Targeting AKT and CK2 represents a novel therapeutic strategy for SMO constitutive activation-driven medulloblastoma

Yue-Liang Yao1,2, Yan-Xia Wang1, Fei-Cheng Yang1

  • 1Institute of Pathology and Southwest Cancer Center, Southwest Hospital, Army Medical University (Third Military Medical University), Chongqing, China.

Abstract

Insights

Sonic hedgehog medulloblastoma with SMO W535L mutation resists SMO inhibitors. Targeting CK2 and AKT offers a new therapeutic strategy for resistant medulloblastoma by inhibiting tumor growth.

Area of Science:

  • Oncology
  • Molecular Biology
  • Genetics

Background:

  • Sonic hedgehog (SHH) medulloblastoma (MB) overactivates the hedgehog pathway, making it targetable by SMO inhibitors.
  • SMO W535L mutation drives SHH MB and confers resistance to SMO inhibitors, necessitating exploration of its regulatory network.

Purpose of the Study:

  • To investigate the regulation network of SMO W535L compared to wild-type SMO (SMO WT).
  • To identify potential therapeutic targets for SMO inhibitor-resistant SHH-subtype MB.

Main Methods:

  • Profiling transcriptomes, methylomes, and interactomes of MB cells with SMO WT or SMO W535L under DMSO or SMO inhibitor treatment.
  • Metabolic analysis and interactomic analysis to identify key proteins and pathways involved in SMO W535L function.

Main Results:

  • SMO inhibitor disrupted endocytosis and cilium organization in SMO WT cells but not in SMO W535L cells, confirming resistance.
  • Metabolic pathways including nicotinate and nicotinamide metabolism were implicated in SMO W535L function.
  • Casein kinase II (CK2) was identified as an SMO-associated protein, and its combination with AKT inhibition showed synergistic effects.

Conclusions:

  • SMO W535L confers resistance to SMO inhibitors by altering cellular processes and involving specific metabolic pathways.
  • CK2 and AKT are identified as promising therapeutic targets for overcoming SMO inhibitor resistance in SHH-subtype MB.

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