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Machine learning-enhanced noninvasive prenatal testing of monogenic disorders.

Noa Liscovitch-BrauerRavit MesikaTom RabinowitzHadas VolkovMeitar GradReut Tomashov MatarLina Basel-SalmonOren TadmorAmir BekerNoam Shomron
Published in: Prenatal diagnosis (2024)
Overall, we demonstrate our ability to perform genome-wide NIPS for maternal and homozygous biallelic variants and showcase the utility of our method in a clinical setting.
Keyphrases
  • genome wide
  • machine learning
  • copy number
  • dna methylation
  • pregnant women
  • intellectual disability
  • pregnancy outcomes
  • birth weight
  • autism spectrum disorder
  • physical activity
  • weight loss