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Updated: May 4, 2026

Detection of Copy Number Alterations Using Single Cell Sequencing
Published on: February 17, 2017
Target genes discovery through copy number alteration analysis in human hepatocellular carcinoma
De-Leung Gu1, Yen-Hsieh Chen1, Jou-Ho Shih1
1De-Leung Gu, Yen-Hsieh Chen, Jou-Ho Shih, Yuh-Shan Jou, Institute of Biomedical Sciences, Academia Sinica, Taipei 11529, Taiwan.
Abstract:
High-throughput short-read sequencing of exomes and whole cancer genomes in multiple human hepatocellular carcinoma (HCC) cohorts confirmed previously identified frequently mutated somatic genes, such as TP53, CTNNB1 and AXIN1, and identified several novel genes with moderate mutation frequencies, including ARID1A, ARID2, MLL, MLL2, MLL3, MLL4, IRF2, ATM, CDKN2A, FGF19, PIK3CA, RPS6KA3, JAK1, KEAP1, NFE2L2, C16orf62, LEPR, RAC2, and IL6ST. Functional classification of these mutated genes suggested that alterations in pathways participating in chromatin remodeling, Wnt/β-catenin signaling, JAK/STAT signaling, and oxidative stress play critical roles in HCC tumorigenesis. Nevertheless, because there are few druggable genes used in HCC therapy, the identification of new therapeutic targets through integrated genomic approaches remains an important task. Because a large amount of HCC genomic data genotyped by high density single nucleotide polymorphism arrays is deposited in the public domain, copy number alteration (CNA) analyses of these arrays is a cost-effective way to reveal target genes through profiling of recurrent and overlapping amplicons, homozygous deletions and potentially unbalanced chromosomal translocations accumulated during HCC progression. Moreover, integration of CNAs with other high-throughput genomic data, such as aberrantly coding transcriptomes and non-coding gene expression in human HCC tissues and rodent HCC models, provides lines of evidence that can be used to facilitate the identification of novel HCC target genes with the potential of improving the survival of HCC patients.
Insights
Genomic analysis of hepatocellular carcinoma (HCC) identified novel mutated genes and pathways crucial for tumor development. Integrating copy number alterations with other genomic data offers a cost-effective strategy for discovering new therapeutic targets to improve patient survival.
Area of Science:
- Oncology
- Genomics
- Cancer Biology
Background:
- Hepatocellular carcinoma (HCC) is a major global health concern with limited therapeutic options.
- Previous genomic studies identified frequently mutated genes but highlighted the need for novel therapeutic targets.
Purpose of the Study:
- To identify novel mutated genes and critical pathways involved in HCC tumorigenesis.
- To explore the utility of integrated genomic approaches, including copy number alterations (CNAs), for discovering new HCC therapeutic targets.
Main Methods:
- High-throughput sequencing of exomes and whole cancer genomes from HCC cohorts.
- Analysis of copy number alterations (CNAs) from public SNP array data.
- Integration of CNAs with transcriptomic and gene expression data from HCC tissues and models.
Main Results:
- Confirmed known frequently mutated genes (e.g., TP53, CTNNB1) and identified novel genes (e.g., ARID1A, ATM, JAK1).
- Highlighted the roles of chromatin remodeling, Wnt/β-catenin, JAK/STAT signaling, and oxidative stress pathways in HCC.
- Demonstrated that CNA analysis integrated with other genomic data can reveal potential HCC target genes.
Conclusions:
- Integrated genomic analyses are crucial for identifying novel therapeutic targets in HCC.
- Copy number alteration profiling offers a cost-effective approach to discover HCC-driving genes.
- Identifying new targets holds the potential to improve survival rates for HCC patients.
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