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

The FEBS Journal
|September 27, 2007
PubMed

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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