Microglia Ablation and Downstream Effects in the Cerebrospinal Fluid Proteome

Disease-related activation of glial cells leads to changes in the cerebrospinal fluid (CSF) proteome. However, assigning such protein changes to their cellular origins is often difficult. Here, we used microglia (and macrophage) depletion in mice to identify CSF proteins of microglial origin. Young mice were treated with an inhibitor of the colony-stimulating factor 1 receptor, resulting in an almost complete ablation of microglial cells (and brain macrophages). Depleting microglia revealed profound changes in the CSF proteome. Nineteen proteins showed an overall reduction of at least 90%, suggesting a direct microglial or macrophage origin. Strikingly, we also observed an increase in many neuronal and synaptic proteins, likely reflecting compensatory neural changes including the accumulation of certain neuronal proteins that normally act as ligands for receptors on microglia cells, such as fractalkine or interleukin-34. In contrast to the robust changes in microglial and neuronal proteins, there was no evidence of astrogliosis after microglia ablation as determined by proteome analysis and brain histology. These observations are crucial for interpreting changes to the CSF proteome in relation to neuroinflammatory changes in neurological diseases.

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Journal
PROTEOMICS
Published
2026-09-14
DOI
https://doi.org/10.1002/pmic.70178
Primary Topic
Neuroinflammation and Neurodegeneration Mechanisms
Type
article
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article

Microglia Ablation and Downstream Effects in the Cerebrospinal Fluid Proteome

Stephan A. Kaeser, Sihui Song, Stefan F. Lichtenthaler, Samira Parhizkar et al.
PROTEOMICS
Neuroinflammation and Neurodegeneration Mechanisms
article

Microglia Ablation and Downstream Effects in the Cerebrospinal Fluid Proteome

Stephan A. Kaeser, Sihui Song, Stefan F. Lichtenthaler, Samira Parhizkar, Yun Chen, Sinja Buchner, Stephan A. Müller, David M. Holtzman, Mathias Jucker
article en

Abstract

Disease-related activation of glial cells leads to changes in the cerebrospinal fluid (CSF) proteome. However, assigning such protein changes to their cellular origins is often difficult. Here, we used microglia (and macrophage) depletion in mice to identify CSF proteins of microglial origin. Young mice were treated with an inhibitor of the colony-stimulating factor 1 receptor, resulting in an almost complete ablation of microglial cells (and brain macrophages). Depleting microglia revealed profound changes in the CSF proteome. Nineteen proteins showed an overall reduction of at least 90%, suggesting a direct microglial or macrophage origin. Strikingly, we also observed an increase in many neuronal and synaptic proteins, likely reflecting compensatory neural changes including the accumulation of certain neuronal proteins that normally act as ligands for receptors on microglia cells, such as fractalkine or interleukin-34. In contrast to the robust changes in microglial and neuronal proteins, there was no evidence of astrogliosis after microglia ablation as determined by proteome analysis and brain histology. These observations are crucial for interpreting changes to the CSF proteome in relation to neuroinflammatory changes in neurological diseases.

PROTEOMICS
German Center for Neurodegenerative Diseases (DE), Munich Cluster for Systems Neurology (DE), Hope Center for Neurological Disorders (US), Bernstein Center for Computational Neuroscience Tübingen (DE), Hertie Institute for Clinical Brain Research (DE), Technical University of Munich (DE), University of Tübingen (DE)
Openalex Percentile: Top 13%
Neuroinflammation and Neurodegeneration Mechanisms
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