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In Vitro Enzyme Measurement to Test Pharmacological Chaperone Responsiveness in Fabry and Pompe Disease
Published on: December 20, 2017
Fabry disease: preclinical studies demonstrate the effectiveness of alpha-galactosidase A replacement in
Y A Ioannou1, K M Zeidner, R E Gordon
1Department of Human Genetics, Mount Sinai School of Medicine, New York, NY 10029, USA.
Abstract:
Preclinical studies of enzyme-replacement therapy for Fabry disease (deficient alpha-galactosidase A [alpha-Gal A] activity) were performed in alpha-Gal A-deficient mice. The pharmacokinetics and biodistributions were determined for four recombinant human alpha-Gal A glycoforms, which differed in sialic acid and mannose-6-phosphate content. The plasma half-lives of the glycoforms were approximately 2-5 min, with the more sialylated glycoforms circulating longer. After intravenous doses of 1 or 10 mg/kg body weight were administered, each glycoform was primarily recovered in the liver, with detectable activity in other tissues but not in the brain. Normal or greater activity levels were reconstituted in various tissues after repeated doses (10 mg/kg every other day for eight doses) of the highly sialylated AGA-1 glycoform; 4 d later, enzyme activity was retained in the liver and spleen at levels that were, respectively, 30% and 10% of that recovered 1 h postinjection. Importantly, the globotriaosylceramide (GL-3) substrate was depleted in various tissues and plasma in a dose-dependent manner. A single or repeated doses (every 48 h for eight doses) of AGA-1 at 0.3-10.0 mg/kg cleared hepatic GL-3, whereas higher doses were required for depletion of GL-3 in other tissues. After a single dose of 3 mg/kg, hepatic GL-3 was cleared for > or =4 wk, whereas cardiac and splenic GL-3 reaccumulated at 3 wk to approximately 30% and approximately 10% of pretreatment levels, respectively. Ultrastructural studies demonstrated reduced GL-3 storage posttreatment. These preclinical animal studies demonstrate the dose-dependent clearance of tissue and plasma GL-3 by administered alpha-Gal A, thereby providing the in vivo rationale-and the critical pharmacokinetic and pharmacodynamic data-for the design of enzyme-replacement trials in patients with Fabry disease.
Insights
Enzyme replacement therapy using recombinant human alpha-galactosidase A (alpha-Gal A) effectively reduced globotriaosylceramide (GL-3) in preclinical models of Fabry disease. These findings support enzyme replacement therapy for human clinical trials.
Area of Science:
- Biochemistry
- Pharmacology
- Genetics
Background:
- Fabry disease is a genetic disorder caused by deficient alpha-galactosidase A (alpha-Gal A) activity.
- Accumulation of the substrate globotriaosylceramide (GL-3) leads to multi-organ pathology.
- Enzyme replacement therapy (ERT) is a potential treatment strategy.
Purpose of the Study:
- To evaluate the pharmacokinetics, biodistribution, and efficacy of recombinant human alpha-Gal A glycoforms in alpha-Gal A-deficient mice.
- To determine the optimal dosing and therapeutic potential of ERT for Fabry disease.
Main Methods:
- Four recombinant human alpha-Gal A glycoforms were administered intravenously to alpha-Gal A-deficient mice.
- Pharmacokinetics, biodistribution, enzyme activity, and GL-3 substrate levels were assessed.
- Ultrastructural analysis was performed to evaluate GL-3 storage.
Main Results:
- Recombinant alpha-Gal A glycoforms exhibited short plasma half-lives (2-5 min), with higher sialylation increasing circulation time.
- The liver was the primary site of uptake; significant GL-3 depletion occurred in tissues and plasma in a dose-dependent manner.
- Repeated administration of a highly sialylated glycoform (AGA-1) restored enzyme activity and reduced GL-3 storage, with sustained effects in the liver and spleen.
Conclusions:
- Preclinical studies demonstrate that enzyme replacement therapy with recombinant alpha-Gal A can effectively clear GL-3 substrate in a dose-dependent manner.
- These findings provide crucial pharmacokinetic and pharmacodynamic data supporting the initiation of enzyme replacement therapy trials in patients with Fabry disease.

