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March 15, 2026Neuron12 citationsOpen Access

Brain-engrafted monocyte-derived macrophages from blood and skull-bone marrow exhibit distinct properties

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SDSiling DuFOFeiya OuADAntoine Drieu

Key Points

  • This research aims to investigate the origin and functional differences between brain-engrafted monocyte-derived macrophages and yolk-sac-derived microglia.
  • Combined lineage tracing and pharmacological microglia depletion
  • Multi-omics profiling for molecular characterization
  • Utilized parabiosis and skull-flap transplantation to study macrophage origins
  • Analyzed transcriptional and epigenetic landscapes of macrophages
  • Monocyte-derived macrophages exhibit distinct transcriptional and epigenetic features compared to yolk-sac-derived microglia
  • Engrafted macrophages transiently express CD206 during development
  • MDM polarization is influenced by IL-34 and CCR2
  • MDM engraftment promotes demyelination in response to cuprizone treatment

Abstract

Microglia arise from yolk sac progenitors and are thought to persist throughout life with minimal input from adult hematopoiesis. However, whether brain-engrafted monocyte-derived macrophages (MDMs) exist at homeostasis and during turnover and how they function relative to yolk-sac-derived microglia (YSMs) remain unsettled. Here, we combine lineage tracing, pharmacological microglia depletion, and multi-omics profiling to define the ontogeny, identity, and function of brain parenchymal macrophages. Despite sharing the parenchymal milieu, MDMs display transcriptional and epigenetic landscapes distinct from YSMs. Fate-mapping reveals that brain-engrafted MDMs transiently express CD206, echoing a developmental stage of microglial precursors. MDM engraftment and polarization are modulated by interleukin (IL)-34 and C-C chemokine receptor 2 (CCR2). Furthermore, parabiosis and skull-flap transplantation reveal that both blood and skull marrow supply the niche, yielding origin-biased MDM states. Functionally, MDM engraftment enhances cuprizone-mediated demyelination. Together, our study defines the origins, molecular features, and context-dependent roles of brain parenchymal macrophages across homeostasis, turnover, and central nervous system (CNS) pathology.

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Cite This Study

Du et al. (2026) studied this question.

synapsesocial.com/papers/69b64d48b42794e3e660e14bhttps://doi.org/10.1016/j.neuron.2026.01.032
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