TY - JOUR
T1 - The RpoB H148Y rifampicin resistance mutation and an active stringent response reduce virulence and increase resistance to innate immune responses in staphylococcus aureus
AU - Gao, Wei
AU - Cameron, David
AU - Davies, John Keith
AU - Kostoulias, Xenia Polyxeni
AU - Stepnell, Justin
AU - Tuck, Kellie Louise
AU - Yeaman, Michael R
AU - Peleg, Anton Yariv
AU - Stinear, Timothy Paul
AU - Howden, Benjamin Peter
PY - 2013
Y1 - 2013
N2 - The occurrence of mutations in methicillin-resistant Staphylococcus aureus (MRSA) during persistent infection leads to antimicrobial resistance but may also impact host-pathogen interactions. Here, we investigate the host-pathogen consequences of 2 mutations arising in clinical MRSA during persistent infection: RpoB H(4)(8)(1)Y, which is linked to rifampicin resistance, and RelA F(1)(2)(8)Y, which is associated with an active stringent response. Allelic exchange experiments showed that both mutations cause global transcriptional changes, leading to upregulation of capsule production, with attenuated virulence in a murine bacteremia model and reduced susceptibility to both antimicrobial peptides and whole-blood killing. Disruption of capsule biosynthesis reversed these impacts on innate immune function. These data clearly link MRSA persistence and reduced virulence to the same mechanisms that alter antimicrobial susceptibility. Our study highlights the wider consequences of suboptimal antimicrobial use, where drug resistance and immune escape mechanisms coevolve, thus increasing the likelihood of treatment failure.
AB - The occurrence of mutations in methicillin-resistant Staphylococcus aureus (MRSA) during persistent infection leads to antimicrobial resistance but may also impact host-pathogen interactions. Here, we investigate the host-pathogen consequences of 2 mutations arising in clinical MRSA during persistent infection: RpoB H(4)(8)(1)Y, which is linked to rifampicin resistance, and RelA F(1)(2)(8)Y, which is associated with an active stringent response. Allelic exchange experiments showed that both mutations cause global transcriptional changes, leading to upregulation of capsule production, with attenuated virulence in a murine bacteremia model and reduced susceptibility to both antimicrobial peptides and whole-blood killing. Disruption of capsule biosynthesis reversed these impacts on innate immune function. These data clearly link MRSA persistence and reduced virulence to the same mechanisms that alter antimicrobial susceptibility. Our study highlights the wider consequences of suboptimal antimicrobial use, where drug resistance and immune escape mechanisms coevolve, thus increasing the likelihood of treatment failure.
U2 - 10.1093/infdis/jis772
DO - 10.1093/infdis/jis772
M3 - Article
SN - 0022-1899
VL - 207
SP - 929
EP - 939
JO - The Journal of Infectious Diseases
JF - The Journal of Infectious Diseases
IS - 6
ER -