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Active site polymerase inhibitor nucleotides (ASPINs): Potential agents for chronic HBV cure regimens
Robert G Gish1,2, Tarik Asselah3,4, Katherine Squires5
1206052Hepatitis B Foundation, Doylestown, PA, USA.
Insights
New active site polymerase inhibitor nucleotides (ASPINs) show promise for a chronic hepatitis B virus (HBV) cure. ATI-2173, a next-generation ASPIN, may offer improved safety and efficacy for eliminating HBV covalently closed circular DNA (cccDNA).
Area of Science:
- Hepatology and Virology
- Drug Discovery and Development
Background:
- Chronic hepatitis B virus (HBV) infection impacts millions globally, with current treatments offering limited cure rates.
- Covalently closed circular DNA (cccDNA) in hepatocytes is the persistent viral reservoir, hindering complete eradication.
- Existing nucleos(t)ide analogues control HBV replication but rarely achieve a functional cure, necessitating lifelong therapy.
Purpose of the Study:
- To review the mechanism of action, preclinical, and clinical profiles of clevudine and ATI-2173.
- To support the role of Active Site Polymerase Inhibitor Nucleotides (ASPINs) in curative regimens for chronic HBV infection.
- To evaluate ATI-2173 as a potential agent for achieving an HBV cure.
Main Methods:
- Review of existing literature on clevudine and ATI-2173.
- Analysis of preclinical data and clinical trial results for both agents.
- Comparison of ASPINs' mechanism of action with traditional nucleos(t)ide analogues.
Main Results:
- ASPINs, like clevudine and ATI-2173, noncompetitively inhibit HBV polymerase, offering a distinct mechanism from chain-terminating analogues.
- Clevudine demonstrated potent HBV suppression but was associated with reversible myopathy.
- ATI-2173, a liver-targeted next-generation ASPIN, shows potent anti-HBV activity with potentially improved safety and pharmacokinetic profiles.
Conclusions:
- Eliminating HBV cccDNA is crucial for a chronic HBV cure.
- ASPINs represent a promising class of antiviral agents for HBV cure.
- ATI-2173 is a potential curative agent for chronic HBV infection, warranting further clinical development.
Abstract:
Chronic hepatitis B virus (HBV) infection affects 240 to 300 million people worldwide. In the nucleus of infected hepatocytes, the HBV genome is converted to covalently closed circular DNA (cccDNA), which persists and serves as a transcriptional template for viral progeny. Therefore, a long-term cure for chronic HBV infection will require elimination of cccDNA. Although currently available nucleos(t)ide analogues (eg, tenofovir disoproxil fumarate, tenofovir alafenamide, entecavir) effectively control HBV replication, they are seldom curative (functional cure rate ∼10%) and require lifelong treatment for most patients. As such, antiviral agents with novel mechanisms of action are needed. Active site polymerase inhibitor nucleotides (ASPINs) noncompetitively distort the HBV polymerase active site to completely inhibit all polymerase functions, unlike traditional chain-terminating nucleos(t)ide analogues, which only target select polymerase functions and are consumed in the process. Clevudine, a first-generation ASPIN, demonstrated potent and prolonged HBV suppression in phase 2 and 3 clinical studies, but long-term treatment was associated with reversible myopathy in a small number of patients. ATI-2173, a novel next-generation ASPIN, is structurally similar to clevudine but targets the liver and demonstrates potent anti-HBV activity on and off treatment, and may ultimately demonstrate an improved pharmacokinetic and safety profile by significantly reducing systemic clevudine exposure. Thus, ATI-2173 is currently in clinical development as an agent for HBV cure. Here, we review the mechanism of action and preclinical and clinical profiles of clevudine and ATI-2173 to support the role of ASPINs as part of curative regimens for chronic HBV infection.
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