Defining the normal QT interval in newborns: the natural history and reference values for the first 4 weeks of life

Maria Munk Pærregaard1, Sara Osted Hvidemose1, Christian Pihl1

  • 1Department of Cardiology, Herlev-Gentofte Hospital, Copenhagen University Hospital, Borgmester Ib Juuls Vej 1, DK-2730 Herlev, Copenhagen, Denmark.

Insights

This study established normal QT interval ranges for newborns, finding minimal changes in corrected QT intervals during the first four weeks of life. These reference values aid in diagnosing neonatal arrhythmia syndromes.

Area of Science:

  • Neonatal cardiology
  • Pediatric electrophysiology
  • Clinical pharmacology

Background:

  • Accurate assessment of the neonatal QT interval is crucial for diagnosing arrhythmias and drug-related side effects.
  • Establishing normative data is essential for interpreting QT interval measurements in newborns.

Purpose of the Study:

  • To describe the natural history of QT interval duration in neonates during the first four weeks of life.
  • To provide reference values for QT interval duration from a large, general newborn population sample.

Main Methods:

  • Prospective study of 14,164 newborns (0-28 days) with normal echocardiograms.
  • Analysis of eight-lead electrocardiograms using a validated computerized algorithm.
  • Calculation of various corrected QT intervals (Bazett, Hodges, Fridericia, Framingham) and uncorrected QT intervals.

Main Results:

  • Median corrected QT intervals varied by formula, with QTcFramingham and QTcHodges showing minor changes over 4 weeks, while QTcBazett and QTcFridericia remained stable.
  • 5-25% of newborns met published criteria for QT prolongation.
  • Uncorrected QT intervals decreased with increasing heart rate; sex and infant size had no effect, and gestational age only impacted extremely premature infants.

Conclusions:

  • QTcBazett and QTcFridericia are stable in neonates, while QTcFramingham and QTcHodges exhibit minor changes.
  • Gestational age impacts QT interval only in very premature infants; sex and infant size do not.
  • HR-specific uncorrected QT intervals offer a valuable tool for accurate diagnosis in newborns.
Abstract

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