Publication | Closed Access
Discovery of Efficacious <i>Pseudomonas aeruginosa</i>-Targeted Siderophore-Conjugated Monocarbams by Application of a Semi-mechanistic Pharmacokinetic/Pharmacodynamic Model
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Citations
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References
2015
Year
Lead CompoundsNew AgentsAntimicrobial ChemotherapyPharmacodynamic ModelingDrug ResistanceMedicinal ChemistryAntimicrobial TherapySemi-mechanistic Pharmacokinetic/pharmacodynamic ModelAntimicrobial ResistanceAntimicrobial Drug DiscoveryBiochemistryAntibacterial AgentAntimicrobial PharmacokineticsAntimicrobial CompoundPharmacologyAntimicrobial SusceptibilityAntibioticsNatural SciencesMicrobiologyAntimicrobial AgentsAntimicrobial PharmacodynamicsMedicineDrug DiscoverySiderophore-conjugated Monocarbams
To identify new agents for the treatment of multi-drug-resistant Pseudomonas aeruginosa, we focused on siderophore-conjugated monocarbams. This class of monocyclic β-lactams are stable to metallo-β-lactamases and have excellent P. aeruginosa activities due to their ability to exploit the iron uptake machinery of Gram-negative bacteria. Our medicinal chemistry plan focused on identifying a molecule with optimal potency and physical properties and activity for in vivo efficacy. Modifications to the monocarbam linker, siderophore, and oxime portion of the molecules were examined. Through these efforts, a series of pyrrolidinone-based monocarbams with good P. aeruginosa cellular activity (P. aeruginosa MIC90 = 2 μg/mL), free fraction levels (>20% free), and hydrolytic stability (t1/2 ≥ 100 h) were identified. To differentiate the lead compounds and enable prioritization for in vivo studies, we applied a semi-mechanistic pharmacokinetic/pharmacodynamic model to enable prediction of in vivo efficacy from in vitro data.
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