Quorum-sensing agr system of Staphylococcus aureus primes gene expression for protection from lethal oxidative stress
Shopsin, B.; Podkowik, M.; Perault, A. I.; Putzel, G.; Pountain, A.; Kim, J.; DuMont, A.; Zwack, E.; Ulrich, R. J.; Karagounis, T. K.; Zhou, C.; Haag, A. F.; Shenderovich, J.; Wasserman, G. A.; Kwon, J.; Chen, J.; Richardson, A. R.; Weiser, J. N.; Nowosad, C. R.; Lun, D. S.; Zhao, X.; Parker, D.; Pironti, A.; Drlica, K. N.; Yanai, I.; Torres, V. J.
Show abstract
The agr quorum-sensing system links Staphylococcus aureus metabolism to virulence, in part by increasing bacterial survival during exposure to lethal concentrations of H2O2, a crucial host defense against S. aureus. We now report that protection by agr surprisingly extends beyond post-exponential growth to the exit from stationary phase when the agr system is no longer turned on. Thus, agr can be considered a constitutive protective factor. Deletion of agr increased both respiration and fermentation but decreased ATP levels and growth, suggesting that {Delta}agr cells assume a hyperactive metabolic state in response to reduced metabolic efficiency. As expected from increased respiratory gene expression, reactive oxygen species (ROS) accumulated more in the agr mutant than in wild-type cells, thereby explaining elevated susceptibility of {Delta}agr strains to lethal H2O2 doses. Increased survival of wild-type agr cells during H2O2 exposure required sodA, which detoxifies superoxide. Additionally, pretreatment of S. aureus with respiration-reducing menadione protected {Delta}agr cells from killing by H2O2. Thus, genetic deletion and pharmacologic experiments indicate that agr helps control endogenous ROS, thereby providing resilience against exogenous ROS. The long-lived "memory" of agr-mediated protection, which is uncoupled from agr activation kinetics, increased hematogenous dissemination to certain tissues during sepsis in ROS-producing, wild-type mice but not ROS-deficient (Nox2-/-) mice. These results demonstrate the importance of protection that anticipates impending ROS-mediated immune attack. The ubiquity of quorum sensing suggests that it protects many bacterial species from oxidative damage.
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