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New in vitro model derived from brain-specific Mut-/- mice confirms cerebral ammonium accumulation in methylmalonic
Noémie Remacle1, Patrick Forny2, Hong-Phuc Cudré-Cung1
1Center of Molecular Diseases, Lausanne University Hospital, Lausanne 1011, Switzerland.
Background:
Methylmalonic aciduria (MMAuria) is an inborn error of metabolism leading to neurological deterioration. In this study, we used 3D organotypic brain cell cultures derived from embryos of a brain-specific Mut-/- (brain KO) mouse to investigate mechanisms leading to brain damage. We challenged our in vitro model by a catabolic stress (temperature shift).
Results:
Typical metabolites for MMAuria as well as a massive NH4+ increase were found in the media of brain KO cultures. We investigated different pathways of intracerebral NH4+ production and found increased expression of glutaminase 2 and diminished expression of GDH1 in Mut-/- aggregates. While all brain cell types appeared affected in their morphological development in Mut-/- aggregates, the most pronounced effects were observed on astrocytes showing swollen fibers and cell bodies. Inhibited axonal elongation and delayed myelination of oligodendrocytes were also noted. Most effects were even more pronounced after 48 h at 39 °C. Microglia activation and an increased apoptosis rate suggested degeneration of Mut-/- brain cells. NH4+ accumulation might be the trigger for all observed alterations. We also found a generalized increase of chemokine concentrations in Mut-/- culture media at an early developmental stage followed by a decrease at a later stage.
Conclusion:
We proved for the first time that Mut-/- brain cells are indeed able to produce the characteristic metabolites of MMAuria. We confirmed significant NH4+ accumulation in culture media of Mut-/- aggregates, suggesting that intracellular NH4+ concentrations might even be higher, gave first clues on the mechanisms leading to NH4+ accumulation in Mut-/- brain cells, and showed the involvement of neuroinflammatory processes in the neuropathophysiology of MMAuria.
Insights
Methylmalonic aciduria (MMAuria) causes neurological damage. This study used brain cell cultures to show that MMAuria brain cells accumulate ammonia, leading to neuroinflammation and cell death, offering insights into disease mechanisms.
Area of Science:
- Neuroscience
- Metabolic Disorders
- Cell Biology
Background:
- Methylmalonic aciduria (MMAuria) is a metabolic disorder causing neurological deterioration.
- Understanding the brain's response to MMAuria is crucial for developing effective treatments.
Purpose of the Study:
- To investigate the mechanisms of brain damage in MMAuria using a novel in vitro model.
- To explore the role of ammonia accumulation and neuroinflammation in MMAuria neuropathophysiology.
Main Methods:
- Utilized 3D organotypic brain cell cultures from brain-specific Mut-/- (KO) mice.
- Challenged the in vitro model with catabolic stress (temperature shift).
- Analyzed metabolite accumulation, gene expression, cell morphology, and apoptosis rates.
Main Results:
- Brain KO cultures produced MMAuria metabolites and showed significant ammonia (NH4+) increase.
- Mut-/- aggregates exhibited altered astrocyte morphology, inhibited oligodendrocyte myelination, and increased microglia activation.
- Ammonia accumulation was identified as a potential trigger for observed neuropathological alterations and neuroinflammation.
Conclusions:
- Confirmed Mut-/- brain cells produce MMAuria metabolites and accumulate ammonia.
- Provided initial insights into ammonia accumulation mechanisms and the involvement of neuroinflammation in MMAuria.
- Demonstrated the utility of 3D brain cell cultures for studying MMAuria pathogenesis.
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