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Development of a Hepatitis B Virus Reporter System to Monitor the Early Stages of the Replication Cycle
Published on: February 1, 2017
Current Status and Challenges in Anti-Hepatitis B Virus Agents Based on Inactivation/Inhibition or Elimination of
An-Qi Zhuang1, Yan Chen1, Shan-Mei Chen1
1Zhejiang Provincial Key Laboratory of Biometrology and Inspection & Quarantine, Department of Pharmacy, College of Life Sciences, China Jiliang University, Hangzhou 310018, China.
Insights
Chronic hepatitis B (CHB) affects 300 million globally. Current treatments cannot eliminate the viral cccDNA reservoir, necessitating new strategies targeting cccDNA for a complete cure.
Area of Science:
- Hepatology
- Virology
- Drug Discovery
Background:
- Chronic hepatitis B (CHB) affects approximately 300 million people worldwide, causing about one million deaths annually.
- Existing antiviral therapies for CHB primarily reduce viral replication but fail to eliminate the persistent HBV cccDNA reservoir.
- HBV cccDNA is a major barrier to achieving a complete cure for hepatitis B infection.
Purpose of the Study:
- To review recent advances and challenges in developing anti-HBV agents targeting the viral cccDNA.
- To explore strategies for inactivating, silencing, or eliminating HBV cccDNA for a functional or complete cure.
- To discuss future directions for achieving a true cure for chronic HBV infection.
Main Methods:
- Review of scientific literature on anti-HBV agents targeting HBV cccDNA.
- Analysis of small molecules (including epigenetic drugs), polypeptides/proteins, siRNA, and gene-editing approaches.
- Evaluation of mechanisms for targeting and attenuating HBV cccDNA.
Main Results:
- No definitive breakthrough in attenuating HBV cccDNA has been achieved, though several candidates are in clinical trials.
- Most current candidates indirectly target HBV cccDNA; few directly target it.
- Small molecules like CCC_R08 and nitazoxanide show promise, while CRISPR-Cas9 directly targets HBV cccDNA for decay.
Conclusions:
- Gene-editing approaches targeting HBV cccDNA represent a promising strategy for a complete cure of HBV infection.
- Further basic research is crucial to overcome existing challenges in HBV cccDNA eradication.
- Directly targeting HBV cccDNA remains a key goal for future anti-HBV therapeutic strategies.
Abstract:
There has been over half a century since the discovery of hepatitis B virus (HBV) to now, but approximately 300 million patients with chronic hepatitis B (CHB) still live in the world, resulting in about one million deaths every year. Although currently approved antivirals (e.g., nucleoside analogues) are effective at reducing HBV replication, they have almost no impact on the existing HBV covalently closed circular DNA (cccDNA) reservoir. HBV cccDNA is a critical obstacle to the complete elimination of the virus via antiviral therapy. The true cure of HBV infection requires the eradication of viral cccDNA from HBV-infected cells; thus, the development of new agents directly or indirectly targeting HBV cccDNA is urgently needed due to the limitations of current available drugs against HBV infection. In this regard, it is the major focus of current anti-HBV research worldwide via different mechanisms to either inactivate/inhibit (functional cure) or eliminate (complete cure) HBV cccDNA. Therefore, this review discussed and summarized recent advances and challenges in efforts to inactivate/silence or eliminate viral cccDNA using anti-HBV agents from different sources, such as small molecules (including epigenetic drugs) and polypeptides/proteins, and siRNA or gene-editing approaches targeting/attenuating HBV cccDNA via different mechanisms, as well as future directions that may be considered in efforts to truly cure chronic HBV infection. In conclusion, no breakthrough has been made yet in attenuating HBV cccDNA, although a number of candidates have advanced into the phase of clinical trials. Furthermore, the overwhelming majority of the candidates function to indirectly target HBV cccDNA. No outstanding candidate directly targets HBV cccDNA. Relatively speaking, CCC_R08 and nitazoxanide may be some of the most promising agents to clear HBV infection in small molecule compounds. Additionally, CRISPR-Cas9 systems can directly target HBV cccDNA for decay and demonstrate significant anti-HBV activity. Consequently, gene-editing approaches targeting HBV cccDNA may be one of the most promising means to achieve the core goal of anti-HBV therapeutic strategies. In short, more basic studies on HBV infection need to be carried out to overcome these challenges.
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