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March 16, 2026Microbes and Environments0 citationsOpen Access

Biodegradation Mechanism of Thiophene by Candida tropicalis through Electric Field-assisted Technology

LHLin HuangJLJ Y LiBZBohan Zhai

Key Points

  • The research aims to explore the biodegradation capabilities of Candida tropicalis under electric field-assisted conditions.
  • Utilized electric field-assisted screening (EFAS) to identify capable strains of Candida tropicalis.
  • Examined cell density distribution within an electric field.
  • Measured cell migration toward the cathode under varying electric field intensities.
  • Evaluated thiophene degradation efficiency after specified reaction times.
  • Cell concentration peaked near the cathode at 0.6 V cm–1 after 10 minutes.
  • Thiophene degradation efficiency reached 91.4% within 4 hours for strain CZ60.
  • Findings establish a theoretical basis for using EFAS in identifying biodegradable microorganisms.

Abstract

Electric field-assisted (EFA) technology has been extensively employed in the realm of biodegradation. Candida tropicalis, with a high capability for degrading thiophene, has been successfully screened through electric field-assisted screening (EFAS). The present study investigated the cell density distribution of C. tropicalis at various locations within an electric field. Under an electric field, cells migrated and accumulated toward the cathode plate. Under a loading electric field intensity of 0.6 V cm–1, the concentration of cells peaked near the cathode plate and remained stable with a loading time of 10 min. Furthermore, the thiophene degradation efficiency of strain CZ60, which was screened under optimal loading voltage and time conditions, reached 91.4% after a 4-h reaction. These results establish a solid theoretical foundation for utilizing EFAS to identify biodegradable microorganisms, with potential implications for environmental remediation strategies.

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Cite This Study

Huang et al. (2026) studied this question.

synapsesocial.com/papers/69b79df38166e15b153ab241https://doi.org/10.1264/jsme2.me25081
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