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Preparation and Immunostaining of Myelinating Organotypic Cerebellar Slice Cultures
Published on: March 20, 2019
High phenylalanine concentrations induce demyelination and microglial activation in mouse cerebellar organotypic
Orli Thau-Zuchman1, Patrick N Pallier1, Paul J M Savelkoul2
1Centre for Neuroscience, Surgery and Trauma, Barts and The London School of Medicine and Dentistry, The Blizard Institute, Queen Mary University of London, London, United Kingdom.
Abstract:
Phenylketonuria (PKU) is an inborn error of metabolism. Mutations in the enzyme phenylalanine hydroxylase (PAH)-encoding gene lead to a decreased metabolism of the amino acid phenylalanine (Phe). The deficiency in PAH increases Phe levels in blood and brain. Accumulation of Phe can lead to delayed development, psychiatric problems and cognitive impairment. White matter (WM) damage is a neuropathological hallmark of PKU and can be seen even in early detected and treated PKU patients. The mechanisms linking high Phe concentrations to WM abnormalities remain unclear. We tested the effects of high Phe concentrations on myelin in three in vitro models of increasing complexity: two simple cell culture models and one model that preserves local brain tissue architecture, a cerebellar organotypic slice culture prepared from postnatal day (P) 8 CD-1 mice. Various Phe concentrations (0.1-10 mM) and durations of exposure were tested. We found no toxic effect of high Phe in the cell culture models. On the contrary, the treatment promoted the maturation of oligodendrocytes, particularly at the highest, non-physiological Phe concentrations. Exposure of cerebellar organotypic slices to 2.4 mM Phe for 21 days in vitro (DIV), but not 7 or 10 DIV, resulted in a significant decrease in myelin basic protein (MBP), calbindin-stained neurites, and neurites co-stained with MBP. Following exposure to a toxic concentration of Phe, a switch to the control medium for 7 days did not lead to remyelination, while very active remyelination was seen in slices following demyelination with lysolecithin. An enhanced number of microglia, displaying an activated type morphology, was seen after exposure of the slices to 2.4 mM Phe for 10 or 21 DIV. The results suggest that prolonged exposure to high Phe concentrations can induce microglial activation preceding significant disruption of myelin.
Insights
Phenylketonuria (PKU) causes high phenylalanine (Phe) levels, damaging white matter. Prolonged high Phe exposure in brain slices activated microglia and disrupted myelin, suggesting a mechanism for PKU-related neuropathology.
Area of Science:
- Neuroscience
- Metabolic Disorders
- Cell Biology
Background:
- Phenylketonuria (PKU) is an inherited metabolic disorder.
- High phenylalanine (Phe) levels in PKU cause cognitive impairment and white matter (WM) damage.
- Mechanisms linking high Phe to WM damage are not fully understood.
Purpose of the Study:
- To investigate the effects of high Phe concentrations on myelin and associated cells in vitro.
- To explore potential mechanisms of PKU-induced white matter abnormalities.
Main Methods:
- Utilized three in vitro models: cell cultures and cerebellar organotypic slice cultures.
- Exposed models to varying Phe concentrations (0.1-10 mM) and durations.
- Assessed myelin basic protein (MBP), neurite integrity, and microglial activation.
Main Results:
- High Phe did not show toxicity in cell cultures; it promoted oligodendrocyte maturation.
- Cerebellar slices exposed to 2.4 mM Phe for 21 days showed decreased MBP and neurite integrity.
- Prolonged Phe exposure led to microglial activation preceding myelin disruption.
- Failed remyelination after Phe exposure, unlike lysolecithin-induced demyelination.
Conclusions:
- Prolonged high Phe exposure in brain tissue models induces microglial activation.
- This microglial activation precedes significant myelin damage, suggesting a role in PKU neuropathology.
- In vitro models reveal complex cellular responses to high Phe, impacting myelin integrity.
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