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.

Mbio
|February 25, 2023
PubMed

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.

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