Related Experiment Video
Updated: Feb 6, 2026

Characterizing Herbivore Resistance Mechanisms: Spittlebugs on Brachiaria spp. as an Example
Published on: June 19, 2011
Mechanism of High-Level Daptomycin Resistance in Corynebacterium striatum
Nicholas K Goldner1, Christopher Bulow1, Kevin Cho2,3
1Edison Family Center for Genome Sciences & Systems Biology, Washington University in St. Louis School of Medicine, St. Louis, Missouri, USA.
Abstract:
Daptomycin, a last-line-of-defense antibiotic for treating Gram-positive infections, is experiencing clinical failure against important infectious agents, including Corynebacterium striatum The recent transition of daptomycin to generic status is projected to dramatically increase availability, use, and clinical failure. Here we confirm the genetic mechanism of high-level daptomycin resistance (HLDR; MIC = >256 µg/ml) in C. striatum, which evolved within a patient during daptomycin therapy, a phenotype recapitulated in vitro In all 8 independent cases tested, loss-of-function mutations in phosphatidylglycerol synthase (pgsA2) were necessary and sufficient for high-level daptomycin resistance. Through lipidomic and biochemical analysis, we demonstrate that daptomycin's activity is dependent on the membrane phosphatidylglycerol (PG) concentration. Until now, the verification of PG as the in vivo target of daptomycin has proven difficult since tested cell model systems were not viable without membrane PG. C. striatum becomes daptomycin resistant at a high level by removing PG from the membrane and changing the membrane composition to maintain viability. This work demonstrates that loss-of-function mutation in pgsA2 and the loss of membrane PG are necessary and sufficient to produce high-level resistance to daptomycin in C. striatumIMPORTANCE Antimicrobial resistance threatens the efficacy of antimicrobial treatment options, including last-line-of-defense drugs. Understanding how this resistance develops can help direct antimicrobial stewardship efforts and is critical to designing the next generation of antimicrobial therapies. Here we determine how Corynebacterium striatum, a skin commensal and opportunistic pathogen, evolved high-level resistance to a drug of last resort, daptomycin. Through a single mutation, this pathogen was able to remove the daptomycin's target, phosphatidylglycerol (PG), from the membrane and evade daptomycin's bactericidal activity. We found that additional compensatory changes were not necessary to support the removal of PG and replacement with phosphatidylinositol (PI). The ease with which C. striatum evolved high-level resistance is cause for alarm and highlights the importance of screening new antimicrobials against a wide range of clinical pathogens which may harbor unique capacities for resistance evolution.
Insights
High-level daptomycin resistance in Corynebacterium striatum evolves through a single mutation in pgsA2, eliminating the drug
Area of Science:
- Microbiology
- Molecular Biology
- Biochemistry
Background:
- Daptomycin is a critical antibiotic for Gram-positive infections.
- Clinical failures of daptomycin are increasing, particularly with Corynebacterium striatum.
- Generic daptomycin availability may exacerbate resistance issues.
Purpose of the Study:
- To elucidate the genetic and biochemical mechanisms of high-level daptomycin resistance (HLDR) in Corynebacterium striatum.
- To confirm phosphatidylglycerol (PG) as the in vivo target of daptomycin.
- To understand how C. striatum evolves resistance to daptomycin.
Main Methods:
- Genetic analysis of daptomycin-resistant C. striatum isolates.
- Biochemical assays to assess membrane composition.
- Lipidomic analysis to quantify membrane lipids.
Main Results:
- Loss-of-function mutations in phosphatidylglycerol synthase (pgsA2) were necessary and sufficient for HLDR (MIC >256 µg/ml).
- Daptomycin activity is directly dependent on membrane phosphatidylglycerol (PG) concentration.
- C. striatum evolves HLDR by eliminating PG from its membrane, replacing it with phosphatidylinositol (PI), without requiring compensatory mutations.
Conclusions:
- A single mutation in pgsA2 leading to PG depletion is sufficient for HLDR in C. striatum.
- This mechanism highlights the vulnerability of daptomycin to specific resistance pathways.
- The rapid evolution of resistance in C. striatum necessitates vigilance and screening of new antimicrobials against diverse pathogens.
More Related Videos
08:46Implementation of In Vitro Drug Resistance Assays: Maximizing the Potential for Uncovering Clinically Relevant Resistance Mechanisms
Published on: December 9, 2015
10:28Evaluation of Vascular Control Mechanisms Utilizing Video Microscopy of Isolated Resistance Arteries of Rats
Published on: December 5, 2017
Related Concept Videos
Leveling Effect
Resistivity
Resistance
High-Level and Low-Level Awareness
Levels of Organization
Molecules Are Composed of Atoms, and Biomolecules Are Assembled from Molecules:
The most basic levels include atoms, molecules, and biomolecules. Atoms, the smallest unit of ordinary matter, are composed of a nucleus and electrons. Molecules...
Fermi Level
At absolute zero temperature, electrons fill all energy states up to the Fermi level, leaving upper states empty. As the temperature rises,...