Disrupted WWOX-MYC interplay impairs neurogenesis in human brain organoids

Daniel J Steinberg1, Asia Zonca2, Dania Abdellatif1

  • 1The Concern Foundation Laboratories, The Lautenberg Center for Immunology and Cancer Research, Department of Immunology and Cancer Research-IMRIC, Hebrew University-Hadassah Medical School, Jerusalem, 9112001, Israel.

Insights

WWOX mutations cause rare neurodevelopmental disorders. Our study reveals WWOX loss disrupts neural stem cell cycles, impacting brain development, but gene therapy shows promise for WWOX-related disorders.

Area of Science:

  • Neuroscience
  • Developmental Biology
  • Genetics

Background:

  • WWOX mutations cause WOREE and SCAR12 syndromes, rare neurodevelopmental disorders impacting brain development.
  • The specific molecular mechanisms underlying WWOX deficiency in pathogenesis are largely unknown due to WWOX's pleiotropic nature.

Purpose of the Study:

  • To map early neurodevelopmental pathways disrupted by WWOX loss using neural organoids.
  • To investigate the cell-type specific molecular dysregulation contributing to WWOX-related disorders.

Main Methods:

  • Utilized induced pluripotent stem cells (iPSCs) from wildtype, WWOX-knockout, and patient-derived lines to create neural organoids.
  • Applied molecular profiling and single-cell transcriptomics to analyze disrupted neurodevelopmental pathways.
  • Investigated the efficacy of gene therapy in restoring neuronal function.

Main Results:

  • WWOX loss preferentially affects radial glial cells (RGs), disrupting cell cycle dynamics and reducing neuronal generation.
  • Overexpression of MYC and dysregulation of Wnt signaling pathways were identified in WWOX-deficient RGs.
  • Patient-derived organoids showed milder neuronal impairments, which were successfully restored by gene therapy.

Conclusions:

  • WWOX mutations impair neurogenesis via RG dysfunction, involving cell-type specific dysregulation of MYC and Wnt signaling.
  • Gene therapy can restore neuronal function in WWOX-related disorders without affecting RG populations.
  • These findings offer potential therapeutic strategies targeting key molecular pathways in WWOX-related disorders.