| Literature DB >> 32539684 |
Allison Parrett1, Joseph M Reed2,3, Stewart G Gardner2,4, Nagendra N Mishra5,6, Arnold S Bayer5,6, Robert Powers7,8, Greg A Somerville9.
Abstract
BACKGROUND: Viridans group streptococci of the Streptococcus mitis-oralis subgroup are important endovascular pathogens. They can rapidly develop high-level and durable non-susceptibility to daptomycin both in vitro and in vivo upon exposure to daptomycin. Two consistent genetic adaptations associated with this phenotype (i.e., mutations in cdsA and pgsA) lead to the depletion of the phospholipids, phosphatidylglycerol and cardiolipin, from the bacterial membrane. Such alterations in phospholipid biosynthesis will modify carbon flow and change the bacterial metabolic status. To determine the metabolic differences between daptomycin-susceptible and non-susceptible bacteria, the physiology and metabolomes of S. mitis-oralis strains 351 (daptomycin-susceptible) and 351-D10 (daptomycin non-susceptible) were analyzed. S. mitis-oralis strain 351-D10 was made daptomycin non-susceptible through serial passage in the presence of daptomycin.Entities:
Keywords: Antibiotic resistance; Daptomycin; Metabolism; Streptococcus
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Year: 2020 PMID: 32539684 PMCID: PMC7296729 DOI: 10.1186/s12866-020-01849-w
Source DB: PubMed Journal: BMC Microbiol ISSN: 1471-2180 Impact factor: 3.605
Fig. 1Growth characteristics of S. mitis-oralis strains 351 (black symbols, solid line) and 351-D10 (grey symbols, dashed line) cultivated in BHI with 2 g/L of supplemental glucose. The A600 (a) and pH (b) profiles were assessed every 30 min. Glucose depletion (c) and lactate accumulation (d) in the cultivation media were assessed hourly. Data are representative of the mean of experiments performed in biological triplicate, with error bars representing the standard deviation of the mean. Statistical differences in A600 and pH for strain 351 relative to strain 351-D10 was assessed by ANOVA. A statistically significant difference (p ≤ 0.01) is represented with an (*)
Fig. 2The PCA scores plot was generated from 1D 1H NMR spectra collected using cell-free lysates of S. mitis-oralis strains 351 (blue) and 351-D10 (red) cultivated in BHI with 2 g/L of supplemental 13C-glucose and harvested at 2 h (351) or 2 h 45 min (351-D10). The R2 and Q2 are 0.931 and 0.781 respectively for the PCA model
Fig. 3Heatmap with hierarchal clustering of metabolomic differences between S. mitis-oralis strains 351 and 351-D10. The map was generated using 2D 1H 13C HSQC NMR spectra with normalized peak intensities. Statistical significance was calculated using Student’s t-test (* p < 0.05 and ** p < 0.001) or Student’s t-test with Benjamini-Hochberg correction for multiple hypothesis (the asterisk in blue)
Fig. 4GAPDH activity in S. mitis-oralis strain 351-D10 is significantly reduced relative to strain 351. GAPDH activity was measured in S. mitis-oralis cell lysates from cultures cultivated in BHI and harvested after 1.5 h (351) or 2.5 h (351-D10). The data represent the mean and standard deviation from the mean of 3 biological replicates. Statistical significance (**) was assessed using Student’s t-test (p ≤ 0.05)
Fig. 5Summary of metabolic changes between S. mitis-oralis strains 351 and 351-D10. Green upward arrows represent a metabolite whose concentration is increased in strain 351-D10 relative to those in strain 351. Red downward arrows represent metabolites that are decreased in strain 351-D10 relative to that in strain 351. Metabolites in gray represent intermediates that were not observed in the NMR spectra, but were inferred from secondary metabolites