Digenic mutations of human OCRL paralogs in Dent's disease type 2 associated with Chiari I malformation

Daniel Duran1, Sheng Chih Jin2, Tyrone DeSpenza1

  • 1Department of Neurosurgery, Yale School of Medicine , New Haven, CT, USA.

Human Genome Variation
|December 27, 2016
PubMed

Insights

This study details a novel genetic case linking Dent disease type 2 (DD2) with Chiari I malformation and syringohydromyelia. It highlights the digenic effects of mutations in OCRL1 and INPP5B, suggesting impaired ciliogenesis in DD2 development.

Area of Science:

  • Genetics
  • Cell Biology
  • Neurology

Background:

  • OCRL1 and INPP5B are phosphatidylinositol 5-phosphatases crucial for primary cilium function and ciliogenesis.
  • Mutations in OCRL1 cause Dent disease type 2 (DD2), characterized by renal and ocular abnormalities.
  • Human disease-causing mutations in INPP5B have not been previously reported.

Purpose of the Study:

  • To investigate the genetic basis of a patient presenting with DD2-like symptoms and Chiari I malformation.
  • To explore the functional consequences of digenic mutations in OCRL1 and INPP5B.
  • To examine the potential link between impaired ciliogenesis and Chiari I malformation.

Main Methods:

  • Whole exome sequencing to identify causative mutations.
  • Bioinformatic analyses (SIFT, PolyPhen2, MetaSVM, CADD) to predict mutation impact.
  • Review of patient's clinical presentation and medical history.

Main Results:

  • A novel de novo deletion in OCRL1 causing DD2 was identified.
  • An extremely rare, damaging missense mutation in INPP5B (p.A51V) was found to be maternally inherited.
  • The patient exhibited severe proteinuria, hypercalciuria, osteopenia, and Chiari I malformation with syringohydromyelia.

Conclusions:

  • This case reports a novel association between DD2, Chiari I malformation, and syringohydromyelia.
  • Digenic mutation in OCRL paralogs OCRL1 and INPP5B has significant clinical impact.
  • Impaired ciliogenesis due to OCRL-dependent phosphoinositide metabolism may contribute to Chiari I malformation development.

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