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Updated: Nov 25, 2025

Spontaneous Murine Model of Anaplastic Thyroid Cancer
Published on: February 3, 2023
SWI/SNF Complex Mutations Promote Thyroid Tumor Progression and Insensitivity to Redifferentiation Therapies
Mahesh Saqcena1, Luis Javier Leandro-Garcia1, Jesper L V Maag2
1Human Oncology and Pathogenesis Program, Memorial Sloan Kettering Cancer Center, New York, New York.
Abstract:
Mutations of subunits of the SWI/SNF chromatin remodeling complexes occur commonly in cancers of different lineages, including advanced thyroid cancers. Here we show that thyroid-specific loss of Arid1a, Arid2, or Smarcb1 in mouse BRAFV600E-mutant tumors promotes disease progression and decreased survival, associated with lesion-specific effects on chromatin accessibility and differentiation. As compared with normal thyrocytes, BRAFV600E-mutant mouse papillary thyroid cancers have decreased lineage transcription factor expression and accessibility to their target DNA binding sites, leading to impairment of thyroid-differentiated gene expression and radioiodine incorporation, which is rescued by MAPK inhibition. Loss of individual SWI/SNF subunits in BRAF tumors leads to a repressive chromatin state that cannot be reversed by MAPK pathway blockade, rendering them insensitive to its redifferentiation effects. Our results show that SWI/SNF complexes are central to the maintenance of differentiated function in thyroid cancers, and their loss confers radioiodine refractoriness and resistance to MAPK inhibitor-based redifferentiation therapies. SIGNIFICANCE: Reprogramming cancer differentiation confers therapeutic benefit in various disease contexts. Oncogenic BRAF silences genes required for radioiodine responsiveness in thyroid cancer. Mutations in SWI/SNF genes result in loss of chromatin accessibility at thyroid lineage specification genes in BRAF-mutant thyroid tumors, rendering them insensitive to the redifferentiation effects of MAPK blockade.This article is highlighted in the In This Issue feature, p. 995.
Insights
Loss of SWI/SNF chromatin remodeling complex subunits in BRAF-mutant thyroid tumors drives cancer progression. This loss impairs gene expression and radioiodine uptake, causing resistance to MAPK inhibitor therapies.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Genetics
Background:
- Mutations in SWI/SNF chromatin remodeling complexes are frequent in various cancers, including advanced thyroid cancer.
- BRAF V600E mutations are common drivers in papillary thyroid cancer, impacting tumor progression and differentiation.
Purpose of the Study:
- To investigate the role of SWI/SNF subunit loss in BRAF V600E-mutant thyroid tumors.
- To determine the impact of SWI/SNF mutations on chromatin accessibility, gene expression, and therapeutic response.
Main Methods:
- Utilized mouse models of BRAF V600E-mutant thyroid tumors with specific SWI/SNF subunit (Arid1a, Arid2, Smarcb1) loss.
- Assessed effects on tumor progression, survival, chromatin accessibility, and lineage-specific gene expression.
- Evaluated responses to MAPK pathway inhibition and radioiodine incorporation.
Main Results:
- Thyroid-specific loss of Arid1a, Arid2, or Smarcb1 accelerated tumor progression and reduced survival.
- SWI/SNF subunit loss led to decreased chromatin accessibility at lineage transcription factor binding sites, impairing differentiation and radioiodine uptake.
- Loss of SWI/SNF function created a repressive chromatin state resistant to MAPK inhibition, causing insensitivity to redifferentiation therapies.
Conclusions:
- SWI/SNF complexes are critical for maintaining thyroid cancer differentiation.
- Loss of SWI/SNF subunits confers radioiodine refractoriness and resistance to MAPK inhibitor-based redifferentiation strategies.
- Targeting SWI/SNF function may be crucial for overcoming therapeutic resistance in BRAF-mutant thyroid cancers.
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