Restoring Methicillin-Resistant <i>Staphylococcus aureus</i> Susceptibility to β-Lactam Antibiotics

Christopher M. Tan(Merck & Co., Inc., Rahway, NJ, USA (United States)), Alex G. Therien(Merck & Co., Inc., Rahway, NJ, USA (United States)), Jun Lü(United States Military Academy), Sang Hyub Lee(Merck & Co., Inc., Rahway, NJ, USA (United States)), Alexandre Caron(Merck Canada Inc. (Canada)), Charles Gill(Merck & Co., Inc., Rahway, NJ, USA (United States)), Christian Lebeau-Jacob(Merck Canada Inc. (Canada)), Liliana Benton-Perdomo(Merck Canada Inc. (Canada)), João M. Monteiro(Universidade Nova de Lisboa), Pedro M. Pereira(Universidade Nova de Lisboa), Nathaniel L. Elsen(United States Military Academy), Jin Wu(Merck & Co., Inc., Rahway, NJ, USA (United States)), Kathleen Deschamps(Merck & Co., Inc., Rahway, NJ, USA (United States)), Mihai Petcu(Merck Canada Inc. (Canada)), Simon Wong(Merck Canada Inc. (Canada)), Etienne Daigneault(Merck Canada Inc. (Canada)), Susanne Krämer(Merck & Co., Inc., Rahway, NJ, USA (United States)), Lianzhu Liang(Merck & Co., Inc., Rahway, NJ, USA (United States)), Eugene Maxwell(Merck & Co., Inc., Rahway, NJ, USA (United States)), David Claveau(Merck Canada Inc. (Canada)), John P. Vaillancourt(Merck Canada Inc. (Canada)), Kathryn Skorey(Merck Canada Inc. (Canada)), John Tam(Merck Canada Inc. (Canada)), Hao Wang(Merck & Co., Inc., Rahway, NJ, USA (United States)), Timothy C. Meredith(Merck Canada Inc. (Canada)), Susan Sillaots(Merck Canada Inc. (Canada)), Lisa Wang-Jarantow(Merck & Co., Inc., Rahway, NJ, USA (United States)), Yeeman K. Ramtohul(Merck Canada Inc. (Canada)), Eric Langlois(Merck Canada Inc. (Canada)), France Landry(Merck Canada Inc. (Canada)), John C. Reid(United States Military Academy), Gopal Parthasarathy(United States Military Academy), Sujata Sharma(United States Military Academy), Anastasia Baryshnikova(University of Toronto), Kevin J. Lumb(United States Military Academy), Mariana G. Pinho(Universidade Nova de Lisboa), S.M. Soisson(United States Military Academy), Terry Roemer(Merck & Co., Inc., Rahway, NJ, USA (United States))
Science Translational Medicine
March 21, 2012
Cited by 246

Abstract

Despite the need for new antibiotics to treat drug-resistant bacteria, current clinical combinations are largely restricted to β-lactam antibiotics paired with β-lactamase inhibitors. We have adapted a Staphylococcus aureus antisense knockdown strategy to genetically identify the cell division Z ring components-FtsA, FtsZ, and FtsW-as β-lactam susceptibility determinants of methicillin-resistant S. aureus (MRSA). We demonstrate that the FtsZ-specific inhibitor PC190723 acts synergistically with β-lactam antibiotics in vitro and in vivo and that this combination is efficacious in a murine model of MRSA infection. Fluorescence microscopy localization studies reveal that synergy between these agents is likely to be elicited by the concomitant delocalization of their cognate drug targets (FtsZ and PBP2) in MRSA treated with PC190723. A 2.0 Å crystal structure of S. aureus FtsZ in complex with PC190723 identifies the compound binding site, which corresponds to the predominant location of mutations conferring resistance to PC190723 (PC190723(R)). Although structural studies suggested that these drug resistance mutations may be difficult to combat through chemical modification of PC190723, combining PC190723 with the β-lactam antibiotic imipenem markedly reduced the spontaneous frequency of PC190723(R) mutants. Multiple MRSA PC190723(R) FtsZ mutants also displayed attenuated virulence and restored susceptibility to β-lactam antibiotics in vitro and in a mouse model of imipenem efficacy. Collectively, these data support a target-based approach to rationally develop synergistic combination agents that mitigate drug resistance and effectively treat MRSA infections.


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