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Quantification of Monocyte Chemotactic Activity In Vivo and Characterization of Blood Monocyte Derived Macrophages
Published on: August 12, 2019
Monocyte metabolic reprogramming promotes pro-inflammatory activity and Staphylococcus aureus biofilm clearance
Kelsey J Yamada1, Cortney E Heim1, Xinyuan Xi2
1Department of Pathology and Microbiology, University of Nebraska Medical Center, Omaha, Nebraska, United States of America.
Abstract:
Biofilm-associated prosthetic joint infections (PJIs) cause significant morbidity due to their recalcitrance to immune-mediated clearance and antibiotics, with Staphylococcus aureus (S. aureus) among the most prevalent pathogens. We previously demonstrated that S. aureus biofilm-associated monocytes are polarized to an anti-inflammatory phenotype and the adoptive transfer of pro-inflammatory macrophages attenuated biofilm burden, highlighting the critical role of monocyte/macrophage inflammatory status in dictating biofilm persistence. The inflammatory properties of leukocytes are linked to their metabolic state, and here we demonstrate that biofilm-associated monocytes exhibit a metabolic bias favoring oxidative phosphorylation (OxPhos) and less aerobic glycolysis to facilitate their anti-inflammatory activity and biofilm persistence. To shift monocyte metabolism in vivo and reprogram cells to a pro-inflammatory state, a nanoparticle approach was utilized to deliver the OxPhos inhibitor oligomycin to monocytes. Using a mouse model of S. aureus PJI, oligomycin nanoparticles were preferentially internalized by monocytes, which significantly reduced S. aureus biofilm burden by altering metabolism and promoting the pro-inflammatory properties of infiltrating monocytes as revealed by metabolomics and RT-qPCR, respectively. Injection of oligomycin alone had no effect on monocyte metabolism or biofilm burden, establishing that intracellular delivery of oligomycin is required to reprogram monocyte metabolic activity and that oligomycin lacks antibacterial activity against S. aureus biofilms. Remarkably, monocyte metabolic reprogramming with oligomycin nanoparticles was effective at clearing established biofilms in combination with systemic antibiotics. These findings suggest that metabolic reprogramming of biofilm-associated monocytes may represent a novel therapeutic approach for PJI.
Insights
Targeting monocyte metabolism with oligomycin nanoparticles reduces Staphylococcus aureus biofilm burden in prosthetic joint infections. This approach reprograms monocytes to a pro-inflammatory state, enhancing antibiotic efficacy against persistent biofilms.
Area of Science:
- Immunology
- Biomedical Engineering
- Infectious Diseases
Background:
- Biofilm-associated prosthetic joint infections (PJIs) are difficult to treat due to pathogen resistance and anti-inflammatory monocyte phenotypes.
- Monocyte/macrophage inflammatory status critically influences biofilm persistence in PJIs.
- Leukocyte inflammatory properties are linked to their metabolic state, with biofilm-associated monocytes favoring oxidative phosphorylation (OxPhos).
Purpose of the Study:
- To investigate if shifting monocyte metabolism in vivo can reprogram anti-inflammatory cells to a pro-inflammatory state.
- To assess the efficacy of a nanoparticle-based approach delivering an OxPhos inhibitor to monocytes for treating Staphylococcus aureus PJIs.
Main Methods:
- Utilized a nanoparticle approach to deliver oligomycin, an OxPhos inhibitor, to monocytes in a mouse model of S. aureus PJI.
- Analyzed monocyte metabolism using metabolomics and inflammatory properties via RT-qPCR.
- Evaluated biofilm burden and therapeutic efficacy in combination with systemic antibiotics.
Main Results:
- Oligomycin nanoparticles were preferentially internalized by monocytes, reducing S. aureus biofilm burden.
- Metabolic reprogramming altered monocyte function, promoting pro-inflammatory properties.
- Oligomycin nanoparticles combined with antibiotics effectively cleared established biofilms; oligomycin alone had no effect.
Conclusions:
- Intracellular delivery of oligomycin is required to reprogram monocyte metabolic activity.
- Oligomycin nanoparticles demonstrate potential as a novel therapeutic strategy for PJIs by targeting monocyte metabolism.
- Metabolic reprogramming of monocytes offers a promising avenue for treating recalcitrant biofilm infections.

