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Published on: February 27, 2026
Antiviral effects of antisense morpholino oligomers in murine coronavirus infection models
Renaud Burrer1, Benjamin W Neuman, Joey P C Ting
1The Scripps Research Institute, Department of Molecular and Integrative Neurosciences, Mail Drop SP30-2020, 10550 N. Torrey Pines Rd., La Jolla, CA 92037, USA.
Abstract:
The recent emergence of novel pathogenic human and animal coronaviruses has highlighted the need for antiviral therapies that are effective against a spectrum of these viruses. We have used several strains of murine hepatitis virus (MHV) in cell culture and in vivo in mouse models to investigate the antiviral characteristics of peptide-conjugated antisense phosphorodiamidate morpholino oligomers (P-PMOs). Ten P-PMOs directed against various target sites in the viral genome were tested in cell culture, and one of these (5TERM), which was complementary to the 5' terminus of the genomic RNA, was effective against six strains of MHV. Further studies were carried out with various arginine-rich peptides conjugated to the 5TERM PMO sequence in order to evaluate efficacy and toxicity and thereby select candidates for in vivo testing. In uninfected mice, prolonged P-PMO treatment did not result in weight loss or detectable histopathologic changes. 5TERM P-PMO treatment reduced viral titers in target organs and protected mice against virus-induced tissue damage. Prophylactic 5TERM P-PMO treatment decreased the amount of weight loss associated with infection under most experimental conditions. Treatment also prolonged survival in two lethal challenge models. In some cases of high-dose viral inoculation followed by delayed treatment, 5TERM P-PMO treatment was not protective and increased morbidity in the treated group, suggesting that P-PMO may cause toxic effects in diseased mice that were not apparent in the uninfected animals. However, the strong antiviral effect observed suggests that with further development, P-PMO may provide an effective therapeutic approach against a broad range of coronavirus infections.
Insights
Antisense phosphorodiamidate morpholino oligomers (P-PMOs) show broad-spectrum antiviral activity against murine hepatitis virus (MHV). This P-PMO therapy protected mice from infection and tissue damage, suggesting potential for treating coronavirus infections.
Area of Science:
- Virology
- Antimicrobial Therapy
- Molecular Biology
Background:
- Emerging coronaviruses necessitate broad-spectrum antiviral treatments.
- Murine hepatitis virus (MHV) serves as a model for studying coronavirus infections.
Purpose of the Study:
- To investigate the antiviral efficacy of peptide-conjugated antisense phosphorodiamidate morpholino oligomers (P-PMOs) against MHV.
- To identify potential therapeutic candidates for coronavirus infections.
Main Methods:
- Screened ten P-PMOs targeting different sites of the MHV genome in cell culture.
- Evaluated the efficacy and toxicity of a lead P-PMO (5TERM) conjugated with arginine-rich peptides in mouse models.
- Assessed viral titers, tissue damage, weight loss, and survival rates.
Main Results:
- One P-PMO (5TERM) demonstrated efficacy against six MHV strains in cell culture.
- In vivo, 5TERM P-PMO treatment reduced viral loads, protected against tissue damage, and prolonged survival.
- Prophylactic treatment reduced infection-induced weight loss, but delayed treatment in high-dose infections showed potential toxicity.
Conclusions:
- Peptide-conjugated antisense phosphorodiamidate morpholino oligomers (P-PMOs) exhibit significant broad-spectrum antiviral activity against murine hepatitis virus (MHV).
- Further development of P-PMOs could lead to effective therapies for a range of coronavirus infections.
- Potential toxicity in diseased animals requires further investigation for clinical application.
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