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Updated: Jan 16, 2026

Spontaneous Murine Model of Anaplastic Thyroid Cancer
Published on: February 3, 2023
A subgroup of anaplastic thyroid carcinomas harbors MET alterations with potential therapeutic options
Sarah Theurer1, Hans-Ulrich Schildhaus2, Thomas Herold1
1Institute of Pathology, University Hospital Essen and Faculty of Medicine, University of Duisburg-Essen, Essen, Germany.
Abstract:
Anaplastic thyroid carcinoma (ATC) is a rare but biologically aggressive thyroid cancer with fatal clinical outcome and limited therapeutic options. Molecular studies of ATCs have described several genetic alterations leading to FDA approval of inhibitor therapy targeting BRAFV600E, NTRK, ALK and RET. MET alterations have been described in single cases, which have not yet led to approval for inhibitor therapy, although approval for these alterations in other tumors, such as lung cancer, already exist. Aim of this study was to provide an overview of MET alterations in ATC, highlighting their potential therapeutic relevance. In this study, a total of 28 ATCs were examined using MET immunohistochemistry (IHC), fluorescence in situ hybridization (FISH), and both RNA- and DNA-based next-generation sequencing. Molecular findings were correlated with tumor morphology as well as clinical follow-up data. Three ATC samples (10 %) revealed MET alterations, namely top-level gene amplification (defined by an average gene count ≥10.0) and ETV6-MET fusion. Concomitant MET protein overexpression was demonstrated by IHC. One case without a detectable MET alteration showed IHC-positivity in > 50 % of the tumor cells with strong staining intensity. Two top-level amplified samples expressed the same chimeric CAPZA2-MET fusion transcript, which we interpret as a biological byproduct rather than a true molecular driver. DNA sequencing did not reveal any activating MET mutations including exon 14 skipping. MET alterations were here mutually exclusive with driver mutations in BRAF, RAS, and PIK3CA, but co-occurred with TP53 mutations and TERT promoter mutations. MET alterations in ATC have been poorly described to date. Herein, we present the first structured evaluation of a series of ATCs focusing on MET gene alterations, including gene amplification, immunohistochemical expression, and gene fusions. Our results confirm that MET top-level amplifications (detected by fluorescence in situ hybridization, FISH) and MET gene fusions (detected by RNA-based NGS) occur in a subgroup of ATCs. As these alterations are druggable in other cancers, early molecular testing may identify MET-positive ATCs eligible for anti-MET therapies in clinical trials. We recommend RNA-based sequencing and FISH as biomarker assays to identify MET alterations.
Insights
Anaplastic thyroid carcinoma (ATC) harbors MET alterations, including gene amplification and fusions, in 10% of cases. Early molecular testing can identify patients eligible for targeted anti-MET therapies in clinical trials.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Anaplastic thyroid carcinoma (ATC) is an aggressive cancer with limited treatment options.
- Targeted therapies for specific genetic alterations (BRAFV600E, NTRK, ALK, RET) are approved for ATC.
- MET alterations are found in other cancers and have approved therapies, but are poorly understood in ATC.
Purpose of the Study:
- To investigate the frequency and therapeutic relevance of MET alterations in ATC.
- To provide a comprehensive overview of MET gene amplification, fusion, and protein expression in ATC.
- To correlate molecular findings with clinical data and tumor morphology.
Main Methods:
- Analysis of 28 ATC samples using MET immunohistochemistry (IHC), fluorescence in situ hybridization (FISH), and RNA/DNA next-generation sequencing.
- Correlation of molecular findings with tumor morphology and clinical follow-up.
- Evaluation of MET gene amplification (≥10.0 average gene count) and ETV6-MET fusion.
Main Results:
- MET alterations were identified in 10% (3/28) of ATC samples, including top-level gene amplification and ETV6-MET fusion.
- MET protein overexpression was confirmed by IHC in samples with MET alterations.
- MET alterations were mutually exclusive with BRAF, RAS, and PIK3CA mutations but co-occurred with TP53 and TERT promoter mutations.
Conclusions:
- MET top-level amplifications and MET gene fusions occur in a subset of ATCs.
- These MET alterations are potentially targetable with existing anti-MET therapies.
- RNA-based sequencing and FISH are recommended biomarker assays for identifying MET alterations in ATC for clinical trial eligibility.
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