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Published on: October 9, 2013
Microglia and metastases to the central nervous system: victim, ravager, or something else?
Maria M Caffarel1,2, Mounia S Braza3,4,5
1Biodonostia Health Research Institute, Basque Country, Spain.
Abstract:
Central nervous system (CNS) metastases are a major cause of death in patients with cancer. Tumor cells must survive during their migration and dissemination in various sites and niches. The brain is considered an immunological sanctuary site, and thus the safest place for metastasis establishment. The risk of brain metastases is highest in patients with melanoma, lung, or breast cancers. In the CNS, metastatic cancer cells exploit the activity of different non-tumoral cell types in the brain microenvironment to create a new niche and to support their proliferation and survival. Among these cells, microglia (the brain resident macrophages) display an exceptional role in immune surveillance and tumor clearance. However, upon recruitment to the metastatic site, depending on the microenvironment context and disease conditions, microglia might be turned into tumor-supportive or -unsupportive cells. Recent single-cell 'omic' analyses have contributed to clarify microglia functional and spatial heterogeneity during tumor development and metastasis formation in the CNS. This review summarizes findings on microglia heterogeneity from classical studies to the new single-cell omics. We discuss i) how microglia interact with metastatic cancer cells in the unique brain tumor microenvironment; ii) the microglia classical M1-M2 binary concept and its limitations; and iii) single-cell omic findings that help to understand human and mouse microglia heterogeneity (core sensomes) and to describe the multi-context-dependent microglia functions in metastases to the CNS. We then propose ways to exploit microglia plasticity for brain metastasis treatment depending on the microenvironment profile.
Insights
Central nervous system metastases are a significant threat. Microglia, brain immune cells, can either hinder or help tumor growth, with single-cell omics revealing their complex roles in brain metastasis.
Area of Science:
- Neuro-oncology
- Cancer immunology
- Cellular biology
Background:
- Central nervous system (CNS) metastases are a leading cause of cancer-related death.
- The brain's unique microenvironment supports metastasis establishment, particularly in melanoma, lung, and breast cancers.
- Metastatic cancer cells co-opt brain cells, including microglia, for survival and proliferation.
Purpose of the Study:
- To review microglia heterogeneity in CNS metastasis.
- To explore microglia interactions with cancer cells in the brain tumor microenvironment.
- To discuss the limitations of the M1-M2 paradigm and highlight single-cell omics findings.
Main Methods:
- Literature review of classical and single-cell omics studies.
- Analysis of microglia heterogeneity and function in CNS metastasis.
- Discussion of microglia plasticity and therapeutic potential.
Main Results:
- Microglia exhibit significant functional and spatial heterogeneity in the CNS metastatic niche.
- The classical M1-M2 microglia classification is insufficient to describe their complex roles.
- Single-cell omics reveal context-dependent microglia functions influencing brain metastasis.
Conclusions:
- Microglia plasticity offers potential therapeutic targets for brain metastasis.
- Understanding microglia heterogeneity is crucial for developing effective treatments.
- Targeting microglia in the brain tumor microenvironment may improve patient outcomes.
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