A new approach to microbial electrosynthesis is proposed, aimed at producing whole biomass from N2 and inorganic carbon, by electrostimulation of complex microbial communities. On a carbon-based conductor under constant polarization (−0.7 V vs SHE), an electroactive biofilm was enriched with autotrophic nitrogen fixing microorganims and led to biomass synthesis at higher amounts (up to 18 fold), as compared to controls kept at open circuit (OC). After 110 days, the electron transfer had increased by 30-fold, as compared to abiotic conditions. Metagenomics evidenced Nif genes associated with autotrophs (both Archaea and Bacteria) only in polarized biofilms, but not in OC. With this first proof of concept experiment, we propose to call this promising field ‘bioelectrochemical nitrogen fixation’ (e-BNF): a possible way to ‘power’ biological nitrogen fixation, organic carbon storage and soil fertility against desertification, and possibly a new tool to study the development of early prokaryotic life in extreme environments.

Bioelectrochemical Nitrogen fixation (e-BNF): Electro-stimulation of enriched biofilm communities drives autotrophic nitrogen and carbon fixation / L. Rago, S. Zecchin, F. Villa, A. Goglio, A. Corsini, L. Cavalca, A. Schievano. - In: BIOELECTROCHEMISTRY. - ISSN 1567-5394. - 125(2019 Feb), pp. 105-115.

Bioelectrochemical Nitrogen fixation (e-BNF): Electro-stimulation of enriched biofilm communities drives autotrophic nitrogen and carbon fixation

L. Rago
Primo
;
S. Zecchin
Secondo
;
F. Villa;A. Goglio;A. Corsini;L. Cavalca
Penultimo
;
A. Schievano
Ultimo
2019

Abstract

A new approach to microbial electrosynthesis is proposed, aimed at producing whole biomass from N2 and inorganic carbon, by electrostimulation of complex microbial communities. On a carbon-based conductor under constant polarization (−0.7 V vs SHE), an electroactive biofilm was enriched with autotrophic nitrogen fixing microorganims and led to biomass synthesis at higher amounts (up to 18 fold), as compared to controls kept at open circuit (OC). After 110 days, the electron transfer had increased by 30-fold, as compared to abiotic conditions. Metagenomics evidenced Nif genes associated with autotrophs (both Archaea and Bacteria) only in polarized biofilms, but not in OC. With this first proof of concept experiment, we propose to call this promising field ‘bioelectrochemical nitrogen fixation’ (e-BNF): a possible way to ‘power’ biological nitrogen fixation, organic carbon storage and soil fertility against desertification, and possibly a new tool to study the development of early prokaryotic life in extreme environments.
Biological nitrogen fixation; Electro-autotrophy; Microbial electrosynthesis; Artificial photosynthesis; Soil fertility; Biocathode; Haber-Bosch process
Settore AGR/13 - Chimica Agraria
Settore AGR/10 - Costruzioni Rurali e Territorio Agroforestale
Settore AGR/09 - Meccanica Agraria
Settore AGR/16 - Microbiologia Agraria
Settore ICAR/03 - Ingegneria Sanitaria-Ambientale
   Agro-industrial wastewater purification as source of cheap electricity and biohydrogen. Towards Microbial Fuel/Electrolysis Cells scaling-up and field application
   BIOFUELCELLAPP
   MINISTERO DELL'ISTRUZIONE E DEL MERITO
   RBSI14JKU3
feb-2019
Article (author)
File in questo prodotto:
File Dimensione Formato  
1-s2.0-S1567539418303633-main.pdf

accesso aperto

Tipologia: Pre-print (manoscritto inviato all'editore)
Dimensione 12.59 MB
Formato Adobe PDF
12.59 MB Adobe PDF Visualizza/Apri
Bioelectrochemistry_Rago_2018.pdf

accesso riservato

Tipologia: Publisher's version/PDF
Dimensione 3.26 MB
Formato Adobe PDF
3.26 MB Adobe PDF   Visualizza/Apri   Richiedi una copia
Pubblicazioni consigliate

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

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2434/597304
Citazioni
  • ???jsp.display-item.citation.pmc??? 4
  • Scopus 26
  • ???jsp.display-item.citation.isi??? 21
social impact