Assessment of Voltage Influence in Carbon Dioxide Fixation Process by a Photo-Bioelectrochemical System under Photoheterotrophy

Bioelectrochemical systems are a promising technology capable of reducing CO<sub>2</sub> emissions, a renewable carbon source, using electroactive microorganisms for this purpose. Purple Phototrophic Bacteria (PPB) use their versatile metabolism to uptake external electrons from an elect...

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Main Authors: Sara Díaz-Rullo Edreira, Silvia Barba, Ioanna A. Vasiliadou, Raúl Molina, Juan Antonio Melero, Juan José Espada, Daniel Puyol, Fernando Martínez
Format: Article
Language:English
Published: MDPI AG 2021-02-01
Series:Microorganisms
Subjects:
Online Access:https://www.mdpi.com/2076-2607/9/3/474
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spelling doaj-879d1bdbd9974d6cbdd4f1fe2f53fd6d2021-02-26T00:01:13ZengMDPI AGMicroorganisms2076-26072021-02-01947447410.3390/microorganisms9030474Assessment of Voltage Influence in Carbon Dioxide Fixation Process by a Photo-Bioelectrochemical System under PhotoheterotrophySara Díaz-Rullo Edreira0Silvia Barba1Ioanna A. Vasiliadou2Raúl Molina3Juan Antonio Melero4Juan José Espada5Daniel Puyol6Fernando Martínez7Department of Chemical and Environmental Technology, ESCET, Universidad Rey Juan Carlos, Móstoles, 28933 Madrid, SpainDepartment of Chemical and Environmental Technology, ESCET, Universidad Rey Juan Carlos, Móstoles, 28933 Madrid, SpainDepartment of Environmental Engineering, Democritus University of Thrace, 67100 Xanthi, GreeceDepartment of Chemical and Environmental Technology, ESCET, Universidad Rey Juan Carlos, Móstoles, 28933 Madrid, SpainDepartment of Chemical and Environmental Technology, ESCET, Universidad Rey Juan Carlos, Móstoles, 28933 Madrid, SpainDepartment of Chemical, Energy and Mechanical Technology, ESCET, Universidad Rey Juan Carlos, Móstoles, 28933 Madrid, SpainDepartment of Chemical and Environmental Technology, ESCET, Universidad Rey Juan Carlos, Móstoles, 28933 Madrid, SpainDepartment of Chemical and Environmental Technology, ESCET, Universidad Rey Juan Carlos, Móstoles, 28933 Madrid, SpainBioelectrochemical systems are a promising technology capable of reducing CO<sub>2</sub> emissions, a renewable carbon source, using electroactive microorganisms for this purpose. Purple Phototrophic Bacteria (PPB) use their versatile metabolism to uptake external electrons from an electrode to fix CO<sub>2</sub>. In this work, the effect of the voltage (from −0.2 to −0.8 V vs. Ag/AgCl) on the metabolic CO<sub>2</sub> fixation of a mixed culture of PPB under photoheterotrophic conditions during the oxidation of a biodegradable carbon source is demonstrated. The minimum voltage to fix CO<sub>2</sub> was between −0.2 and −0.4 V. The Calvin–Benson–Bassham (CBB) cycle is the main electron sink at these voltages. However, lower voltages caused the decrease in the current intensity, reaching a minimum at −0.8 V (−4.75 mA). There was also a significant relationship between the soluble carbon uptake in terms of chemical oxygen demand and the electron consumption for the experiments performed at −0.6 and −0.8 V. These results indicate that the CBB cycle is not the only electron sink and some photoheterotrophic metabolic pathways are also being affected under electrochemical conditions. This behavior has not been tested before in photoheterotrophic conditions and paves the way for the future development of photobioelectrochemical systems under heterotrophic conditions.https://www.mdpi.com/2076-2607/9/3/474bioelectrochemical system (BES)purple phototrophic bacteria (PPB)carbon dioxide fixation
collection DOAJ
language English
format Article
sources DOAJ
author Sara Díaz-Rullo Edreira
Silvia Barba
Ioanna A. Vasiliadou
Raúl Molina
Juan Antonio Melero
Juan José Espada
Daniel Puyol
Fernando Martínez
spellingShingle Sara Díaz-Rullo Edreira
Silvia Barba
Ioanna A. Vasiliadou
Raúl Molina
Juan Antonio Melero
Juan José Espada
Daniel Puyol
Fernando Martínez
Assessment of Voltage Influence in Carbon Dioxide Fixation Process by a Photo-Bioelectrochemical System under Photoheterotrophy
Microorganisms
bioelectrochemical system (BES)
purple phototrophic bacteria (PPB)
carbon dioxide fixation
author_facet Sara Díaz-Rullo Edreira
Silvia Barba
Ioanna A. Vasiliadou
Raúl Molina
Juan Antonio Melero
Juan José Espada
Daniel Puyol
Fernando Martínez
author_sort Sara Díaz-Rullo Edreira
title Assessment of Voltage Influence in Carbon Dioxide Fixation Process by a Photo-Bioelectrochemical System under Photoheterotrophy
title_short Assessment of Voltage Influence in Carbon Dioxide Fixation Process by a Photo-Bioelectrochemical System under Photoheterotrophy
title_full Assessment of Voltage Influence in Carbon Dioxide Fixation Process by a Photo-Bioelectrochemical System under Photoheterotrophy
title_fullStr Assessment of Voltage Influence in Carbon Dioxide Fixation Process by a Photo-Bioelectrochemical System under Photoheterotrophy
title_full_unstemmed Assessment of Voltage Influence in Carbon Dioxide Fixation Process by a Photo-Bioelectrochemical System under Photoheterotrophy
title_sort assessment of voltage influence in carbon dioxide fixation process by a photo-bioelectrochemical system under photoheterotrophy
publisher MDPI AG
series Microorganisms
issn 2076-2607
publishDate 2021-02-01
description Bioelectrochemical systems are a promising technology capable of reducing CO<sub>2</sub> emissions, a renewable carbon source, using electroactive microorganisms for this purpose. Purple Phototrophic Bacteria (PPB) use their versatile metabolism to uptake external electrons from an electrode to fix CO<sub>2</sub>. In this work, the effect of the voltage (from −0.2 to −0.8 V vs. Ag/AgCl) on the metabolic CO<sub>2</sub> fixation of a mixed culture of PPB under photoheterotrophic conditions during the oxidation of a biodegradable carbon source is demonstrated. The minimum voltage to fix CO<sub>2</sub> was between −0.2 and −0.4 V. The Calvin–Benson–Bassham (CBB) cycle is the main electron sink at these voltages. However, lower voltages caused the decrease in the current intensity, reaching a minimum at −0.8 V (−4.75 mA). There was also a significant relationship between the soluble carbon uptake in terms of chemical oxygen demand and the electron consumption for the experiments performed at −0.6 and −0.8 V. These results indicate that the CBB cycle is not the only electron sink and some photoheterotrophic metabolic pathways are also being affected under electrochemical conditions. This behavior has not been tested before in photoheterotrophic conditions and paves the way for the future development of photobioelectrochemical systems under heterotrophic conditions.
topic bioelectrochemical system (BES)
purple phototrophic bacteria (PPB)
carbon dioxide fixation
url https://www.mdpi.com/2076-2607/9/3/474
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