temperature conditions. A previously trained machine learning model was able to accurately discern control vs. urea tMFCs despite the diurnal temperature conditions with 99% accuracy. These data show that diurnal temperature fluctuations had minimal impact on the bacterial community, and the presence of a contaminant was a strong predictor of tMFC community composition.

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Cite This Study

DiDominic et al. (2026) studied this question.

synapsesocial.com/papers/699d401ade8e28729cf65192https://doi.org/10.1016/j.temicr.2026.100071
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