Modes of action of a small molecule antiviral compound targeting yellow fever virus NS4B protein

F Fuxuan Wang (Baruch S. Blumberg Institute) Z Zhao Gao B Bo Chen Z Zhengyuan Jiang (Department of Chemistry) D David M. Renner (Baruch S. Blumberg Institute) J Jiaqi Li G Gideon Tolufashe (Baruch S. Blumberg Institute) Y Yanming Du (Baruch S. Blumberg Institute) J Ju-Tao Guo (Baruch S. Blumberg Institute) J Jinhong Chang (Baruch S. Blumberg Institute)

Abstract

Yellow fever virus (YFV) replicates its RNA genome in membranous vesicles derived from the invagination of endoplasmic reticulum membranes, designated as replication organelles (ROs). Nonstructural protein 4B (NS4B) of flaviviruses play essential roles in the biogenesis of ROs and evasion of innate immune responses. We report herein that the binding of an antiviral agent, acetic acid benzodiazepine (BDAA), to YFV NS4B not only rapidly inhibits YFV RNA synthesis, but also induces the activation of cytoplasmic double-stranded RNA (dsRNA)-sensing pathways to accelerate the apoptosis of infected cells. Genetic analyses revealed that all the three cytoplasmic dsRNA-sensing pathways contribute to YFV induction of apoptosis, whereas only retinoic acid-inducible gene I-like receptors and RNase L pathways are required for BDAA acceleration of infected cell death. Our findings support the notion that BDAA binding of NS4B impairs the integrity of ROs, leading to the inhibition of viral RNA synthesis and exposure of viral RNA replication intermediates for the activation of dsRNA sensors and acceleration of infected cell apoptosis. The unprecedented modes of action support the ongoing development of a potent BDAA derivative as a therapeutic agent of yellow fever that continues threatening the lives of millions of people.

Article Details

Volume / Issue Vol. 122, Issue 20
Published May 20, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (10)

F

Fuxuan Wang

Baruch S. Blumberg Institute

Z

Zhao Gao

B

Bo Chen

Z

Zhengyuan Jiang

Department of Chemistry

D

David M. Renner

Baruch S. Blumberg Institute

J

Jiaqi Li

G

Gideon Tolufashe

Baruch S. Blumberg Institute

Y

Yanming Du

Baruch S. Blumberg Institute

J

Ju-Tao Guo

Baruch S. Blumberg Institute

J

Jinhong Chang

Baruch S. Blumberg Institute