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Updated: May 24, 2025

Comparative Lesions Analysis Through a Targeted Sequencing Approach
Published on: November 5, 2019
Multi-omics clustering analysis carries out the molecular-specific subtypes of thyroid carcinoma: implicating for the
Zhenglin Wang1, Qijun Han2, Xianyu Hu1
1Department of General Surgery, The First Affiliated Hospital of Anhui Medical University Hefei, Hefei, 230022, Anhui, PR China.
Abstract:
Thyroid cancer (TC) is the most prevalent endocrine malignancy worldwide. This study aimed to explore the molecular subtypes and improve the selection of targeted therapies. We used multi-omics data from 539 patients with DNA methylation, gene mutations, mRNA, lncRNA, and miRNA expressions. This study employed consensus clustering algorithms to identify molecular subtypes and used various bioinformatics tools to analyze genetic alterations, signaling pathways, immune infiltration, and responses to chemotherapy and immunotherapy. Two prognostically relevant TC subtypes, CS1 and CS2, were identified. CS2 was associated with a poorer prognosis of shorter progression-free survival times (P < 0.001). CS1 exhibited higher copy number alterations but a lower tumor mutation burden than CS2. CS2 exhibited activation in cell proliferation and immune-related pathways. Drug sensitivity analysis indicated CS2's higher sensitivity to cisplatin, doxorubicin, paclitaxel, and sunitinib, whereas CS1 was more sensitive to bicalutamide and FH535. The different activated pathways and sensitivity to drugs for the subtypes were further validated in an external cohort. Twenty-four paired tumors and adjacent normal tissues by immunohistochemical staining further demonstrated the prognostic value of CXCL17. In conclusion, we identified two distinct molecular subtypes of TC with significant implications for prognosis, genetic alterations, pathway activation, and treatment response.
Insights
This study identified two distinct thyroid cancer (TC) molecular subtypes, CS1 and CS2. CS2 showed poorer prognosis and sensitivity to specific therapies, aiding targeted treatment selection.
Area of Science:
- Endocrinology
- Oncology
- Genomics
Background:
- Thyroid cancer (TC) is the most common endocrine malignancy globally.
- Optimizing targeted therapy selection requires a deeper understanding of TC molecular heterogeneity.
Purpose of the Study:
- To identify distinct molecular subtypes of thyroid cancer.
- To correlate these subtypes with prognosis, genetic alterations, and drug sensitivity.
- To improve targeted therapy selection for thyroid cancer patients.
Main Methods:
- Utilized multi-omics data (DNA methylation, gene mutations, mRNA, lncRNA, miRNA) from 539 thyroid cancer patients.
- Employed consensus clustering to define molecular subtypes.
- Analyzed genetic alterations, signaling pathways, immune infiltration, and drug responses using bioinformatics tools.
Main Results:
- Identified two prognostically significant subtypes: CS1 and CS2.
- CS2 demonstrated shorter progression-free survival (P < 0.001), higher cell proliferation, and immune pathway activation.
- CS2 showed increased sensitivity to cisplatin, doxorubicin, paclitaxel, and sunitinib; CS1 was more sensitive to bicalutamide and FH535.
- CXCL17 expression validated prognostic value.
Conclusions:
- Two distinct molecular subtypes of thyroid cancer (CS1 and CS2) were identified.
- These subtypes differ significantly in prognosis, genetic landscape, pathway activation, and therapeutic response.
- Findings support personalized treatment strategies based on molecular subtype.
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