Chlorinated bis-4-hydroxycoumarins suppress flavivirus replication by inhibiting dengue virus type 2 translation and replication

N Naphat Loeanurit T Thi-Hong-Truc Phan K Kowit Hengphasatporn (Center for Computational Sciences) T Thanchanok Chanachanvong B Borwornlak Toopradab P Phornphimon Maitarad P Prangwalai Chanchaem V Vorthon Sawaswong S Sunchai Payungporn A Ajirawadee Suwanchan A Auwal Rabiu Auwal K Kittikhun Wangkanont T Thanyada Rungrotmongkol Y Yasuteru Shigeta (Center for Computational Sciences) T Tanatorn Khotavivattana W Warinthorn Chavasiri S Siwaporn Boonyasuppayakorn

Abstract

Abstract Dengue virus (DENV) remains a major global health threat, and no clinically approved antiviral therapy is currently available. Halogenated biscoumarins have been reported as versatile antimicrobial and antiviral agents. Here, we screened eleven halogenated biscoumarin derivatives against DENV and identified compounds 3 and 4—bearing chlorine substitutions at the 3- or 4-position of the phenyl moiety—as the most potent inhibitors of DENV2, with EC 50 values of 3.62–9.72 µM and 4.62–10.88 µM, respectively, and selectivity indices (SI) up to 20.97. Both compounds also inhibited all four DENV serotypes and Zika virus (ZIKV) with comparable efficacy. Mechanistic analyses demonstrated that compounds 3 and 4 significantly suppressed viral translation and RNA replication in infectious and replicon models. Long-term passaging generated mutations in NS4B, although these substitutions did not confer resistance, was involved in self-dimerization to curvature formation of ER-derived spherules, which may reflect adaptive changes linked to host interaction. In vitro enzymatic assays further indicated that the viral NS5 methyltransferase is a potential target, with IC 50 values of 4.60 ± 0.83 µM and 3.17 ± 0.25 µM for compounds 3 and 4, respectively, and both compounds inhibited NS3 protease activity by > 89% at 50 µM. Collectively, these results identify chlorinated biscoumarins as promising antiviral scaffolds that impair flaviviral translation and replication, supporting their further optimization and in vivo evaluation.

Article Details

Volume / Issue Vol. 16, Issue 1
Published January 16, 2026
ISSN 2045-2322
Publisher Nature Portfolio

Journal Info

Scientific Reports

Nature Portfolio

ISSN: 2045-2322 Open Access Life Sciences

Authors (17)

N

Naphat Loeanurit

T

Thi-Hong-Truc Phan

K

Kowit Hengphasatporn

Center for Computational Sciences

T

Thanchanok Chanachanvong

B

Borwornlak Toopradab

P

Phornphimon Maitarad

P

Prangwalai Chanchaem

V

Vorthon Sawaswong

S

Sunchai Payungporn

A

Ajirawadee Suwanchan

A

Auwal Rabiu Auwal

K

Kittikhun Wangkanont

T

Thanyada Rungrotmongkol

Y

Yasuteru Shigeta

Center for Computational Sciences

T

Tanatorn Khotavivattana

W

Warinthorn Chavasiri

S

Siwaporn Boonyasuppayakorn