Creation of a Six-fingered Artificial Transcription Factor That Represses the Hepatitis B Virus HBx Gene Integrated into a Human Hepatocellular Carcinoma Cell Line

Author:

Zhao Xinghui1,Zhao Zhanzhong2,Guo Junwei1,Huang Peitang1,Zhu Xudong1,Zhou Xiaowei1,Yang Zhixin1,Zhao Lixia1,Xu Long1,Xu Junjie1,Fu Ling1,Zhang Jun1,Zhang Xiaopeng1,Dong Yunzhu1,Huang Gang34,Wang Qianfei5,Li Bo5,Song Xiaohong1,Yang Xiuxu1,Liu Shuling1,Yi Shaoqiong1,Yu Ting1,Yu Changming1,Hou Lihua1,Li Jianmin1,Chen Wei1

Affiliation:

1. Beijing Institute of Biotechnology, Beijing, People’s Republic of China

2. Beijing Institute of Animal Husbandry and Veterinary Medicine, Beijing, People’s Republic of China

3. Division of Pathology, Cincinnati Children’s Hospital Medical Center, Cincinnati, OH, USA

4. Division of Experimental Hematology and Cancer Biology, Cincinnati Children’s Hospital Medical Center, Cincinnati, OH, USA

5. Laboratory of Disease Genomics and Individualized Medicine, Beijing Institute of Genomics, Chinese Academy of Sciences, Beijing, People’s Republic of China

Abstract

Chronic hepatitis B virus (HBV) infection is an independent risk factor for the development of hepatocellular carcinoma (HCC). The HBV HBx gene is frequently identified as an integrant in the chromosomal DNA of patients with HCC. HBx encodes the X protein (HBx), a putative viral oncoprotein that affects transcriptional regulation of several cellular genes. Therefore, HBx may be an ideal target to impede the progression of HBV infection–related HCC. In this study, integrated HBx was transcriptionally downregulated using an artificial transcription factor (ATF). Two three-fingered Cys2-His2 zinc finger (ZF) motifs that specifically recognized two 9-bp DNA sequences regulating HBx expression were identified from a phage-display library. The ZF domains were linked into a six-fingered protein that specified an 18-bp DNA target in the Enhancer I region upstream of HBx. This DNA-binding domain was fused with a Krüppel-associated box (KRAB) transcriptional repression domain to produce an ATF designed to downregulate HBx integrated into the Hep3B HCC cell line. The ATF significantly repressed HBx in a luciferase reporter assay. Stably expressing the ATF in Hep3B cells resulted in significant growth arrest, whereas stably expressing the ATF in an HCC cell line lacking integrated HBx (HepG2) had virtually no effect. The targeted downregulation of integrated HBx is a promising novel approach to inhibiting the progression of HBV infection–related HCC.

Publisher

Elsevier BV

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