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Biology subjects

Yamaue, H.

Publications and source records attributed to Yamaue, H..

2 recordsLinked to original sources

Comprehensive analysis of full-length transcripts reveal aberrations of splicing variants in liver cancer

Genes generate various transcripts by alternative splicing, and these transcripts can have diverse functions. However, in most transcriptome studies, short-reads sequencing technologies (next-generation sequencers) have been used and full-length transcripts have not been observed directly. Although long-reads sequencing technologies would enable us to sequence full-length transcripts, analysis of the data is a difficult task. In the present study, we developed an analysis pipeline named SPLICE to analyze full-length cDNA sequences. Using this method, we analyzed cDNA sequences from 42 pairs of hepatocellular carcinoma (HCC) and matched non-cancerous liver with Oxford Nanopore technology. Our analysis detected 46,663 transcripts from the protein-coding genes in the HCCs and the matched non-cancerous livers, of which 5,366 (11.5 %) were novel. Comparison of expression levels identified 9,933 differentially expressed transcripts (DETs) in 4,744 genes. Importantly, 746 genes with DET were not found by the gene-level analysis. We also identified novel exons derived from transposable elements (TEs). In the analysis of transcripts from hepatitis B virus (HBV), HBx-human TE fusions were found to be overexpressed in the HCCs. Furthermore, fusion gene detection showed novel recurrent fusion events. These results suggest that long-reads sequencing technologies allow us to analyze full-length transcripts, and show the importance of splicing variants in carcinogenesis.

cancer biology

Aberrant integration of Hepatitis B virus DNA promotes major restructuring of human hepatocellular carcinoma genome architecture

Most cancers are characterized by the somatic acquisition of genomic rearrangements during tumour evolution that eventually drive the oncogenesis. There are different mutational mechanisms causing structural variation, some of which are specific to particular cancer types. Here, using multiplatform sequencing technologies, we identify and characterize a remarkable mutational mechanism in human hepatocellular carcinoma caused by Hepatitis B virus, by which DNA molecules from the virus are inserted into the tumour genome causing dramatic changes in its configuration, including non-homologous chromosomal fusions and megabase-size telomeric deletions. This aberrant mutational process, present in at least 8% of all HCC tumours, is active early during liver cancer evolution and can provide the driver rearrangements that a cancer clone requires to survive and grow.

cancer biology