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Updated: Oct 18, 2025

Rapid and Refined CD11b Magnetic Isolation of Primary Microglia with Enhanced Purity and Versatility
Published on: April 13, 2017
Microglia and CD206+ border-associated mouse macrophages maintain their embryonic origin during Alzheimer's disease
Xiaoting Wu1, Takashi Saito2, Takaomi C Saido3
1School of Biological Sciences, Nanyang Technological University, Singapore, Singapore.
Abstract:
Brain microglia and border-associated macrophages (BAMs) display distinct spatial, developmental, and phenotypic features. Although at steady state, the origins of distinct brain macrophages are well-documented, the dynamics of their replenishment in neurodegenerative disorders remain elusive, particularly for activated CD11c+ microglia and BAMs. In this study, we conducted a comprehensive fate-mapping analysis of murine microglia and BAMs and their turnover kinetics during Alzheimer's disease (AD) progression. We used a novel inducible AD mouse model to investigate the contribution of bone marrow (BM) cells to the pool of fetal-derived brain macrophages during the development of AD. We demonstrated that microglia remain a remarkably stable embryonic-derived population even during the progression of AD pathology, indicating that neither parenchymal macrophage subpopulation originates from, nor is replenished by, BM-derived cells. At the border-associated brain regions, bona fide CD206+ BAMs are minimally replaced by BM-derived cells, and their turnover rates are not accelerated by AD. In contrast, all other myeloid cells are swiftly replenished by BM progenitors. This information further elucidates the turnover kinetics of these cells not only at steady state, but also in neurodegenerative diseases, which is crucial for identifying potential novel therapeutic targets.
Insights
Brain microglia and border-associated macrophages (BAMs) are stable, fetal-derived cells, even during Alzheimer's disease progression. Bone marrow cells do not replenish these brain immune cells in neurodegenerative conditions.
Area of Science:
- Neuroimmunology
- Cellular Biology
- Neurodegeneration
Background:
- Distinct populations of brain macrophages, including microglia and border-associated macrophages (BAMs), have unique origins and features.
- The replenishment dynamics of these cells during neurodegenerative diseases, especially Alzheimer's disease (AD), are not well understood.
Purpose of the Study:
- To investigate the contribution of bone marrow (BM)-derived cells to brain macrophage populations during AD progression.
- To elucidate the turnover kinetics of microglia and BAMs in a murine model of AD.
Main Methods:
- Comprehensive fate-mapping analysis in a novel inducible AD mouse model.
- Tracking of bone marrow (BM) cell contribution to brain macrophages.
Main Results:
- Microglia represent a stable, embryonic-derived population throughout AD progression, with no replenishment from BM-derived cells.
- Border-associated macrophages (BAMs) are minimally replaced by BM cells, and their turnover is not accelerated by AD.
- Other myeloid cells in the brain are rapidly replenished by BM progenitors.
Conclusions:
- Parenchymal microglia and bona fide BAMs are self-renewing populations and are not derived from or replenished by bone marrow cells in the context of AD.
- Understanding the distinct turnover kinetics of brain macrophages is crucial for developing targeted therapies for neurodegenerative diseases.

