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Published on: December 20, 2017
Improved Enzyme Replacement Therapy with Cipaglucosidase Alfa/Miglustat in Infantile Pompe Disease
Lina Fiege1, Ibrahim Duran2, Thorsten Marquardt1
1Department of General Pediatrics, Metabolic Diseases, University Children's Hospital Münster, 48149 Münster, Germany.
Insights
A new enzyme replacement therapy, Cipaglucosidase alfa/Miglustat, significantly improved a patient with severe infantile Pompe disease. This treatment enhanced respiratory and cardiac function, alongside remarkable motor skill recovery.
Area of Science:
- Biochemistry
- Genetics
- Pediatrics
Background:
- Pompe disease is a rare genetic disorder causing glycogen buildup due to acid α-glucosidase (GAA) deficiency.
- Enzyme replacement therapy (ERT) with Alglucosidase alfa has extended survival but often shows limited long-term efficacy.
- A novel ERT, Cipaglucosidase alfa/Miglustat, offers enhanced cellular uptake and lysosomal targeting for improved GAA activity.
Observation:
- A patient with severe infantile Pompe disease experienced progressive decline despite high-dose standard ERT.
- The patient presented with significant respiratory failure, cardiomyopathy, and profound motor deficits.
Findings:
- Transitioning to Cipaglucosidase alfa/Miglustat led to substantial improvements in respiratory and cardiac function.
- The patient demonstrated remarkable recovery of motor skills, including head control, speech, and independent wheelchair mobility.
- This new ERT regimen facilitated weaning from respiratory support and oxygen supplementation.
Implications:
- Cipaglucosidase alfa/Miglustat represents a promising therapeutic advancement for severe infantile Pompe disease.
- This case highlights the potential for improved clinical outcomes and quality of life in patients refractory to existing treatments.
- Further research into this next-generation ERT is warranted to confirm its efficacy and safety in a broader patient population.
Abstract:
Pompe disease is a lysosomal storage disorder with impaired glycogen degradation caused by a deficiency of the enzyme acid α-glucosidase (GAA). Children with the severe infantile form do not survive beyond the first year of life without treatment. Since 2006, enzyme replacement therapy (ERT) with Alglucosidase alfa (Myozyme) has been available, which is a recombinant human GAA (rhGAA). Myozyme therapy has prolonged the life span of affected patients, but many patients showed a continuing, albeit slower, disease progression. A new generation of rhGAA, Cipaglucosidase alfa (Amicus) has a higher content of mannose-6-phosphate residues, which are necessary for efficient cellular uptake and lysosomal targeting. Cipaglucosidase alfa is co-administered with an enzyme stabilizer, Miglustat, which also optimizes the pharmacological properties. In mouse models, the superiority of Cipaglucosidase alfa/Miglustat compared to the previous standard therapy could be determined. Here, we report the disease course of a patient with severe infantile M. Pompe, who showed serious progression even with high-dose standard of care ERT. Changing the therapy to Cipaglucosidase alfa/Miglustat improved respiratory failure, cardiomyopathy, and motor functions significantly. The patient could be weaned from respiratory support and oxygen supplementation. Cardiac function was normalized. Most impressively, the patient, who had lost nearly all motor skills, acquired head control, learned to speak, and could move his wheelchair by himself. Overall, the patient's clinical situation has improved dramatically with the new ERT.
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