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DksA, ppGpp, and RegAB Regulate Nitrate Respiration in Paracoccus denitrificans. | LitMetric

DksA, ppGpp, and RegAB Regulate Nitrate Respiration in Paracoccus denitrificans.

J Bacteriol

Department of Biological Sciences, University of Texas at Dallas, Richardson, Texas, USA.

Published: April 2023

The periplasmic (NAP) and membrane-associated (Nar) nitrate reductases of Paracoccus denitrificans are responsible for nitrate reduction under aerobic and anaerobic conditions, respectively. Expression of NAP is elevated in cells grown on a relatively reduced carbon and energy source (such as butyrate); it is believed that NAP contributes to redox homeostasis by coupling nitrate reduction to the disposal of excess reducing equivalents. Here, we show that deletion of either (one of two homologs in the P. denitrificans genome) or / (encoding a bifunctional ppGpp synthetase and hydrolase) eliminates the butyrate-dependent increase in promoter and NAP enzyme activity. We conclude that ppGpp likely signals growth on a reduced substrate and, together with DksA1, mediates increased expression of the genes encoding NAP. Support for this model comes from the observation that promoter activity is increased in cultures exposed to a protein synthesis inhibitor that is known to trigger ppGpp synthesis in other organisms. We also show that, under anaerobic growth conditions, the redox-sensing RegAB two-component pair acts as a negative regulator of NAP expression and as a positive regulator of expression of the membrane-associated nitrate reductase Nar. The and / genes are conditionally synthetically lethal; the double mutant has a null phenotype for growth on butyrate and other reduced substrates while growing normally on succinate and citrate. We also show that the second homolog () and / have roles in regulation of expression of the flavohemoglobin Hmp and in biofilm formation. Paracoccus denitrificans is a metabolically versatile Gram-negative bacterium that is used as a model for studies of respiratory metabolism. The organism can utilize nitrate as an electron acceptor for anaerobic respiration, reducing it to dinitrogen via nitrite, nitric oxide, and nitrous oxide. This pathway (known as denitrification) is important as a route for loss of fixed nitrogen from soil and as a source of the greenhouse gas nitrous oxide. Thus, it is important to understand those environmental and genetic factors that govern flux through the denitrification pathway. Here, we identify four proteins and a small molecule (ppGpp) which function as previously unknown regulators of expression of enzymes that reduce nitrate and oxidize nitric oxide.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10127633PMC
http://dx.doi.org/10.1128/jb.00027-23DOI Listing

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