Enzymes and genes of taurine and isethionate dissimilation in Paracoccus denitrificans

Author:

Brüggemann Chantal1,Denger Karin1,Cook Alasdair M.1,Ruff Jürgen1

Affiliation:

1. Department of Biology, The University, D-78457 Konstanz, Germany

Abstract

Growth of theα-proteobacteriumParacoccus denitrificansNKNIS with taurine or isethionate as sole source of carbon involves sulfoacetaldehyde acetyltransferase (Xsc), which is presumably encoded by anxscgene in subgroup 3, none of whose gene products has been characterized. The genome of theα-proteobacteriumRhodobacter sphaeroides2.4.1 was interpreted to contain a nine-gene cluster encoding the inducible dissimilation of taurine, and this deduced pathway included a regulator, a tripartite ATP-independent transporter, taurine dehydrogenase (TDH; presumably TauXY) as well as Xsc (subgroup 3), a hypothetical protein and phosphate acetyltransferase (Pta). A similar cluster was found inP. denitrificansNKNIS, in contrast to an analogous cluster encoding an ATP-binding cassette transporter inParacoccus pantotrophus. Inducible TDH, Xsc and Pta were found in extracts of taurine-grown cells of strain NKNIS. TDH oxidized taurine to sulfoacetaldehyde and ammonium ion with cytochromecas electron acceptor. Whereas Xsc and Pta were soluble enzymes, TDH was located in the particulate fraction, where inducible proteins with the expected masses of TauXY (14 and 50 kDa, respectively) were detected by SDS-PAGE. Xsc and Pta were separated by anion-exchange chromatography. Xsc was effectively pure; the molecular mass of the subunit (64 kDa) and the N-terminal amino acid sequence confirmed the identification of thexscgene. Inducible isethionate dehydrogenase (IDH), Xsc and Pta were assayed in extracts of isethionate-grown cells of strain NKNIS. IDH was located in the particulate fraction, oxidized isethionate to sulfoacetaldehyde with cytochromecas electron acceptor and correlated with the expression of a 62 kDa protein. Strain NKNIS excreted sulfite and sulfate during growth with a sulfonate and no sulfite dehydrogenase was detected. There is considerable biochemical, genetic and regulatory complexity in the degradation of these simple molecules.

Publisher

Microbiology Society

Subject

Microbiology

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