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Modeling Neuronal Death and Degeneration in Mouse Primary Cerebellar Granule Neurons
Published on: November 6, 2017
Excitotoxic neuronal death and the pathogenesis of Huntington's disease
Ana María Estrada Sánchez1, Jana Mejía-Toiber, Lourdes Massieu
1Departamento de Neurociencias, Instituto de Fisiología Celular, Universidad Nacional Autónoma de México, México D.F., México.
Insights
Huntington's disease involves mutated huntingtin protein damaging brain cells. This study explores how glutamate excitotoxicity and energy deficits contribute to this neurodegeneration, offering potential protective strategies.
Area of Science:
- Neuroscience
- Genetics
- Cell Biology
Background:
- Huntington's disease (HD) is a hereditary neurodegenerative disorder caused by a mutation in the huntingtin gene.
- Mutated huntingtin protein (mhtt) leads to selective death of medium spiny neurons (MSN) in the neostriatum, causing involuntary movements.
- The exact mechanisms linking mhtt expression to MSN death are unclear, but excitotoxicity is a leading hypothesis.
Purpose of the Study:
- To review evidence implicating altered glutamatergic neurotransmission in HD neurodegeneration.
- To explore the role of impaired energy metabolism in MSN excitotoxicity in HD.
- To present data on protective effects of energy substrates against combined energy deficit and glutamate toxicity.
Main Methods:
- Review of experimental evidence from postmortem HD tissues and transgenic mouse models.
- Analysis of studies on glutamatergic neurotransmission, including NMDA receptor function and glutamate transporters.
- Inclusion of data from a rat model demonstrating protection by energy substrates.
Main Results:
- Evidence suggests a correlation between mhtt expression and altered glutamatergic neurotransmission in HD.
- Studies indicate altered NMDA receptor conductance and reduced glutamate transporter levels in HD.
- Deficient energy metabolism in HD may exacerbate excitotoxicity, contributing to MSN cell death.
Conclusions:
- Altered glutamatergic neurotransmission is a key factor in HD neurodegeneration.
- Impaired energy metabolism likely contributes to excitotoxic cell death cascades in MSN.
- Energy substrates show potential for protecting neurons against excitotoxicity and energy deficits.
Abstract:
Huntington's disease (HD) is a neurodegenerative hereditary illness originated by the mutation of the gene encoding the huntingtin-protein (htt). Mutated htt (mhtt) is characterized by an increased number of glutamine repeats in the N-terminal end; when 40 or more glutamine residues are present, the disease is manifested. Expression of mhtt leads to the selective death of the medium spiny neurons (MSN) in the neostriatum, resulting in the appearance of generalized involuntary movements, the main phenotypic alteration of HD. The relationship between the expression of mhtt and the death of the MSN is not fully understood. Nonetheless, according to experimental evidence indicating that MSN are selectively vulnerable to the toxicity of glutamate (excitotoxicity) or its analogues, excitotoxic neuronal death is suggested to be involved in neurodegeneration associated with HD. Support for this hypothesis comes from studies in HD postmortem tissue and transgenic mice models, suggesting a correlation between mhtt expression and altered glutamatergic neurotransmission, mainly altered conductance of the N-methyl-D-aspartate (NMDA) glutamate receptor subtype and decreased levels of glutamate transporters. On the other hand, alterations in energy metabolism are well documented in HD patients, which might facilitate excitotoxicity. Throughout this review we will discuss relevant evidence suggesting that altered glutamatergic neurotransmission plays a role in neurodegeneration associated with HD, as well as the possible contribution of deficient energy metabolism to the development of an excitotoxic cell death cascade in MSN. We show data supporting protection by energy substrates against neuronal damage in a rat model combining energy deficit and glutamate toxicity.
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