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An In vitro Model to Study Heterogeneity of Human Macrophage Differentiation and Polarization
Published on: June 12, 2013
Development, differentiation, and phenotypic heterogeneity of murine tissue macrophages
1Second Department of Pathology, Niigata University School of Medicine, Japan.
Abstract:
In murine ontogeny, macrophage precursor cells develop in the yolk sac and fetal liver. Primitive macrophages also appear in the yolk sac, migrate to various tissues, and differentiate into several fetal macrophage populations. Because the development of the monocytic cell lineage is incomplete in the early stage of fetal hematopoiesis, primitive/fetal macrophages are considered to originate from granulocyte-macrophage colony forming cells or earlier macrophage precursors, bypassing the early monocytic cell series. In adult mice rendered severely monocytopenic by administration of strontium-89, resident macrophages are maintained by self-renewal. In contrast, administration of liposome-encapsulated dichloromethylene diphosphonate (clodronate) results in the elimination of various tissue macrophage populations. The repopulation of affected macrophages is dependent on the increase of precursors in the liver and spleen during the period of macrophage depletion. Such precursors reconstitute heterogeneous macrophage subpopulations. In mice homozygous for the osteopetrosis (op) mutation, the absence of macrophage colony-stimulating factor (M-CSF) activity results in a deficiency of monocytes and monocyte-derived macrophages. However, immature macrophages are present in various tissues. Administration of M-CSF to op/op mice induces the increased proliferative capacity and the morphological maturation of macrophages. However, the responses of individual tissue macrophage subpopulations to M-CSF are different. These results indicate that macrophage development, differentiation, and proliferation are regulated by the tissue microenvironment including the in situ production of macrophage growth factors in both fetal and adult life.
Insights
Macrophage development originates from precursors in fetal organs and is maintained by self-renewal or precursor recruitment in adults. Tissue microenvironments and growth factors regulate macrophage populations throughout life.
Area of Science:
- Immunology
- Developmental Biology
- Hematopoiesis
Background:
- Macrophage precursor cells originate in the yolk sac and fetal liver during murine ontogeny.
- Early hematopoiesis involves primitive/fetal macrophages differentiating from precursors, bypassing the monocytic lineage.
- Adult macrophages are maintained via self-renewal or precursor reconstitution following depletion.
Purpose of the Study:
- To investigate the origins and regulation of macrophage populations during murine development and adulthood.
- To explore the role of the tissue microenvironment and growth factors in macrophage homeostasis.
Main Methods:
- Induction of monocytopenia using strontium-89.
- Macrophage depletion with liposome-encapsulated dichloromethylene diphosphonate (clodronate).
- Analysis of macrophage populations in osteopetrotic (op/op) mice lacking macrophage colony-stimulating factor (M-CSF) activity.
- Administration of M-CSF to op/op mice.
Main Results:
- Resident macrophages in adult mice are maintained by self-renewal.
- Clodronate treatment eliminates tissue macrophages, with repopulation dependent on liver and spleen precursors.
- op/op mice exhibit a deficiency in monocytes and monocyte-derived macrophages but possess immature macrophages.
- M-CSF administration promotes macrophage proliferation and maturation in op/op mice, with varied responses among subpopulations.
Conclusions:
- Macrophage development, differentiation, and proliferation are tightly regulated by the tissue microenvironment.
- In situ production of macrophage growth factors is crucial for regulating macrophage populations in both fetal and adult life.

