Literature DB >> 7126558

Discrimination of ascorbate-dependent nonenzymatic and enzymatic, membrane-bound reduction of nitric oxide in denitrifying Pseudomonas perfectomarinus.

W G Zumft, K Frunzke.   

Abstract

The marine nitrite-respiring (denitrifying) bacterium, Pseudomonas perfectomarinus, catalyzes by a membrane-bound enzyme the reduction of nitric oxide to nitrous oxide with ascorbic-reduced phenazine methosulfate as electron donor. The entire nitric oxide-reducing capability of a cell-free system was membrane bound and this process was studied with respect to pH and substrate dependency. The enzymatic process was perturbed by an identical nonenzymatic reduction by iron(II) ascorbate in neutral to alkaline aqueous solution. 2 mol nitric oxide and 1 mol ascorbate were consumed per mol nitrous oxide formed. Enzymatic and nonenzymatic processes were discriminated by their differential behavior towards pH and metal-chelating agents. The pH optimum for the enzymatic and nonenzymatic reaction was 5.2 and greater than 7.0, respectively. EDTA (10 mM) inhibited the nonenzymatic reduction completely without interfering with the membrane-bound activity. The nonenzymatic system mimics the reaction of nitric oxide reductase and could serve as a model to study the formation of the N-N bond in denitrification. Enzymatic generation of nitric oxide by cytochrome cd and subsequent nonenzymatic reduction to nitrous oxide simulate an overall quasi-enzymatic nitrous oxide formation by cytochrome cd. The nonenzymatic reduction of nitric oxide might have occurred in previous work due to the ubiquitous use of ascorbate in studies on nitrite respiration and the likelihood of adventitious iron in biological samples.

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Year:  1982        PMID: 7126558     DOI: 10.1016/0005-2728(82)90188-8

Source DB:  PubMed          Journal:  Biochim Biophys Acta        ISSN: 0006-3002


  13 in total

1.  The purification and properties of a cd-cytochrome nitrite reductase from Paracoccus halodenitrificans.

Authors:  R L Mancinelli; S Cronin; L I Hochstein
Journal:  Arch Microbiol       Date:  1986       Impact factor: 2.552

2.  The heme-copper oxidases of Thermus thermophilus catalyze the reduction of nitric oxide: evolutionary implications.

Authors:  A Giuffrè; G Stubauer; P Sarti; M Brunori; W G Zumft; G Buse; T Soulimane
Journal:  Proc Natl Acad Sci U S A       Date:  1999-12-21       Impact factor: 11.205

3.  Nitrous oxide production by Alcaligenes faecalis under transient and dynamic aerobic and anaerobic conditions.

Authors:  S Otte; N G Grobben; L A Robertson; M S Jetten; J G Kuenen
Journal:  Appl Environ Microbiol       Date:  1996-07       Impact factor: 4.792

Review 4.  The biological role of nitric oxide in bacteria.

Authors:  W G Zumft
Journal:  Arch Microbiol       Date:  1993       Impact factor: 2.552

5.  A dissimilatory nitrite reductase in Paracoccus halodenitrificans.

Authors:  M A Grant; L I Hochstein
Journal:  Arch Microbiol       Date:  1984-01       Impact factor: 2.552

Review 6.  Denitrification: production and consumption of nitric oxide.

Authors:  R W Ye; B A Averill; J M Tiedje
Journal:  Appl Environ Microbiol       Date:  1994-04       Impact factor: 4.792

Review 7.  Cell biology and molecular basis of denitrification.

Authors:  W G Zumft
Journal:  Microbiol Mol Biol Rev       Date:  1997-12       Impact factor: 11.056

8.  Inhibition of anaerobic phosphate release by nitric oxide in activated sludge.

Authors:  E W Van Niel; K J Appeldoorn; A J Zehnder; G J Kortstee
Journal:  Appl Environ Microbiol       Date:  1998-08       Impact factor: 4.792

9.  A cytochrome cd1-type nitrite reductase mediates the first step of denitrification in Alcaligenes eutrophus.

Authors:  R Sann; S Kostka; B Friedrich
Journal:  Arch Microbiol       Date:  1994       Impact factor: 2.552

10.  The production and utilization of nitric oxide by a new, denitrifying strain of Pseudomonas aeruginosa.

Authors:  R Vosswinkel; I Neidt; H Bothe
Journal:  Arch Microbiol       Date:  1991       Impact factor: 2.552

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