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The effects of daptomycin on cell wall biosynthesis in Enterococcal faecalis
Binayak Rimal1,2, James Chang3, Chengyin Liu4
1Institute of Biomedical Studies, Baylor University, Waco, TX, 76798, USA.
Abstract:
Daptomycin is a cyclic lipodepsipeptide antibiotic reserved for the treatment of serious infections by multidrug-resistant Gram-positive pathogens. Its mode of action is considered to be multifaceted, encompassing the targeting and depolarization of bacterial cell membranes, alongside the inhibition of cell wall biosynthesis. To characterize the daptomycin mode of action, 15N cross-polarization at magic-angle spinning NMR measurements were performed on intact whole cells of Staphylococcus aureus grown in the presence of a sub-inhibitory concentration of daptomycin in a chemically defined media containing L-[ϵ-15N]Lys. Daptomycin-treated cells showed a reduction in the lysyl-ε-amide intensity that was consistent with cell wall thinning. However, the reduced lysyl-ε-amine intensity at 10 ppm indicated that the daptomycin-treated cells did not accumulate in Park's nucleotide, the cytoplasmic peptidoglycan (PG) precursor. Consequently, daptomycin did not inhibit the transglycosylation step of PG biosynthesis. To further elucidate the daptomycin mode of action, the PG composition of daptomycin-susceptible Enterococcus faecalis grown in the presence of daptomycin was analyzed using liquid chromatography-mass spectrometry. Sixty-nine muropeptide ions correspond to PG with varying degrees of modifications including crosslinking, acetylation, alanylation, and 1,6-anhydrous ring formation at MurNAc were quantified. Analysis showed that the cell walls of daptomycin-treated E. faecalis had a significant reduction in PG crosslinking which was accompanied by an increase in lytic transglycosylase activities and a decrease in PG-stem modifications by the carboxypeptidases. The changes in PG composition suggest that daptomycin inhibits cell wall biosynthesis by impeding the incorporation of nascent PG into the cell walls by transpeptidases and maturation by carboxypeptidases. As a result, the newly formed cell walls become highly susceptible to degradation by the autolysins, resulting in thinning of the cell wall.
Insights
Daptomycin treatment thins bacterial cell walls by disrupting peptidoglycan crosslinking and maturation, not by inhibiting precursor synthesis. This leads to increased susceptibility to degradation, impacting multidrug-resistant Gram-positive infections.
Area of Science:
- Microbiology
- Antibiotic Resistance
- Biochemistry
Background:
- Daptomycin is a crucial antibiotic for treating infections caused by multidrug-resistant Gram-positive bacteria.
- Its known mechanisms include bacterial membrane depolarization, but its precise effects on cell wall biosynthesis require further clarification.
Purpose of the Study:
- To elucidate the detailed mechanism of daptomycin's action on bacterial cell wall biosynthesis.
- To investigate whether daptomycin inhibits peptidoglycan precursor synthesis or affects cell wall maturation.
Main Methods:
- Utilized 15N cross-polarization magic-angle spinning NMR on *Staphylococcus aureus* to analyze cell wall components.
- Employed liquid chromatography-mass spectrometry to quantify peptidoglycan modifications in *Enterococcus faecalis*.
Main Results:
- Daptomycin treatment led to cell wall thinning in *S. aureus* without accumulating peptidoglycan precursors.
- In *E. faecalis*, daptomycin significantly reduced peptidoglycan crosslinking and stem modifications, increasing lytic transglycosylase activity.
- NMR data indicated no inhibition of the transglycosylation step in peptidoglycan biosynthesis.
Conclusions:
- Daptomycin inhibits bacterial cell wall biosynthesis by impeding the incorporation and maturation of peptidoglycan, rather than inhibiting precursor synthesis.
- This disruption makes the cell wall susceptible to autolytic degradation, contributing to the antibiotic's efficacy against resistant pathogens.
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