Hydrocarbons released during oil spills are persistent in marine sediments due to the absence of suitable electron acceptors below the oxic zone. Here, we investigated an alternative bioremediation strategy to remove toluene, a model monoaromatic hydrocarbon, using a bioanode. Bioelectrochemical reactors were inoculated with sediment collected from a hydrocarbon-contaminated marine site, and anodes were polarized at 0 mV and +300 mV (versus an Ag/AgCl [3MKCl] reference electrode). The degradation of toluene was directly linked to current generation of up to 301 mA m-2 and 431 mA m-2 for the bioanodes polarized at 0 mV and +300 mV, respectively. Peak currents decreased over time even after periodic spiking with toluene. The monitoring of sulfate concentrations during bioelectrochemical experiments suggested that sulfur metabolism was involved in toluene degradation at bioanodes. 16S rRNA gene-based Illumina sequencing of the bulk anolyte and anode samples revealed enrichment with electrocatalytically active microorganisms, toluene degraders, and sulfate-reducing microorganisms. Quantitative PCR targeting the α-subunit of the dissimilatory sulfite reductase (encoded by dsrA) and the α-subunit of the benzylsuccinate synthase (encoded by bssA) confirmed these findings. In particular, members of the family Desulfobulbaceae were enriched concomitantly with current production and toluene degradation. Based on these observations, we propose two mechanisms for bioelectrochemical toluene degradation: (i) direct electron transfer to the anode and/or (ii) sulfide-mediated electron transfer.

Anodes stimulate anaerobic toluene degradation via sulfur cycling in marine sediments / DAGHIO, MATTEO; Vaiopoulou, E; Patil, S; Suárez Suárez, A; Head, I; FRANZETTI, ANDREA; Rabaey, K.. - In: APPLIED AND ENVIRONMENTAL MICROBIOLOGY. - ISSN 0099-2240. - 82:(2016), pp. AEM.02250-15.297-AEM.02250-15.307. [10.1128/AEM.02250-15]

Anodes stimulate anaerobic toluene degradation via sulfur cycling in marine sediments

DAGHIO, MATTEO;
2016

Abstract

Hydrocarbons released during oil spills are persistent in marine sediments due to the absence of suitable electron acceptors below the oxic zone. Here, we investigated an alternative bioremediation strategy to remove toluene, a model monoaromatic hydrocarbon, using a bioanode. Bioelectrochemical reactors were inoculated with sediment collected from a hydrocarbon-contaminated marine site, and anodes were polarized at 0 mV and +300 mV (versus an Ag/AgCl [3MKCl] reference electrode). The degradation of toluene was directly linked to current generation of up to 301 mA m-2 and 431 mA m-2 for the bioanodes polarized at 0 mV and +300 mV, respectively. Peak currents decreased over time even after periodic spiking with toluene. The monitoring of sulfate concentrations during bioelectrochemical experiments suggested that sulfur metabolism was involved in toluene degradation at bioanodes. 16S rRNA gene-based Illumina sequencing of the bulk anolyte and anode samples revealed enrichment with electrocatalytically active microorganisms, toluene degraders, and sulfate-reducing microorganisms. Quantitative PCR targeting the α-subunit of the dissimilatory sulfite reductase (encoded by dsrA) and the α-subunit of the benzylsuccinate synthase (encoded by bssA) confirmed these findings. In particular, members of the family Desulfobulbaceae were enriched concomitantly with current production and toluene degradation. Based on these observations, we propose two mechanisms for bioelectrochemical toluene degradation: (i) direct electron transfer to the anode and/or (ii) sulfide-mediated electron transfer.
2016
82
297
307
DAGHIO, MATTEO; Vaiopoulou, E; Patil, S; Suárez Suárez, A; Head, I; FRANZETTI, ANDREA; Rabaey, K.
File in questo prodotto:
File Dimensione Formato  
10281-94839.pdf

Accesso chiuso

Licenza: Tutti i diritti riservati
Dimensione 1.27 MB
Formato Adobe PDF
1.27 MB Adobe PDF   Richiedi una copia
Applied and Environmental Microbiology-2015-Daghio-297.full.pdf

Accesso chiuso

Licenza: Tutti i diritti riservati
Dimensione 1.27 MB
Formato Adobe PDF
1.27 MB Adobe PDF   Richiedi una copia

I documenti in FLORE sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificatore per citare o creare un link a questa risorsa: https://hdl.handle.net/2158/1380094
Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus 73
  • ???jsp.display-item.citation.isi??? 64
social impact