Transient and tunable CRISPRa regulation of APOBEC/AID genes for targeting hepatitis B virus

Dmitry Kostyushev1,2, Sergey Brezgin1,2, Anastasiya Kostyusheva1

  • 1Martsinovsky Institute of Medical Parasitology, Tropical and Vector-Borne Diseases, Sechenov University, 119991 Moscow, Russia.

Insights

Researchers developed a CRISPR-activation strategy to control APOBEC/AID expression, effectively suppressing hepatitis B virus (HBV) replication and destroying viral cccDNA. This method offers tunable control for potential antiviral therapies with reduced cellular toxicity.

Area of Science:

  • Virology
  • Gene Regulation
  • Innate Immunity

Background:

  • APOBEC/AID cytidine deaminases are crucial for innate immunity and antiviral defense.
  • These enzymes suppress hepatitis B virus (HBV) replication by targeting viral cccDNA.
  • Activating and controlling APOBEC/AID expression for therapeutic use remains challenging.

Purpose of the Study:

  • To develop a controllable system for APOBEC/AID expression.
  • To investigate the effects of controlled APOBEC/AID activation on HBV replication and cellular toxicity.
  • To establish a tunable strategy for HBV suppression.

Main Methods:

  • CRISPR-activation (CRISPRa) was employed to induce transient overexpression of APOBEC/AID.
  • CRISPRa was coupled with attenuated sgRNA technology for precise control.
  • HBV replication, cccDNA levels, mutagenesis, and cellular toxicity were monitored.

Main Results:

  • CRISPRa significantly reduced HBV replication (90%-99%) and destroyed cccDNA.
  • Transient APOBEC/AID overexpression led to mutagenesis in cancer-related genes.
  • Attenuated sgRNA technology enabled precise control, eliminating off-site mutagenesis while maintaining antiviral activity.

Conclusions:

  • CRISPRa provides a tunable method for controlling APOBEC/AID expression and suppressing HBV replication.
  • Precise control minimizes off-target mutagenesis, offering a safer therapeutic strategy.
  • This approach offers insights into HBV cccDNA dynamics and APOBEC/AID mechanisms.

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