Chromosomal and related Mendelian syndromes associated with Hirschsprung's disease

S W Moore1

  • 1Division of Pediatric Surgery, Department of Surgical Sciences, Faculty of Health Sciences, University of Stellenbosch, P.O. Box 19063, Tygerberg, South Africa. swm@sun.ac.za

Insights

Hirschsprung's disease (HSCR) is a complex genetic disorder causing intestinal obstruction in children. This review explores its intricate genetic associations and signaling pathways, including chromosomal and Mendelian links, to understand aganglionosis.

Area of Science:

  • Genetics
  • Pediatric Gastroenterology
  • Developmental Biology

Background:

  • Hirschsprung's disease (HSCR) is a common cause of pediatric intestinal obstruction.
  • It presents as a heterogenous, sex-linked disorder with variable inheritance patterns and incomplete penetrance.
  • HSCR often occurs in isolation but is frequently associated with congenital anomalies and syndromes, indicating complex genetic underpinnings.

Purpose of the Study:

  • To review the chromosomal and Mendelian associations of Hirschsprung's disease.
  • To explore the underlying signaling pathways involved in HSCR pathogenesis.
  • To enhance understanding of the mechanisms leading to aganglionosis of the distal bowel.

Main Methods:

  • Literature review of chromosomal and Mendelian associations.
  • Analysis of genetic sites and susceptibility pathways (e.g., RET, EDNRB).
  • Examination of gene-gene interactions and modifier genes in syndromic forms.

Main Results:

  • HSCR genetics are complex, involving multiple susceptibility genes and pathways.
  • Syndromic forms link to distinct genetic sites, suggesting gene-gene interactions.
  • Non-syndromic, short-segment HSCR exhibits non-Mendelian inheritance with variable expression and sex-dependent penetrance.

Conclusions:

  • The phenotypic variability and incomplete penetrance in HSCR are influenced by genetic complexity and modifier genes.
  • Understanding these genetic associations and pathways is crucial for elucidating the pathogenesis of aganglionosis.
  • Further research into signaling pathways will improve comprehension of HSCR development.

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