4.6 Article

Electron Accepting Units of the Diheme Cytochrome c TsdA, a Bifunctional Thiosulfate Dehydrogenase/Tetrathionate Reductase

Journal

JOURNAL OF BIOLOGICAL CHEMISTRY
Volume 291, Issue 48, Pages 24804-24818

Publisher

ELSEVIER
DOI: 10.1074/jbc.M116.753863

Keywords

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Funding

  1. Deutsche Forschungsgemeinschaft [Da 351/7-2]
  2. Fundacao para a Ciencia e Tecnologia through iNOVA4Health Research Unit - Fundacao para a Ciencia e a Tecnologia do Ministerio para a Ciencia e Ensino Superior (FCT/MCES) [LISBOA-01-0145-FEDER-007344]
  3. Fonds Europeen de Developpement Economique et Regional (FEDER) [UID/Multi/04551/2013]
  4. MostMicro Unit - FEDER funds through COMPETE2020-Programa Operacional Competitividade e Internacionalizacao (POCI) [LISBOA-01-0145-FEDER-007660]
  5. National Funds through FCT
  6. Aventis Foundation [700051]
  7. Fonds der Chemischen Industrie
  8. Fundacao para a Ciencia e a Tecnologia [SFRH/BPD/79224/2011]
  9. Biotechnology and Biological Sciences Research Council, United Kingdom
  10. Royal Society Leverhulme Trust Senior Research Fellowship
  11. [1493]
  12. Fundação para a Ciência e a Tecnologia [SFRH/BPD/79224/2011] Funding Source: FCT
  13. Biotechnology and Biological Sciences Research Council [1369608] Funding Source: researchfish

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The enzymes of the thiosulfate dehydrogenase (TsdA) family are wide-spread diheme c-type cytochromes. Here, redox carriers were studied mediating the flow of electrons arising from thiosulfate oxidation into respiratory or photosynthetic electron chains. In a number of organisms, including Thiomonas intermedia and Sideroxydans lithotrophicus, the tsdA gene is immediately preceded by tsdB encoding for another diheme cytochrome. Spectrophotometric experiments in combination with enzymatic assays in solution showed that TsdB acts as an effective electron acceptor of TsdA in vitro when TsdA and TsdB originate from the same source organism. Although TsdA covers a range from -300 to +150 mV, TsdB is redox active between -100 and +300 mV, thus enabling electron transfer between these hemoproteins. The three-dimensional structure of the TsdB-TsdA fusion protein from the purple sulfur bacterium Marichromatium purpuratum was solved by X-ray crystallography to 2.75 angstrom resolution providing insights into internal electron transfer. In the oxidized state, this tetraheme cytochrome c contains three hemes with axial His/Met ligation, whereas heme 3 exhibits the His/Cys coordination typical for TsdA active sites. Interestingly, thiosulfate is covalently bound to Cys(330) on heme 3. In several bacteria, including Allochromatium vinosum, TsdB is not present, precluding a general and essential role for electron flow. Both AvTsdA and theMpTsdBA fusion react efficiently in vitro with high potential iron-sulfur protein from A. vinosum (E-m + 350 mV). High potential ironsulfur protein not only acts as direct electron donor to the reaction center in anoxygenic phototrophs but can also be involved in aerobic respiratory chains.

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