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Updated: Jan 24, 2026

Mesenchymal Stem Cell Regulation of Macrophage Phagocytosis; Quantitation and Imaging
Published on: July 16, 2021
Macrophage Smad3 Protects the Infarcted Heart, Stimulating Phagocytosis and Regulating Inflammation
Bijun Chen1, Shuaibo Huang1, Ya Su1
1From the Wilf Family Cardiovascular Research Institute, Department of Medicine (Cardiology), Albert Einstein College of Medicine, Bronx, NY (B.C., S.H., Y.S., Y-J.W., A.H., A.B., N.G.F.).
Rationale:
TGF (transforming growth factor)-β is critically involved in myocardial injury, repair, and fibrosis, activating both Smad (small mothers against decapentaplegic)-dependent and non-Smad pathways. The in vivo role of TGF-β signaling in regulation of macrophage function is poorly understood. We hypothesized that in the infarcted myocardium, activation of TGF-β/Smad signaling in macrophages may regulate repair and remodeling.
Objective:
To investigate the role of macrophage-specific TGF-β Smad3 signaling in a mouse model of myocardial infarction and to dissect the mechanisms mediating Smad-dependent modulation of macrophage function.
Methods And Results:
TGF-βs markedly activated Smad3 in macrophages, without affecting Smad-independent pathways. Phagocytosis rapidly and directly activated macrophage Smad3, in the absence of active TGF-β release. MyS3KO (myeloid cell-specific Smad3 knockout) mice had no baseline defects but exhibited increased late mortality and accentuated dilative postmyocardial infarction remodeling. Adverse outcome in infarcted MyS3KO mice was associated with perturbations in phagocytic activity, defective transition of macrophages to an anti-inflammatory phenotype, scar expansion, and accentuated apoptosis of border zone cardiomyocytes. In vitro, Smad3 null macrophages exhibited reduced expression of genes associated with eat-me signals, such as Mfge8 (milk fat globule-epidermal growth factor factor 8), and reduced capacity to produce the anti-inflammatory mediators IL (interleukin)-10 and TGF-β1, and the angiogenic growth factor VEGF (vascular endothelial growth factor). Mfge8 partly rescued the phagocytic defect of Smad3 null macrophages, without affecting inflammatory activity. Impaired anti-inflammatory actions of Smad3 null macrophages were associated with marked attenuation of phagocytosis-induced PPAR (peroxisome proliferator-activated receptor) expression. MyS3KO mice had no significant alterations in microvascular density and interstitial fibrosis in remodeling myocardial segments.
Conclusions:
We demonstrate that Smad3 critically regulates function of infarct macrophages, by mediating acquisition of a phagocytic phenotype and by contributing to anti-inflammatory transition. Smad3-dependent actions in macrophages protect the infarcted heart from adverse remodeling.
Insights
Smad3 signaling in macrophages is crucial for heart repair after myocardial infarction. Blocking Smad3 impairs macrophage function, leading to adverse cardiac remodeling and increased mortality.
Area of Science:
- Cardiovascular Biology
- Immunology
- Molecular Biology
Background:
- Transforming growth factor-β (TGF-β) is vital in myocardial injury, repair, and fibrosis, engaging Smad-dependent and non-Smad pathways.
- The specific role of TGF-β signaling in regulating macrophage function within the infarcted myocardium remains unclear.
- Hypothesis: TGF-β/Smad signaling activation in macrophages influences cardiac repair and remodeling post-myocardial infarction.
Purpose of the Study:
- Investigate the role of macrophage-specific TGF-β Smad3 signaling in myocardial infarction.
- Elucidate mechanisms of Smad-dependent macrophage modulation in this context.
Main Methods:
- Utilized a myeloid cell-specific Smad3 knockout (MyS3KO) mouse model of myocardial infarction.
- Assessed macrophage function, including phagocytosis and inflammatory mediator production (in vitro and in vivo).
- Analyzed cardiac remodeling, mortality, and cardiomyocyte apoptosis post-infarction.
Main Results:
- Macrophage Smad3 activation was induced by phagocytosis, independent of active TGF-β release.
- MyS3KO mice showed increased late mortality, exacerbated cardiac remodeling, and impaired macrophage anti-inflammatory transition.
- Smad3 deficiency reduced expression of phagocytosis-related genes (e.g., Mfge8) and anti-inflammatory mediators (e.g., IL-10, TGF-β1).
Conclusions:
- Smad3 is critical for regulating infarct macrophage phenotype, promoting phagocytosis and anti-inflammatory transition.
- Smad3-dependent macrophage functions protect the infarcted heart against adverse remodeling and improve outcomes.
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