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Polarization of M1 and M2 Human Monocyte-Derived Cells and Analysis with Flow Cytometry upon Mycobacterium tuberculosis Infection
Published on: September 18, 2020
Effect of apoptotic cell recognition on macrophage polarization and mycobacterial persistence
Tatiana de Oliveira Fulco1, Priscila Ribeiro Andrade1, Mayara Garcia de Mattos Barbosa1
1Leprosy Laboratory, Oswaldo Cruz Institute, Oswaldo Cruz Foundation, Rio de Janeiro, RJ, Brazil.
Abstract:
Intracellular Mycobacterium leprae infection modifies host macrophage programming, creating a protective niche for bacterial survival. The milieu regulating cellular apoptosis in the tissue plays an important role in defining susceptible and/or resistant phenotypes. A higher density of apoptotic cells has been demonstrated in paucibacillary leprosy lesions than in multibacillary ones. However, the effect of apoptotic cell removal on M. leprae-stimulated cells has yet to be fully elucidated. In this study, we investigated whether apoptotic cell removal (efferocytosis) induces different phenotypes in proinflammatory (Mϕ1) and anti-inflammatory (Mϕ2) macrophages in the presence of M. leprae. We stimulated Mϕ1 and Mϕ2 cells with M. leprae in the presence or absence of apoptotic cells and subsequently evaluated the M. leprae uptake, cell phenotype, and cytokine pattern in the supernatants. In the presence of M. leprae and apoptotic cells, Mϕ1 macrophages changed their phenotype to resemble the Mϕ2 phenotype, displaying increased CD163 and SRA-I expression as well as higher phagocytic capacity. Efferocytosis increased M. leprae survival in Mϕ1 cells, accompanied by reduced interleukin-15 (IL-15) and IL-6 levels and increased transforming growth factor beta (TGF-β) and IL-10 secretion. Mϕ1 cells primed with M. leprae in the presence of apoptotic cells induced the secretion of Th2 cytokines IL-4 and IL-13 in autologous T cells compared with cultures stimulated with M. leprae or apoptotic cells alone. Efferocytosis did not alter the Mϕ2 cell phenotype or cytokine secretion profile, except for TGF-β. Based on these data, we suggest that, in paucibacillary leprosy patients, efferocytosis contributes to mycobacterial persistence by increasing the Mϕ2 population and sustaining the infection.
Insights
Apoptotic cell removal (efferocytosis) in leprosy promotes Mycobacterium leprae survival by shifting proinflammatory macrophages to an anti-inflammatory Mϕ2 phenotype, aiding bacterial persistence.
Area of Science:
- Immunology
- Microbiology
- Cell Biology
Background:
- Intracellular Mycobacterium leprae infection alters host macrophage programming, creating a niche for bacterial survival.
- Cellular apoptosis influences leprosy lesion phenotypes, with higher apoptotic cell density in paucibacillary leprosy.
- The impact of efferocytosis on M. leprae-infected macrophages remains unclear.
Purpose of the Study:
- To investigate if apoptotic cell removal (efferocytosis) induces distinct phenotypes in M. leprae-stimulated proinflammatory (Mϕ1) and anti-inflammatory (Mϕ2) macrophages.
- To evaluate the effects of efferocytosis on M. leprae uptake, macrophage phenotype, and cytokine profiles.
Main Methods:
- Mϕ1 and Mϕ2 cells were stimulated with M. leprae in the presence or absence of apoptotic cells.
- Macrophage phenotype (CD163, SRA-I expression), phagocytic capacity, and cytokine secretion (IL-15, IL-6, TGF-β, IL-10) were assessed.
- The impact on autologous T cell cytokine secretion (IL-4, IL-13) was evaluated.
Main Results:
- Efferocytosis induced Mϕ1 cells to adopt an Mϕ2-like phenotype, increasing CD163/SRA-I expression and phagocytic capacity.
- In Mϕ1 cells, efferocytosis enhanced M. leprae survival, reduced IL-15/IL-6, and increased TGF-β/IL-10.
- Mϕ1 cells exposed to efferocytosis and M. leprae promoted Th2 cytokine secretion (IL-4, IL-13) in T cells.
- Efferocytosis minimally affected Mϕ2 phenotype and cytokine profiles, except for TGF-β.
Conclusions:
- Efferocytosis contributes to Mycobacterium leprae persistence in paucibacillary leprosy by promoting an Mϕ2-like phenotype in Mϕ1 macrophages.
- This process sustains infection by enhancing bacterial survival and modulating the immune microenvironment.
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