IGF-I receptor mutations resulting in intrauterine and postnatal growth retardation

M Jennifer Abuzzahab1, Anke Schneider, Audrey Goddard

  • 1Cincinnati Children's Hospital Medical Center, Cincinnati, OH 45229, USA.

Insights

Mutations in the insulin-like growth factor I receptor (IGF-IR) gene can cause intrauterine growth retardation and short stature. These genetic defects affect IGF-IR function or receptor numbers, impacting human growth.

Area of Science:

  • Genetics
  • Endocrinology
  • Pediatrics

Background:

  • Intrauterine growth retardation (IUGR) affects 10% of infants, with unclear causes for persistent growth deficits.
  • The insulin-like growth factor I receptor (IGF-IR) is crucial for growth, making its gene a candidate for growth failure.

Observation:

  • Screened children with unexplained IUGR and short stature for IGF-IR gene abnormalities.
  • Investigated children with short stature and elevated IGF-I levels for IGF-IR gene mutations.
  • Compared IGF-IR gene sequences in affected children against a control group.

Findings:

  • Identified compound heterozygous mutations in the IGF-IR gene in a girl with IUGR, leading to reduced IGF-I receptor function.
  • Discovered a nonsense mutation in a boy with IUGR, resulting in fewer IGF-I receptors on fibroblasts.
  • No IGF-IR gene mutations were found in the control group.

Implications:

  • IGF-IR gene mutations can cause significant prenatal and postnatal growth retardation in humans.
  • Abnormalities in IGF-I receptor function or number due to gene mutations are linked to growth failure.
  • This research highlights the critical role of IGF-IR in human growth and development.
Abstract

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