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Published on: November 28, 2019
Tumor-Released Products Promote Bone Marrow-Derived Macrophage Survival and Proliferation
Juliana Maria Motta1,2, Vivian Mary Rumjanek1, Alberto Mantovani2
1Instituto de Bioquímica Médica Leopoldo de Meis, Centro de Ciências da Saúde, Universidade Federal do Rio de Janeiro, Rio de Janeiro 21941-902, Brazil.
Abstract:
Macrophages play a central role within the tumor microenvironment, with relevant implications for tumor progression. The modulation of their phenotype is one of the mechanisms used by tumors to escape from effective immune responses. This study was designed to analyze the influence of soluble products released by tumors, here represented by the tumor-conditioned media of two tumor cell lines (3LL from Lewis lung carcinoma and MN/MCA from fibrosarcoma), on murine macrophage differentiation and polarization in vitro. Data revealed that tumor-conditioned media stimulated macrophage differentiation but influenced the expression levels of macrophage polarization markers, cytokine production, and microRNAs of relevance for macrophage biology. Interestingly, tumor-derived soluble products supported the survival and proliferation rate of bone marrow precursor cells, an effect observed even with mature macrophages in the presence of M2 but not M1 inducers. Despite presenting low concentrations of macrophage colony-stimulating factor (M-CSF), tumor-conditioned media alone also supported the proliferation of cells to a similar extent as exogenous M-CSF. This effect was only evident in cells positive for the expression of the M-CSF receptor (CD115) and occurred preferentially within the CD16+ subset. Blocking CD115 partially reversed the effect on proliferation. These results suggest that tumors release soluble products that not only promote macrophage development from bone marrow precursors but also stimulate the proliferation of cells with specific phenotypes that could support protumoral functions.
Insights
Tumor-conditioned media promotes macrophage differentiation and proliferation. These tumor-derived soluble products influence macrophage polarization and support bone marrow precursor cell survival, suggesting a role in protumoral functions.
Area of Science:
- Immunology
- Cancer Biology
- Cell Biology
Background:
- Macrophages are key immune cells within the tumor microenvironment.
- Tumors can modulate macrophage phenotype to evade immune responses.
- Understanding tumor-macrophage interactions is crucial for cancer therapy.
Purpose of the Study:
- To investigate the impact of tumor-derived soluble products on macrophage differentiation and polarization.
- To analyze the effects of tumor-conditioned media on bone marrow precursor cell survival and proliferation.
Main Methods:
- In vitro culture of murine macrophages with tumor-conditioned media from Lewis lung carcinoma (3LL) and fibrosarcoma (MN/MCA) cell lines.
- Analysis of macrophage polarization markers, cytokine production, and microRNA expression.
- Assessment of bone marrow precursor cell proliferation and survival, including M-CSF receptor (CD115) blocking experiments.
Main Results:
- Tumor-conditioned media stimulated macrophage differentiation and altered polarization markers, cytokine profiles, and microRNAs.
- Tumor-derived products enhanced survival and proliferation of bone marrow precursor cells.
- Tumor-conditioned media alone, even with low M-CSF, supported proliferation of CD115+ and CD16+ macrophages, partially reversed by CD115 blocking.
Conclusions:
- Tumors release soluble factors that promote macrophage development from precursors.
- These factors also stimulate proliferation of specific macrophage subsets, potentially supporting protumoral activities.
- Targeting these tumor-derived soluble products could offer novel therapeutic strategies.
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