Mitochondrial mutation m.1555A>G as a risk factor for failed newborn hearing screening in a large cohort of preterm

Wolfgang Göpel1, Sandra Berkowski, Michael Preuss

  • 1Department of Paediatrics, University of Lübeck, University Hospital of Schleswig Holstein, Ratzeburger Allee 160, G-23538 Lübeck, Germany. wolfgang.goepel@uksh.de.

BMC Pediatrics
|August 27, 2014
PubMed
Abstract

Insights

The mitochondrial m.1555A>G mutation increases hearing loss risk in preterm infants treated with aminoglycosides. Maternal genetic screening may identify at-risk infants, but further studies are needed.

Area of Science:

  • Genetics
  • Neonatology
  • Pharmacogenomics

Background:

  • The mitochondrial m.1555A>G mutation is a known risk factor for aminoglycoside-induced hearing loss.
  • Preterm infants face a higher risk of hearing loss and often receive aminoglycoside antibiotics.

Purpose of the Study:

  • To investigate the association between the mitochondrial m.1555A>G mutation and failed hearing screening in preterm infants.
  • To evaluate aminoglycoside treatment as a predictor of hearing loss in infants with the m.1555A>G mutation.

Main Methods:

  • Genotyping for the m.1555A>G mutation in preterm infants (<1500g birth weight) enrolled in a cohort study.
  • Multivariate logistic regression analysis to assess the predictive value of aminoglycoside treatment and m.1555A>G mutation for failed hearing screening.

Main Results:

  • Low birth weight was the strongest predictor of failed hearing screening (p = 7.3 × 10-10).
  • The m.1555A>G mutation was found in 0.2% of infants.
  • Aminoglycoside treatment combined with m.1555A>G carrier status predicted failed hearing screening (p = 0.0058), though only 3 of 10 exposed carriers failed screening.
  • The mutation was maternally inherited.

Conclusions:

  • Maternal genotyping for the m.1555A>G mutation during pregnancy could identify infants at high risk for hearing loss.
  • Further research is needed to clarify the role of cofactors such as aminoglycoside levels and birth weight.

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