| Literature DB >> 32727849 |
Amanda R Luu1, Cara Wong1, Vishal Agrawal1, Nathan Wise1, Britta Handyside1, Melanie J Lo1, Glenn Pacheco1, Jessica B Felix1, Alexander Giaramita1, Alessandra d'Azzo2, Jon Vincelette1, Sherry Bullens1, Stuart Bunting1, Terri M Christianson1, Charles M Hague1, Jonathan H LeBowitz1, Gouri Yogalingam3.
Abstract
Mutations in the galactosidase β 1 (GLB1) gene cause lysosomal β-galactosidase (β-Gal) deficiency and clinical onset of the neurodegenerative lysosomal storage disease, GM1 gangliosidosis. β-Gal and neuraminidase 1 (NEU1) form a multienzyme complex in lysosomes along with the molecular chaperone, protective protein cathepsin A (PPCA). NEU1 is deficient in the neurodegenerative lysosomal storage disease sialidosis, and its targeting to and stability in lysosomes strictly depend on PPCA. In contrast, β-Gal only partially depends on PPCA, prompting us to investigate the role that β-Gal plays in the multienzyme complex. Here, we demonstrate that β-Gal negatively regulates NEU1 levels in lysosomes by competitively displacing this labile sialidase from PPCA. Chronic cellular uptake of purified recombinant human β-Gal (rhβ-Gal) or chronic lentiviral-mediated GLB1 overexpression in GM1 gangliosidosis patient fibroblasts coincides with profound secondary NEU1 deficiency. A regimen of intermittent enzyme replacement therapy dosing with rhβ-Gal, followed by enzyme withdrawal, is sufficient to augment β-Gal activity levels in GM1 gangliosidosis patient fibroblasts without promoting NEU1 deficiency. In the absence of β-Gal, NEU1 levels are elevated in the GM1 gangliosidosis mouse brain, which are restored to normal levels following weekly intracerebroventricular dosing with rhβ-Gal. Collectively, our results highlight the need to carefully titrate the dose and dosing frequency of β-Gal augmentation therapy for GM1 gangliosidosis. They further suggest that intermittent intracerebroventricular enzyme replacement therapy dosing with rhβ-Gal is a tunable approach that can safely augment β-Gal levels while maintaining NEU1 at physiological levels in the GM1 gangliosidosis brain.Entities:
Keywords: GM1 gangliosidosis; PPCA; beta-galactosidase; complex; enzyme replacement therapy; gene therapy; genetic disease; neuraminidase; sialidase
Year: 2020 PMID: 32727849 PMCID: PMC7521647 DOI: 10.1074/jbc.RA119.010794
Source DB: PubMed Journal: J Biol Chem ISSN: 0021-9258 Impact factor: 5.157