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Impact on daptomycin resistance using combination of daptomycin plus ceftaroline in daptomycin-susceptible and
Nagendra N Mishra1,2, Cody A Black3,4, Wessam Abdelhady2
1Division of Infectious Diseases, The Lundquist Institute at Harbor-UCLA Medical Center, Torrance, CA 90502, United States.
Abstract:
Persistent Staphylococcus aureus infections treated with prolonged daptomycin (DAP) can select for DAP resistance (DAP-R), reinforcing the need for combination strategies that both improve killing and constrain resistance evolution. Prior work suggests the DAP+ceftaroline (CPT) combination can deliver synergistic killing, prevent emergence of DAP-R, and resensitize DAP-R subpopulations toward a DAP-susceptible (DAP-S) phenotype. Here, using a clinically derived, MSSA isogenic DAP-S (616)/DAP-R (703) strain pair, we evaluated DAP+CPT activity across in vitro assays, ex vivo models, and an in vivo experimental infective endocarditis (IE) model, and integrated ultra-deep targeted sequencing to link phenotypic responses to genomic adaptation. DAP+CPT produced enhanced killing of both strains in vitro and ex vivo, improved target-tissue clearance of the DAP-R strain in vivo, prevented emergence of DAP-R in the DAP-S parental strain in vitro and ex vivo, and resensitized the DAP-R strain toward a DAP-S phenotype ex vivo. Genomically, ultra-deep sequencing of resistance loci (thousands-fold coverage) identified fixed background divergence versus the N315 reference and revealed regimen-dependent selection in membrane-stress pathways, including a high-frequency mixed mprF subpopulation consistent with DAP-driven heterogeneity under monotherapy, contrasted by distinct locus-level changes under combination exposure. In addition, coverage profiling detected a large, combination-associated mobile-element/prophage gene-content event in the 703 background affecting an immune-evasion/β-hemolysin-converting region, highlighting that antibiotic pressure can couple resistance dynamics with pathogenesis-relevant genome remodeling. Together, these data show that DAP+CPT provides potent activity beyond synergistic killing-improving clearance while constraining or reshaping resistance evolution-and they define genomic signatures that help explain divergent evolutionary trajectories under DAP alone versus DAP+CPT.
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