Homoacetogenesis and microbial community composition are shaped by pH and total sulfide concentration

Summary Biological CO2 sequestration through acetogenesis with H2 as electron donor is a promising technology to reduce greenhouse gas emissions. Today, a major issue is the presence of impurities such as hydrogen sulfide (H2S) in CO2 containing gases, as they are known to inhibit acetogenesis in CO...

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Main Authors: Eleftheria Ntagia, Ioanna Chatzigiannidou, Adam J. Williamson, Jan B. A. Arends, Korneel Rabaey
Format: Article
Language:English
Published: Wiley 2020-07-01
Series:Microbial Biotechnology
Online Access:https://doi.org/10.1111/1751-7915.13546
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spelling doaj-d36c06565a6844ddba6f798652ce91642021-07-23T03:15:35ZengWileyMicrobial Biotechnology1751-79152020-07-011341026103810.1111/1751-7915.13546Homoacetogenesis and microbial community composition are shaped by pH and total sulfide concentrationEleftheria Ntagia0Ioanna Chatzigiannidou1Adam J. Williamson2Jan B. A. Arends3Korneel Rabaey4Center for Microbial Ecology and Technology (CMET) Ghent University Coupure Links 653 Ghent 9000BelgiumCenter for Microbial Ecology and Technology (CMET) Ghent University Coupure Links 653 Ghent 9000BelgiumCenter for Microbial Ecology and Technology (CMET) Ghent University Coupure Links 653 Ghent 9000BelgiumCenter for Microbial Ecology and Technology (CMET) Ghent University Coupure Links 653 Ghent 9000BelgiumCenter for Microbial Ecology and Technology (CMET) Ghent University Coupure Links 653 Ghent 9000BelgiumSummary Biological CO2 sequestration through acetogenesis with H2 as electron donor is a promising technology to reduce greenhouse gas emissions. Today, a major issue is the presence of impurities such as hydrogen sulfide (H2S) in CO2 containing gases, as they are known to inhibit acetogenesis in CO2‐based fermentations. However, exact values of toxicity and inhibition are not well‐defined. To tackle this uncertainty, a series of toxicity experiments were conducted, with a mixed homoacetogenic culture, total dissolved sulfide concentrations ([TDS]) varied between 0 and 5 mM and pH between 5 and 7. The extent of inhibition was evaluated based on acetate production rates and microbial growth. Maximum acetate production rates of 0.12, 0.09 and 0.04 mM h‐1 were achieved in the controls without sulfide at pH 7, pH 6 and pH 5. The half‐maximal inhibitory concentration (IC50qAc) was 0.86, 1.16 and 1.36 mM [TDS] for pH 7, pH 6 and pH 5. At [TDS] above 3.33 mM, acetate production and microbial growth were completely inhibited at all pHs. 16S rRNA gene amplicon sequencing revealed major community composition transitions that could be attributed to both pH and [TDS]. Based on the observed toxicity levels, treatment approaches for incoming industrial CO2 streams can be determined.https://doi.org/10.1111/1751-7915.13546
collection DOAJ
language English
format Article
sources DOAJ
author Eleftheria Ntagia
Ioanna Chatzigiannidou
Adam J. Williamson
Jan B. A. Arends
Korneel Rabaey
spellingShingle Eleftheria Ntagia
Ioanna Chatzigiannidou
Adam J. Williamson
Jan B. A. Arends
Korneel Rabaey
Homoacetogenesis and microbial community composition are shaped by pH and total sulfide concentration
Microbial Biotechnology
author_facet Eleftheria Ntagia
Ioanna Chatzigiannidou
Adam J. Williamson
Jan B. A. Arends
Korneel Rabaey
author_sort Eleftheria Ntagia
title Homoacetogenesis and microbial community composition are shaped by pH and total sulfide concentration
title_short Homoacetogenesis and microbial community composition are shaped by pH and total sulfide concentration
title_full Homoacetogenesis and microbial community composition are shaped by pH and total sulfide concentration
title_fullStr Homoacetogenesis and microbial community composition are shaped by pH and total sulfide concentration
title_full_unstemmed Homoacetogenesis and microbial community composition are shaped by pH and total sulfide concentration
title_sort homoacetogenesis and microbial community composition are shaped by ph and total sulfide concentration
publisher Wiley
series Microbial Biotechnology
issn 1751-7915
publishDate 2020-07-01
description Summary Biological CO2 sequestration through acetogenesis with H2 as electron donor is a promising technology to reduce greenhouse gas emissions. Today, a major issue is the presence of impurities such as hydrogen sulfide (H2S) in CO2 containing gases, as they are known to inhibit acetogenesis in CO2‐based fermentations. However, exact values of toxicity and inhibition are not well‐defined. To tackle this uncertainty, a series of toxicity experiments were conducted, with a mixed homoacetogenic culture, total dissolved sulfide concentrations ([TDS]) varied between 0 and 5 mM and pH between 5 and 7. The extent of inhibition was evaluated based on acetate production rates and microbial growth. Maximum acetate production rates of 0.12, 0.09 and 0.04 mM h‐1 were achieved in the controls without sulfide at pH 7, pH 6 and pH 5. The half‐maximal inhibitory concentration (IC50qAc) was 0.86, 1.16 and 1.36 mM [TDS] for pH 7, pH 6 and pH 5. At [TDS] above 3.33 mM, acetate production and microbial growth were completely inhibited at all pHs. 16S rRNA gene amplicon sequencing revealed major community composition transitions that could be attributed to both pH and [TDS]. Based on the observed toxicity levels, treatment approaches for incoming industrial CO2 streams can be determined.
url https://doi.org/10.1111/1751-7915.13546
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