Yap governs a lineage-specific neuregulin1 pathway-driven adaptive resistance to RAF kinase inhibitors

Maria E R Garcia-Rendueles1,2, Gnana Krishnamoorthy3, Mahesh Saqcena3

  • 1Human Oncology and Pathogenesis Program, Memorial Sloan Kettering Cancer Center, New York, NY, USA. mariaelena.rodriguez@imdea.org.

Molecular Cancer
|December 8, 2022
PubMed
Abstract

Insights

YAP activation drives resistance to MAPK inhibitors in BRAF-mutant thyroid cancer by activating the NRG1 pathway. Silencing YAP or using pan-HER inhibitors can overcome this resistance, highlighting YAP as a therapeutic target.

Area of Science:

  • Oncology
  • Molecular Biology
  • Cell Signaling

Background:

  • The Hippo pathway regulates tissue growth via YAP. Aberrant YAP activation is implicated in cancer, but its role in adaptive resistance to targeted therapies, particularly MAPK inhibitors, remains unclear.
  • While genetic lesions in Hippo pathway intermediates are rare in cancers with illegitimate YAP activation, YAP's broader role in therapy resistance is under investigation.

Purpose of the Study:

  • To investigate the role of YAP in thyroid cancer and its impact on adaptive resistance to MAPK inhibitors.
  • To screen thyroid cancer cell lines for aberrant YAP nuclear localization and model YAP-driven oncogenesis in vivo.

Main Methods:

  • Screened 52 thyroid cancer cell lines for nuclear YAP localization using immunofluorescence and cell fractionation.
  • Developed doxycycline-inducible mouse models and cell lines with manipulated YAP expression (YAP^S127A, sh-miR-E-YAP).
  • Assessed cell viability, invasion, gene expression (RNA sequencing), and tumorigenesis to evaluate YAP dependency and drug response.

Main Results:

  • 27/52 thyroid cancer cell lines exhibited constitutive nuclear YAP (NU-YAP), leading to YAP dependency for viability and invasiveness.
  • Treatment of BRAF-mutant thyroid cancer cells with RAF kinase inhibitors induced YAP nuclear translocation and activation.
  • Vemurafenib resistance in BRAF-mutant thyroid cells was driven by YAP-dependent NRG1, HER2, and HER3 activation, which was overcome by YAP silencing or pan-HER inhibitors.

Conclusions:

  • YAP activation in thyroid cancer creates a dependency and drives adaptive resistance to RAF kinase inhibitors.
  • YAP induces a gene expression program involving the NRG1 signaling pathway, contributing to MAPK inhibitor insensitivity in a lineage-dependent manner.
  • Hippo pathway inactivation acts as a rheostat controlling adaptive resistance mechanisms in BRAF-mutant cancers.

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