Infants suspected to have very-long chain acyl-CoA dehydrogenase deficiency from newborn screening

J Lawrence Merritt1, Sverre Vedal2, Jose E Abdenur3

  • 1Pediatrics, University of Washington, Seattle, WA, USA.

Insights

Newborn screening for very long-chain acyl-CoA dehydrogenase deficiency (VLCADD) identified one in 11,581 infants. Analyzing acylcarnitine levels improves diagnostic accuracy and reduces false positives in newborn screening programs.

Area of Science:

  • Biochemistry
  • Genetics
  • Pediatrics

Background:

  • Very long-chain acyl-CoA dehydrogenase deficiency (VLCADD) is a challenging fatty acid oxidation disorder for newborn screening (NBS).
  • VLCADD presents with highly variable clinical manifestations, complicating accurate NBS interpretation.
  • Existing NBS protocols require refinement for improved VLCADD detection and reduced false positives.

Purpose of the Study:

  • To analyze the outcomes of infants with screen-positive results for VLCADD in a large, multi-state NBS program.
  • To evaluate the diagnostic utility of specific acylcarnitine analytes and ratios for VLCADD.
  • To assess the effectiveness of post-analytical strategies in improving NBS accuracy for VLCADD.

Main Methods:

  • Retrospective analysis of 2,802,504 newborns screened across four Western states.
  • Inclusion of confirmatory testing and clinical data for infants with elevated C14:1-acylcarnitine.
  • Statistical comparison of NBS analytes and ratios between true positive and false positive VLCADD cases.

Main Results:

  • One in 11,581 newborns had an abnormal NBS for suspected VLCADD, with 34 symptomatic and 18 asymptomatic true positives.
  • Significant differences in C14:1, C14, C14:1/C2, and C14:1/C16 levels distinguished true from false positives.
  • Positive predictive values varied significantly with C14:1 thresholds (94% at ≥2.0 μM, 23% at ≥0.7 μM).
  • Sequential analysis could reduce referrals by 25.8%.

Conclusions:

  • This study represents the largest follow-up of infants with NBS-positive VLCADD results.
  • Refined diagnostic algorithms using NBS analytes and clinical data are crucial for accurate VLCADD diagnosis.
  • Developing comprehensive, consistent long-term follow-up systems for NBS is essential.

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