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Updated: May 21, 2026

In Vivo Dynamics of Retinal Microglial Activation During Neurodegeneration: Confocal Ophthalmoscopic Imaging and Cell Morphometry in Mouse Glaucoma
Published on: May 11, 2015
Real-time analysis of microglial activation and motility in hepatic and hyperammonemic encephalopathy
V Rangroo Thrane1, A S Thrane, J Chang
1Division of Glia Disease and Therapeutics, Center for Translational Neuromedicine, Department of Neurosurgery, University of Rochester Medical Center, 601 Elmwood Avenue, Rochester, NY 14642, USA. vrangroo@gmail.com
Abstract:
Hepatic encephalopathy (HE) is a potentially fatal complication of acute liver failure, associated with severe neurological dysfunction and coma. The brain's innate immune cells, microglia, have recently been implicated in the pathophysiology of HE. To date, however, only ex vivo studies have been used to characterize microglial involvement. Our study uses in vivo two-photon imaging of awake-behaving mice expressing enhanced green fluorescent protein (eGFP) under the Cx3cr1 promoter to examine microglial involvement in two different models of encephalopathy - a slower, fatal model of azoxymethane-induced HE and a rapid, reversible acute hyperammonemic encephalopathy (AHE) induced by an ammonia load. To investigate the potential contribution of microglia to the neurological deterioration seen in these two models, we developed a software to analyze microglial activation and motility in vivo. In HE, we found that microglia do not become activated prior to the onset of neurological dysfunction, but undergo activation with mildly impaired motility during the terminal stage IV. We demonstrate that this microglial activation coincides with blood-brain barrier (BBB) opening and brain edema. Conversely, both microglial activation and motility are unchanged during AHE, despite the mice developing pathologically increased plasma ammonia and severe neurological dysfunction. Our study indicates that microglial activation does not contribute to the early neurological deterioration observed in either HE or AHE. The late microglial activation in HE may therefore be associated with terminal BBB opening and brain edema, thus exacerbating the progression to coma and increasing mortality.
Insights
Microglia activation does not cause early neurological decline in hepatic encephalopathy (HE) or acute hyperammonemic encephalopathy (AHE). Late microglial activation in HE may worsen brain swelling and coma.
Area of Science:
- Neuroscience
- Immunology
- Hepatology
Background:
- Hepatic encephalopathy (HE) is a severe complication of liver failure, involving neurological dysfunction.
- Microglia, the brain's immune cells, are implicated in HE, but their role is unclear.
- Previous studies on microglial involvement in HE were limited to ex vivo analysis.
Purpose of the Study:
- To investigate the role of microglia in the in vivo pathophysiology of HE and acute hyperammonemic encephalopathy (AHE).
- To analyze microglial activation and motility in real-time during neurological deterioration.
- To determine if microglial activation contributes to the neurological dysfunction observed in HE and AHE models.
Main Methods:
- In vivo two-photon imaging in awake-behaving mice (Cx3cr1-eGFP).
- Utilized two models: azoxymethane-induced HE and ammonia-induced AHE.
- Developed custom software for analyzing microglial activation and motility in vivo.
Main Results:
- Microglial activation and impaired motility were observed in late-stage HE, coinciding with blood-brain barrier opening and edema.
- No significant changes in microglial activation or motility were detected during AHE, despite severe neurological dysfunction.
- Microglial activation did not precede or correlate with early neurological deterioration in either HE or AHE models.
Conclusions:
- Microglial activation is not a primary driver of early neurological dysfunction in HE or AHE.
- Late-stage microglial activation in HE may be a consequence of, rather than a cause of, blood-brain barrier breakdown and edema.
- These findings suggest microglia play a role in the terminal stages of HE, potentially exacerbating coma and mortality.

