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Amoura, A.

Publications and source records attributed to Amoura, A..

2 recordsLinked to original sources

Impact of the inoculum size on the in vivo activity of the aztreonam-avibactam combination in a murine model of peritonitis due to Escherichia coli expressing CTX-M-15 and NDM-1

BackgroundThe combination of aztreonam (ATM) and avibactam (AVI) is an attractive option to treat infections caused by extended spectrum {beta}-lactamase plus NDM-1-producing Enterobacteriaceae. Since ATM activity was shown to be severely impacted by an increase in the inoculum size in vitro, we wondered whether ATM-AVI activity could be impaired in high-inoculum infections. MethodsWe analyzed the impact of the inoculum size on ATM-AVI activity in vitro and in a murine model of peritonitis due to susceptible E. coli CFT073-pTOPO and its isogenic derivatives producing NDM-1 (E. coli CFT073-NDM1) and CTX-M-15 plus NDM-1 (E. coli CFT073-CTXM15-NDM1). The impact of the inoculum size on bacterial morphology was studied by microscopic examination. ResultsIn vitro, at standard (105) inoculum, E. coli CFT073-CTXM15-NDM1 was resistant to ATM but susceptible to the ATM-AVI combination. At high (107) inoculum, MICs of ATM alone and of the ATM-AVI combination reached > 512 and 64 mg/L respectively, against all tested strains. ATM led to bacterial filamentation when active against the bacteria, i.e., in monotherapy or in combination with AVI against susceptible E. coli CFT073-pTOPO, and only in combination with AVI against E. coli CFT073-CTXM15-NDM1. In vivo, increase in the inoculum led to a drastic decrease in the activity of ATM alone against E. coli CFT073-pTOPO, and of ATM-AVI against E. coli CFT073-CTXM15-NDM1. ConclusionOur results suggest a high in vivo impact of the inoculum increase on the activity of ATM alone against ATM-susceptible E. coli, and of ATM-AVI against CTX-M-15 plus NDM-1 producing E. coli. Clinicians must be aware of the risk of failures when using AZT-AVI in high inoculum infections.

microbiology↗

Uridine as a potentiator of aminoglycosides through activation of carbohydrate transporters

Aminoglycosides (AGs) are broad-spectrum antibiotics effective against Gram-negative bacteria. AG uptake depends on membrane potential, but the precise mechanisms are incompletely understood. We report here a new mechanism of active AG uptake in Gram-negative bacteria. In E. coli, overexpression of various carbohydrate transporters increases susceptibility to AGs. Conversely, deletion of a single transporter has little impact. We propose a new uptake model where AGs act as substrates for redundant carbohydrate transporters. This mechanism appears to be shared among Gram-negative ESKAPE pathogens. We screened for molecules that induce transporters expression and identified uridine. When uridine is co-administered with AGs under conditions mimicking urinary tract infections, the efficacy of AG therapies is significantly improved against E. coli, including resistant strains, due to enhanced bacterial uptake. Based on previous knowledge on the use of uridine in humans, we propose that uridine can be a potentiating adjuvant to AG treatment of infectious diseases in the hospital.

microbiology↗