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Andrey, D. O.

Publications and source records attributed to Andrey, D. O..

2 recordsLinked to original sources

A two-component system signaling hub controls enterococcal membrane remodeling in response to daptomycin

Daptomycin is a last resort antibiotic used to treat vancomycin-resistant enterococcal infections, but daptomycin resistance (DAPR) arises quickly during treatment. Resistance is due to sequential acquisition of point mutations in the two-component system LiaFSR and in cardiolipin synthases and is associated with alteration of phospholipid and glycolipid membrane composition. The molecular mechanisms underlying these lipid changes are currently unknown. Similarly, it is unclear why mutations in liaFSR occur prior to mutations in cls. We discovered that Enterococcus faecalis remodels membrane composition as a phenotypic response to daptomycin that parallels the membrane composition of DAPR strains. The enrichment in glycolipids that follows antibiotic exposure is due to LtaS1, the main LTA synthase of E. faecalis. Moreover, LtaS1 activity is governed by a network of two-component systems formed by LiaFSR, SapRS, and BsrRS that couple antibiotic sensing with membrane lipid remodeling. Together, our results provide a unifying mechanism that drives phenotypic membrane fortification in a Gram-positive pathogen which simultaneously predisposes the cell to acquire genetic high-level daptomycin resistance. Significance StatementDaptomycin is the preferred alternative to treat vancomycin-resistant Enterococcus infections. However, the efficacy of daptomycin is limited by the acquisition of daptomycin resistance. Alterations in lipid membrane composition represent a conserved strategy to fortify the Gram-positive membrane. We discovered that E. faecalis phenotypically remodels membrane composition in response to daptomycin and that the enrichment in glycolipids is dependent on LTA synthesis. We expand our limited knowledge of enterococcal LTA synthases, confirming LtaS1 as the main LTA synthase and placing LTA biogenesis under control of a network of antibiotic-responsive two-component systems. Our work provides a molecular explanation for the sequential evolution of daptomycin resistance and may support the use of existing LtaS inhibitors to prevent acquisition of daptomycin resistance.

microbiology↗

Genomic characterization of plasmids harboring blaNDM-1,-5,-7 carbapenemase alleles in clinical Klebsiella pneumoniae in Pakistan

Klebsiella pneumoniae is notorious for causing healthcare-associated infections, which become more complicated by the acquisition of blaNDM genes via mobile genetic elements. Although Pakistan is a well-established hot spot of blaNDM-positive K. pneumoniae, detailed molecular descriptions of blaNDM-carrying plasmids are scarce. Seven K. pneumoniae isolates harboring blaNDM were recovered from clinical sample sources during a six-month period and tested for antimicrobial susceptibility. A long-read approach was used for whole genome sequencing to obtain circularized plasmids and chromosomes for typing, annotation, and comparative analysis. The isolates were susceptible to colistin and tigecycline only among the tested antibiotics. We identified five STs: ST11, ST16, ST716, ST464, and ST2856. Notably, three strains possessed the hypervirulent capsule KL2, while five were classified as O locus type O2a. Evidence of genetic diversity was further highlighted by the presence of four IncC plasmids harboring blaNDM-1, two IncX3 plasmids harboring blaNDM-5, and a single hybrid IncFIB/IncHI1B plasmid harboring blaNDM-7. These plasmids also carried additional ARGs conferring resistance to aminoglycosides, cephalosporins, and fluoroquinolones. We identified the plasmidome of the K. pneumoniae isolates and characterized the NDM-carrying plasmids. Genetic analysis confirmed the presence of blaNDM-1 and blaNDM-5 on broad host range plasmids and blaNDM-7 in a previously unreported hybrid plasmid backbone. We emphasized the critical role of plasmids in spreading blaNDM in the clinical setting in Pakistan. Hence, we stressed the urgent need for enhanced surveillance, not least in LMICs, infection control measures, and adherence to the AWaRe guidelines in antibiotics use.

microbiology↗