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Oxidative Modifications of Parkin Underlie its Selective Neuroprotection in Adult Human Brain

Tokarew, J. M.; El-Kodsi, D. N.; Lengacher, N. A.; Fehr, T. K.; Nguyen, A. P.; O'Nuallain, B.; Jin, M.; Khan, J. M.; Ng, A. C.-H.; Li, J.; Jiang, Q.; Zhang, M.; Wang, L.; Sengupta, R.; Barber, K. R.; Tran, A.; Zandee, S.; Dong, X.; Scherzer, C. R.; Prat, A.; Tsai, E.; Takanashi, M.; Hattori, N.; Chan, J. A.; West, A. B.; Holmgren, A.; Puente, L.; Shaw, G. S.; Toth, G.; Woulfe, J. M.; Taylor, P.; Tomlinson, J. J.; Schlossmacher, M. G.

2020-02-20 neuroscience
10.1101/2020.02.19.953034 bioRxiv
Show abstract

The mechanisms by which Parkinson disease-linked parkin confers neuroprotection of human dopamine cells remain elusive. We hypothesized that its cysteines mediate multiple anti-oxidant effects in the midbrain. By studying >60 control specimens, we found that in adult human brain - but not in skeletal muscle- parkin is mostly aggregated and insoluble due to oxidative modifications, such as at C253. In vitro, parkins oxidation directly reduces hydrogen peroxide (H2O2) to water. In parkin-deficient human brain, H2O2 concentrations are elevated. In dopamine toxicity studies, wild-type parkin -but not disease-associated mutants-prevents neural death by lowering H2O2 and sequestering radicals within insoluble aggregates. Parkin conjugates dopamine metabolites at the human-specific residue C95 and augments melanin formation in vitro. Using epitope-mapped antibodies, we found that in adult Substantia nigra neurons parkin localizes to neuromelanin within LAMP-3/CD63-positive lysosomes. We conclude that parkins own oxidation, previously considered a loss-of-function event, underlies three neuroprotective effects in adult midbrain: its cysteines participate in H2O2 reduction, dopamine radical conjugation and the formation of neuromelanin.

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