作者
Lei Qiao, Chang Li, Wei Lin, Xiaoqi He, Jia Mi, Yigang Tong, Jingyang Gao
发表日期
2024/5/4
期刊
BMC bioinformatics
卷号
25
期号
1
页码范围
177
出版商
BioMed Central
简介
Background
Hepatitis B virus (HBV) integrates into human chromosomes and can lead to genomic instability and hepatocarcinogenesis. Current tools for HBV integration site detection lack accuracy and stability.
Results
This study proposes a deep learning-based method, named ViroISDC, for detecting integration sites. ViroISDC generates corresponding grammar rules and encodes the characteristics of the language data to predict integration sites accurately. Compared with Lumpy, Pindel, Seeksv, and SurVirus, ViroISDC exhibits better overall performance and is less sensitive to sequencing depth and integration sequence length, displaying good reliability, stability, and generality. Further downstream analysis of integrated sites detected by ViroISDC reveals the integration patterns and features of HBV. It is observed that HBV integration exhibits specific chromosomal preferences and tends to integrate into …
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