Pseudomonas aeruginosa MifS-MifR Two-Component System Is Specific for α-Ketoglutarate Utilization
Gorakh Tatke1, Hansi Kumari2, Eugenia Silva-Herzog2
1Department of Biological Sciences, College of Arts & Sciences, Florida International University, Miami, Florida, United States of America; Department of Molecular Microbiology and Infectious Diseases, Herbert Wertheim College of Medicine, Florida International University, Miami, Florida, United States of America.
Abstract:
Pseudomonas aeruginosa is a Gram-negative, metabolically versatile opportunistic pathogen that elaborates a multitude of virulence factors, and is extraordinarily resistant to a gamut of clinically significant antibiotics. This ability, in part, is mediated by two-component regulatory systems (TCS) that play a crucial role in modulating virulence mechanisms and metabolism. MifS (PA5512) and MifR (PA5511) form one such TCS implicated in biofilm formation. MifS is a sensor kinase whereas MifR belongs to the NtrC superfamily of transcriptional regulators that interact with RpoN (σ54). In this study we demonstrate that the mifS and mifR genes form a two-gene operon. The close proximity of mifSR operon to poxB (PA5514) encoding a ß-lactamase hinted at the role of MifSR TCS in regulating antibiotic resistance. To better understand this TCS, clean in-frame deletions were made in P. aeruginosa PAO1 creating PAO∆mifS, PAO∆mifR and PAO∆mifSR. The loss of mifSR had no effect on the antibiotic resistance profile. Phenotypic microarray (BioLOG) analyses of PAO∆mifS and PAO∆mifR revealed that these mutants were unable to utilize C5-dicarboxylate α-ketoglutarate (α-KG), a key tricarboxylic acid cycle intermediate. This finding was confirmed using growth analyses, and the defect can be rescued by mifR or mifSR expressed in trans. These mifSR mutants were able to utilize all the other TCA cycle intermediates (citrate, succinate, fumarate, oxaloacetate or malate) and sugars (glucose or sucrose) except α-KG as the sole carbon source. We confirmed that the mifSR mutants have functional dehydrogenase complex suggesting a possible defect in α-KG transport. The inability of the mutants to utilize α-KG was rescued by expressing PA5530, encoding C5-dicarboxylate transporter, under a regulatable promoter. In addition, we demonstrate that besides MifSR and PA5530, α-KG utilization requires functional RpoN. These data clearly suggests that P. aeruginosa MifSR TCS is involved in sensing α-KG and regulating its transport and subsequent metabolism.
Insights
Pseudomonas aeruginosa
Area of Science:
- Microbiology
- Molecular Biology
- Bacterial Pathogenesis
Background:
- Pseudomonas aeruginosa is an opportunistic pathogen known for antibiotic resistance and virulence.
- Two-component regulatory systems (TCS) are crucial for modulating bacterial metabolism and virulence.
- The MifS/MifR TCS in P. aeruginosa is implicated in biofilm formation and antibiotic resistance.
Purpose of the Study:
- To investigate the role of the MifS/MifR TCS in Pseudomonas aeruginosa.
- To determine the function of the mifSR operon in bacterial metabolism and antibiotic resistance.
Main Methods:
- Gene deletion mutants (PAO∆mifS, PAO∆mifR, PAO∆mifSR) were created in P. aeruginosa PAO1.
- Phenotypic microarray (BioLOG) and growth analyses were performed.
- Gene complementation and transporter expression studies were conducted.
Main Results:
- The mifSR deletion mutants showed no change in antibiotic resistance.
- Mutants lacking mifSR were unable to utilize α-ketoglutarate (α-KG) as a carbon source.
- Defects in α-KG utilization were rescued by expressing mifR or a C5-dicarboxylate transporter (PA5530).
- α-KG utilization by P. aeruginosa requires the MifSR TCS, PA5530 transporter, and RpoN.
Conclusions:
- The P. aeruginosa MifSR TCS regulates the transport and metabolism of α-ketoglutarate.
- This TCS plays a role in nutrient sensing and utilization, independent of antibiotic resistance.
- MifSR acts in conjunction with RpoN and a specific transporter to control α-KG metabolism.
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