Chronic hepatitis B remains one of the world’s most stubborn infectious diseases, affecting an estimated 283 million people and contributing to roughly 550,000 deaths each year through cirrhosis and hepatocellular carcinoma, the third leading cause of cancer-related mortality globally. Although an effective vaccine has existed for decades and antiviral drugs can suppress viral replication, no licensed therapy actually cures the infection. A new review published in Epigenetics Communications by researchers at the University of Groningen, led by Sara G. Fonseca, Fabian M. Cortés-Mancera, Marianne G. Rots, Federica Sarno and Marleen van der Laan, argues that the answer may lie not in cutting viral DNA but in silencing it epigenetically, using programmable molecular tools that reprogram the chromatin state of the virus without ever touching its sequence.
The central obstacle to a cure is the remarkable persistence architecture of the hepatitis B virus. After the virus enters hepatocytes through the NTCP receptor, its relaxed circular DNA genome is repaired by host factors into covalently closed circular DNA, or cccDNA, a stable episomal minichromosome that persists in the nucleus and serves as the transcriptional template for all viral RNAs and proteins. In parallel, fragments of viral DNA integrate at random sites into the host genome as integrated DNA, or intDNA, which does not produce new virus but continuously secretes surface antigen and, in some cases, the oncogenic HBx protein, fueling immune tolerance and carcinogenesis. Current interferon-alpha and nucleos(t)ide analog therapies leave both reservoirs untouched, so viral rebound is common once treatment stops, and long-term nucleos(t)ide therapy carries risks such as nephrotoxicity.
The Groningen team frames the therapeutic landscape around two epigenetic strategies. The first, broad-acting epidrugs, globally modulate histone- and DNA-modifying enzymes; nine such agents are already FDA-approved in oncology. The second, epigenetic editing, fuses effector enzymes to programmable DNA-binding domains — zinc-finger proteins, transcription activator-like effectors, or deactivated CRISPR-Cas9 — to write repressive marks at specific viral loci. Because HBV gene activity on cccDNA is governed by histone acetylation and methylation, with HBx recruiting p300 to boost H3 and H4 acetylation while SETDB1-mediated H3K9me3 and PRMT1-mediated H4R3 methylation repress transcription, the viral minichromosome is an unusually tractable epigenetic target.
Among epidrugs, sirtuin 2 inhibitors have produced the most compelling results. The SIRT2 inhibitor AGK2 reduced HBV DNA, RNA, HBsAg and HBeAg by 15 to 30 percent in vitro and in HBV-transgenic mice without hepatotoxicity, and recent work showed the drug acts by recruiting repressive histone lysine methyltransferases to cccDNA, enriching H4K20me1, H3K27me3 and H3K9me3 while reducing RNA polymerase II occupancy. A more specific allosteric inhibitor, FLS-359, blocked the conversion of rcDNA into cccDNA entirely in primary human hepatocytes when given before infection, cutting cccDNA formation by more than half — though it was ineffective after infection was established, positioning it as a preventive rather than curative agent. Meanwhile, the DNA methyltransferase inhibitor 5-azacytidine reactivated interferon-stimulated genes and sensitized otherwise unresponsive cells to interferon-alpha, but it also raised NTCP expression and HBsAg levels, highlighting the double-edged nature of globally acting agents.
That lack of locus specificity is precisely what epigenetic editing is designed to fix, and the review catalogs five preclinical editing studies organized around two approaches. Indirect editing directs a Krüppel-associated box, or KRAB, repressor domain to key HBV regulatory elements; KRAB acts as a scaffold recruiting histone deacetylases, lysine methyltransferases and heterochromatin proteins to shut down transcription. Direct editing instead guides DNA methyltransferases such as DNMT3a or the bacterial M.SssI enzyme to CpG islands overlapping viral promoters, writing de novo methylation that can be mitotically inherited. Both routes reduced HBV RNA, DNA and antigens from cccDNA and, in some contexts, from intDNA, with far better specificity than epidrugs.
The zinc-finger platform, the most rigorously studied to date, illustrates both the promise and the limits. Zhao and colleagues built a six-finger ZFP-KRAB artificial transcription factor targeting the X gene enhancer that cut HBx RNA by roughly 60 percent in Hep3B cells, a line carrying integrated viral DNA. Luo and colleagues achieved the most durable result, with HBV DNA falling to about one-third of control levels in transgenic mice by day seven and remaining significantly lower at day 28, although HBsAg was unchanged. The direct approach by Xirong and colleagues, fusing DNMT3a to a ZFP targeting the X promoter CpG island, lowered HBsAg by 58 percent in mice and 90 percent in cells, with confirmed methylation at seven CpG sites — but the effect reversed by day 20, likely through passive or TET-mediated demethylation. A single TALE-based study by Bloom and colleagues delivered the fastest repression, cutting HBsAg and HBV RNA by 80 percent in Huh7 cells within 48 hours and by 80 to 95 percent in mice within five days, though attribution to KRAB was complicated by the absence of a TALE-only control.
The dCas9 platform, which replaces costly protein engineering with inexpensive single-guide RNAs, is now moving fastest toward patients. The only peer-reviewed dCas9 data for HBV come from a doctoral thesis by Rendón, who fused M.SssI to dCas9 and targeted the conserved CpG islands adjacent to the C and S gene promoters, achieving 2 to 15 percent increases in methylation that downregulated C and S gene transcription but faded within 48 hours. Nevertheless, two clinical trials of dCas9 epigenetic editing for hepatitis B are already underway — NCT06745973 and NCT06671093 — and parallel successes silencing HIV provirus with dCas9-KRAB, plus the demonstration that combined KRAB and DNA methyltransferase editors such as CRISPRoff produce durable, heritable silencing, provide strong proof of concept. Notably, dCas9 editing avoids the genotoxicity risk that shadows nuclease-based CRISPR-Cas9 approaches, whose guide RNAs can partially match human genomic sequences and whose double-strand breaks at the many, variable intDNA loci raise off-target mutagenesis concerns.
Industry has now taken up the challenge with three programs. Tune Therapeutics’ Tune-401, a liver-targeting lipid nanoparticle carrying a guide RNA to CGI2 and mRNA encoding a dCas9 fused to a methyltransferase and an undisclosed repressor, reported 99.99 percent repression of cccDNA-derived HBV RNA in primary human hepatocytes, strong repression of RNA and HBsAg from intDNA in Hep3B cells, epigenetic marks persisting through 275 rounds of cell division over 550 days, minimal off-target effects by RNA-seq, and a favorable safety profile in non-human primates — though these results have not yet been peer reviewed. A Phase 1b trial is recruiting in Hong Kong, Moldova and New Zealand. EpiGENIC’s Epi-003, a similar LNP platform, has entered a Phase 1 trial in China, and nChroma Bio’s CRMA-1001 has shown greater than 99 percent HBsAg reduction sustained for six months in preclinical models. A related Omega Therapeutics trial using LNP-delivered ZFP editors in liver cancer further validates liver-directed epigenetic delivery.
Significant hurdles remain before any of this translates into a functional cure. HBV genomes differ by more than 8 percent at the nucleotide level across genotypes, and the error-prone reverse transcriptase plus the chaotic nature of integration create sequence variability that could blunt editing efficacy, demanding bioinformatic surveillance and possibly personalized designs. Heterochromatin spreading from KRAB editors could silence neighboring host genes at unpredictable intDNA sites, while complete silencing of all antigen sources raises the paradox that eliminating HBsAg might allow exhausted immune cells to miss residual infection, arguing for integration with immune-reactivation strategies. Model limitations compound the problem: primary human hepatocytes rarely form intDNA, Hep3B lacks infection dynamics, and the field needs 3D organoid and humanized mouse systems that capture both reservoirs. Cost and equity loom as well, since most patients live in Southeast Asia and Sub-Saharan Africa while comparable gene therapies have been priced near two million dollars. Still, the authors conclude that with optimized effector combinations, LNP-based hit-and-run delivery — already shown to sustain liver gene silencing for over a year in mice and over 90 days in non-human primates in PCSK9 studies — and clinically relevant models, precision epigenetic editing could deliver what nucleos(t)ide analogs never could: a stable, reversible, non-genotoxic functional cure for chronic hepatitis B.
Subject of Research: Epigenetic editing strategies to silence hepatitis B virus cccDNA and integrated DNA for a functional cure of chronic hepatitis B
Article Title: The promise of epigenetic editing strategies in functionally curing chronic hepatitis B virus infections
Article References: The promise of epigenetic editing strategies in functionally curing chronic hepatitis B virus infections. (n.d.). https://doi.org/10.1186/s43682-025-00041-3
Image Credits: AI Generated
DOI: 10.1186/s43682-025-00041-3
Keywords: epigenetic editing, chronic hepatitis B, hepatitis B virus, cccDNA, integrated HBV DNA, dCas9, zinc-finger proteins, TALEs, KRAB, epidrugs, lipid nanoparticles, functional cure
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Kristina Jarvis. (September 12, 2026). Epigenetic Editing Offers Safer Route to Functional Hepatitis B Cure. Scienmag. https://scienmag.com/epigenetic-editing-offers-safer-route-to-functional-hepatitis-b-cure/
Kristina Jarvis. “Epigenetic Editing Offers Safer Route to Functional Hepatitis B Cure.” Scienmag, 12 September 2026, https://scienmag.com/epigenetic-editing-offers-safer-route-to-functional-hepatitis-b-cure/. Accessed 12 September 2026.
Kristina Jarvis. “Epigenetic Editing Offers Safer Route to Functional Hepatitis B Cure.” Scienmag. September 12, 2026. https://scienmag.com/epigenetic-editing-offers-safer-route-to-functional-hepatitis-b-cure/
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Tags: cccDNAcccDNA persistence in hepatitis Bchromatin remodeling in hepatitis Bchronic hepatitis BdCas9epidrugsepigenetic editingepigenetic editing for viral suppressionepigenetics in infectious diseasefunctional cureHepatitis B epigenetic therapyhepatitis B treatment limitationshepatitis B virushepatitis B virus genome integrationinnovative approaches to hepatitis B eradicationintegrated HBV DNAKRABlipid nanoparticlesprogrammable molecular tools for HBVsafer hepatitis B cure strategiesTALEsviral chromatin state reprogrammingviral DNA silencingzinc finger proteins


