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Updated: Jun 20, 2026

Detection of Neuritic Plaques in Alzheimer's Disease Mouse Model
Published on: July 26, 2011
Monocyte-derived cells invade brain parenchyma and amyloid plaques in human Alzheimer's disease hippocampus
Clara Muñoz-Castro1,2,3, Marina Mejias-Ortega4,3, Elisabeth Sanchez-Mejias4,3
1Dpto. Bioquimica Y Biologia Molecular, Facultad de Farmacia, Universidad de Sevilla, C/ Prof. Garcia Gonzalez 2, 41012, Seville, Spain.
Abstract:
Microglia are brain-resident myeloid cells and play a major role in the innate immune responses of the CNS and the pathogenesis of Alzheimer's disease (AD). However, the contribution of nonparenchymal or brain-infiltrated myeloid cells to disease progression remains to be demonstrated. Here, we show that monocyte-derived cells (MDC) invade brain parenchyma in advanced stages of AD continuum using transcriptional analysis and immunohistochemical characterization in post-mortem human hippocampus. Our findings demonstrated that a high proportion (60%) of demented Braak V-VI individuals was associated with up-regulation of genes rarely expressed by microglial cells and abundant in monocytes, among which stands the membrane-bound scavenger receptor for haptoglobin/hemoglobin complexes or Cd163. These Cd163-positive MDC invaded the hippocampal parenchyma, acquired a microglial-like morphology, and were located in close proximity to blood vessels. Moreover, and most interesting, these invading monocytes infiltrated the nearby amyloid plaques contributing to plaque-associated myeloid cell heterogeneity. However, in aged-matched control individuals with hippocampal amyloid pathology, no signs of MDC brain infiltration or plaque invasion were found. The previously reported microglial degeneration/dysfunction in AD hippocampus could be a key pathological factor inducing MDC recruitment. Our data suggest a clear association between MDC infiltration and endothelial activation which in turn may contribute to damage of the blood brain barrier integrity. The recruitment of monocytes could be a consequence rather than the cause of the severity of the disease. Whether monocyte infiltration is beneficial or detrimental to AD pathology remains to be fully elucidated. These findings open the opportunity to design targeted therapies, not only for microglia but also for the peripheral immune cell population to modulate amyloid pathology and provide a better understanding of the immunological mechanisms underlying the progression of AD.
Insights
Monocyte-derived cells invade the brain in advanced Alzheimer's disease (AD), infiltrating amyloid plaques and potentially contributing to disease severity. This suggests new therapeutic targets beyond microglia for AD treatment.
Area of Science:
- Neuroimmunology
- Alzheimer's Disease Pathogenesis
- Innate Immune Response in CNS
Background:
- Microglia are key players in CNS innate immunity and Alzheimer's disease (AD) pathogenesis.
- The role of nonparenchymal or brain-infiltrated myeloid cells in AD progression is not well understood.
Purpose of the Study:
- To investigate the infiltration and role of monocyte-derived cells (MDC) in the brain parenchyma during advanced stages of Alzheimer's disease.
Main Methods:
- Transcriptional analysis of post-mortem human hippocampus.
- Immunohistochemical characterization.
- Analysis of gene expression, including Cd163, in relation to microglial and monocyte markers.
Main Results:
- Monocyte-derived cells (MDC) invade hippocampal parenchyma in advanced AD (Braak V-VI stages).
- Infiltrating MDC express monocyte-associated genes like Cd163 and adopt a microglial-like morphology near blood vessels.
- These MDC infiltrate amyloid plaques, contributing to myeloid cell heterogeneity, and are associated with endothelial activation and potential blood-brain barrier damage.
Conclusions:
- Monocyte infiltration into the brain parenchyma occurs in advanced AD, particularly in individuals with microglial dysfunction.
- This infiltration is linked to endothelial activation and may represent a consequence, rather than a cause, of severe AD pathology.
- Findings suggest peripheral immune cells as potential therapeutic targets for modulating AD amyloid pathology.
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