The Escherichia coli fumarate and nitrate reduction (FNR) regulator acts as the cell’s master switch for the transition between anaerobic and aerobic respiration, controlling the expression of >300 genes in response to O2 availability. Oxygen is perceived through a reaction with FNR’s [4Fe-4S] cluster cofactor. In addition to its primary O2 signal, the FNR [4Fe-4S] cluster also reacts with nitric oxide (NO). In response to physiological concentrations of NO, FNR de-represses the transcription of hmp, which encodes a principal NO-detoxifying enzyme, and fails to activate the expression of the nitrate reductase (nar) operon, a significant source of endogenous cellular NO. Here, we show that the L28H variant of FNR, which is much less reactive...
Abstract Aims: In the opportunistic pathogen Pseudomonas aeruginosa, nitric oxide (NO) triggers the ...
Sensing potential nitrogen-containing respiratory substrates such as nitrate, nitrite, hydroxylamine...
Understanding the fate of nitric oxide (NO) inside the bacterial cell is a major issue in biology of...
The Escherichia coli fumarate and nitrate reduction (FNR) regulator acts as the cell’s master switch...
The fumarate and nitrate reduction (FNR) regulator is the master switch for the transition between a...
Fumarate and nitrate reduction regulatory (FNR) proteins are bacterial transcription factors that co...
The Escherichia coli fumarate and nitrate reductase (FNR) regulator protein is an important transcri...
Fumarate and nitrate reduction regulatory (FNR) proteins are bacterial transcription factors that co...
The Escherichia coli fumarate and nitrate reductase (FNR) regulator protein is an important transcri...
The metabolic flexibility of bacteria is key to their ability to survive and thrive in a wide range ...
The metabolic flexibility of bacteria is key to their ability to survive and thrive in a wide range ...
Aims: In the opportunistic pathogen Pseudomonas aeruginosa, nitric oxide (NO) triggers the respirati...
In Escherichia coli, the switch between aerobic and anaerobic metabolism is primarily controlled by ...
In Escherichia coli, the switch between aerobic and anaerobic metabolism is controlled primarily by ...
The Escherichia coli fumarate-nitrate reduction regulator (FNR) protein is the paradigm for bacteria...
Abstract Aims: In the opportunistic pathogen Pseudomonas aeruginosa, nitric oxide (NO) triggers the ...
Sensing potential nitrogen-containing respiratory substrates such as nitrate, nitrite, hydroxylamine...
Understanding the fate of nitric oxide (NO) inside the bacterial cell is a major issue in biology of...
The Escherichia coli fumarate and nitrate reduction (FNR) regulator acts as the cell’s master switch...
The fumarate and nitrate reduction (FNR) regulator is the master switch for the transition between a...
Fumarate and nitrate reduction regulatory (FNR) proteins are bacterial transcription factors that co...
The Escherichia coli fumarate and nitrate reductase (FNR) regulator protein is an important transcri...
Fumarate and nitrate reduction regulatory (FNR) proteins are bacterial transcription factors that co...
The Escherichia coli fumarate and nitrate reductase (FNR) regulator protein is an important transcri...
The metabolic flexibility of bacteria is key to their ability to survive and thrive in a wide range ...
The metabolic flexibility of bacteria is key to their ability to survive and thrive in a wide range ...
Aims: In the opportunistic pathogen Pseudomonas aeruginosa, nitric oxide (NO) triggers the respirati...
In Escherichia coli, the switch between aerobic and anaerobic metabolism is primarily controlled by ...
In Escherichia coli, the switch between aerobic and anaerobic metabolism is controlled primarily by ...
The Escherichia coli fumarate-nitrate reduction regulator (FNR) protein is the paradigm for bacteria...
Abstract Aims: In the opportunistic pathogen Pseudomonas aeruginosa, nitric oxide (NO) triggers the ...
Sensing potential nitrogen-containing respiratory substrates such as nitrate, nitrite, hydroxylamine...
Understanding the fate of nitric oxide (NO) inside the bacterial cell is a major issue in biology of...