Back

Substrate and target selectivity of 4'-fluoroadenosine against viral and host polymerases

Walker, S. M.; Loutan, A. J.; Tchesnokov, E. P.; Kocincova, D.; Gordon, C. J.; Escobedo, R. A.; Jackson, N.; Vogel, O. A.; Morsheimer, K.; Park, S.; Gharpure, A.; Urbano, I.; Heacock, M.; Cheng, Z.; Pathak, K.; Wolff, K. C.; Huerta, L.; Bakowski, M. A.; Riva, L.; Gupta, A. K.; Yu, C.; Das, K.; Martinez-Sobrido, L.; Basler, C. F.; Davey, R. A.; Wilson, I. A.; Ward, A. B.; Chanda, S.; Chatterjee, A. K.; Gotte, M.

2026-05-26 microbiology
10.64898/2026.05.22.727251 bioRxiv
Show abstract

Developing safe and effective treatments against emerging RNA viruses is an important goal in pandemic preparedness efforts. 4'-fluorouridine (4'-FlU) is a broad-spectrum antiviral that was shown to inhibit viral RNA-dependent RNA polymerases (RdRps). Given its notable range of antiviral activity, this class of nucleoside analogs warrants further investigation. Here, we studied the antiviral activity and underlying mechanism of inhibition of 4'-fluoroadenosine (4'-FlA). Like 4'-FlU, 4'-FlA demonstrates a broad-spectrum of antiviral activity against eight prototypic viruses representing diverse families. Enzyme kinetics show that the triphosphate (4'-FlA-TP) is efficiently incorporated by viral RdRps. A cryo-EM structure of RdRp of severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) in complex with double-stranded RNA and the incorporated monophosphate (4'-FlA-MP) characterizes interactions at the active site. The incorporated analog elicits heterogeneous inhibition patterns in primer extension reactions. In contrast, templates with embedded 4'-FlA-MP inhibit incorporation of complementary UTP across the viral RdRps. However, incorporation of 4'-FIA-TP is not limited to viral polymerases and likewise includes human mitochondrial RNA polymerase. These results demonstrate the general potential for 4'-fluorinated nucleotides as antiviral drugs and guide the development of more selective derivatives for medical use in appropriate settings.

Matching journals

The top 10 journals account for 50% of the predicted probability mass.

1
Nature Communications
5641 papers in training set
Top 17%
10.8%
2
Cell Chemical Biology
94 papers in training set
Top 0.1%
7.7%
3
Nucleic Acids Research
1281 papers in training set
Top 3%
6.6%
4
ACS Infectious Diseases
82 papers in training set
Top 0.2%
6.1%
5
Antiviral Research
50 papers in training set
Top 0.2%
4.0%
6
ACS Chemical Biology
167 papers in training set
Top 0.7%
4.0%
7
Proceedings of the National Academy of Sciences
2444 papers in training set
Top 18%
3.2%
8
Journal of General Virology
53 papers in training set
Top 0.2%
3.1%
9
Science Advances
1243 papers in training set
Top 13%
2.7%
10
PLOS Pathogens
820 papers in training set
Top 5%
2.7%
50% of probability mass above
11
Journal of Virology
499 papers in training set
Top 2%
2.6%
12
Journal of Biological Chemistry
690 papers in training set
Top 4%
2.6%
13
Cell Reports
1498 papers in training set
Top 15%
2.4%
14
PLOS ONE
5266 papers in training set
Top 44%
2.3%
15
Journal of the American Chemical Society
217 papers in training set
Top 1%
2.1%
16
RSC Chemical Biology
39 papers in training set
Top 0.2%
2.1%
17
mBio
833 papers in training set
Top 7%
2.1%
18
eLife
5828 papers in training set
Top 47%
1.9%
19
Scientific Reports
3612 papers in training set
Top 56%
1.7%
20
ACS Omega
105 papers in training set
Top 2%
1.5%
21
ACS Central Science
71 papers in training set
Top 0.8%
1.5%
22
Biochemistry
148 papers in training set
Top 2%
1.4%
23
Journal of Medicinal Chemistry
77 papers in training set
Top 0.7%
1.1%
24
Communications Biology
993 papers in training set
Top 26%
1.0%
25
Angewandte Chemie International Edition
93 papers in training set
Top 2%
1.0%
26
JACS Au
43 papers in training set
Top 0.8%
1.0%
27
NAR Molecular Medicine
22 papers in training set
Top 0.3%
1.0%
28
Chemical Communications
25 papers in training set
Top 0.6%
0.8%
29
Nature
645 papers in training set
Top 11%
0.8%
30
RNA
189 papers in training set
Top 2%
0.6%