KBTBD4 Cancer Hotspot Mutations Drive Neomorphic Degradation of HDAC1/2 Corepressor Complexes

Insights

Cancer mutations in KBTBD4 drive medulloblastoma by causing aberrant degradation of CoREST. This study reveals how mutations create new interactions with HDAC1/2, offering therapeutic targets for pediatric brain tumors.

Area of Science:

  • Oncology
  • Structural Biology
  • Molecular Biology

Background:

  • Recurrent mutations in KBTBD4, a substrate receptor for the CULLIN3-RBX1 E3 ubiquitin ligase, are found in medulloblastoma (MB) and pineoblastoma.
  • These mutations lead to gain-of-function, promoting the aberrant degradation of the transcriptional corepressor CoREST, but the mechanism remains unclear.

Purpose of the Study:

  • To elucidate the mechanism by which KBTBD4 mutations promote CoREST degradation.
  • To identify the specific interactions between KBTBD4 mutants and their neomorphic target, HDAC1/2.
  • To explore therapeutic strategies targeting the aberrant KBTBD4-HDAC1 interaction.

Main Methods:

  • Deep mutational scanning to map the KBTBD4 mutation landscape.
  • Cryo-electron microscopy (cryo-EM) to determine the structure of KBTBD4 mutants bound to LSD1-HDAC1-CoREST.
  • In vitro assays and medulloblastoma models to test therapeutic interventions.

Main Results:

  • KBTBD4 mutations promote CoREST degradation by engaging HDAC1/2.
  • Structural analysis revealed KBTBD4 forms a homodimer that binds HDAC1, with mutations stabilizing this interface.
  • Gain-of-function mutations were mapped, showing specific preferences for insertions and substitutions.
  • Molecular glue UM171 and HDAC1/2 inhibitors were found to disrupt the mutant KBTBD4-HDAC1 interaction and inhibit tumor growth.

Conclusions:

  • Elucidated the mechanistic basis of cancer mutation-driven neomorphic protein-protein interactions involving KBTBD4, HDAC1/2, and CoREST.
  • Demonstrated that HDAC1/2 inhibitors can block the mutant KBTBD4-HDAC1 interaction, CoREST degradation, and KBTBD4-mutant MB growth.
  • Identified potential therapeutic strategies targeting the aberrant E3-neo-substrate interface for pediatric brain tumor treatment.

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