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Publication : Parkin-dependent degradation of the F-box protein Fbw7β promotes neuronal survival in response to oxidative stress by stabilizing Mcl-1.

First Author  Ekholm-Reed S Year  2013
Journal  Mol Cell Biol Volume  33
Issue  18 Pages  3627-43
PubMed ID  23858059 Mgi Jnum  J:204747
Mgi Id  MGI:5543313 Doi  10.1128/MCB.00535-13
Citation  Ekholm-Reed S, et al. (2013) Parkin-dependent degradation of the F-box protein Fbw7beta promotes neuronal survival in response to oxidative stress by stabilizing Mcl-1. Mol Cell Biol 33(18):3627-43
abstractText  Parkinson's disease (PD) is characterized by progressive loss of midbrain dopaminergic neurons resulting in motor dysfunction. While most PD is sporadic in nature, a significant subset can be linked to either dominant or recessive germ line mutations. PARK2, encoding the ubiquitin ligase parkin, is the most frequently mutated gene in hereditary Parkinson's disease. Here, we present evidence for a neuronal ubiquitin ligase cascade involving parkin and the multisubunit ubiquitin ligase SCF(Fbw7beta). Specifically, parkin targets the SCF substrate adapter Fbw7beta for proteasomal degradation. Furthermore, we show that the physiological role of parkin-mediated regulation of Fbw7beta levels is the stabilization of the mitochondrial prosurvival factor Mcl-1, an SCF(Fbw7beta) target in neurons. We show that neurons depleted of parkin become acutely sensitive to oxidative stress due to an inability to maintain adequate levels of Mcl-1. Therefore, loss of parkin function through biallelic mutation of PARK2 may lead to death of dopaminergic neurons through unregulated SCF(Fbw7beta)-mediated ubiquitylation-dependent proteolysis of Mcl-1.
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