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Published on: June 25, 2010
Feasibility of newborn screening for guanidinoacetate methyltransferase (GAMT) deficiency
Marzia Pasquali1, Elisabeth Schwarz, Maren Jensen
1Department of Pathology, University of Utah, Salt Lake City, UT, 84108, USA, PASQUAM@aruplab.com.
Insights
Newborn screening can now identify Guanidinoacetate methyltransferase (GAMT) deficiency by measuring elevated guanidinoacetate in blood spots. Early detection and therapy prevent intellectual disability and seizures in infants with this brain creatine deficiency syndrome.
Area of Science:
- Biochemistry
- Genetics
- Newborn Screening
Background:
- Guanidinoacetate methyltransferase (GAMT) deficiency leads to brain creatine deficiency.
- This condition causes developmental delays, speech impairment, seizures, and autism-like behaviors.
- Early identification and treatment are crucial to prevent intellectual disability and seizures.
Purpose of the Study:
- To develop a method for identifying GAMT deficiency in newborns from blood spots.
- To implement a reliable screening protocol for early detection.
Main Methods:
- Extracted creatine and guanidinoacetate from 10,000 deidentified newborn blood spots.
- Quantified analytes using stable isotope dilution with deuterated standards.
- Employed a second-tier UPLC-MS/MS test for samples with elevated guanidinoacetate levels (>2.44 μmol/L).
Main Results:
- Successfully identified GAMT deficiency in infants through elevated guanidinoacetate levels in blood spots.
- A second-tier test minimized false positives, confirming diagnosis only in affected infants.
- The method utilizes routine extraction protocols with minimal additional cost.
Conclusions:
- GAMT deficiency can be effectively identified in newborns using standard blood spot extraction methods.
- Early detection via newborn screening enables timely therapeutic intervention.
- This screening approach prevents severe neurological outcomes associated with brain creatine deficiency syndromes.
Abstract:
Guanidinoacetate methyltransferase (GAMT) deficiency causes brain creatine deficiency characterized by developmental delays, speech delay, seizures and autism-like behavior. Identification and therapy at birth because of a positive family history has prevented intellectual disability and seizures in all cases reported. The objective of this study was to develop a method to identify patients with GAMT deficiency from newborn screening blood spots. Creatine and guanidinoacetate were extracted from 10,000 deidentified blood spots using the same protocol routinely used for newborn screening and quantified by stable isotope dilution using deuterated creatine and guanidinoacetate as internal standards. Residual dried blood spots from three infants with GAMT deficiency were used to evaluate the sensitivity of the method. A second tier test using UPLC-MS/MS was performed to analyze samples with a concentration of guanidinoacetate >2.44 μmol/L (99.5th centile of the normal population). Fifty four blood spots required second tier testing in addition to seven blood spots from three patients with GAMT deficiency retrospectively analyzed. With second tier testing, only the samples from GAMT deficiency patients had elevated concentration of guanidinoacetate. Our results show that GAMT deficiency can be identified in newborns using routine extraction methods. The cost of this additional screening is minimal, as it does not require additional instrumentation, procedure, or sample collection. The use of a second tier test can reduce the false positive rate to a minimum. Summary Brain creatine deficiency syndromes cause mental retardation that can be prevented if therapy is initiated early in life. This manuscript reports that infants with GAMT deficiency (one of the brain creatine deficiency syndromes) can be identified from elevated guanidinoacetate in newborn blood spots with virtually absent false-positive results using a second tier test.
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