Characterization of the expression and activity of the periplasmic nitrate reductase of Paracoccus pantotrophus in chemostat cultures
Open Access
- 1 June 2003
- journal article
- Published by Microbiology Society in Microbiology
- Vol. 149 (6) , 1533-1540
- https://doi.org/10.1099/mic.0.26277-0
Abstract
The periplasmic nitrate reductase (Nap) from Paracoccus pantotrophus has a role in cellular redox balancing. Previously, transcription from the nap promoter in P. pantotrophus was shown to be responsive to the oxidation state of the carbon substrate. During batch culture, expression was higher during growth on reduced substrates such as butyrate compared to more oxidized substrates such as succinate. In the present study the effect of growth rate on nap expression in succinate-, acetate- and butyrate-limited chemostat cultures was investigated. In all three cases transcription from the nap promoter and Nap enzyme activity showed a strong correlation. At the fastest growth rates tested for the three substrates nap expression and Nap activity were highest when growth occurred on the most reduced substrate (butyrate > acetate > succinate). However, in all three cases a bell-shaped pattern of expression was observed as a function of growth rate, with the highest levels of nap expression and Nap activity being observed at intermediate growth rates. This effect was most pronounced on succinate, where an approximately fivefold variation was observed, and at intermediate dilution rates nap expression and Nap activity were comparable on all three carbon substrates. Analysis of mRNA prepared from the succinate-grown cultures revealed that different transcription initiation start sites for the nap operon were utilized as the growth rate changed. This study establishes a new regulatory feature of nap expression in P. pantotrophus that occurs at the level of transcription in response to growth rate in carbon-limited cultures.Keywords
This publication has 43 references indexed in Scilit:
- Rhodobacter capsulatus gains a competitive advantage from respiratory nitrate reduction during light–dark transitionsMicrobiology, 2003
- Hierarchy of Carbon Source Selection inParacoccus pantotrophus: Strict Correlation between Reduction State of the Carbon Substrate and Aerobic Expression of thenapOperonJournal of Bacteriology, 2002
- Regulation ofnapGene Expression and Periplasmic Nitrate Reductase Activity in the Phototrophic BacteriumRhodobacter sphaeroidesDSM158Journal of Bacteriology, 2002
- Periplasmic Nitrate Reductase (NapABC Enzyme) Supports Anaerobic Respiration byEscherichia coliK-12Journal of Bacteriology, 2002
- Effect of carbon substrate and aeration on nitrate reduction and expression of the periplasmic and membrane-bound nitrate reductases in carbon-limited continuous cultures of Paracoccus denitrificans Pd1222Microbiology, 1997
- Insertion of transposon Tn5 into a structural gene of the membrane-bound nitrate reductase of Thiosphaera pantotropha results in anaerobic overexpression of periplasmic nitrate reductase activityJournal of General Microbiology, 1993
- The identification of a periplasmic nitrate reductase inParacoccus denitrificansFEMS Microbiology Letters, 1993
- Periplasmic and membrane‐bound respiratory nitrate reductases in Thiosphaera pantotrophaFEBS Letters, 1990
- In vivo redox poising of the cyclic electron transport system of Rhodobacter capsulatus and the effects of the auxiliary oxidants, nitrate, nitrous oxide and trimethylamine N-oxide, as revealed by multiple short flash excitationBiochimica et Biophysica Acta (BBA) - Bioenergetics, 1990
- Thiosphaera pantotropha gen. nov. sp. nov., a Facultatively Anaerobic, Facultatively Autotrophic Sulphur BacteriumMicrobiology, 1983