Smoothened (SMO) receptor mutations dictate resistance to vismodegib in basal cell carcinoma

Sabrina Pricl1, Barbara Cortelazzi2, Valentina Dal Col1

  • 1Molecular Simulation Engineering (MOSE) Laboratory, DEA, University of Trieste, Piazzale Europa 1, 34127 Trieste, Italy.

Molecular Oncology
|October 13, 2014
PubMed

Insights

Vismodegib resistance in basal cell carcinoma can occur through new SMO mutations. These mutations, G497W and D473Y, cause resistance by altering Smoothened protein structure and drug binding.

Area of Science:

  • Oncology
  • Molecular Biology
  • Genetics

Background:

  • Basal cell carcinomas (BCCs) and medulloblastomas often involve PTCH1 tumor suppressor gene mutations.
  • Constitutive Hedgehog pathway activity due to PTCH1 inactivation drives tumor growth.
  • Vismodegib, a Smoothened (SMO) inhibitor, effectively treats these tumors but acquired resistance is a concern.

Purpose of the Study:

  • To investigate the molecular mechanisms of vismodegib resistance in basal cell carcinoma.
  • To identify specific mutations in SMO or PTCH1 associated with primary and secondary resistance.
  • To elucidate how these mutations affect vismodegib binding and pathway inhibition.

Main Methods:

  • Analysis of patient tumor samples exhibiting primary and secondary resistance to vismodegib.
  • Identification of mutations in PTCH1 and SMO genes using sequencing.
  • In silico modeling to predict the structural impact of identified SMO mutations on vismodegib binding.

Main Results:

  • Primary resistance was associated with a novel SMO G497W mutation, causing conformational changes that obstruct drug entry.
  • Secondary resistance involved a PTCH1 mutation and an SMO D473Y mutation, which directly altered the binding site geometry.
  • The SMO D473Y mutation disrupted a critical hydrogen bond network, preventing vismodegib from binding effectively.

Conclusions:

  • SMO G497W and D473Y mutations represent distinct molecular mechanisms driving primary and secondary resistance to vismodegib.
  • Understanding these resistance mechanisms is crucial for developing future therapeutic strategies.
  • Targeting the Hedgehog pathway remains a key approach for BCC and medulloblastoma treatment.

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