The Manganese-Responsive Transcriptional Regulator MumR Protects Acinetobacter baumannii from Oxidative Stress
Erin R Green1,2, Lillian J Juttukonda1,2, Eric P Skaar3,2
1Department of Pathology, Microbiology, and Immunology, Vanderbilt University Medical Center, Nashville, Tennessee, USA.
Abstract:
Acinetobacter baumannii is an emerging opportunistic pathogen that primarily infects critically ill patients in nosocomial settings. Because of its rapid acquisition of antibiotic resistance, infections caused by A. baumannii have become extremely difficult to treat, underlying the importance of identifying new antimicrobial targets for this pathogen. Manganese (Mn) is an essential nutrient metal required for a number of bacterial processes, including the response to oxidative stress. Here, we show that exogenous Mn can restore A. baumannii viability in the presence of reactive oxygen species (ROS). This restoration is not dependent on the high-affinity Nramp family Mn transporter, MumT, as a ΔmumT mutant is no more sensitive to hydrogen peroxide (H2O2) killing than wild-type A. baumannii However, mumR, which encodes the transcriptional regulator of mumT, is critical for growth and survival in the presence of H2O2, suggesting that MumR regulates additional genes that contribute to H2O2 resistance. RNA sequencing revealed a role for mumR in regulating the activity of a number of metabolic pathways, including two pathways, phenylacetate and gamma-aminobutyric acid catabolism, which were found to be important for resisting killing by H2O2 Finally, ΔmumR exhibited reduced fitness in a murine model of pneumonia, indicating that MumR-regulated gene products are crucial for protection against the host immune response. In summary, these results suggest that MumR facilitates resistance to the host immune response by activating a transcriptional program that is critical for surviving both Mn starvation and oxidative stress.
Insights
Acinetobacter baumannii survival against oxidative stress and host immunity depends on the regulator MumR. MumR activates metabolic pathways crucial for resisting reactive oxygen species and nutrient starvation.
Area of Science:
- Microbiology
- Molecular Biology
- Pathogen Research
Background:
- Acinetobacter baumannii is a critical nosocomial pathogen with increasing antibiotic resistance.
- Identifying novel antimicrobial targets is essential for treating A. baumannii infections.
- Manganese (Mn) is vital for bacterial processes, including oxidative stress response.
Purpose of the Study:
- To investigate the role of manganese homeostasis and its regulator MumR in A. baumannii's resistance to oxidative stress.
- To identify specific pathways regulated by MumR that contribute to pathogen survival.
Main Methods:
- Comparative analysis of wild-type and mutant A. baumannii strains (ΔmumT, ΔmumR) under hydrogen peroxide (H2O2) exposure.
- RNA sequencing to identify genes and pathways regulated by MumR.
- Murine model of pneumonia to assess bacterial fitness in vivo.
Main Results:
- Exogenous manganese restores A. baumannii viability during reactive oxygen species (ROS) exposure.
- The transcriptional regulator MumR, not the transporter MumT, is critical for H2O2 resistance.
- MumR regulates metabolic pathways (phenylacetate and gamma-aminobutyric acid catabolism) essential for H2O2 resistance.
- ΔmumR mutants show reduced fitness in a murine pneumonia model, indicating impaired host immune response evasion.
Conclusions:
- MumR is a key regulator enabling A. baumannii survival under oxidative stress and nutrient limitation.
- MumR-controlled transcriptional programs are vital for resisting host immune defenses.
- Targeting MumR or its regulated pathways could offer new strategies against A. baumannii infections.
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