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Updated: Jun 26, 2025

Development and Assessment of Intracellular Infection Models for Staphylococcus aureus
Published on: January 17, 2025
Defective pgsA contributes to increased membrane fluidity and cell wall thickening in Staphylococcus aureus with
Christian D Freeman1, Tayte Hansen2, Ramona Urbauer1
1Department of Chemistry, University of Georgia, Athens, Georgia, USA.
Abstract:
Daptomycin is a membrane-targeting last-resort antimicrobial therapeutic for the treatment of infections caused by methicillin- and/or vancomycin-resistant Staphylococcus aureus. In the rare event of failed daptomycin therapy, the source of resistance is often attributable to mutations directly within the membrane phospholipid biosynthetic pathway of S. aureus or in the regulatory systems that control cell envelope response and membrane homeostasis. Here we describe the structural changes to the cell envelope in a daptomycin-resistant isolate of S. aureus strain N315 that has acquired mutations in the genes most commonly reported associated with daptomycin resistance: mprF, yycG, and pgsA. In addition to the decreased phosphatidylglycerol (PG) levels that are the hallmark of daptomycin resistance, the mutant with high-level daptomycin resistance had increased branched-chain fatty acids (BCFAs) in its membrane lipids, increased membrane fluidity, and increased cell wall thickness. However, the successful utilization of isotope-labeled straight-chain fatty acids (SCFAs) in lipid synthesis suggested that the aberrant BCFA:SCFA ratio arose from upstream alteration in fatty acid synthesis rather than a structural preference in PgsA. Transcriptomics studies revealed that expression of pyruvate dehydrogenase (pdhB) was suppressed in the daptomycin-resistant isolate, which is known to increase BCFA levels. While complementation with an additional copy of pdhB had no effect, complementation of the pgsA mutation resulted in increased PG formation, reduction in cell wall thickness, restoration of normal BCFA levels, and increased daptomycin susceptibility. Collectively, these results demonstrate that pgsA contributes to daptomycin resistance through its influence on membrane fluidity and cell wall thickness, in addition to phosphatidylglycerol levels.
Importance:
The cationic lipopeptide antimicrobial daptomycin has become an essential tool for combating infections with Staphylococcus aureus that display reduced susceptibility to β-lactams or vancomycin. Since daptomycin's activity is based on interaction with the negatively charged membrane of S. aureus, routes to daptomycin-resistance occur through mutations in the lipid biosynthetic pathway surrounding phosphatidylglycerols and the regulatory systems that control cell envelope homeostasis. Therefore, there are many avenues to achieve daptomycin resistance and several different, and sometimes contradictory, phenotypes of daptomycin-resistant S. aureus, including both increased and decreased cell wall thickness and membrane fluidity. This study is significant because it demonstrates the unexpected influence of a lipid biosynthesis gene, pgsA, on membrane fluidity and cell wall thickness in S. aureus with high-level daptomycin resistance.
Insights
Daptomycin resistance in Staphylococcus aureus is linked to mutations in lipid synthesis. The PgsA enzyme unexpectedly influences membrane fluidity and cell wall thickness, impacting daptomycin susceptibility.
Area of Science:
- Microbiology
- Molecular Biology
- Biochemistry
Background:
- Daptomycin is a critical antibiotic for treating infections caused by resistant Staphylococcus aureus strains.
- Resistance to daptomycin often arises from mutations in genes involved in cell membrane phospholipid synthesis and cell envelope homeostasis.
- Understanding the mechanisms of daptomycin resistance is crucial for developing effective treatment strategies.
Purpose of the Study:
- To investigate the structural changes in the cell envelope of daptomycin-resistant Staphylococcus aureus.
- To elucidate the role of specific genes, including mprF, yycG, and pgsA, in daptomycin resistance.
- To determine the unexpected influence of the pgsA gene on membrane properties and daptomycin susceptibility.
Main Methods:
- Analysis of a daptomycin-resistant Staphylococcus aureus N315 isolate with mutations in mprF, yycG, and pgsA.
- Measurement of phosphatidylglycerol (PG) levels, branched-chain fatty acids (BCFAs), and straight-chain fatty acids (SCFAs).
- Assessment of membrane fluidity, cell wall thickness, and daptomycin susceptibility.
- Transcriptomics analysis to study gene expression, specifically pyruvate dehydrogenase (pdhB).
- Complementation studies to validate the role of pgsA and pdhB.
Main Results:
- The daptomycin-resistant mutant exhibited decreased PG levels, increased BCFAs, enhanced membrane fluidity, and increased cell wall thickness.
- Transcriptomics revealed suppressed expression of pdhB, correlating with increased BCFA levels.
- Complementation of the pgsA mutation restored PG levels, reduced cell wall thickness, normalized BCFA levels, and increased daptomycin susceptibility.
Conclusions:
- The PgsA enzyme plays a significant role in daptomycin resistance beyond its effect on PG levels.
- PgsA influences membrane fluidity and cell wall thickness, contributing to high-level daptomycin resistance in Staphylococcus aureus.
- Targeting PgsA or related pathways could be a potential strategy to overcome daptomycin resistance.

