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Updated: Feb 12, 2026

Spontaneous Murine Model of Anaplastic Thyroid Cancer
Published on: February 3, 2023
Whole-Exome Sequencing Identifies Two Discrete Druggable Signaling Pathways in Follicular Thyroid Cancer
Neeta J Erinjeri1, Norman G Nicolson1, Christine Deyholos1
1Department of Surgery, Yale Endocrine Neoplasia Laboratory, Yale University School of Medicine, New Haven, CT.
Background:
Thyroid cancer is the most common endocrine malignancy, with continuously increasing incidence. Follicular thyroid cancer (FTC) accounts for approximately 10% to 15% of these cases and is known to be associated with several gene mutations. The purpose of this study was to identify novel therapeutic targets in FTC using whole-exome sequencing (WES) and bioinformatics analysis.
Study Design:
Whole-exome sequencing was performed on 6 established FTC cell lines. Stringent false-proof filtering and exclusion of synonymous and known polymorphisms yielded novel missense, nonsense, and splice-site single nucleotide variants (SNV). Gene variants were analyzed for structural, functional, and evolutionary properties using GO (Gene Ontology), Pfam (Protein Families), and KEGG (Kyoto Encyclopedia of Genes and Genomes) searches by STRING (Search Tool for the Retrieval of Interacting Genes/Proteins) and GORILLA (Gene Ontology enRIchment anaLysis and visuaLizAtion tool) analyses. A false discovery rate of <0.5 was used to denote significantly enriched signaling pathways.
Results:
An average of 657 (range 366 to 1,158) SNVs including 31 (range 12 to 53) known cancer driver genes were identified in FTC cell line exomes. The SNV burden, distribution, frequency, and signature followed the known thyroid mutation profiles, without chromosomal bias. Recurrently mutated cancer driver genes included FRG1 (6/6), CDC27, NCOR1, PRSS1 (5/6), AHCTF1, MUC20, PABPC1, and PABPC3 (4/6). Pathway analysis using bioinformatics tools STRING and GORILLA segregated FTC cell lines into 2 druggable signaling groups showing dominant RAS/ERK1-2/AKT and CDK1/CyclinB signaling pathway targets.
Conclusions:
Next-generation sequencing tools can be used to identify druggable signaling targets for precision treatment of FTCs.
Insights
Whole-exome sequencing identified novel gene mutations in follicular thyroid cancer (FTC). This research highlights druggable signaling pathways for precision medicine in FTC treatment.
Area of Science:
- Oncology
- Genomics
- Bioinformatics
Background:
- Follicular thyroid cancer (FTC) is the most common endocrine malignancy, with rising incidence.
- FTC accounts for 10-15% of thyroid cancers and is linked to specific gene mutations.
- Identifying novel therapeutic targets is crucial for advancing FTC treatment.
Purpose of the Study:
- To discover novel therapeutic targets in follicular thyroid cancer (FTC).
- Utilize whole-exome sequencing (WES) and bioinformatics for target identification.
- Advance precision medicine approaches for FTC.
Main Methods:
- Performed whole-exome sequencing (WES) on six established FTC cell lines.
- Applied stringent filtering to identify novel single nucleotide variants (SNVs).
- Analyzed gene variants using bioinformatics tools (GO, Pfam, KEGG, STRING, GORILLA).
Main Results:
- Identified an average of 657 SNVs per FTC cell line, including known cancer driver genes.
- Recurrently mutated driver genes included FRG1, CDC27, NCOR1, and PRSS1.
- Pathway analysis revealed two distinct druggable signaling groups: RAS/ERK1-2/AKT and CDK1/CyclinB.
Conclusions:
- Next-generation sequencing effectively identifies druggable targets in FTC.
- These findings support precision treatment strategies for follicular thyroid cancer.
- The identified pathways offer potential targets for novel therapeutic interventions.
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