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Lipoprotein PsaA in virulence of Streptococcus pneumoniae: surface accessibility and role in protection from
Jason W Johnston1, Lisa E Myers, Martina M Ochs
1Department of Microbiology, University of Alabama at Birmingham, Birmingham, Alabama 35294, USA.
Abstract:
PsaA of Streptococcus pneumoniae, originally believed to be an adhesin, is the lipoprotein component of an Mn2+ transporter. Mutations in psaA cause deficiencies in growth, virulence, adherence, and the oxidative stress response. Immunofluorescence microscopy shows that PsaA is hidden beneath the cell wall and the polysaccharide capsule and only exposed to antibodies upon cell wall removal. A psaBC deletion mutant, expressing PsaA normally, was as deficient in adherence to Detroit 562 cells as were strains lacking PsaA. Thus, PsaA does not appear to act directly as an adhesin, but rather, psaA mutations indirectly affect this process through the disruption of Mn2+ transport. The deficiency in Mn2+ transport also causes hypersensitivity to oxidative stress from H2O2 and superoxide. In a chemically defined medium, growth of the wild-type strain was possible in the absence of Fe2+ and Mn2+ cations after a lag of about 15 h. Addition of Mn2+ alone or together with Fe2+ allowed prompt and rapid growth. In the absence of Mn2+, the addition of Fe2+ alone extended the 15-h lag phase to 25 h. Thus, while Fe2+ adversely affects the transition from lag phase to log phase, perhaps through increasing oxidative stress, this effect is relieved by the presence of Mn2+. A scavenger specific for superoxides but not those specific for hydroxyl radicals or H2O2 was able to eliminate the inhibition of growth caused by iron supplementation in the absence of Mn2+. This implies that superoxides are a key player in oxidative stress generated in the presence of iron.
Insights
Streptococcus pneumoniae PsaA is part of an Mn2+ transporter, not an adhesin. Mutations disrupt Mn2+ transport, affecting growth, virulence, and oxidative stress response, particularly superoxide-mediated stress from iron.
Area of Science:
- Microbiology
- Molecular Biology
- Bacterial Pathogenesis
Background:
- PsaA in Streptococcus pneumoniae was initially considered an adhesin.
- Mutations in psaA lead to impaired growth, reduced virulence, and altered oxidative stress response.
Purpose of the Study:
- To investigate the true function of PsaA in Streptococcus pneumoniae.
- To elucidate the role of PsaA in bacterial adherence and response to oxidative stress.
Main Methods:
- Immunofluorescence microscopy to visualize PsaA localization.
- Analysis of psaA and psaBC deletion mutants for adherence and growth.
- Growth assays in chemically defined media with varying cation concentrations and oxidative stress agents.
Main Results:
- PsaA is located beneath the cell wall and capsule, not directly exposed for adherence.
- PsaA mutations indirectly affect adherence by disrupting Mn2+ transport.
- Mn2+ deficiency leads to hypersensitivity to H2O2 and superoxide, exacerbated by Fe2+.
- Superoxide radicals are implicated in iron-induced oxidative stress during bacterial growth.
Conclusions:
- PsaA functions as a component of an Mn2+ transporter, not a direct adhesin.
- Disruption of Mn2+ transport by psaA mutations impacts multiple bacterial processes.
- Iron supplementation in the absence of Mn2+ induces superoxide-dependent oxidative stress, inhibiting growth.
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