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Published on: June 2, 2019
Repurposing the NRF2 Activator Dimethyl Fumarate as Therapy Against Synucleinopathy in Parkinson's Disease
Isabel Lastres-Becker1,2, Angel J García-Yagüe1,2, Robert H Scannevin3
11 Centro de Investigación Biomédica en Red sobre Enfermedades Neurodegenerativas (CIBERNED), Instituto de Investigación Sanitaria La Paz (IdiPaz), Instituto de Investigaciones Biomédicas Alberto Sols UAM-CSIC , Madrid, Spain .
Aims:
This preclinical study was aimed at determining whether pharmacological targeting of transcription factor NRF2, a master controller of many homeostatic genes, might provide a disease-modifying therapy in the animal model of Parkinson's disease (PD) that best reproduces the main hallmark of this pathology, that is, α-synucleinopathy, and associated events, including nigral dopaminergic cell death, oxidative stress, and neuroinflammation.
Results:
Pharmacological activation of NRF2 was achieved at the basal ganglia by repurposing dimethyl fumarate (DMF), a drug already in use for the treatment of multiple sclerosis. Daily oral gavage of DMF protected nigral dopaminergic neurons against α-SYN toxicity and decreased astrocytosis and microgliosis after 1, 3, and 8 weeks from stereotaxic delivery to the ventral midbrain of recombinant adeno-associated viral vector expressing human α-synuclein. This protective effect was not observed in Nrf2-knockout mice. In vitro studies indicated that this neuroprotective effect was correlated with altered regulation of autophagy markers SQTSM1/p62 and LC3 in MN9D, BV2, and IMA 2.1 and with a shift in microglial dynamics toward a less pro-inflammatory and a more wound-healing phenotype. In postmortem samples of PD patients, the cytoprotective proteins associated with NRF2 expression, NQO1 and p62, were partly sequestered in Lewy bodies, suggesting impaired neuroprotective capacity of the NRF2 signature.
Innovation:
These experiments provide a compelling rationale for targeting NRF2 with DMF as a therapeutic strategy to reinforce endogenous brain defense mechanisms against PD-associated synucleinopathy.
Conclusion:
DMF is ready for clinical validation in PD. Antioxid. Redox Signal. 25, 61-77.
Insights
Targeting the NRF2 pathway with dimethyl fumarate (DMF) shows promise for Parkinson's disease (PD). DMF protected against neurodegeneration and inflammation in a preclinical PD model, suggesting a potential disease-modifying therapy.
Area of Science:
- Neuroscience
- Pharmacology
- Genetics
Background:
- Parkinson's disease (PD) is characterized by α-synucleinopathy, neuroinflammation, and dopaminergic cell death.
- The transcription factor NRF2 is a key regulator of cellular defense mechanisms against oxidative stress and inflammation.
Purpose of the Study:
- To investigate the therapeutic potential of targeting NRF2 pharmacologically in a preclinical model of PD.
- To evaluate the efficacy of dimethyl fumarate (DMF), an NRF2 activator, in mitigating PD hallmarks.
Main Methods:
- A preclinical PD model was established using viral vector delivery of human α-synuclein.
- DMF was administered orally to activate NRF2 in the basal ganglia.
- Neuroprotection, neuroinflammation, and autophagy markers were assessed in vivo and in vitro.
- Postmortem PD patient samples were analyzed for NRF2 pathway components.
Main Results:
- Daily oral DMF administration protected nigral dopaminergic neurons from α-synuclein toxicity.
- DMF treatment reduced astrocytosis and microgliosis, indicating decreased neuroinflammation.
- Neuroprotective effects were dependent on NRF2, as they were absent in Nrf2-knockout mice.
- In vitro studies showed altered autophagy markers and a shift in microglial phenotype towards a wound-healing state.
- Analysis of PD patient samples revealed impaired NRF2 pathway activity due to sequestration of proteins in Lewy bodies.
Conclusions:
- Pharmacological activation of NRF2 with DMF offers a promising disease-modifying therapeutic strategy for PD.
- DMF reinforces endogenous brain defense mechanisms against PD-associated synucleinopathy.
- DMF is ready for clinical validation in Parkinson's disease.
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