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Published on: June 25, 2010
Laboratory Diagnosis of Lysosomal Diseases: Newborn Screening to Treatment
1Genetics and Molecular Pathology, SA Pathology (Women's and Children's Hospital), North Adelaide, SA 5006; School of Medicine, University of Adelaide, Adelaide, SA 5005, Australia.
Insights
Early detection of inborn errors of metabolism (IEM) through newborn screening saves lives. Advances in mass spectrometry improve diagnosis of lysosomal diseases, which are not currently screened at birth in Australia.
Area of Science:
- Biochemistry
- Genetics
- Metabolic Disorders
Background:
- Newborn screening for inborn errors of metabolism (IEM) enables early detection and intervention, reducing severe health outcomes.
- Lysosomal diseases, a group of IEM, are not routinely screened at birth in Australia, often relying on enzyme deficiency tests.
- Traditional diagnostic methods for lysosomal diseases can be complex and may lead to diagnostic confusion.
Purpose of the Study:
- To highlight the importance of early detection and intervention for IEM.
- To discuss the diagnostic challenges associated with lysosomal diseases.
- To explore the potential of advanced mass spectrometry techniques for improving the diagnosis of IEM, particularly lysosomal disorders.
Main Methods:
- Review of current screening programs and diagnostic approaches for IEM.
- Discussion of advancements in mass spectrometry for simultaneous measurement of enzyme substrates and metabolites.
- Exploration of urine chemistry and plasma lipid analysis for identifying specific lysosomal disorders.
Main Results:
- Mass spectrometry enables efficient diagnosis by measuring substrates and metabolites, aiding in identifying characteristic patterns for lysosomal diseases.
- Urine chemistry can reflect multisystemic involvement, and plasma lipid analysis aids in diagnosing sphingolipidoses.
- A single mass spectrometry platform for measuring multiple biomarkers is the ideal goal for diagnosing various lysosomal disorders.
Conclusions:
- Current diagnostic methods for lysosomal diseases can be challenging and are not part of newborn screening in Australia.
- Mass spectrometry offers a more efficient and comprehensive approach to diagnosing lysosomal disorders by analyzing substrates, metabolites, and lipids.
- Integrating mass spectrometry-based biomarker analysis into a single platform is crucial for timely and accurate diagnosis of a wide range of IEM.
Abstract:
The goal of screening programs for inborn errors of metabolism (IEM) is early detection and timely intervention to significantly reduce morbidity, mortality and associated disabilities. Phenylketonuria exemplifies their success as neonates are identified at birth and then promptly treated allowing normal neurological development. Lysosomal diseases comprise about 50 IEM arising from a deficiency in a protein required for proper lysosomal function. Typically, these defects are in lysosomal enzymes with the concomitant accumulation of the enzyme's substrate as the cardinal feature. None of the lysosomal diseases are screened at birth in Australia and in the absence of a family history, traditional laboratory diagnosis of the majority, involves demonstrating a deficiency of the requisite enzyme. Diagnostic confusion can arise from interpretation of the degree of residual enzyme activity causative of disease and is impractical when the disorder is not due to an enzyme deficiency per se. Advances in mass spectrometry technologies has enabled simultaneous measurement of the enzymes' substrates and their metabolites which facilitates the efficiency of diagnosis. Employing urine chemistry as a reflection of multisystemic disease, individual lysosomal diseases can be identified by a characteristic substrate pattern complicit with the enzyme deficiency. Determination of lipids in plasma allows the diagnosis of a further class of lysosomal disorders, the sphingolipids. The ideal goal would be to measure biomarkers for each specific lysosomal disorder in the one mass spectrometry-based platform to achieve a diagnosis. Confirmation of the diagnosis is usually by identifying pathogenic variants in the underlying gene, and although molecular genetic technologies can provide the initial diagnosis, the biochemistry will remain important for interpreting molecular variants of uncertain significance.
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