Dual-specific phosphatase-6 (Dusp6) and ERK mediate AMPA receptor-induced oligodendrocyte death
Maria Domercq1, Elena Alberdi, Maria Victoria Sánchez-Gómez
1Centro de Investigaciones Biomédicas en Red Enfermedades Neurodegenerativas, Universidad del País Vasco, Leioa, Spain.
Abstract:
Oligodendrocytes, the myelinating cells of the CNS, are highly vulnerable to glutamate excitotoxicity, a mechanism involved in tissue damage in multiple sclerosis. Thus, understanding oligodendrocyte death at the molecular level is important to develop new therapeutic approaches to treat the disease. Here, using microarray analysis and quantitative PCR, we observed that dual-specific phosphatase-6 (Dusp6), an extracellular regulated kinase-specific phosphatase, is up-regulated in oligodendrocyte cultures as well as in optic nerves after AMPA receptor activation. In turn, Dusp6 is overexpressed in optic nerves from multiple sclerosis patients before the appearance of evident damage in this structure. We further analyzed the role of Dusp6 and ERK signaling in excitotoxic oligodendrocyte death and observed that AMPA receptor activation induces a rapid increase in ERK1/2 phosphorylation. Blocking Dusp6 expression, which enhances ERK1/2 phosphorylation, significantly diminished AMPA receptor-induced oligodendrocyte death. In contrast, MAPK/ERK pathway inhibition with UO126 significantly potentiates excitotoxic oligodendrocyte death and increases cytochrome c release, mitochondrial depolarization, and mitochondrial calcium overload produced by AMPA receptor stimulation. Upstream analysis demonstrated that MAPK/ERK signaling alters AMPA receptor properties. Indeed, Dusp6 overexpression as well as incubation with UO126 produced an increase in AMPA receptor-induced inward currents and cytosolic calcium overload. Together, these data suggest that levels of phosphorylated ERK, controlled by Dusp6 phosphatase, regulate glutamate receptor permeability and oligodendroglial excitotoxicity. Therefore, targeting Dusp6 may be a useful strategy to prevent oligodendrocyte death in multiple sclerosis and other diseases involving CNS white matter.
Insights
Dual-specific phosphatase-6 (Dusp6) protects central nervous system (CNS) myelinating cells from glutamate excitotoxicity. Targeting Dusp6 may prevent oligodendrocyte death in multiple sclerosis.
Area of Science:
- Neuroscience
- Cell Biology
- Molecular Biology
Background:
- Oligodendrocytes are crucial for CNS myelin and vulnerable to glutamate excitotoxicity.
- Glutamate excitotoxicity is implicated in multiple sclerosis (MS) pathogenesis.
- Understanding oligodendrocyte death mechanisms is key for developing MS therapeutics.
Purpose of the Study:
- Investigate the role of dual-specific phosphatase-6 (Dusp6) in excitotoxic oligodendrocyte death.
- Elucidate the involvement of ERK signaling in this process.
- Determine the therapeutic potential of targeting Dusp6 in MS.
Main Methods:
- Microarray analysis and quantitative PCR to assess Dusp6 expression.
- Oligodendrocyte cultures and optic nerve explants.
- Pharmacological inhibition of Dusp6 and MAPK/ERK pathway (UO126).
- Electrophysiology and calcium imaging to measure AMPA receptor activity.
Main Results:
- Dusp6 is upregulated in oligodendrocytes and MS optic nerves upon AMPA receptor activation.
- Blocking Dusp6 enhances ERK1/2 phosphorylation and protects oligodendrocytes from excitotoxicity.
- MAPK/ERK pathway inhibition potentiates excitotoxicity and mitochondrial dysfunction.
- ERK signaling modulates AMPA receptor permeability, affecting calcium influx.
Conclusions:
- Dusp6-mediated regulation of ERK phosphorylation controls glutamate receptor function.
- Dusp6 plays a protective role against excitotoxic oligodendrocyte death.
- Targeting Dusp6 presents a potential therapeutic strategy for multiple sclerosis and white matter diseases.
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