From nicotine to SARS-CoV-2 antivirals with potent in vivo efficacy and a broad anti-coronavirus spectrum

K Kaustav Khatua (Texas A&M Drug Discovery Center and Department of Chemistry) S Sandeep Atla (Texas A&M Drug Discovery Center and Department of Chemistry) D Demonta Coleman (Texas A&M Drug Discovery Center and Department of Chemistry) L Lauren R. Blankenship (Texas A&M Drug Discovery Center and Department of Chemistry) Y Yugendar R. Alugubelli (Texas A&M Drug Discovery Center and Department of Chemistry) V Veerabhadra Vulupala (Texas A&M Drug Discovery Center and Department of Chemistry) X Xuejiao Shirley Guo H Hongjie Xia B Birte K. Kalveram D David H. Walker B Brett L. Hurst S Sathish Kumar (Department of Biology, College of Arts and Sciences) C Chia-Chuan D. Cho (Texas A&M Drug Discovery Center and Department of Chemistry) S Shivangi Sharma (Texas A&M Drug Discovery Center and Department of Chemistry) K Kai Yang D Dorsa Rabie (Texas A&M Drug Discovery Center and Department of Chemistry) S Satyanarayana Nyalata (Texas A&M Drug Discovery Center and Department of Chemistry) B Benjamin W. Neuman (Department of Biology, College of Arts and Sciences) X Xuping Xie S Shiqing Xu (Texas A&M Drug Discovery Center and Department of Chemistry) W Wenshe Ray Liu (Texas A&M Drug Discovery Center and Department of Chemistry)

Abstract

Abstract Anecdotal reports about smoking that might prevent SARS-CoV-2 infection inspire the search for nicotine and its pyrolysis products as inhibitors of the SARS-CoV-2 main protease (M Pro ). This effort leads to the discovery of 3-vinylpyridine as an M Pro inhibitor. 3-Vinylpyridine resembles part of nirmatrelvir in binding to M Pro but does not involve a critical interaction with residue E166, whose mutation has led to resistance to nirmatrelvir. Integration of the two molecules, followed by a medicinal chemistry campaign, produces several molecules with better in vitro potency than nirmatrelvir. Two lead molecules, YR-C-136 and SR-B-103, display better pharmacokinetic characteristics than nirmatrelvir in virus-challenged male mice and much better antiviral efficacy in virus-challenged female mice. Both molecules maintain high potency in inhibiting the nirmatrelvir-resistant M Pro (E166V/L50F) variant. They also exhibit a broad and highly potent antiviral spectrum against most pathogenic coronaviruses. With high in vivo potency, both molecules are potentially standalone pan-antivirals for coronaviruses and may serve as countermeasures for future coronavirus outbreaks.

Article Details

Volume / Issue Vol. 17, Issue 1
Published February 14, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (21)

K

Kaustav Khatua

Texas A&M Drug Discovery Center and Department of Chemistry

S

Sandeep Atla

Texas A&M Drug Discovery Center and Department of Chemistry

D

Demonta Coleman

Texas A&M Drug Discovery Center and Department of Chemistry

L

Lauren R. Blankenship

Texas A&M Drug Discovery Center and Department of Chemistry

Y

Yugendar R. Alugubelli

Texas A&M Drug Discovery Center and Department of Chemistry

V

Veerabhadra Vulupala

Texas A&M Drug Discovery Center and Department of Chemistry

X

Xuejiao Shirley Guo

H

Hongjie Xia

B

Birte K. Kalveram

D

David H. Walker

B

Brett L. Hurst

S

Sathish Kumar

Department of Biology, College of Arts and Sciences

C

Chia-Chuan D. Cho

Texas A&M Drug Discovery Center and Department of Chemistry

S

Shivangi Sharma

Texas A&M Drug Discovery Center and Department of Chemistry

K

Kai Yang

D

Dorsa Rabie

Texas A&M Drug Discovery Center and Department of Chemistry

S

Satyanarayana Nyalata

Texas A&M Drug Discovery Center and Department of Chemistry

B

Benjamin W. Neuman

Department of Biology, College of Arts and Sciences

X

Xuping Xie

S

Shiqing Xu

Texas A&M Drug Discovery Center and Department of Chemistry

W

Wenshe Ray Liu

Texas A&M Drug Discovery Center and Department of Chemistry