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Biology subjects

Lewis, D. S. M.

Publications and source records attributed to Lewis, D. S. M..

3 recordsLinked to original sources

Potency of nucleoside analogs against Powassan virus replication and identification of 4'-fluorouridine as a therapeutic candidate for tick-borne orthoflavivirus encephalitis

Powassan virus (POWV) is an emerging tick-borne orthoflavivirus that causes severe encephalitis, long-term neurologic sequelae, and death, yet no approved antiviral therapies exist. Here, we evaluated several previously characterized nucleoside analogs as candidate countermeasures for POWV encephalitis. Favipiravir, molnupiravir, 4'-fluorouridine (4'-FlU), and GS-441524 inhibited POWV replication in vitro and demonstrated comparable activity against West Nile virus (WNV). We established C3H/HeNCrl mice as a stringent POWV disease model, showing increased susceptibility, higher day 7 brain titers, and more pronounced neurologic signs resembling severe human disease, compared with C57BL/6 mice. In prophylactic and therapeutic studies, 4'-fluorouridine was the most efficacious compound tested, significantly reducing brain viral burden even when treatment was delayed. Direct comparison with molnupiravir, favipiravir, and GS-441524 in mice confirmed superior survival benefit and antiviral activity for 4'-FlU against both POWV and WNV. These data identify 4'-fluorouridine as a promising therapeutic candidate for neurotropic flavivirus disease.

microbiology↗

Identification and Characterization of Novel Chikungunya Virus Polymerase Inhibitors

Chikungunya virus (CHIKV) and other alphaviruses in the Togaviridae family are positive-sense RNA viruses and major human pathogens, causing millions of infections worldwide. In humans, alphaviruses such as CHIKV, Mayaro and Ross River viruses typically cause arthritogenic disease characterized by debilitating arthralgia, joint inflammation, fever, and rash. Although a vaccine was recently approved for use against CHIKV, no vaccines are licensed against other alphaviruses. No antiviral treatments are available to prevent or treat infections by any alphavirus. To address this unmet need, we used a CHIKV nanoluciferase reporter virus to develop a high-throughput screening assay for novel small-molecule inhibitors. From this campaign, we identified several unique inhibitors of CHIKV replication. Mechanistic characterization of two inhibitors revealed that both target the nsP4 RNA-dependent RNA polymerase, while susceptibility profiling pinpointed unique nsP4 mutations that specifically confer resistance. In silico docking analyses indicated potential binding poses of the inhibitors near the polymerase active site. Collectively, these results define multiple chemotypes for further development and highlight novel molecular targets within nsP4 for CHIKV inhibition. IMPORTANCEChikungunya virus is a mosquito-borne pathogen that has caused millions of human infections worldwide, producing severe fever, rash, and long-lasting joint pain that can persist for months. Related viruses such as Mayaro and Ross River viruses also cause debilitating disease, yet no antiviral drugs are available to treat any infection caused by this family of viruses. In this study, we developed a high-throughput assay that allowed us to rapidly identify compounds capable of blocking chikungunya virus replication. We discovered new hit compounds that inhibit virus growth. In addition, we determined that two of the most promising hit candidates target the viral nsP4 polymerase. By identifying these novel inhibitors and characterizing both their mechanisms of action and resistance profiles, we have established the groundwork for future efforts to develop much needed therapies against chikungunya virus and related pathogens.

molecular biology↗

Impact of Mutations Affecting 4'-Fluorouridine Susceptibility on Fitness and Treatment Outcomes for Venezuelan Equine Encephalitis Virus

Venezuelan equine encephalitis virus (VEEV) is a prototypical encephalitic alphavirus. Members of the Alphavirus genus are found across the globe, transmitted by arthropod vectors, and cause significant disease burdens in humans and animals. There are currently no FDA-approved antivirals against any member of the Alphavirus genus. While a vaccine exists against chikungunya virus (CHIKV), a member of the arthitogenic alphaviruses, FDA-approved vaccines are not available for other members of this genus, particularly the encephalitic alphaviruses such as VEEV, Eastern equine encephalitis virus (EEEV) and Western equine encephalitis virus (WEEV). 4-Fluorouridine (4-FlU, EIDD-2749) was recently identified as a broad-spectrum antiviral against multiple RNA viruses, including alphaviruses. 4-FlU can potently inhibit VEEV-TC83 replication, with submicromolar potency in cell culture. However, the emergence of antiviral resistance represents a hurdle for antiviral drug development and the implementation of effective treatment strategies. Here, we have identified novel mutations in the VEEV nsP4 RNA-dependent RNA polymerase that reduce susceptibility to 4-FlU, including P187A, Q191L, L289F, and T296I. We rebuilt each mutation in recombinant VEEV-TC83 and characterized the effects of these mutations on fitness and pathogenicity. In addition, we assessed the impact of mutations reducing sensitivity to 4-FlU in a mouse model. Although mutations against 4-FlU arise quickly in vitro, treatment can still alleviate severe disease and lethal encephalitis. Together, these data highlight the promising therapeutic potential of 4-FlU for the treatment of alphavirus encephalitis. ImportanceVEEV is one of several mosquito-spread viruses that can cause serious brain infections in people and animals. Unlike CHIKV, against which an approved vaccine exists, there are no countermeasures to prevent or treat VEEV infections or block its close relatives, EEEV and WEEV. 4-FlU inhibits many different RNA viruses, including VEEV, and is currently being developed to treat multiple viral infections. A major problem with small-molecule antivirals is the appearance of virus populations that are less susceptible to treatment. In this study, we identified mutations in VEEVs RNA-dependent RNA polymerase (nsP4) that confer reduced susceptibility to 4-FlU. We then engineered these mutations into full-length infectious clones and assessed if viruses encoding for these mutations were still pathogenic. In addition, we treated infected mice with 4-FlU and measured how well the compound inhibited virus replication and prevented severe disease, even when mice were infected with viruses harboring mutations that reduced susceptibility to 4-FlU. Although VEEV can develop moderate resistance to 4-FlU in vitro, administration of 4-FlU still reduced severe disease and prevented lethality in the animals infected with viruses that possess mutations that decrease susceptibility to 4-FlU. These results suggest that 4-FlU has strong potential as a future treatment for alphavirus infections like VEEV encephalitis.

microbiology↗