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Updated: Jul 11, 2026

In Vitro Enzyme Measurement to Test Pharmacological Chaperone Responsiveness in Fabry and Pompe Disease
Published on: December 20, 2017
Active-site-specific chaperone therapy for Fabry disease. Yin and Yang of enzyme inhibitors
Jian-Qiang Fan1, Satoshi Ishii
1Department of Human Genetics, Mount Sinai School of Medicine, New York, NY10029, USA. jian-qiang.fan@mssm.edu
Abstract:
Protein misfolding is recognized as an important pathophysiological cause of protein deficiency in many genetic disorders. Inherited mutations can disrupt native protein folding, thereby producing proteins with misfolded conformations. These misfolded proteins are consequently retained and degraded by endoplasmic reticulum-associated degradation, although they would otherwise be catalytically fully or partially active. Active-site directed competitive inhibitors are often effective active-site-specific chaperones when they are used at subinhibitory concentrations. Active-site-specific chaperones act as a folding template in the endoplasmic reticulum to facilitate folding of mutant proteins, thereby accelerating their smooth escape from the endoplasmic reticulum-associated degradation to maintain a higher level of residual enzyme activity. In Fabry disease, degradation of mutant lysosomal alpha-galactosidase A caused by a large set of missense mutations was demonstrated to occur within the endoplasmic reticulum-associated degradation as a result of the misfolding of mutant proteins. 1-Deoxygalactonojirimycin is one of the most potent inhibitors of alpha-galactosidase A. It has also been shown to be the most effective active-site-specific chaperone at increasing residual enzyme activity in cultured fibroblasts and lymphoblasts established from Fabry patients with a variety of missense mutations. Oral administration of 1-deoxygalactonojirimycin to transgenic mice expressing human R301Q alpha-galactosidase A yielded higher alpha-galactosidase A activity in major tissues. These results indicate that 1-deoxygalactonojirimycin could be of therapeutic benefit to Fabry patients with a variety of missense mutations, and that the active-site-specific chaperone approach using functional small molecules may be broadly applicable to other lysosomal storage disorders and other protein deficiencies.
Insights
Misfolded proteins cause genetic disorders. Active-site chaperones, like 1-deoxygalactonojirimycin, can help correct misfolding in Fabry disease, increasing enzyme activity and offering therapeutic potential.
Area of Science:
- Biochemistry
- Genetics
- Pharmacology
Background:
- Protein misfolding due to genetic mutations leads to protein deficiency and disease.
- Misfolded proteins are often degraded via endoplasmic reticulum-associated degradation (ERAD), losing catalytic activity.
- Active-site-specific chaperones can facilitate proper protein folding and escape from ERAD.
Purpose of the Study:
- To investigate the therapeutic potential of active-site-specific chaperones for protein misfolding disorders.
- To evaluate 1-deoxygalactonojirimycin as an active-site-specific chaperone for Fabry disease.
Main Methods:
- Utilized active-site directed competitive inhibitors as chaperones at subinhibitory concentrations.
- Assessed the effect of 1-deoxygalactonojirimycin on mutant alpha-galactosidase A in cultured cells and transgenic mice.
- Measured residual enzyme activity and protein levels in response to chaperone treatment.
Main Results:
- 1-Deoxygalactonojirimycin effectively increased residual alpha-galactosidase A activity in patient-derived cells.
- Oral administration of 1-deoxygalactonojirimycin in mice resulted in elevated alpha-galactosidase A activity in tissues.
- Demonstrated that misfolded mutant proteins in Fabry disease are subject to ERAD.
Conclusions:
- Active-site-specific chaperones, exemplified by 1-deoxygalactonojirimycin, show therapeutic promise for Fabry disease.
- This chaperone approach may be applicable to a broader range of lysosomal storage disorders and protein deficiencies.
- Targeting protein misfolding offers a viable strategy for treating genetic disorders.
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