The pathological accumulation of alpha-synuclein (?-syn) is believed to play a major role in Parkinson's disease (PD) pathogenesis. The autophagy-lysosome pathway (ALP) provides for the high-capacity clearance of ?-syn and its dysfunction is well-documented in PD. Inhibiting the ALP has been shown to induce ?-syn accumulation. Conversely, excess ?-syn has been shown to inhibit the ALP. Because the lysosome is critical for ?-syn clearance we believe its continued investigation will further delineate mechanisms of PD pathogenesis and foster development of PD therapeutics. Alpha-Galactosidase A (?-Gal A) is a soluble lysosomal enzyme, with mutations causing the rare lysosomal disorder Fabry disease. While it is unknown if ?- syn accumulates in Fabry patients, our analysis of postmortem PD brains indicates a decrease in ?-Gal A activity specific to specimens with increased ?-syn pathology. Our preliminary data also indicate reduced ?-Gal A activity in neuroblastoma cells following the conditional over-expression of ?-syn. Together with our report of ?-syn pathology and altered ALP markers in ?-Gal A-deficient mouse brain, these findings suggest a strong link between ?-Gal A deficiency and ?-syn accumulation. However, whether ?-Gal A deficiency exacerbates the neurotoxic potential of ?-syn is unknown. Increasing ?-Gal A activity via enzyme replacement therapy (ERT) is clinically approved therapy for Fabry disease. Because ERT has limited CNS bioavailability, there is a critical gap in understanding its potential for treating PD. To help bridge this gap we developed novel research tools to increase ?-Gal A activity in neuronal systems, including its dose-responsive increase in neuronal cells via ERT, and transgenic mice that exhibit two-fold increases in ?-Gal A brain activity. Our preliminary data in neuroblastoma cells shows that ?-Gal A ERT enhances the clearance of over-expressed ?-syn. However, whether increasing ?-Gal A activity attenuates ?-syn-associated neurotoxicity has not been tested. Taken together, we hypothesize that ?-syn-associated neurotoxicity is exacerbated by ?-Gal A deficiency and is attenuated by increasing ?-Gal A activity.
In Aim 1 we will determine if ?-Gal A-deficiency in primary neuron cultures exacerbates neurotoxicity resulting from the exogenous addition of ?-syn pre-formed fibrils (PFFs) in a manner concomitant with ALP disruption. We will also determine if ?-Gal A?deficient mice exhibit exacerbated loss of tyrosine hydroxylase (TH)-positive neurons in the substantia nigra following AAV2-mediated over- expression of human wild-type ?-syn.
In Aim 2 we will determine if ?-syn PFF-mediated neurotoxicity in primary neuron cultures is attenuated by ?-Gal A ERT or the transgenic over-expression of ?-Gal A and if this protection is regulated by the ALP. We will also determine if ?-Gal A over-expressing mice exhibit a reduction in TH-positive neuron loss resulting from AAV2-?-syn. If our hypothesis is correct, it would suggest that ?-Gal A deficiency regulates ?-syn pathogenesis, a mechanism worthy of future investigation, and would accelerate the development of therapeutics for PD that act by increasing CNS ?-Gal A activity.

Public Health Relevance

Parkinson's disease (PD) is a major health issue affecting upwards of one million Americans and because current therapies only provide symptomatic relief there is a critical need for novel therapeutics that delay or attenuate disease pathogenesis. The goal of this application is to confirm the lysosomal enzyme alpha- Galactosidase A regulates the neurotoxic potential of alpha-synuclein, a protein that accumulates in PD brain and may contribute to disease spread. Successful completion of this study will justify a heightened focus on alpha-Galactosidase A for its contribution to PD pathogenesis and for targeting this enzyme as a therapeutic.

Agency
National Institute of Health (NIH)
Institute
National Institute of Neurological Disorders and Stroke (NINDS)
Type
Exploratory/Developmental Grants (R21)
Project #
1R21NS093435-01A1
Application #
9180234
Study Section
Cellular and Molecular Biology of Neurodegeneration Study Section (CMND)
Program Officer
Sutherland, Margaret L
Project Start
2016-08-01
Project End
2018-07-31
Budget Start
2016-08-01
Budget End
2017-07-31
Support Year
1
Fiscal Year
2016
Total Cost
Indirect Cost
Name
University of Alabama Birmingham
Department
Pharmacology
Type
Schools of Medicine
DUNS #
063690705
City
Birmingham
State
AL
Country
United States
Zip Code
35294