Examining the predictive accuracy of metabolomics for small-for-gestational-age babies: a systematic review

Debora Farias Batista Leite1,2, Aude-Claire Morillon3, Elias F Melo Júnior4

  • 1Department of Tocogynecology, Campinas' State University, Campinas, Brazil.

BMJ Open
|August 12, 2019
PubMed

Insights

Metabolomics shows promise for predicting small-for-gestational-age (SGA) infants, identifying fatty acids, phosphosphingolipids, and amino acids as key predictive metabolites. Further validation is needed to establish robust diagnostic tests for SGA prediction.

Area of Science:

  • Biochemistry
  • Genetics
  • Obstetrics

Background:

  • Small-for-gestational-age (SGA) infants face increased lifelong risks.
  • Current methods for predicting SGA infants lack robustness.

Purpose of the Study:

  • To assess metabolomics accuracy in predicting SGA infants.
  • To identify specific metabolites predictive of SGA.

Main Methods:

  • Systematic review of 11 databases and grey literature (1998-2018).
  • Inclusion of cohort or nested case-control studies on metabolomics and SGA.
  • Independent data extraction and quality assessment by two researchers.

Main Results:

  • 15 studies were included, primarily in the second trimester.
  • Liquid chromatography-mass spectrometry was the dominant metabolomics technique.
  • Fatty acids, phosphosphingolipids, and amino acids were the most common predictive metabolites.

Conclusions:

  • Metabolomics, particularly lipid metabolism compounds, shows potential for SGA prediction.
  • Validation of findings in diverse settings and across trimesters is recommended.
Abstract

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