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Published on: September 9, 2014
Investigating the pro-inflammatory differentiation of macrophages with bacterial ghosts in potential infection
Aiswarya Pradeep1, Asish Issac Mathew1, Praveen Kumar Vemula2
1Department of Biotechnology, Cochin University of Science and Technology, Kochi, India.
Abstract:
In the complex realm of bacterial infections, particularly those caused by Staphylococcus aureus (S. aureus), macrophages play a pivotal role in orchestrating the immune response. During the initial stages of infection, the monocytes give rise to macrophages with a pro-inflammatory (M1 type) behaviour, engulfing and neutralizing the invading pathogens. However, under the sustained influence of S. aureus infection, monocytes can undergo a transition into an anti-inflammatory M2 state (pro-infection) rather than the M1 state (anti-infection), thereby compromising effective infection control. Therefore, it is necessary to develop a strategy that would preserve the pro-inflammatory functions of macrophages, in a safe and controlled manner. For this, we focused on harnessing the potential of S. aureus-derived ghost cells (GCs) which are non-live empty envelopes of bacterial cells, but with the antigenic determinants intact. Through a unique Lugol's-iodine treatment, we generated GCs and characterization of these GCs using gel electrophoresis, FTIR, flow cytometry, TEM, and SEM confirmed their structural integrity. Following this, we assessed the extend of cellular association of the GCs with RAW267.4 macrophages, and observed an immediate interaction between the two, as evident from the flowcytometry and microscopy studies. We then performed macrophage polarisation on a human monocyte-macrophage model cell line, THP-1. Our findings revealed that GCs effectively activated macrophages, and promoted a pro-inflammatory polarisation with the expression of M1 differentiation markers (CD86, TNFα, IL-1β, IL-6, IL-12) evaluated through both qPCR and ELISA. Interestingly an intermediary expression of M2 markers viz., CD206 and IL-10 was also observed, but was overruled by the enhanced expression of M1 markers at a later time point. Overall, our study introduces a novel approach utilizing GCs to guide naïve macrophages towards M1 subtypes, thereby potentiating immune responses during microbial infections. This innovative strategy can modulate macrophage function, ultimately improving outcomes in S. aureus infections and beyond.
Insights
Staphylococcus aureus infections can shift macrophages to a pro-infection state. This study uses S. aureus ghost cells (GCs) to promote anti-infection M1 macrophage polarization, enhancing immune response against bacterial infections.
Area of Science:
- Immunology
- Microbiology
- Biotechnology
Background:
- Macrophages are crucial for immune response to Staphylococcus aureus (S. aureus) infections.
- S. aureus can induce macrophages to adopt an anti-inflammatory (M2) state, hindering infection control.
- Developing strategies to maintain pro-inflammatory (M1) macrophage function is essential.
Purpose of the Study:
- To investigate the potential of S. aureus-derived ghost cells (GCs) in modulating macrophage polarization.
- To determine if GCs can promote a pro-inflammatory (M1) macrophage phenotype for improved immune response.
Main Methods:
- S. aureus ghost cells (GCs) were generated using Lugol's iodine treatment.
- GC structural integrity was confirmed via gel electrophoresis, FTIR, flow cytometry, TEM, and SEM.
- Macrophage polarization was assessed in THP-1 cells using qPCR and ELISA to evaluate M1 and M2 marker expression.
Main Results:
- GCs effectively associated with and were internalized by macrophages.
- GC treatment promoted M1 macrophage polarization, evidenced by increased CD86, TNFα, IL-1β, IL-6, and IL-12 expression.
- While transient M2 marker expression occurred, M1 markers dominated, indicating a shift towards an anti-infection phenotype.
Conclusions:
- S. aureus GCs represent a novel strategy to induce pro-inflammatory M1 macrophage polarization.
- This approach can enhance immune responses against S. aureus infections.
- GCs offer a promising therapeutic avenue for modulating macrophage function in microbial infections.
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