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Integrating multi-omics and machine learning to unravel mechanisms of lymph node metastasis in papillary carcinoma with and without thyroiditis - PubMed

5 days ago
  • #papillary thyroid carcinoma
  • #lymph node metastasis
  • #machine learning
  • Study focuses on lymph node metastasis (LNM) mechanisms in papillary thyroid carcinoma (PTC) with and without thyroiditis.
  • PTC cases categorized as PTC-thyroiditis and PTC-blank, each showing distinct clinical and genomic profiles.
  • PTC-blank exhibits higher tumor stages and mutations in BRAF and MUC16 compared to PTC-thyroiditis.
  • LNM in PTC-blank linked to ECM remodeling and collagen fiber accumulation, involving PI16+ fibroblast subclusters.
  • LNM in PTC-thyroiditis involves immune-related pathways without significant fibroblast infiltration or ECM changes.
  • A 17-gene predictive model for LNM developed, with KNN classifier showing high accuracy.
  • Mendelian randomization identifies SHISA5 as a causal risk gene for thyroid cancer.
  • Molecular docking reveals strong binding affinity between SHISA5 and acetaminophen, suggesting therapeutic potential.
  • Findings highlight distinct LNM mechanisms and offer insights into subtype-specific management strategies for PTC patients.