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Metabolic changes associated with adaptive resistance to daptomycin in Streptococcus mitis-oralis
Allison Parrett1, Joseph M Reed2,3, Stewart G Gardner2,4
1Department of Chemistry, University of Nebraska-Lincoln, Lincoln, NE, 68588-0304, USA.
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.
Results:
Daptomycin non-susceptible S. mitis-oralis had significant alterations in glucose catabolism and a re-balancing of the redox status through amino acid biosynthesis relative to daptomycin susceptible S. mitis-oralis. These changes were accompanied by a reduced capacity to generate biomass, creating a fitness cost in exchange for daptomycin non-susceptibility.
Conclusions:
S. mitis-oralis metabolism is altered in daptomycin non-susceptible bacteria relative to the daptomycin susceptible parent strain. As demonstrated in Staphylococcus aureus, inhibiting the metabolic changes that facilitate the transition from a daptomycin susceptible state to a non-susceptible one, inhibits daptomycin non-susceptibility. By preventing these metabolic adaptations in S. mitis-oralis, it should be possible to deter the formation of daptomycin non-susceptibility.
Insights
Viridans streptococci develop daptomycin non-susceptibility through metabolic shifts impacting phospholipid biosynthesis. Targeting these metabolic changes may prevent daptomycin resistance in Streptococcus mitis-oralis.
Area of Science:
- Microbiology
- Biochemistry
- Infectious Diseases
Background:
- Viridans streptococci, particularly Streptococcus mitis-oralis, are significant endovascular pathogens.
- These bacteria can rapidly acquire high-level daptomycin non-susceptibility through genetic mutations in cdsA and pgsA.
- These mutations alter phospholipid biosynthesis, depleting phosphatidylglycerol and cardiolipin, which modifies bacterial metabolism.
Purpose of the Study:
- To investigate the metabolic differences between daptomycin-susceptible and daptomycin non-susceptible S. mitis-oralis strains.
- To understand how alterations in phospholipid biosynthesis impact bacterial physiology and metabolomes.
Main Methods:
- Comparative analysis of the physiology and metabolomes of daptomycin-susceptible (S. mitis-oralis 351) and daptomycin non-susceptible (S. mitis-oralis 351-D10) strains.
- Induction of daptomycin non-susceptibility in strain 351-D10 via serial passage in daptomycin.
Main Results:
- Daptomycin non-susceptible S. mitis-oralis exhibited altered glucose catabolism and redox balance via amino acid biosynthesis.
- These metabolic shifts were associated with a reduced capacity for biomass generation, indicating a fitness cost.
- Changes in phospholipid biosynthesis directly influence carbon flow and overall metabolic status.
Conclusions:
- Metabolic alterations are key in the development of daptomycin non-susceptibility in S. mitis-oralis.
- Inhibiting these specific metabolic adaptations, similar to strategies in Staphylococcus aureus, could prevent the emergence of daptomycin resistance.
- Targeting metabolic pathways offers a potential strategy to deter daptomycin non-susceptibility in S. mitis-oralis infections.
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