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Updated: Nov 18, 2025

Electrocardiogram Recordings in Anesthetized Mice using Lead II
Published on: June 20, 2020
Repolarization Predictors of Fetal Long QT Syndrome
Sarah Strand1, Janette F Strasburger2, William J Lutter1
1Department of Medical Physics, University of Wisconsin-Madison; Madison, WI.
Background:
Diagnosis of fetal long QT syndrome (LQTS) using fetal magnetocardiography (fMCG) is straightforward in cases of overt QTc prolongation accompanied by LQTS rhythms; however, cases of isolated QTc prolongation can be challenging.
Objective:
To characterize repolarization in normal and phenotype-positive LQTS fetuses with the goal of utilizing additional parameters of repolarization to improve the accuracy of fMCG diagnosis of LQTS.
Methods:
FMCG recordings were taken from 37 phenotype-positive fetuses with confirmed LQTS and 132 normal controls. The normal fetuses were grouped into those with T-and U-waves and those with only T-waves. We compared the repolarization characteristics of normal fetuses with only T-waves with those of LQTS fetuses. We also compared the repolarization characteristics of normal fetuses with T-and U-waves with those of LQTS fetuses with two-component T-waves.
Results:
Late-peaking T-waves were strongly associated (35/37= 95%) with LQTS. No normal fetuses showed both QTc prolongation (QTc> 500 ms) and a late-peaking T-wave. U-waves were seen in 11 normal fetuses (8%) and resulted in waveforms that often mimicked those of the 19 LQTS fetuses with two-component T-waves; however, in normal fetuses the polarities of the T-and U-waves were the same, whereas in LQTS fetuses with two-component T-waves the polarity of the components was usually opposite.
Conclusion:
A late-peaking T-wave in association with QTc prolongation is a distinctive, reliable indicator of fetal LQTS. U-waves confound assessment of QTc; however, normal U-waves can usually be distinguished from LQTS T-waves based on polarity.
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