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Updated: Feb 28, 2026

Spontaneous Murine Model of Anaplastic Thyroid Cancer
Published on: February 3, 2023
Small-molecule MAPK inhibitors restore radioiodine incorporation in mouse thyroid cancers with conditional BRAF
Debyani Chakravarty1, Elmer Santos, Mabel Ryder
1Human Oncology and Pathogenesis Program, Memorial Sloan-Kettering Cancer Center, New York, New York 10065, USA.
Abstract:
Advanced human thyroid cancers, particularly those that are refractory to treatment with radioiodine (RAI), have a high prevalence of BRAF (v-raf murine sarcoma viral oncogene homolog B1) mutations. However, the degree to which these cancers are dependent on BRAF expression is still unclear. To address this question, we generated mice expressing one of the most commonly detected BRAF mutations in human papillary thyroid carcinomas (BRAF(V600E)) in thyroid follicular cells in a doxycycline-inducible (dox-inducible) manner. Upon dox induction of BRAF(V600E), the mice developed highly penetrant and poorly differentiated thyroid tumors. Discontinuation of dox extinguished BRAF(V600E) expression and reestablished thyroid follicular architecture and normal thyroid histology. Switching on BRAF(V600E) rapidly induced hypothyroidism and virtually abolished thyroid-specific gene expression and RAI incorporation, all of which were restored to near basal levels upon discontinuation of dox. Treatment of mice with these cancers with small molecule inhibitors of either MEK or mutant BRAF reduced their proliferative index and partially restored thyroid-specific gene expression. Strikingly, treatment with the MAPK pathway inhibitors rendered the tumor cells susceptible to a therapeutic dose of RAI. Our data show that thyroid tumors carrying BRAF(V600E) mutations are exquisitely dependent on the oncoprotein for viability and that genetic or pharmacological inhibition of its expression or activity is associated with tumor regression and restoration of RAI uptake in vivo in mice. These findings have potentially significant clinical ramifications.
Insights
Advanced thyroid cancers with BRAF mutations are highly dependent on this protein. Inhibiting BRAF or MEK can reverse tumor growth and restore radioiodine (RAI) uptake, offering new treatment possibilities.
Area of Science:
- Oncology
- Molecular Biology
- Endocrinology
Background:
- Advanced thyroid cancers often resist radioiodine (RAI) treatment.
- BRAF mutations, particularly BRAF(V600E), are common in these refractory cancers.
- The dependency of these tumors on BRAF expression remains incompletely understood.
Purpose of the Study:
- To investigate the functional dependency of thyroid tumors on BRAF(V600E) mutations.
- To evaluate the therapeutic potential of targeting BRAF or downstream pathways in BRAF(V600E)-mutated thyroid cancer.
Main Methods:
- Generated doxycycline-inducible BRAF(V600E) mouse models for thyroid follicular cells.
- Administered BRAF or MEK inhibitors to tumor-bearing mice.
- Assessed tumor histology, gene expression, and RAI incorporation.
Main Results:
- Doxycycline induction of BRAF(V600E) rapidly formed poorly differentiated thyroid tumors.
- Tumor regression and restoration of normal thyroid histology occurred upon BRAF(V600E) withdrawal.
- BRAF/MEK inhibition reduced tumor proliferation, restored thyroid gene expression, and sensitized tumors to RAI therapy.
Conclusions:
- Thyroid tumors with BRAF(V600E) mutations exhibit profound dependency on this oncogene for survival.
- Targeting BRAF or MEK pathways offers a viable strategy for thyroid cancer treatment.
- Inhibition of BRAF signaling can restore RAI avidity in BRAF-mutated thyroid tumors, potentially improving therapeutic outcomes.
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