An ancient founder mutation located between ROBO1 and ROBO2 is responsible for increased microtia risk in

Daniel Quiat1,2,3, Seong Won Kim3, Qi Zhang3

  • 1Department of Cardiology, Boston Children's Hospital, Boston, MA 02115.

Insights

A genetic locus linked to microtia (external ear malformation) was identified between ROBO1 and ROBO2 genes. This locus, containing an expanded repeat element, is enriched in Amerindigenous populations, suggesting an ancient shared mutation.

Area of Science:

  • Genetics
  • Developmental Biology
  • Human Evolution

Background:

  • Microtia is a congenital external ear malformation with unknown genetic and environmental causes.
  • Amerindigenous populations exhibit the highest incidence of microtia globally.

Purpose of the Study:

  • To identify the genetic locus associated with microtia.
  • To investigate the genetic basis and population history of microtia.

Main Methods:

  • Transmission disequilibrium tests and association studies in Latin American microtia trios and cohorts.
  • Analysis of a polymorphic complex repeat element within the identified locus.
  • Chromatin loop analysis using induced pluripotent stem cell-derived neural crest cells.
  • Single nuclear RNA sequencing of human pinna fibroblasts and chondrocytes.

Main Results:

  • A ~10-kb microtia locus was mapped to the intergenic region between ROBO1 and ROBO2 (chr3: 78546526 to 78555137) with significant association (OR=4.7, P=6.78e-18).
  • The microtia locus contains an expanded polymorphic complex repeat element in affected individuals, though penetrance is low (<1%).
  • ROBO1 and ROBO2 expression is regulated by a nearby chromatin loop and detected in mature human pinna tissues.

Conclusions:

  • The identified microtia locus near ROBO1/ROBO2 is a key genetic factor in external ear malformation.
  • The microtia allele's enrichment in Amerindigenous and some East Asian populations suggests a shared ancestral mutation predating the peopling of the Americas.
  • The high incidence in Amerindigenous populations may be linked to a population bottleneck during ancient migrations.

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