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Updated: Aug 8, 2025

Development of a Hepatitis B Virus Reporter System to Monitor the Early Stages of the Replication Cycle
Published on: February 1, 2017
Illuminating the Live-Cell Dynamics of Hepatitis B Virus Covalently Closed Circular DNA Using the CRISPR-Tag System
Jiahui Ding1, Zhigang Yi1, Wenjing Zai1
1Key Laboratory of Medical Molecular Virology (MOE/NHC/CAMS), School of Basic Medical Sciences, Shanghai Medical College, Fudan University, Shanghai, China.
Insights
Hepatitis B virus (HBV) covalently closed circular DNA (cccDNA) dynamics were visualized in real-time using a novel CRISPR-Tag system. This system revealed HBx regulation of cccDNA accessibility and significant loss during cell division, offering new insights into HBV persistence.
Area of Science:
- Virology
- Molecular Biology
- Hepatitis B Pathobiology
Background:
- Covalently closed circular DNA (cccDNA) of hepatitis B virus (HBV) is a key obstacle to curing chronic hepatitis B (CHB).
- Existing detection methods for cccDNA lack spatiotemporal resolution, hindering understanding of its behavior.
- Robust assay systems for HBV cccDNA are needed due to its resistance to genetic modification.
Purpose of the Study:
- To establish a real-time, single-cell visualization system for HBV cccDNA dynamics.
- To investigate the spatiotemporal features and regulation of cccDNA.
- To explore the role of HBx in cccDNA accessibility and maintenance.
Main Methods:
- Development of a live-cell imaging system combining CRISPR-Tag and recombinant HBV minicircle technology.
- Real-time visualization of recombinant cccDNA (rcccDNA) at the single-cell level.
- Analysis of rcccDNA dynamics, including correlation with transcripts, cell division, and nuclear diffusion.
Main Results:
- Quantitative correlation between rcccDNA foci and active transcripts at low to medium copy numbers, lost at high copy numbers.
- HBx disruption displaced cccDNA from dCas9-accessible regions; HBx complementation restored accessibility, indicating HBx-mediated regulation.
- Significant loss and random distribution of observable HBV and duck HBV (DHBV) cccDNA during cell division, unlike KSHV episomes.
- rcccDNA episomes exhibited confined diffusion at short timescales and directional transport at longer timescales.
Conclusions:
- The developed system enables real-time study of cccDNA physiological kinetics at the single-cell level.
- HBx plays a crucial role in regulating cccDNA accessibility to imaging systems.
- Significant loss and random segregation of cccDNA during cell division contribute to HBV persistence.
- The confined and directional movement of rcccDNA suggests its association with specific nuclear domains.
Abstract:
The covalently closed circular DNA (cccDNA) of hepatitis B virus (HBV) is the major obstacle to curing chronic hepatitis B (CHB). Current cccDNA detection methods are mostly based on biochemical extraction and bulk measurements. They nevertheless generated a general sketch of its biological features. However, an understanding of the spatiotemporal features of cccDNA is still lacking. To achieve this, we established a system combining CRISPR-Tag and recombinant HBV minicircle technology to visualize cccDNA at single-cell level in real time. Using this system, we found that the observed recombinant cccDNA (rcccDNA) correlated quantitatively with its active transcripts when a low to medium number of foci (<20) are present, but this correlation was lost in cells harboring high copy numbers (≥20) of rcccDNA. The disruption of HBx expression seems to displace cccDNA from the dCas9-accessible region, while HBx complementation restored the number of observable cccDNA foci. This indicated regulation of cccDNA accessibility by HBx. Second, observable HBV and duck HBV (DHBV) cccDNA molecules are substantially lost during cell division, and the remaining ones were distributed randomly to daughter cells. In contrast, Kaposi's sarcoma-associated herpesvirus (KSHV)-derived episomes can be retained in a LANA (latency-associated nuclear antigen)-dependent manner. Last, the dynamics of rcccDNA episomes in nuclei displayed confined diffusion at short time scales, with directional transport over longer time scales. In conclusion, this system enables the study of physiological kinetics of cccDNA at the single-cell level. The differential accessibility of rcccDNA to dCas9 under various physiological conditions may be exploited to elucidate the complex transcriptional and epigenetic regulation of the HBV minichromosome. IMPORTANCE Understanding the formation and maintenance of HBV cccDNA has always been a central issue in the study of HBV pathobiology. However, little progress has been made due to the lack of robust assay systems and its resistance to genetic modification. Here, a live-cell imaging system by grafting CRISPR-Tag into the recombinant cccDNA was established to visualize its molecular behavior in real time. We found that the accessibility of rcccDNA to dCas9-based imaging is related to HBx-regulated mechanisms. We also confirmed the substantial loss of observable rcccDNA in one-round cell division and random distribution of the remaining molecules. Molecular dynamics analysis revealed the confined movement of the rcccDNA episome, suggesting its juxtaposition to chromatin domains. Overall, this novel system offers a unique platform to investigate the intranuclear dynamics of cccDNA within live cells.
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