Chronic Microglial Activation in the GFAP-IL6 Mouse Contributes to Age-Dependent Cerebellar Volume Loss and

Erika Gyengesi1,2, Alejandra Rangel1, Faheem Ullah1

  • 1Pharmacology Unit, School of Medicine, Western Sydney University, Penrith, NSW, Australia.

Insights

Chronic microglial activation in GFAP-IL6 mice leads to cerebellar volume loss and motor deficits later in life. This study examines neuroinflammation, synaptic changes, and age-dependent motor performance deterioration.

Area of Science:

  • Neuroscience
  • Immunology
  • Genetics

Background:

  • Chronic microglial activation is implicated in neurodegenerative diseases like Parkinson's and Alzheimer's.
  • Understanding its long-term effects on brain structure and function is crucial.

Purpose of the Study:

  • To investigate the impact of chronic microglial activation on cerebellar structure and motor function across the lifespan.
  • To analyze inflammatory markers, neuronal degeneration, and motor performance in GFAP-IL6 mice compared to wild-type (WT) mice.

Main Methods:

  • Utilized the GFAP-IL6 transgenic mouse model and WT (C57BL/6) controls.
  • Assessed neuroinflammation (Iba1+, TNF-α), cerebellar volume, synaptic markers (synaptophysin, PSD95), and motor function (ataxia score, accelerod, beam walking, open field tests) at multiple ages (3, 6, 14, 24 months).

Main Results:

  • Elevated microglial numbers (Iba1+) and TNF-α levels were observed early (3 months) in GFAP-IL6 mice.
  • Significant cerebellar volume loss (up to 50%) and decreased PSD95 levels occurred later in life (from 6 and 14 months, respectively).
  • Age-dependent motor deficits, including reduced performance on accelerod and increased ataxia, were evident from 6 months onwards.

Conclusions:

  • Early chronic microglial activation in GFAP-IL6 mice results in progressive cerebellar degeneration and motor function decline.
  • This model provides insights into the long-term consequences of sustained neuroinflammation on brain health and behavior.

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