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Updated: Oct 26, 2025

Comparative Lesions Analysis Through a Targeted Sequencing Approach
Published on: November 5, 2019
Genomic Analyses of Metaplastic or Sarcomatoid Carcinomas From Different Organs Revealed Frequent Mutations in KMT2D
Biqiang Zheng1,2, Zhijian Song3, Yong Chen1,2
1Department of Musculoskeletal Oncology, Fudan University Shanghai Cancer Center, Shanghai, China.
Abstract:
Background: Metaplastic or sarcomatoid carcinomas (MSCs) are rare epithelial malignancies with heterologous histological differentiation that can occur in different organs. The objective of the current study was to identify novel somatically mutated genes in MSCs from different organs. Methods: Whole-exome sequencing was performed in 16 paired MSCs originating from the breast (n = 10), esophagus (n = 3), lung (n = 2), and kidney (n = 1). In addition, we collected data on KMT2D mutations from eight independent cohorts (n = 195) diagnosed with MSCs derived from the breast (n = 83), liver (n = 8), esophagus (n = 15), lung (n = 10), and uterus or ovary (n = 79). The expression of KMT2D and its clinical significance were evaluated in our cohort. Results: The most frequently mutated genes were TP53 (13/16, 81%) and KMT2D (5/16,31%). We identified seven somatic KMT2D mutations in the exploratory cohort (n = 16 tumors), including three nonsense mutations, two frameshift indels, one missense mutation, and one splice site mutation. Interestingly, two patients showed double hits on KMT2D with nonsense mutations and frameshift indels. In the eight validation cohorts (n = 195), the average mutation rates for TP53 and KMT2D were 78% (152/195) and 13% (25/195), respectively. Two or more hits on KMT2D were also present in three validation cohorts. Furthermore, KMT2D mutations were associated with low expression of KMT2D, large tumor size and unfavorable prognosis. Conclusions: These findings provide clues for understanding the genetic basis of MSCs originating from different organs and implicate KMT2D alteration as a frequent pathogenic mutation, allowing provision of appropriate treatment for this rare malignant disease in the future.
Insights
Metaplastic or sarcomatoid carcinomas (MSCs) exhibit frequent mutations in TP53 and KMT2D. KMT2D alterations are linked to poor prognosis, suggesting therapeutic potential for this rare cancer.
Area of Science:
- Oncology
- Genetics
- Cancer Research
Background:
- Metaplastic or sarcomatoid carcinomas (MSCs) are rare malignancies characterized by heterologous epithelial differentiation across various organs.
- Understanding the genetic landscape of MSCs is crucial for developing targeted therapies.
Purpose of the Study:
- To identify novel somatically mutated genes in metaplastic or sarcomatoid carcinomas (MSCs) from diverse primary sites.
- To investigate the role of KMT2D mutations and their clinical significance in MSCs.
Main Methods:
- Whole-exome sequencing was performed on 16 paired MSCs from breast, esophagus, lung, and kidney.
- KMT2D mutation data from eight independent cohorts (n=195) of MSCs were analyzed.
- KMT2D expression and its correlation with clinical outcomes were evaluated.
Main Results:
- TP53 (81%) and KMT2D (31%) were the most frequently mutated genes in the exploratory cohort.
- KMT2D mutations were identified in 7/16 exploratory tumors and 13% of validation cohorts (n=195).
- KMT2D mutations correlated with decreased KMT2D expression, larger tumor size, and unfavorable prognosis.
Conclusions:
- KMT2D alterations represent frequent pathogenic mutations in metaplastic or sarcomatoid carcinomas (MSCs).
- These findings enhance the understanding of the genetic basis of MSCs.
- Targeting KMT2D alterations may offer future therapeutic strategies for this rare malignancy.
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