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May 21, 2008Brain221 citations

Powerful beneficial effects of macrophage colony-stimulating factor on  -amyloid deposition and cognitive impairment in Alzheimer's disease

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VBVincent BoissonneaultMFMohammed FilaliMLMaryse Lessard

Key Points

  • To evaluate the efficacy of systemic macrophage colony-stimulating factor (M-CSF) administration in clearing beta-amyloid burden and mitigating cognitive impairment in an Alzheimer's disease mouse model.
  • Administered weekly systemic injections of M-CSF or vehicle control to APP(Swe)/PS1 transgenic mice either before the onset of symptoms or after pathology was established.
  • Evaluated cognitive function, parenchymal microglial numbers, senile plaque density, microglial phagocytic localization of Aβ, and extracellular Aβ40/Aβ42 monomer levels.
  • Pre-symptomatic M-CSF treatment prevented learning and memory deficits, while administration in mice with established pathology stabilized cognitive decline.
  • M-CSF increased microglial proliferation in the parenchyma, stimulated Aβ uptake into late endosomes and lysosomes, reduced plaque burden and size, and decreased extracellular Aβ40 and Aβ42 monomer levels.

Abstract

Alzheimer's disease is a major cause of dementia in humans. The appearance of cognitive decline is linked to the overproduction of a short peptide called beta-amyloid (Abeta) in both soluble and aggregate forms. Here, we show that injecting macrophage colony-stimulating factor (M-CSF) to Swedish beta-amyloid precursor protein (APP(Swe))/PS1 transgenic mice, a well-documented model for Alzheimer's disease, on a weekly basis prior to the appearance of learning and memory deficits prevented cognitive loss. M-CSF also increased the number of microglia in the parenchyma and decreased the number of Abeta deposits. Senile plaques were smaller and less dense in the brain of M-CSF-treated mice compared to littermate controls treated with vehicle solution. Interestingly, a higher ratio of microglia internalized Abeta in the brain of M-CSF-treated animals and the phagocytosed peptides were located in the late endosomes and lysosomes. Less Abeta(40) and Abeta(42) monomers were also detected in the extracellular protein enriched fractions of M-CSF-treated transgenic mice when compared with vehicle controls. Finally, treating APP(Swe)/PS1 mice that were already demonstrating installed Abeta pathology stabilized the cognitive decline. Together these results provide compelling evidence that systemic M-CSF administration is a powerful treatment to stimulate bone marrow-derived microglia, degrade Abeta and prevent or improve the cognitive decline associated with Abeta burden in a mouse model of Alzheimer's disease.

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Cite This Study

Boissonneault et al. (2008) studied this question.

synapsesocial.com/papers/69d9a63c8988aeabbe685e42https://doi.org/10.1093/brain/awn331
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