Utilize este identificador para referenciar este registo: https://hdl.handle.net/1822/77251

TítuloAcetate degradation at low pH by the moderately acidophilic sulfate reducer Acididesulfobacillus acetoxydans gen. nov. sp. nov.
Autor(es)Sánchez-Andrea, Irene
van der Graaf, Charlotte M.
Hornung, Bastian
Bale, Nicole J.
Jarzembowska, Monika
Sousa, Diana Zita Machado
Rijpstra, W. Irene C.
Sinninghe Damsté, Jaap S.
Stams, Alfons Johannes Maria
Palavras-chaveacid rock/mine drainage
acidophiles
sulfate-reducing bacteria
Acididesulfobacillus
Desulfosporosinus
Desulfitobacterium
acetate oxidation
bioremediation
acid rock
mine drainage
Data4-Mar-2022
EditoraFrontiers Media S.A.
RevistaFrontiers in Microbiology
CitaçãoSánchez-Andrea, Irene; van der Graaf, Charlotte M.; Hornung, Bastian; Bale, Nicole J.; Jarzembowska, Monika; Sousa, Diana Z.; Rijpstra, W. Irene C.; Sinninghe Damsté, Jaap S.; Stams, A. J. M., Acetate degradation at low pH by the moderately acidophilic sulfate reducer Acididesulfobacillus acetoxydans gen. nov. sp. nov.. Frontiers in Microbiology, 13(816605), 2022
Resumo(s)In acid drainage environments, biosulfidogenesis by sulfate-reducing bacteria (SRB) attenuates the extreme conditions by enabling the precipitation of metals as their sulfides, and the neutralization of acidity through proton consumption. So far, only a handful of moderately acidophilic SRB species have been described, most of which are merely acidotolerant. Here, a novel species within a novel genus of moderately acidophilic SRB is described, Acididesulfobacillus acetoxydans gen. nov. sp. nov. strain INE, able to grow at pH 3.8. Bioreactor studies with strain INE at optimum (5.0) and low (3.9) pH for growth showed that strain INE alkalinized its environment, and that this was more pronounced at lower pH. These studies also showed the capacity of strain INE to completely oxidize organic acids to CO2, which is uncommon among acidophilic SRB. Since organic acids are mainly in their protonated form at low pH, which increases their toxicity, their complete oxidation may be an acid stress resistance mechanism. Comparative proteogenomic and membrane lipid analysis further indicated that the presence of saturated ether-bound lipids in the membrane, and their relative increase at lower pH, was a protection mechanism against acid stress. Interestingly, other canonical acid stress resistance mechanisms, such as a Donnan potential and increased active charge transport, did not appear to be active.
TipoArtigo
DescriçãoThe Supplementary Material for this article can be found online at: https://www.frontiersin.org/articles/10.3389/fmicb.2022.816605/full#supplementary-material
URIhttps://hdl.handle.net/1822/77251
DOI10.3389/fmicb.2022.816605
ISSN1664-302X
Versão da editorahttp://journal.frontiersin.org/journal/microbiology
Arbitragem científicayes
AcessoAcesso aberto
Aparece nas coleções:CEB - Publicações em Revistas/Séries Internacionais / Publications in International Journals/Series

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