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Updated: Jan 20, 2026

Polarization and Characterization of M1 and M2 Human Monocyte-Derived Macrophages on Implant Surfaces
Published on: December 6, 2024
Triggering of protease-activated receptors (PARs) induces alternative M2 macrophage polarization with impaired
Gerardo García-González1, Alejandro Sánchez-González1, Romel Hernández-Bello1
1Universidad Autónoma de Nuevo León, Facultad de Medicina y Hospital Universitario "Dr. José Eleuterio González", Departamento de Microbiología, Av. Francisco I. Madero y Calle Dr. Eduardo Aguirre Pequeño s/n, Colonia Mitras Centro, Monterrey, Nuevo León, C.P. 64460, Mexico.
Abstract:
Protease-activated receptors (PARs) have been described in a wide diversity of vertebrate cells, including human immune cells. Macrophages are pivotal cells in the host-pathogen interaction and their polarization in M1 or M2 cells has been described as a new central paradigm in the immune response to pathogens. In this context, we explored the involvement of PAR activation by serine proteases on M1/M2 macrophage differentiation and their impact on the Th1/Th2 cytokine profile in response to Mycobacterium tuberculosis antigen. Our results demonstrate that the serine proteases, thrombin and trypsin, induce interleukin (IL)-4 release from human monocytes, together with upregulation of the macrophage mannose receptor (CD206) in the same way that alternative M2a differentiated cells with M-CSF/IL-4. Protease stimulation of monocytes in the presence of PAR-1 (SCH-79797) or PAR-2 (FSLLRY-NH2) antagonists abolished IL-4 release from monocytes, whereas the use of the peptide agonist for PAR-1 (SFLLRNPNDKYEPF-NH2) or PAR-2 (SLIGKV-NH2) induced the secretion of IL-4 at a level comparable to thrombin or trypsin. When these protease-induced M2 macrophages from healthy human PPD + donors were co-cultured with autologous lymphocyte population in the presence of Mycobacterium tuberculosis antigen, we found a consistent inhibition of IFN-γ/IL-12 release together with persistent IL-4 expression, in contrast to the expected Th1 profile obtained with M2a macrophages. To our knowledge, this is the first observation that proteolytic activation of PAR1/2 receptors in monocytes induces M2-like macrophages with impaired plasticity and their implication in the driving of the Th1/Th2 cytokine profile.
Insights
Serine proteases activate protease-activated receptors (PARs) on monocytes, inducing M2-like macrophages. These macrophages impair Th1 cytokine release and promote IL-4, impacting immune responses to Mycobacterium tuberculosis.
Area of Science:
- Immunology
- Cell Biology
- Molecular Biology
Background:
- Protease-activated receptors (PARs) are expressed on human immune cells, including macrophages, which are crucial in host-pathogen interactions.
- Macrophage polarization into M1 and M2 subtypes is a key aspect of the immune response to pathogens.
Purpose of the Study:
- To investigate the role of PAR activation by serine proteases in M1/M2 macrophage differentiation.
- To determine the impact of PAR activation on the Th1/Th2 cytokine profile in response to Mycobacterium tuberculosis.
Main Methods:
- Human monocytes were stimulated with serine proteases (thrombin, trypsin) or PAR agonists/antagonists.
- Macrophage polarization was assessed by IL-4 release and CD206 expression.
- Co-culture experiments with lymphocytes and Mycobacterium tuberculosis antigen were performed to analyze cytokine profiles (IFN-γ, IL-12, IL-4).
Main Results:
- Thrombin and trypsin induced IL-4 release and CD206 upregulation in monocytes, mimicking M2a differentiation.
- PAR-1 and PAR-2 antagonists blocked protease-induced IL-4 release, while agonists mimicked the effect.
- PAR-activated M2 macrophages inhibited IFN-γ/IL-12 release and maintained IL-4 expression when challenged with M. tuberculosis antigen, unlike M2a macrophages.
Conclusions:
- Proteolytic activation of PAR1/2 receptors on monocytes induces M2-like macrophages.
- These M2-like macrophages exhibit impaired plasticity and skew the Th1/Th2 cytokine profile towards Th2.
- This finding offers novel insights into immune evasion strategies of Mycobacterium tuberculosis.
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