Pompe disease, a rare lysosomal storage disease caused by deficiency of the lysosomal acid ?-glucosidase (GAA), is characterized by glycogen accumulation, triggering severe secondary cellular damage and resulting in progressive motor handicap and premature death. Numerous disease-causing mutations in the gaa gene have been reported, but the structural effects of the pathological variants were unknown. Here we present the high-resolution crystal structures of recombinant human GAA (rhGAA), the standard care of Pompe disease. These structures portray the unbound form of rhGAA and complexes thereof with active site-directed inhibitors, providing insight into substrate recognition and the molecular framework for the rationalization of the deleterious effects of disease-causing mutations. Furthermore, we report the structure of rhGAA in complex with the allosteric pharmacological chaperone N-Acetylcysteine, which reveals the stabilizing function of this chaperone at the structural level.

Structure of human lysosomal acid alpha-glucosidase-A guide for the treatment of Pompe disease

CobucciPonzano B;Iacono R;Moracci M;
2017

Abstract

Pompe disease, a rare lysosomal storage disease caused by deficiency of the lysosomal acid ?-glucosidase (GAA), is characterized by glycogen accumulation, triggering severe secondary cellular damage and resulting in progressive motor handicap and premature death. Numerous disease-causing mutations in the gaa gene have been reported, but the structural effects of the pathological variants were unknown. Here we present the high-resolution crystal structures of recombinant human GAA (rhGAA), the standard care of Pompe disease. These structures portray the unbound form of rhGAA and complexes thereof with active site-directed inhibitors, providing insight into substrate recognition and the molecular framework for the rationalization of the deleterious effects of disease-causing mutations. Furthermore, we report the structure of rhGAA in complex with the allosteric pharmacological chaperone N-Acetylcysteine, which reveals the stabilizing function of this chaperone at the structural level.
2017
Istituto di Bioscienze e Biorisorse
Drug development
Metabolic disease
x-ray crystallography
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/332166
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