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In Vitro Enzyme Measurement to Test Pharmacological Chaperone Responsiveness in Fabry and Pompe Disease
Published on: December 20, 2017
Biochemical and Genetic Testing of GAA in Over 30.000 Symptomatic Patients Suspected to Be Affected With Pompe
Sukirthini Balendran-Braun1, Ursula Vinatzer2, Sandra Liebmann-Reindl2
1Department of Pathology, Medical University of Vienna, Vienna, Austria.
Abstract:
Pompe disease (PD) is a rare autosomal recessive lysosomal disorder caused by loss-of-function of the α-glucosidase (GAA) gene. The deficient GAA enzyme activity may result in potential life-threatening muscle weakness, thus requiring a rapid diagnosis to initiate therapeutic interventions. In this large retrospective study, we analyzed 30.836 PD suspect samples from 57 countries using a two-step approach utilizing dried blood spots (DBSs): biochemical testing of GAA activity followed by complementary genetic sequencing of GAA in biochemically conspicuous cases. Of these 30.836 samples, 2% (n = 639) were excluded; accordingly, this study consisted of 30.193 cases. Biochemical testing of GAA enzyme activity showed normal values in 28.354 (93.90%) and enzyme activity below the cut-off in 1843 (6.10%) cases. These biochemically suspicious cases were genetically analyzed. We identified 723 Pompe cases with 283 different GAA alterations, and 98 variants have been unpublished so far. The most common variant was the splice variant c.-32-13T>G (IVS1). Looking at the IVS1-genotype, the majority was compound heterozygous (n = 169) and identified in late-onset cases (n = 162). Comparison of early- versus late-onset cases to evaluate whether certain genotypes correlate with the age of onset revealed that homozygosity was predominantly found in infantile (85.65%) and compound heterozygosity in late-onset (76.9%) cases. Analysis of homozygous cases revealed 61% nonsense variants in the early stages and 87% missense variants in the late stages. Mapping of disease-associated (homozygous) missense variants to functional GAA protein domains showed that missense variants were found throughout GAA, but we identified enrichment in the catalytic domain. A strict genotype-phenotype correlation cannot be established; nevertheless, a phenotypic implication of some GAA variants could be drawn (e.g., c.896T>C/p.L299P, c.2015G>A/p.R672Q, and c.-32-13T>G). The combined enzyme activity and genetic testing from DBS cards can reliably identify PD and significantly accelerate diagnosis. We identified new genetic variants that contribute to the spectrum of pathogenic variants of the GAA gene.
Insights
This study analyzed over 30,000 samples to diagnose Pompe disease (PD). Combining enzyme activity and genetic testing on dried blood spots (DBS) reliably identifies PD and accelerates diagnosis, identifying new genetic variants.
Area of Science:
- Biochemistry
- Genetics
- Rare Diseases
Background:
- Pompe disease (PD) is a rare, life-threatening lysosomal disorder caused by alpha-glucosidase (GAA) gene mutations.
- Early diagnosis of PD is crucial for timely therapeutic intervention and improved patient outcomes.
Purpose of the Study:
- To evaluate the diagnostic utility of a two-step approach combining biochemical and genetic testing for Pompe disease using dried blood spots (DBS).
- To identify novel genetic variants in the GAA gene associated with Pompe disease and analyze genotype-phenotype correlations.
Main Methods:
- Retrospective analysis of 30,193 suspect Pompe disease samples from 57 countries.
- Two-step diagnostic approach: initial GAA enzyme activity testing on DBS, followed by GAA genetic sequencing for biochemically suspicious cases.
Main Results:
- 6.10% of samples (1843 cases) showed enzyme activity below the cut-off and were genetically analyzed.
- 723 Pompe disease cases were identified with 283 distinct GAA alterations, including 98 novel variants.
- Homozygosity for GAA variants was predominantly observed in infantile PD, while compound heterozygosity was more common in late-onset cases.
Conclusions:
- Combined GAA enzyme activity and genetic testing on DBS is a reliable and efficient method for diagnosing Pompe disease.
- The study identified new genetic variants contributing to the spectrum of PD, enhancing our understanding of genotype-phenotype relationships.
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