Literature DB >> 21058101

A new ¹⁵N tracer method to determine N turnover and denitrification of Pseudomonas stutzeri.

Astrid Meyer1, Jessica Bergmann, Klaus Butterbach-Bahl, Nicolas Bruggemann.   

Abstract

Although denitrification is one of the key processes of ecosystem N turnover, the understanding of the regulation of the denitrification pathway is still limited due to the lack of feasible methods for the quantification of N₂ formation. Based on the previously developed isotope pairing method, we present a new in vitro ¹⁵N tracer method for the quantification of N₂ released from denitrification by bacterial cultures. The application of the new method was enabled by replacing the background air in the sample flasks with a gas mixture of He and O₂ with an approximately 50-fold reduced N₂ background (1.7% v/v), allowing for a direct and sensitive quantification of N₂ formation with isotope-ratio mass spectrometry after ¹⁵N-labelling on the one hand, but leaving the method relatively insensitive to intrusion of ambient N₂ on the other hand. The method was tested on bacterial cultures of Pseudomonas stutzeri grown at different oxygen levels. Additionally, NO and N₂O formation were determined with a chemoluminescence analyser and a gas chromatograph, respectively. Following labelling with ¹⁵N-ammonium and ¹⁵N-nitrate, it could be shown that P. stutzeri used ammonium preferably for biomass build-up, and nitrate preferably as electron acceptor. Between 84-107% of the total available N could be recovered. Due to the high sensitivity of the new method only low levels of ¹⁵N tracer were necessary, minimising substrate-induced effects and making this method also an appropriate tool for the use on soil cores. By that it offers a new method for studying denitrification in terrestrial ecosystems.

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Year:  2010        PMID: 21058101     DOI: 10.1080/10256016.2010.528840

Source DB:  PubMed          Journal:  Isotopes Environ Health Stud        ISSN: 1025-6016            Impact factor:   1.675


  2 in total

1.  Gas entrapment and microbial N2O reduction reduce N2O emissions from a biochar-amended sandy clay loam soil.

Authors:  Johannes Harter; Ivan Guzman-Bustamante; Stefanie Kuehfuss; Reiner Ruser; Reinhard Well; Oliver Spott; Andreas Kappler; Sebastian Behrens
Journal:  Sci Rep       Date:  2016-12-23       Impact factor: 4.379

2.  In Silico Characterization and Phylogenetic Distribution of Extracellular Matrix Components in the Model Rhizobacteria Pseudomonas fluorescens F113 and Other Pseudomonads.

Authors:  Esther Blanco-Romero; Daniel Garrido-Sanz; Rafael Rivilla; Miguel Redondo-Nieto; Marta Martín
Journal:  Microorganisms       Date:  2020-11-06
  2 in total

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