TY - JOUR
T1 - Transcriptional and translational adaptation to aerobic nitrate anabolism in the denitrifier Paracoccus denitrificans
AU - Luque-Almagro, Victor M
AU - Manso, Isabel
AU - Sullivan, Matthew J
AU - Rowley, Gary
AU - Ferguson, Stuart J
AU - Moreno-Vivián, Conrado
AU - Richardson, David J
AU - Gates, Andrew J
AU - Roldán, M Dolores
N1 - © 2017 The Author(s).
PY - 2017/6/1
Y1 - 2017/6/1
N2 - Transcriptional adaptation to nitrate-dependent anabolism by Paracoccus denitrificans PD1222 was studied. A total of 74 genes were induced in cells grown with nitrate as N-source compared with ammonium, including nasTSABGHC and ntrBC genes. The nasT and nasS genes were cotranscribed, although nasT was more strongly induced by nitrate than nasS The nasABGHC genes constituted a transcriptional unit, which is preceded by a non-coding region containing hairpin structures involved in transcription termination. The nasTS and nasABGHC transcripts were detected at similar levels with nitrate or glutamate as N-source, but nasABGHC transcript was undetectable in ammonium-grown cells. The nitrite reductase NasG subunit was detected by two-dimensional polyacrylamide gel electrophoresis in cytoplasmic fractions from nitrate-grown cells, but it was not observed when either ammonium or glutamate was used as the N-source. The nasT mutant lacked both nasABGHC transcript and nicotinamide adenine dinucleotide (NADH)-dependent nitrate reductase activity. On the contrary, the nasS mutant showed similar levels of the nasABGHC transcript to the wild-type strain and displayed NasG protein and NADH-nitrate reductase activity with all N-sources tested, except with ammonium. Ammonium repression of nasABGHC was dependent on the Ntr system. The ntrBC and ntrYX genes were expressed at low levels regardless of the nitrogen source supporting growth. Mutational analysis of the ntrBCYX genes indicated that while ntrBC genes are required for nitrate assimilation, ntrYX genes can only partially restore growth on nitrate in the absence of ntrBC genes. The existence of a regulation mechanism for nitrate assimilation in P. denitrificans, by which nitrate induction operates at both transcriptional and translational levels, is proposed.
AB - Transcriptional adaptation to nitrate-dependent anabolism by Paracoccus denitrificans PD1222 was studied. A total of 74 genes were induced in cells grown with nitrate as N-source compared with ammonium, including nasTSABGHC and ntrBC genes. The nasT and nasS genes were cotranscribed, although nasT was more strongly induced by nitrate than nasS The nasABGHC genes constituted a transcriptional unit, which is preceded by a non-coding region containing hairpin structures involved in transcription termination. The nasTS and nasABGHC transcripts were detected at similar levels with nitrate or glutamate as N-source, but nasABGHC transcript was undetectable in ammonium-grown cells. The nitrite reductase NasG subunit was detected by two-dimensional polyacrylamide gel electrophoresis in cytoplasmic fractions from nitrate-grown cells, but it was not observed when either ammonium or glutamate was used as the N-source. The nasT mutant lacked both nasABGHC transcript and nicotinamide adenine dinucleotide (NADH)-dependent nitrate reductase activity. On the contrary, the nasS mutant showed similar levels of the nasABGHC transcript to the wild-type strain and displayed NasG protein and NADH-nitrate reductase activity with all N-sources tested, except with ammonium. Ammonium repression of nasABGHC was dependent on the Ntr system. The ntrBC and ntrYX genes were expressed at low levels regardless of the nitrogen source supporting growth. Mutational analysis of the ntrBCYX genes indicated that while ntrBC genes are required for nitrate assimilation, ntrYX genes can only partially restore growth on nitrate in the absence of ntrBC genes. The existence of a regulation mechanism for nitrate assimilation in P. denitrificans, by which nitrate induction operates at both transcriptional and translational levels, is proposed.
KW - Adaptation, Physiological
KW - Ammonium Compounds/metabolism
KW - Bacterial Proteins/agonists
KW - Energy Metabolism
KW - Gene Expression Profiling
KW - Gene Expression Regulation, Bacterial
KW - Glutamic Acid/metabolism
KW - Models, Biological
KW - Mutagenesis, Site-Directed
KW - Mutation
KW - Nitrate Reductase (NADH)/antagonists & inhibitors
KW - Nitrates/metabolism
KW - Nitrogen Cycle
KW - Paracoccus denitrificans/enzymology
KW - Proteomics/methods
KW - RNA, Bacterial/metabolism
KW - RNA, Messenger/metabolism
KW - Regulatory Elements, Transcriptional
KW - Repressor Proteins/agonists
KW - Trans-Activators/agonists
U2 - 10.1042/BCJ20170115
DO - 10.1042/BCJ20170115
M3 - Article
C2 - 28385879
SN - 0264-6021
VL - 474
SP - 1769
EP - 1787
JO - The Biochemical journal
JF - The Biochemical journal
IS - 11
ER -