Risks and Recommendations in Prenatally Detected De Novo Balanced Chromosomal Rearrangements from Assessment of

Christina Halgren1, Nete M Nielsen2, Lusine Nazaryan-Petersen1

  • 1Wilhelm Johannsen Centre for Functional Genome Research, Department of Cellular and Molecular Medicine, University of Copenhagen, 2200 Copenhagen N, Denmark.

Insights

Prenatal balanced chromosomal rearrangements (BCRs) carry a higher long-term morbidity risk than previously estimated. Sequencing chromosomal breakpoints is recommended for accurate prenatal diagnosis and risk assessment.

Area of Science:

  • Genetics
  • Prenatal Diagnosis
  • Developmental Biology

Background:

  • Previous risk estimates for de novo balanced chromosomal rearrangements (BCRs) did not fully capture long-term morbidity.
  • Prenatal detection of BCRs often occurs with normal first-trimester screening and ultrasound.

Purpose of the Study:

  • To assess the long-term neurodevelopmental and neuropsychiatric morbidity associated with prenatally detected de novo BCRs.
  • To evaluate the diagnostic utility of chromosomal microarray and mate-pair sequencing for predicting outcomes.

Main Methods:

  • Long-term follow-up (mean 17 years) of 41 individuals with prenatally detected de novo BCRs.
  • Chromosomal microarray and mate-pair sequencing of carriers.
  • Comparison with a matched control group for neurodevelopmental/neuropsychiatric disorders.

Main Results:

  • A significantly higher frequency of neurodevelopmental/neuropsychiatric disorders was observed in carriers (26.8%) compared to controls (8.3%).
  • Mate-pair sequencing identified disrupted genes and regulatory domains associated with adverse outcomes, while chromosomal microarray showed no pathogenic imbalances.
  • Phenotype-aware interpretation showed high specificity (100%) but low sensitivity (45%-55%) for predicting clinical outcomes.

Conclusions:

  • The morbidity risk associated with de novo BCRs is revised upward to 27%.
  • Sequencing chromosomal breakpoints is recommended as a first-tier diagnostic test for de novo BCRs in pregnancies.
  • Accurate prenatal risk prediction for long-term morbidity remains challenging due to incomplete genomic annotation and understanding of regulatory mechanisms.

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