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Updated: Jun 19, 2026

Assays for the Degradation of Misfolded Proteins in Cells
Published on: August 28, 2016
Protein misfolding as an underlying molecular defect in mucopolysaccharidosis III type C
Matthew Feldhammer1, Stéphanie Durand, Alexey V Pshezhetsky
1Department of Medical Genetics, CHU Sainte-Justine University of Montreal, Montreal, Canada.
Abstract:
Mucopolysaccharidosis type IIIC or Sanfilippo syndrome type C (MPS IIIC, MIM #252930) is an autosomal recessive disorder caused by deficiency of the lysosomal membrane enzyme, heparan sulfate acetyl-CoA: alpha-glucosaminide N-acetyltransferase (HGSNAT, EC 2.3.1.78), which catalyses transmembrane acetylation of the terminal glucosamine residues of heparan sulfate prior to their hydrolysis by alpha-N-acetylglucosaminidase. Lysosomal storage of undegraded heparan sulfate in the cells of affected patients leads to neuronal death causing neurodegeneration and is accompanied by mild visceral and skeletal abnormalities, including coarse facies and joint stiffness. Surprisingly, the majority of MPS IIIC patients carrying missense mutations are as severely affected as those with splicing errors, frame shifts or nonsense mutations resulting in the complete absence of HGSNAT protein.In order to understand the effects of the missense mutations in HGSNAT on its enzymatic activity and biogenesis, we have expressed 21 mutant proteins in cultured human fibroblasts and COS-7 cells and studied their folding, targeting and activity. We found that 17 of the 21 missense mutations in HGSNAT caused misfolding of the enzyme, which is abnormally glycosylated and not targeted to the lysosome, but retained in the endoplasmic reticulum. The other 4 mutants represented rare polymorphisms which had no effect on the activity, processing and targeting of the enzyme. Treatment of patient cells with a competitive HGSNAT inhibitor, glucosamine, partially rescued several of the expressed mutants. Altogether our data provide an explanation for the severity of MPS IIIC and suggest that search for pharmaceutical chaperones can in the future result in therapeutic options for this disease.
Insights
Mucopolysaccharidosis type IIIC (MPS IIIC) is caused by mutations in the HGSNAT enzyme. Most missense mutations lead to enzyme misfolding and endoplasmic reticulum retention, explaining disease severity and suggesting chaperone therapy potential.
Area of Science:
- Biochemistry
- Genetics
- Cell Biology
Background:
- Mucopolysaccharidosis type IIIC (MPS IIIC) is a rare genetic disorder.
- It results from deficiency of the heparan sulfate N-acetyltransferase (HGSNAT) enzyme.
- This deficiency causes neurodegeneration due to heparan sulfate accumulation.
Purpose of the Study:
- To investigate the impact of HGSNAT missense mutations on enzyme function and cellular localization.
- To understand the molecular basis for the severe phenotype in MPS IIIC patients with missense mutations.
Main Methods:
- Expressed 21 mutant HGSNAT proteins in cultured human cells (fibroblasts and COS-7).
- Assessed protein folding, glycosylation, lysosomal targeting, and enzymatic activity.
- Treated patient cells with the HGSNAT inhibitor glucosamine.
Main Results:
- 17 out of 21 missense mutations caused HGSNAT misfolding, abnormal glycosylation, and retention in the endoplasmic reticulum.
- 4 mutations were identified as rare polymorphisms with no impact on enzyme function.
- Glucosamine treatment partially rescued the function of several mutant HGSNAT proteins.
Conclusions:
- Misfolding and endoplasmic reticulum retention of HGSNAT explain the severe neurodegeneration in MPS IIIC.
- These findings highlight the potential of pharmaceutical chaperones as a therapeutic strategy for MPS IIIC.
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