Regulatory Macrophages Inhibit Alternative Macrophage Activation and Attenuate Pathology Associated with Fibrosis
Prabha Chandrasekaran1,2, Salman Izadjoo1,2, Jessica Stimely1,2
1Department of Cell Biology and Molecular Genetics, University of Maryland, College Park, MD 20742.
Abstract:
Diversity and plasticity are the hallmarks of macrophages. The two most well-defined macrophage subsets are the classically activated macrophages (CAMϕs) and the IL-4-derived alternatively activated macrophages (AAMϕs). Through a series of studies, we previously identified and characterized a distinct population of macrophages with immunoregulatory functions, collectively termed regulatory macrophages (RMϕs). Although considerable advances have been made in understanding these various macrophage subsets, it is not known whether macrophages of one activation state can influence the other. In this study, we examined whether RMϕs capable of inhibiting inflammatory responses of CAMϕs could also inhibit AAMϕs and their profibrotic responses. Our results demonstrated that RMϕs significantly dampened the alternate activation phenotype of AAMϕs generated in vitro and intrinsically occurring AAMϕs from TACI-/- macrophages. Further, RMϕs inhibited AAMϕ-promoted arginase activity and fibroblast proliferation in vitro. This inhibition occurred regardless of the strength, duration, and mode of alternative activation and was only partially dependent on IL-10. In the chlorhexidine gluconate-induced peritoneal fibrosis model, AAMϕs worsened the fibrosis, but RMϕs rescued mice from AAMϕ-mediated pathological conditions. Taken together, our study demonstrates that RMϕs are a specialized subset of macrophages with a nonredundant role in limiting overt proregenerative functions of AAMϕs, a role distinct from their well-defined role of suppression of inflammatory responses by CAMϕs.
Insights
Regulatory macrophages (RMϕs) inhibit alternatively activated macrophages (AAMϕs) and their profibrotic functions. RMϕs also protect against AAMϕ-exacerbated fibrosis, highlighting their distinct immunoregulatory role.
Area of Science:
- Immunology
- Cell Biology
- Macrophage Biology
Background:
- Macrophages exhibit diverse phenotypes, including classically activated (CAMϕs) and alternatively activated (AAMϕs).
- Regulatory macrophages (RMϕs) are a distinct subset with immunoregulatory functions.
- The interaction between different macrophage subsets remains incompletely understood.
Purpose of the Study:
- To investigate whether RMϕs can inhibit AAMϕs and their profibrotic activities.
- To determine if RMϕs modulate the alternative activation phenotype of AAMϕs.
- To assess the role of RMϕs in AAMϕ-mediated fibrosis.
Main Methods:
- In vitro generation and characterization of AAMϕs and RMϕs.
- Assessment of AAMϕ phenotype, arginase activity, and fibroblast proliferation.
- In vivo studies using a peritoneal fibrosis model.
Main Results:
- RMϕs significantly dampened the alternative activation phenotype of AAMϕs.
- RMϕs inhibited AAMϕ-driven arginase activity and fibroblast proliferation.
- RMϕs ameliorated AAMϕ-exacerbated fibrosis in vivo, independent of IL-10.
Conclusions:
- RMϕs possess a unique nonredundant role in suppressing the pro-regenerative functions of AAMϕs.
- This function is distinct from the known role of RMϕs in suppressing CAMϕ-mediated inflammation.
- RMϕs represent a specialized macrophage subset crucial for maintaining tissue homeostasis.
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