Electrohysterography in the diagnosis of preterm birth: a review

J Garcia-Casado1, Y Ye-Lin1, G Prats-Boluda1

  • 1Centro de Investigación e Innovación en Bioingeniería (CI2B), Universitat Politècnica de València (UPV), Camino de Vera SN, 46022, Valencia, Spain.

Physiological Measurement
|February 7, 2018
PubMed

Insights

Preterm birth (PTB) prediction can be improved using electrohysterogram (EHG) analysis. EHG reveals uterine electrophysiological changes associated with labor, offering more accurate risk assessment than current methods.

Area of Science:

  • Biomedical Engineering
  • Obstetrics and Gynecology
  • Signal Processing

Background:

  • Preterm birth (PTB) is a major cause of neonatal mortality and morbidity, affecting 10-15% of births globally.
  • Current diagnostic methods for PTB risk assessment are insufficient, and physiological mechanisms remain unclear.
  • Electrohysterogram (EHG) offers a non-invasive method to monitor uterine dynamics and assess uterine muscle condition.

Purpose of the Study:

  • To review and discuss the application of electrohysterogram (EHG) in predicting preterm birth (PTB).
  • To analyze EHG parameters (temporal, spectral, non-linear, bivariate) for characterizing uterine activity.
  • To evaluate the potential of EHG in improving PTB prediction and understanding its physiological basis.

Main Methods:

  • A comprehensive literature review was conducted on studies using EHG for PTB prediction.
  • EHG data analysis focused on temporal, spectral, non-linear, and bivariate parameters.
  • Various classification techniques were explored for PTB diagnosis based on EHG features.

Main Results:

  • EHG analysis identified specific electrophysiological changes preceding spontaneous preterm labor, including increased contraction intensity and organized activity.
  • Temporal, spectral, non-linear, and bivariate EHG parameters provide complementary information for PTB prediction.
  • Combined EHG parameters offer more accurate PTB prediction than existing clinical methods, though clinical application requires simplified, robust, and automated systems.

Conclusions:

  • EHG analysis is a promising tool for understanding PTB mechanisms and improving prediction accuracy.
  • Further research and development are needed to optimize EHG recording and analysis for widespread clinical use.
  • Standardized EHG features and automated analysis will facilitate clinical translation for better PTB management.

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