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Updated: Nov 3, 2025

Nanomechanics of Drug-target Interactions and Antibacterial Resistance Detection
Published on: October 25, 2013
Effect of Vancomycin on Cytoplasmic Peptidoglycan Intermediates and van Operon mRNA Levels in VanA-Type
Shivani Gargvanshi1, Harika Vemula1, William G Gutheil1
1Division of Pharmacology and Pharmaceutical Sciences, School of Pharmacy, University of Missouri-Kansas City, Kansas City, Missouri, USA.
Abstract:
Resistance in VanA-type vancomycin-resistant Enterococcus faecium (VREfm) is due to an inducible gene cassette encoding seven proteins (vanRSHAXYZ). This provides for an alternative peptidoglycan (PG) biosynthesis pathway whereby D-Ala-D-Ala is replaced by D-Ala-d-lactate (Lac), to which vancomycin cannot bind effectively. This study aimed to quantify cytoplasmic levels of normal and alternative pathway PG intermediates in VanA-type VREfm by liquid chromatography-tandem mass spectrometry before and after vancomycin exposure and to correlate these changes with changes in vanA operon mRNA levels measured by real-time quantitative PCR (RT-qPCR). Normal pathway intermediates predominated in the absence of vancomycin, with low levels of alternative pathway intermediates. Extended (18-h) vancomycin exposure resulted in a mixture of the terminal normal (UDP-N-acetylmuramic acid [NAM]-l-Ala-D-Glu-l-Lys-D-Ala-D-Ala [UDP-Penta]) and alternative (UDP-NAM-l-Ala-γ-D-Glu-l-Lys-D-Ala-D-Lac [UDP-Pentadepsi]) pathway intermediates (2:3 ratio). Time course analyses revealed normal pathway intermediates responding rapidly (peaking in 3 to 10 min) and alternative pathway intermediates responding more slowly (peaking in 15 to 45 min). RT-qPCR demonstrated that vanA operon mRNA transcript levels increased rapidly after exposure, reaching maximal levels in 15 min. To resolve the effect of increased van operon protein expression on PG metabolite levels, linezolid was used to block protein biosynthesis. Surprisingly, linezolid dramatically reduced PG intermediate levels when used alone. When used in combination with vancomycin, linezolid only modestly reduced alternative UDP-linked PG intermediate levels, indicating substantial alternative pathway presence before vancomycin exposure. Comparison of PG intermediate levels between VREfm, vancomycin-sensitive Enterococcus faecium, and methicillin-resistant Staphylococcus aureus after vancomycin exposure demonstrated substantial differences between S. aureus and E. faecium PG biosynthesis pathways. IMPORTANCE VREfm is highly resistant to vancomycin due to the presence of a vancomycin resistance gene cassette. Exposure to vancomycin induces the expression of genes in this cassette, which encode enzymes that provide for an alternative PG biosynthesis pathway. In VanA-type resistance, these alternative pathway enzymes replace the D-Ala-D-Ala terminus of normal PG intermediates with D-Ala-D-Lac terminated intermediates, to which vancomycin cannot bind. While the general features of this resistance mechanism are well known, the details of the choreography between vancomycin exposure, vanA gene induction, and changes in the normal and alternative pathway intermediate levels have not been described previously. This study comprehensively explores how VREfm responds to vancomycin exposure at the mRNA and PG intermediate levels.
Insights
Vancomycin-resistant Enterococcus faecium (VREfm) alters its peptidoglycan synthesis pathway upon vancomycin exposure, increasing resistance. This study quantifies these changes and their correlation with vanA gene induction.
Area of Science:
- Microbiology
- Molecular Biology
- Biochemistry
Background:
- VanA-type vancomycin-resistant Enterococcus faecium (VREfm) exhibits resistance through an inducible vancomycin resistance gene cassette (vanRSHAXYZ).
- This cassette enables an alternative peptidoglycan (PG) biosynthesis pathway, replacing D-Ala-D-Ala with D-Ala-D-Lac, which vancomycin cannot effectively bind.
- Understanding the dynamic interplay between vancomycin exposure, vanA gene induction, and PG intermediate levels is crucial for VREfm resistance mechanisms.
Purpose of the Study:
- To quantify cytoplasmic levels of normal and alternative PG pathway intermediates in VanA-type VREfm.
- To correlate these intermediate levels with vanA operon mRNA expression changes following vancomycin exposure.
- To investigate the impact of protein biosynthesis inhibition on PG intermediate levels.
Main Methods:
- Quantification of PG intermediates using liquid chromatography-tandem mass spectrometry (LC-MS/MS).
- Measurement of vanA operon mRNA levels via real-time quantitative PCR (RT-qPCR).
- Utilized linezolid to inhibit protein biosynthesis and assess its effect on PG intermediates.
Main Results:
- Vancomycin exposure induced a shift from normal to alternative PG pathway intermediates, with a 2:3 ratio after 18 hours.
- Normal pathway intermediates responded rapidly (3-10 min), while alternative pathway intermediates responded more slowly (15-45 min) to vancomycin.
- vanA operon mRNA levels increased rapidly, peaking at 15 minutes post-exposure; linezolid alone reduced PG intermediates, and with vancomycin, only modestly affected alternative pathway intermediates.
Conclusions:
- Vancomycin exposure triggers a coordinated response in VREfm, involving rapid vanA gene induction and a subsequent metabolic shift in peptidoglycan biosynthesis.
- The study reveals the detailed kinetics of PG intermediate changes and vanA mRNA induction, providing insights into the choreography of VREfm vancomycin resistance.
- Differences in PG biosynthesis pathways were observed between VREfm, vancomycin-sensitive E. faecium, and MRSA, highlighting species-specific mechanisms.
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