Carnitine uptake defect due to a 5'UTR mutation in a pedigree with false positives and false negatives on Newborn

Kate C Verbeeten1, Anne-Marie Lamhonwah2, Dennis Bulman3

  • 1University of Ottawa, Ottawa, ON, Canada.

Insights

Carnitine Uptake Defect (CUD) is a genetic disorder affecting carnitine transport. A novel mutation in the SLC22A5 gene was identified in affected families, impacting carnitine levels and uptake.

Area of Science:

  • Genetics
  • Biochemistry
  • Molecular Biology

Background:

  • Carnitine Uptake Defect (CUD) is an autosomal recessive disorder caused by mutations in the SLC22A5 gene, leading to carnitine deficiency.
  • Clinical manifestations range from severe infantile symptoms like muscle weakness and cardiomyopathy to later-onset issues such as hypoglycemia and myopathy.
  • Newborn screening (NBS) identifies affected infants and can also detect maternal CUD, even in asymptomatic women.

Observation:

  • A family was studied after three NBS-positive infants, who were themselves unaffected, revealed affected mothers (sisters).
  • Two other affected children, born to an affected father and heterozygous mother, were NBS false negatives but showed increased urinary free carnitine excretion.
  • Genetic analysis identified a homozygous mutation (SLC22A5; NM_003060:c.-149G>A) in the 5' UTR in all five probands.

Findings:

  • The identified mutation segregates with CUD within the family and has a low frequency (0.001198) in the gnomAD database.
  • Affected individuals exhibited decreased plasma carnitine and increased fractional excretion of free carnitine.
  • Functional studies in fibroblasts showed significantly reduced carnitine uptake (6% of controls) in a proband, despite increased OCTN2 mRNA expression.

Implications:

  • This study identifies a novel 5' UTR mutation in SLC22A5 causing Carnitine Uptake Defect.
  • The findings highlight the importance of considering maternal CUD and potential NBS limitations.
  • Further research is needed to understand the significance of the observed protein bands and the mechanism of reduced carnitine uptake despite increased mRNA levels.

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