Compound Heterozygous Frameshift Mutations in MESD Cause a Lethal Syndrome Suggestive of Osteogenesis Imperfecta Type

Julian Stürznickel1, Katharina Jähn-Rickert1, Jozef Zustin1

  • 1Department of Osteology and Biomechanics, University Medical Center Hamburg-Eppendorf, Hamburg, Germany.

Insights

Mutations in the MESD gene cause severe osteogenesis imperfecta XX (OI XX) in stillbirths. This study highlights MESD

Area of Science:

  • Genetics
  • Skeletal Biology
  • Developmental Biology

Background:

  • Osteogenesis imperfecta (OI) is a heterogeneous bone disorder characterized by low bone mineral density and increased fracture risk.
  • Mutations in the MESD gene, encoding a chaperone for LRP5/LRP6, cause autosomal-recessive OI XX.
  • Previously reported OI XX phenotypes were associated with homozygous mutations in MESD.

Purpose of the Study:

  • To investigate the genetic cause of severe skeletal deformity and intrauterine fractures in three stillbirths from a single family.
  • To characterize the skeletal phenotype and identify mutations in the MESD gene.

Main Methods:

  • Whole-exome sequencing was performed on three affected stillbirths.
  • Fetal autopsy, bone histology, and quantitative backscattered electron imaging (qBEI) were used for skeletal phenotyping.
  • Results were compared to an age-matched control.

Main Results:

  • Compound heterozygous mutations in MESD exons 2 and 3 were identified in all affected individuals.
  • The skeletal phenotype included multiple intrauterine fractures and severe deformities, consistent with OI XX.
  • Histology revealed impaired bone development, altered osteocyte morphology, and reduced canalicular connectivity.
  • qBEI showed impaired and heterogeneous bone matrix mineralization compared to controls.

Conclusions:

  • Compound heterozygous MESD mutations can cause a severe form of OI XX, even in stillbirths.
  • A mutation in MESD exon 2, within the chaperone domain, likely leads to complete loss of function, explaining the severe phenotype.
  • These findings underscore the critical role of MESD in early skeletal development.

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