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Updated: Feb 7, 2026

Subcutaneous Infection of Methicillin Resistant Staphylococcus Aureus MRSA
Published on: February 9, 2011
MntC-Dependent Manganese Transport Is Essential for Staphylococcus aureus Oxidative Stress Resistance and Virulence
Luke D Handke1, Alexey V Gribenko2, Yekaterina Timofeyeva2
1Pfizer Vaccine Research and Development, Pearl River, New York, USA luke.handke@pfizer.com.
Abstract:
Staphylococcus aureus is a human pathogen that has developed several approaches to evade the immune system, including a strategy to resist oxidative killing by phagocytes. This resistance is mediated by production of superoxide dismutase (SOD) enzymes which use manganese as a cofactor. S. aureus encodes two manganese ion transporters, MntABC and MntH, and a possible Nramp family manganese transporter, exemplified by S. aureus N315 SA1432. Their relative contributions to manganese transport have not been well defined in clinically relevant isolates. For this purpose, insertional inactivation mutations were introduced into mntC, mntH, and SA1432 individually and in combination. mntC was necessary for full resistance to methyl viologen, a compound that generates intracellular free radicals. In contrast, strains with an intact mntH gene had a minimal increase in resistance that was revealed only in mntC strains, and no change was observed upon mutation of SA1432 in strains lacking both mntC and mntH Similarly, MntC alone was required for high cellular SOD activity. In addition, mntC strains were attenuated in a murine sepsis model. To further link these observations to manganese transport, an S. aureus MntC protein lacking manganese binding activity was designed, expressed, and purified. While circular dichroism experiments demonstrated that the secondary and tertiary structures of this protein were unaltered, a defect in manganese binding was confirmed by isothermal titration calorimetry. Unlike complementation with wild-type mntC, introduction of the manganese-binding defective allele into the chromosome of an mntC strain did not restore resistance to oxidative stress or virulence. Collectively, these results underscore the importance of MntC-dependent manganese transport in S. aureus oxidative stress resistance and virulence.IMPORTANCE Work outlined in this report demonstrated that MntC-dependent manganese transport is required for S. aureus virulence. These study results support the model that MntC-specific antibodies elicited by a vaccine have the potential to disrupt S. aureus manganese transport and thus abrogate to its virulence.
Insights
Staphylococcus aureus resistance to oxidative killing relies on MntC-dependent manganese transport. Disrupting this pathway via MntC antibodies could reduce bacterial virulence, offering a potential vaccine strategy.
Area of Science:
- Microbiology
- Immunology
- Biochemistry
Background:
- Staphylococcus aureus evades host defenses, including oxidative killing by phagocytes.
- Superoxide dismutase (SOD) enzymes, crucial for oxidative resistance, require manganese as a cofactor.
- S. aureus possesses multiple manganese transporters (MntABC, MntH, SA1432), but their roles are unclear.
Purpose of the Study:
- To define the roles of MntABC, MntH, and SA1432 in S. aureus manganese transport.
- To investigate the contribution of manganese transport to oxidative stress resistance and virulence.
Main Methods:
- Generated insertional inactivation mutants for mntC, mntH, and SA1432 in S. aureus.
- Assessed resistance to oxidative stress (methyl viologen) and cellular SOD activity.
- Evaluated virulence in a murine sepsis model and characterized a manganese-binding defective MntC mutant.
Main Results:
- MntC was essential for full resistance to oxidative stress and high SOD activity.
- MntH provided a minor protective effect only in the absence of MntC.
- A manganese-binding defective MntC mutant failed to restore oxidative resistance or virulence.
Conclusions:
- MntC-dependent manganese transport is critical for S. aureus oxidative stress resistance and virulence.
- Targeting MntC with antibodies represents a potential strategy to attenuate S. aureus virulence.
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