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Investigation of Macrophage Polarization Using Bone Marrow Derived Macrophages
Published on: June 23, 2013
Modulatory effects of adiponectin on the polarization of tumor-associated macrophages
Jiao Peng1,2, Julia Y Tsang2,3, Derek H Ho2,4
1Guangzhou Women and Children's Medical Center, Guangzhou, China.
Abstract:
The plasticity of macrophages with selective functional phenotypes partially arises in respective to their microenvironment. Tumor-associated macrophages (TAMs) may promote disease progression with tumor specific manner. Here we report that in pediatric malignant soft-tissue tumors, the presence of TAMs and expression of adiponectin (APN) are heterogeneous. Both APN and TAMs had high expression in rhabdomyosarcoma, especially in the malignant subtype, alveolar rhabdomyosarcoma. To investigate the mode of action of APN on TAM activation, a murine MN/MCA1 sarcoma model was used. The Results revealed that exogenous APN had no effect on MN/MCA1 proliferation but tumor size was markedly reduced in apn(-/-) mice versus WT controls. The accumulation of TAMs in apn(-/-) mice was also reduced which correlated to downregulated serum levels of MCP-1. Likewise, TAMs in apn(-/-) mice exhibited a M1-like phenotype, characterized by increase in MHC II(high) population and M1 phenotypic markers, such as iNOS gene and serum TNF-α accompanied by a decrease in M2 markers, namely YM1 gene and serum IL-10. In addition, APN deficiency increased the number of CD4(+) T cells, CD8(+) T cells and NK cells in tumors and reduced tumor metastasis. The altered phenotype of TAMs in apn(-/-) mice was associated with a marked decrease in phospho-p38 and treatment with a p38 MAPK inhibitor significantly reduced tumor size and increased MHC II expression on TAMs in WT mice, implying p38 MAPK signaling pathway may contribute to APN-mediated TAM polarization. Collectively, our findings suggest that APN may have a potential role in regulating soft tissue sarcoma growth.
Insights
Adiponectin (APN) influences tumor-associated macrophages (TAMs) in soft tissue sarcoma. APN deficiency reduces tumor growth and metastasis by promoting an anti-tumor M1-like TAM phenotype via the p38 MAPK pathway.
Area of Science:
- Oncology
- Immunology
- Molecular Biology
Background:
- Tumor-associated macrophages (TAMs) exhibit plasticity and can promote tumor progression.
- Adiponectin (APN) expression and TAM presence are heterogeneous in pediatric soft tissue sarcomas, particularly rhabdomyosarcoma.
Purpose of the Study:
- To investigate the role of APN in regulating TAM activation and soft tissue sarcoma growth.
- To elucidate the mechanism by which APN influences TAM phenotype and tumor microenvironment.
Main Methods:
- Utilized a murine MN/MCA1 sarcoma model with wild-type (WT) and adiponectin-deficient (apn(-/-)) mice.
- Analyzed TAM accumulation, phenotype (M1/M2 markers), immune cell infiltration, and tumor growth.
- Investigated the involvement of the p38 MAPK signaling pathway.
Main Results:
- APN deficiency reduced tumor size and metastasis without affecting tumor cell proliferation.
- APN deficiency decreased TAM accumulation, correlating with lower MCP-1 serum levels.
- APN-deficient mice showed TAMs with an M1-like phenotype (increased MHC II, iNOS, TNF-α; decreased YM1, IL-10) and enhanced CD4+, CD8+, and NK cell infiltration.
- APN deficiency led to decreased phospho-p38 levels; p38 MAPK inhibition reduced tumor size and increased TAM MHC II expression.
Conclusions:
- Adiponectin (APN) plays a significant role in regulating soft tissue sarcoma growth and metastasis.
- APN promotes tumor growth by polarizing TAMs towards an M2-like, pro-tumor phenotype, potentially mediated by the p38 MAPK pathway.
- Targeting APN or the p38 MAPK pathway may represent a therapeutic strategy for soft tissue sarcomas.
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