Related Experiment Video
Updated: Dec 21, 2025

Vaccinia Reporter Viruses for Quantifying Viral Function at All Stages of Gene Expression
Published on: May 15, 2014
Discovery of Retro-1 Analogs Exhibiting Enhanced Anti-vaccinia Virus Activity
Lalita Priyamvada1, Philip Alabi2, Andres Leon2
1Poxvirus and Rabies Branch, Centers for Disease Control and Prevention, Atlanta, GA, United States.
Abstract:
Orthopoxviruses (OPXVs) are an increasing threat to human health due to the growing population of OPXV-naive individuals after the discontinuation of routine smallpox vaccination. Antiviral drugs that are effective as postexposure treatments against variola virus (the causative agent of smallpox) or other OPXVs are critical in the event of an OPXV outbreak or exposure. The only US Food and Drug Administration-approved drug to treat smallpox, Tecovirimat (ST-246), exerts its antiviral effect by inhibiting extracellular virus (EV) formation, thereby preventing cell-cell and long-distance spread. We and others have previously demonstrated that host Golgi-associated retrograde proteins play an important role in monkeypox virus (MPXV) and vaccinia virus (VACV) EV formation. Inhibition of the retrograde pathway by small molecules such as Retro-2 has been shown to decrease VACV infection in vitro and to a lesser extent in vivo. To identify more potent inhibitors of the retrograde pathway, we screened a large panel of compounds containing a benzodiazepine scaffold like that of Retro-1, against VACV infection. We found that a subset of these compounds displayed better anti-VACV activity, causing a reduction in EV particle formation and viral spread compared to Retro-1. PA104 emerged as the most potent analog, inhibiting 90% viral spread at 1.3 μM with a high selectivity index. In addition, PA104 strongly inhibited two distinct ST-246-resistant viruses, demonstrating its potential benefit for use in combination therapy with ST-246. These data and further characterizations of the specific protein targets and in vivo efficacy of PA104 may have important implications for the design of effective antivirals against OPXV.
Insights
New antiviral compounds targeting the retrograde pathway show potent activity against orthopoxviruses (OPXVs), including drug-resistant strains. These findings offer hope for developing effective treatments against smallpox and related viruses.
Area of Science:
- Virology
- Drug Discovery
- Infectious Diseases
Background:
- Orthopoxviruses (OPXVs) pose a growing threat due to a lack of population immunity after smallpox vaccine cessation.
- Tecovirimat (ST-246) is the only FDA-approved smallpox treatment, inhibiting extracellular virus (EV) formation.
- Host retrograde transport proteins are crucial for OPXV EV formation, presenting a potential antiviral target.
Purpose of the Study:
- To identify novel, potent inhibitors of the host retrograde pathway to combat OPXV infections.
- To evaluate the efficacy of these inhibitors against vaccinia virus (VACV) and ST-246-resistant strains.
Main Methods:
- Screened a library of benzodiazepine-based compounds for anti-VACV activity.
- Assessed inhibition of extracellular virus (EV) particle formation and viral spread.
- Tested the most potent compound, PA104, against ST-246-resistant viruses.
Main Results:
- Identified several compounds with enhanced anti-VACV activity compared to Retro-1, reducing EV formation and viral spread.
- PA104 demonstrated potent inhibition of viral spread (90% at 1.3 μM) with a high selectivity index.
- PA104 effectively inhibited two distinct ST-246-resistant viruses.
Conclusions:
- PA104 is a highly potent inhibitor of orthopoxvirus replication via retrograde pathway interference.
- PA104 shows promise as a standalone or combination therapy against ST-246-resistant OPXVs.
- Further research into PA104's targets and in vivo efficacy could lead to new antiviral strategies against OPXVs.
Related Concept Videos
Retroviruses
Retrovirus Life Cycles
Mechanisms of Retrovirus-induced Cancers

