Novel mutation in LRP5 gene cause rare osteosclerosis: cases studies and literature review

Dichen Zhao1, Lei Sun1, Wenbin Zheng1

  • 1Department of Endocrinology, National Health Commission Key Laboratory of Endocrinology, Peking Union Medical College Hospital, Chinese Academy of Medical Sciences and Peking Union Medical College, Shuaifuyuan No. 1, Dongcheng District, Beijing, 100730, China.

Insights

Gain-of-function mutations in the low-density lipoprotein receptor-related protein 5 (LRP5) gene cause autosomal dominant osteosclerosis (ADO I), leading to increased bone mass and thickened bone cortex. This study identifies novel LRP5 mutations and reviews existing literature on ADO I phenotypes.

Area of Science:

  • Genetics
  • Bone Biology
  • Metabolic Diseases

Background:

  • The low-density lipoprotein receptor-related protein 5 (LRP5) gene plays a critical role in bone mass regulation.
  • Gain-of-function mutations in LRP5 are associated with increased bone mineral density and bone cortical thickness.
  • Autosomal dominant osteosclerosis (ADO I) is a rare genetic disorder characterized by excessive bone formation.

Observation:

  • Three male patients presented with increased bone mineral density (BMD) and thickened bone cortex.
  • Radiographic evaluation revealed thickened cranial vault and long bone cortices, with specific facial and mandibular abnormalities in some cases.
  • Bone turnover markers showed variable results, with normal BMD in two patients.

Findings:

  • Novel missense mutations in the LRP5 gene (c.586T>G, p.Trp196Gly and c.4240C>A, p.Arg1414Ser) were identified in the patients.
  • A literature review identified 19 distinct LRP5 gain-of-function mutations in 113 patients across 33 families.
  • Mutations in exon 3 of LRP5 were associated with more severe phenotypes.

Implications:

  • LRP5 gain-of-function mutations are confirmed as a cause of ADO I, characterized by high bone mass and cortical thickening.
  • Understanding LRP5 mutations provides insights into the Wnt signaling pathway's role in bone metabolism.
  • Further research into the Wnt pathway may reveal novel therapeutic targets for bone mass regulation disorders.

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