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Updated: Jan 26, 2026

Gait Analysis of Age-dependent Motor Impairments in Mice with Neurodegeneration
Published on: June 18, 2018
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.
Abstract:
Chronic microglial activation is a prominent feature of many chronic neurodegenerative diseases, including Parkinson's and Alzheimer's disease. To investigate the effects of chronic microglial activation on cerebellar structure and motor function throughout the lifespan, the transgenic GFAP-IL6 mouse model was used. The aim of the study was to examine inflammatory markers and neuronal degeneration while simultaneously characterizing the motor performance of GFAP-IL6 mice at 3, 6, 14, and 24 months of age in comparison to WT (C57BL/6) mice. In respect to markers of neuroinflammation in the cerebellum, increased numbers of Iba1+ microglia were observed as early as at 3 months of age. In addition, TNF-α levels proved to be significantly higher in the GFAP-IL6 compared to WT mice at all time points. A difference in cerebellar volume between the GFAP-IL6 and WT mice was observed later in life, starting at 6 months and increasing to a loss of about 50% in aged (24 months old) GFAP-IL6 mice. Synaptic deficits were also assessed by using pre- (synaptophysin) and post-synaptic (PSD95) markers. While synaptophysin levels remained unchanged, PSD95 levels decreased in the aging GFAP-IL6 mice compared to their WT littermates from 14 months onward. To assess the effect of microglia activation and neurodegeneration on behavior, a variety of motor function tests, semi-quantitative cerebellar ataxia score, accelerod, beam walking, and open field tests were performed. An age-dependent difference between the genotypes was observed in many of the motor function tests. For example, reduced performance on the accelerod and higher ataxia scores were observed at 6 months of age, followed by the beam walking test showing differences at 14 months of age. In summary, this study constitutes a comprehensive, age-dependent examination of inflammatory, synaptic and neurodegenerative changes in the brains of GFAP-IL6 mice leading to a deterioration in motor performance. The results also indicate that early chronic microglia activation in the GFAP-IL6 mouse leads to observable cerebellar volume loss and motor deficits later in life.
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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