Related Experiment Video
Updated: Sep 16, 2026

Quantitative Structure-Activity Relationship, Activity Prediction, and Molecular Dynamics of Non-nucleotide Reverse Transcriptase Inhibitors
Published on: May 9, 2025
1,2-Benzothiazine Derivatives as Anti-HIV and Anti-HCV Agents: Structure-Activity Relationships and Research
Izabela Topolska1, Berenika M Szczęśniak-Sięga2
1Student Science Club of Medicinal Chemistry, Department of Medicinal Chemistry, Faculty of Pharmacy, Wroclaw Medical University, Borowska 211, 50-556 Wrocław, Poland.
Abstract:
1,2-Benzothiazine derivatives have attracted attention as structurally versatile scaffolds for antiviral drug discovery. Their sulfur-containing heterocyclic core supports diverse substitution patterns, allowing modulation of physicochemical properties and biological activity through medicinal chemistry optimization. This review summarizes published studies on 1,2-benzothiazine-based derivatives as potential inhibitors of human immunodeficiency virus (HIV) and hepatitis C virus (HCV), with particular emphasis on structure-activity relationships (SAR). Comprehensive SAR analyses indicate that substitutions at the N-1 and C-3 positions play a pivotal role in modulating antiviral potency and selectivity. Among the reported compounds, the most selective anti-HIV agent was a pyrazole-substituted 1,2-benzothiazine (9h) bearing a 2-amino-4-methylthiazolehydrazidoacetyl moiety, which exhibited an EC50 value of 3.8 μM against HIV-1 in primary human peripheral blood mononuclear cells. For HCV, the most promising derivative was a pyrazolebenzothiazine (5b) containing a 4-chloro substituent in the N-1 phenyl ring and a p-methanesulfonamidophenyl group at the C-3 position, demonstrating an IC50 value of 7.9 μM in the NS5B polymerase assay. Despite showing antiviral activity against both HIV and HCV, all tested compounds, including the most active derivatives, were considerably less potent than the corresponding reference drugs. Further optimization is therefore needed to improve their antiviral potency.
Related Concept Videos
Structure-Activity Relationships and Drug Design
SAR studies the intricate relationship between a drug's chemical structure and biological activity. It focuses on understanding how modifications to a drug's structure can influence its...
Antibody Structure
Antibodies, also known as immunoglobulins (Ig), are essential players of the adaptive immune system. These antigen-binding proteins are produced by B cells and make up 20 percent of the total blood plasma by weight. In mammals, antibodies fall into five different classes, which each elicits a different biological response upon antigen binding.
The Y-Shaped Structure of Antibodies Consists of Four Polypeptide Chains
Antibodies consist of four polypeptide chains: two identical heavy...
Antiviral Nucleoside Inhibitors
Inhibitors of Virion Maturation and Assembly
Antibody Structure and Classes
The basic structure of an antibody consists of four protein chains: two identical heavy chains and two identical light chains. These chains are held together by disulfide bonds and other non-covalent interactions, forming a Y-shaped structure.
Inhibitors of Viral Protein Synthesis
