2020
A Model of Aerobic and Anaerobic Metabolism of Hydrogen in the Extremophile Acidithiobacillus ferrooxidans
KUČERA, Jiří, Jan LOCHMAN, Pavel BOUCHAL, Eva PAKOSTOVA, Kamil MIKULÁŠEK et. al.Základní údaje
Originální název
A Model of Aerobic and Anaerobic Metabolism of Hydrogen in the Extremophile Acidithiobacillus ferrooxidans
Autoři
KUČERA, Jiří (203 Česká republika, garant, domácí), Jan LOCHMAN (203 Česká republika, domácí), Pavel BOUCHAL (203 Česká republika, domácí), Eva PAKOSTOVA, Kamil MIKULÁŠEK (203 Česká republika, domácí), Sabrina HEDRICH, Oldřich JANICZEK (203 Česká republika, domácí), Martin MANDL (203 Česká republika, domácí) a D. Barrie JOHNSON
Vydání
Frontiers in Microbiology, Lausanne, Frontiers Media SA, 2020, 1664-302X
Další údaje
Jazyk
angličtina
Typ výsledku
Článek v odborném periodiku
Obor
10608 Biochemistry and molecular biology
Stát vydavatele
Švýcarsko
Utajení
není předmětem státního či obchodního tajemství
Odkazy
Impakt faktor
Impact factor: 5.640
Kód RIV
RIV/00216224:14310/20:00117533
Organizační jednotka
Přírodovědecká fakulta
UT WoS
000598487900001
Klíčová slova anglicky
Acidithiobacillus; extremophiles; ferric iron reduction; hydrogen metabolism; multi-omics; oxygen reduction
Příznaky
Mezinárodní význam, Recenzováno
Změněno: 17. 2. 2023 22:19, Mgr. Jiří Kučera, Ph.D.
Anotace
V originále
Hydrogen can serve as an electron donor for chemolithotrophic acidophiles, especially in the deep terrestrial subsurface and geothermal ecosystems. Nevertheless, the current knowledge of hydrogen utilization by mesophilic acidophiles is minimal. A multi-omics analysis was applied on Acidithiobacillus ferrooxidans growing on hydrogen, and a respiratory model was proposed. In the model, [NiFe] hydrogenases oxidize hydrogen to two protons and two electrons. The electrons are used to reduce membrane-soluble ubiquinone to ubiquinol. Genetically associated iron-sulfur proteins mediate electron relay from the hydrogenases to the ubiquinone pool. Under aerobic conditions, reduced ubiquinol transfers electrons to either cytochrome aa(3) oxidase via cytochrome bc(1) complex and cytochrome c(4) or the alternate directly to cytochrome bd oxidase, resulting in proton efflux and reduction of oxygen. Under anaerobic conditions, reduced ubiquinol transfers electrons to outer membrane cytochrome c (ferrireductase) via cytochrome bc(1) complex and a cascade of electron transporters (cytochrome c(4), cytochrome c(552), rusticyanin, and high potential iron-sulfur protein), resulting in proton efflux and reduction of ferric iron. The proton gradient generated by hydrogen oxidation maintains the membrane potential and allows the generation of ATP and NADH. These results further clarify the role of extremophiles in biogeochemical processes and their impact on the composition of the deep terrestrial subsurface.
Návaznosti
LM2018127, projekt VaV |
|