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Keywords = vesicular stomatitis virus (VSV) infection

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19 pages, 3223 KB  
Article
A Lethal Pseudofilovirus Model in Ifnar1(-/-) Mice Using Recombinant Vesicular Stomatitis Viruses
by Anna V. Mamatkulova, Inna V. Shuliakova, Olga V. Zubkova, Dmitrii A. Reshetnikov, Anna A. Iliukhina, Ilya D. Zorkov, Daria M. Grousova, Daria M. Savina, Olga Popova, Denis I. Zrelkin, Polina P. Goldovskaya, Ekaterina G. Samokhvalova, Valentin V. Azizyan, Dmitry V. Shcheblyakov, Boris S. Naroditsky, Alexander L. Gintsburg and Denis Yu. Logunov
Viruses 2026, 18(8), 878; https://doi.org/10.3390/v18080878 - 11 Aug 2026
Viewed by 432
Abstract
Filoviruses cause highly lethal infectious diseases with hemorrhagic symptoms and extremely high fatality rate (up to 90%). Although two vaccines against Ebola virus (EBOV) are licensed for application in endemic areas, vaccines against other filoviruses (SUDV, BDBV, MARV) are still at pre-clinical or [...] Read more.
Filoviruses cause highly lethal infectious diseases with hemorrhagic symptoms and extremely high fatality rate (up to 90%). Although two vaccines against Ebola virus (EBOV) are licensed for application in endemic areas, vaccines against other filoviruses (SUDV, BDBV, MARV) are still at pre-clinical or clinical stages. The development of vaccines requires protective efficacy studies using animal models of infection. However, animal studies using wild-type filoviruses require maximum biosafety level (BSL-4), which hinders filoviral vaccine advancement. In this study, we developed a surrogate animal model of EBOV-, SUDV-, BDBV- and MARV- GP-mediated entry using Ifnar1-knockout (-/-) mice and recombinant vesicular stomatitis viruses (rVSVs), carrying a genetic sequence of filoviral glycoprotein (GP) and pseudotyped with correspondent GP. We showed that rVSV-EBOV-GP was 100% lethal for Ifnar1(-/-) mice after inoculation by multiple routes, and its active propagation was within 24 h post-infection. We performed dose-dependent lethality assessment in small groups to estimate median lethal doses for rVSV-EBOV-GP, rVSV-SUDV-GP, rVSV-BDBV-GP, rVSV-MARV-GP in Ifnar1-knockout mice and showed high viral load in liver and immune cell reservoirs. The developed models contribute to safe and effective research of filoviral vaccines and therapeutic antibodies under BSL-2 conditions. Full article
(This article belongs to the Special Issue Animal Models in Emerging/Re-Emerging Infectious Diseases)
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29 pages, 35008 KB  
Article
Assessment of the Novel rVSV-PD-1-4-1BBL Oncolytic Activity on Mouse and Human Cancer Cell Lines
by Margarita Zinovieva, Anastasia Ryapolova, Ilnaz Imatdinov, Almaz Imatdinov, Roman Ivanov, Alexander Karabelsky and Ekaterina Minskaia
Biomedicines 2026, 14(7), 1474; https://doi.org/10.3390/biomedicines14071474 - 29 Jun 2026
Viewed by 750
Abstract
Background: Oncolytic viruses (OVs), a promising anti-cancer therapeutic, replicate more efficiently in cancer cells rather than in healthy cells due to the alterations in antiviral response mechanisms and dysregulation of signaling pathways. Vesicular stomatitis virus (VSV) is known for low pathogenicity, tropism to [...] Read more.
Background: Oncolytic viruses (OVs), a promising anti-cancer therapeutic, replicate more efficiently in cancer cells rather than in healthy cells due to the alterations in antiviral response mechanisms and dysregulation of signaling pathways. Vesicular stomatitis virus (VSV) is known for low pathogenicity, tropism to various cancer cells, and the ability to lyse cells in the hypoxic tumor microenvironment (TME). Targeted delivery of immune checkpoint and co-stimulatory molecules can enhance the anti-tumor immune response and remodel the immunosuppressive TME. The aim of this study was to compare the activity of rVSV-GFP with rVSV, encoding the programmed cell death protein 1 (PD-1) and tumor necrosis factor ligand superfamily member 9 (4-1BBL). Methods: The oncolytic efficacy of these rVSV variants used at 105, 106, and 107 TCID50 was evaluated at 24 and 48 h post-infection by flow cytometry in a panel of mouse and human cancer cell lines. Quantitative real-time polymerase chain reaction (qPCR) was used to evaluate mRNA expression levels of certain genes at 12 and 48 h post-infection. Results: Murine hepatocellular carcinoma (H22) and human melanoma (A375) or human lung carcinoma (A549) were the most sensitive to rVSV therapy cell lines. The higher relative expression of the antiviral response genes RIG-I and IFIT1 within each biological species (mouse or human) correlated with lower sensitivity to rVSV. No such effect was observed for the type I interferons (IFNs), despite their proposed key role in resistance to OV therapy. Conclusions: H22, A375, and A549 are more susceptible to the oncolytic activity of the novel rVSV-PD-1-4-1BBL. Full article
(This article belongs to the Section Cancer Biology and Oncology)
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8 pages, 2642 KB  
Brief Report
Spent Medium Inhibits rVSV Infection
by Rebecca Habisch, Johannes Georg Wieland, Sophia Kessler, Peter Neubauer, Jorge Soza-Ried and Eva Puschmann
Viruses 2026, 18(5), 557; https://doi.org/10.3390/v18050557 - 13 May 2026
Viewed by 585
Abstract
The cell density effect, defined as reduced cell-specific productivity above a critical cell density, remains a major limitation in virus manufacturing processes. While medium exchange prior to infection has been reported to mitigate this effect, the role of spent medium during the early [...] Read more.
The cell density effect, defined as reduced cell-specific productivity above a critical cell density, remains a major limitation in virus manufacturing processes. While medium exchange prior to infection has been reported to mitigate this effect, the role of spent medium during the early phase of infection is poorly understood. Here, we show that spent medium conditioned by high-density HEK293 cultures inhibits infection with recombinant vesicular stomatitis virus (rVSV), even when infection is performed at low cell density. The strength of inhibition increased with the density and conditioning time of the donor culture and resulted in slower replication kinetics, thereby delaying the optimal harvest time and potentially reducing overall yield. Notably, the inhibitory effect was reversible when the virus was added to cells maintained in fresh medium, indicating that inhibition is mediated by the medium rather than intrinsic changes in the cells. We excluded pH effects within 7.1–8.0, nutrient depletion, and lactate/ammonium accumulation as primary causes. Removal of cell debris and extracellular vesicles by filtration (down to 0.02 µm) and size-based retention down to 3 kDa did not restore infection, and AUC indicated no major differences in particle distributions between fresh and conditioned media. Together, our data suggest an unidentified <3 kDa inhibitor in spent medium that partially suppresses rVSV infection and slows replication kinetics. Full article
(This article belongs to the Section General Virology)
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19 pages, 2842 KB  
Article
ATG7 Limits Basal Antiviral Gene Expression and Moderately Promotes VSV Replication in Mammalian Non-Immune Cells
by Xiaohan Tong, Ruixue Wang, Yaxin Liu, Malia B. Potts, Shondra M. Pruett-Miller, Michael A. Whitt, Weikuan Gu and Kui Li
Pathogens 2026, 15(4), 404; https://doi.org/10.3390/pathogens15040404 - 8 Apr 2026
Cited by 1 | Viewed by 980
Abstract
The autophagy regulator ATG7 helps maintain cellular homeostasis and has been suggested to modulate aspects of antiviral immune responses. In Drosophila, ATG7-dependent autophagy contributes to host resistance to vesicular stomatitis virus (VSV), a negative-strand RNA virus of family Rhabdoviridae that is widely used [...] Read more.
The autophagy regulator ATG7 helps maintain cellular homeostasis and has been suggested to modulate aspects of antiviral immune responses. In Drosophila, ATG7-dependent autophagy contributes to host resistance to vesicular stomatitis virus (VSV), a negative-strand RNA virus of family Rhabdoviridae that is widely used for studying viral biology and developing vaccines and virotherapy. However, the role of ATG7 in mammalian cells, especially non-immune cell types, remains unclear. Herein, we systematically examined the impact of ATG7 on VSV infection using CRISPR-edited cell lines derived from murine embryonic fibroblast (MEF), HeLa, and Huh7.5 cells, in relation to its effect on the expression of antiviral interferon-stimulated genes (ISGs). We found that ATG7 deficiency blocked basal as well as VSV-induced LC3B lipidation, concomitant with moderate reductions in progeny virus yields, while the reconstitution of ATG7 reversed the phenotypes. Mechanistically, ATG7 did not affect viral entry but rather was associated with moderate upregulation of VSV RNA replication. Intriguingly, ATG7 inhibited baseline ISG expression, and this correlated with its pro-VSV effect in all three cell types, while its suppression of innate immune responses elicited post-VSV infection did not. Altogether, these data provide new insights into the role of ATG7 in regulating VSV replication and innate immunity and have implications for developing VSV-based prophylaxis/therapeutics. Full article
(This article belongs to the Special Issue Feature Papers in Viral Pathogens)
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18 pages, 2491 KB  
Article
Ginsenoside Rh1 Suppresses Vesicular Stomatitis Virus Replication by Inhibiting Autophagy to Promote Immune Responses
by Hongmei Chen, Qinglu Zhao, Dingcheng Wei, Zhanying Hu, Xueliang Zhu and Rui Zhang
Microorganisms 2026, 14(4), 757; https://doi.org/10.3390/microorganisms14040757 - 27 Mar 2026
Viewed by 1174
Abstract
Vesicular stomatitis virus (VSV), a member of the Vesiculovirus genus within the Rhabdoviridae family, is a widespread pathogen affecting all hoofed livestock species, leading to reduced animal growth and productivity. To date, no effective therapeutic treatment for VSV infection has been developed. Natural [...] Read more.
Vesicular stomatitis virus (VSV), a member of the Vesiculovirus genus within the Rhabdoviridae family, is a widespread pathogen affecting all hoofed livestock species, leading to reduced animal growth and productivity. To date, no effective therapeutic treatment for VSV infection has been developed. Natural medicinal compounds with immunomodulatory properties represent a promising supportive strategy for infection control. Ginsenoside Rh1, a primary bioactive component of ginseng plants, has been reported to possess broad pharmacological and immunoregulatory activities. Nevertheless, its potential antiviral effects against VSV remain unexplored. In this study, we demonstrate that Ginsenoside Rh1 exhibits considerable antiviral activity against VSV in cellular models. Mechanistically, its antiviral effect is primarily mediated through the inhibition of VSV-induced autophagy, thereby enhancing interferon-mediated antiviral responses. Collectively, our findings identify Ginsenoside Rh1 as a novel antiviral agent active against VSV and potentially related vesiculoviruses, clarify its mechanism of action, and highlight an autophagy-dependent immunomodulatory approach that could be critical for confronting existing and emerging RNA viral infections. Full article
(This article belongs to the Special Issue Diagnosis, Treatment and Prevention of Viral Infections)
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14 pages, 2747 KB  
Article
Serological Assays to Measure Rabies Antibody Response in Equine Serum Samples
by Nisha Beniwal, Banwari Lal, Sushma Mithina, Chandan Kumar Verma, Satendra Kumar, Vikas Phagna, Kamini Jakhar, Sudipta Sonar, Vishal Gupta, Rita Singh, Niraj Kumar, Chee Wah Tan, Riyesh Thachamvally, Harisankar Singha, Kripa Murzello, Aldon Fernandes, Lin-Fa Wang, Sankar Bhattacharyya and Shailendra Mani
Viruses 2026, 18(1), 108; https://doi.org/10.3390/v18010108 - 14 Jan 2026
Viewed by 1605
Abstract
Rabies is a neglected tropical zoonotic disease caused by rabies-virus (RV) infection and is responsible for almost 60,000 annual deaths globally, largely affecting the socio-economically disadvantaged population. Although fatality is preventable by immunization either before or after exposure with therapeutic antibodies, the high [...] Read more.
Rabies is a neglected tropical zoonotic disease caused by rabies-virus (RV) infection and is responsible for almost 60,000 annual deaths globally, largely affecting the socio-economically disadvantaged population. Although fatality is preventable by immunization either before or after exposure with therapeutic antibodies, the high cost of prophylaxis or treatment limits their accessibility for the affected population. However, due to the almost 100% fatality rate in symptomatic individuals, almost 29 million annual vaccinations are performed, imposing high financial burden. Human transmission occurs principally through bites from infected dogs and although multiple mammalian species are permissive to RV, transmission from them or from symptomatic humans is rare. To overcome the limitations posed by the requirement of biosafety level-3 (BSL-3) containment for live virus culture, we established a replication-deficient vesicular stomatitis virus (VSV) pseudovirus expressing the Rabies-G (RV-G) protein and a multiplexed Luminex immunoassay for quantifying anti-rabies antibodies in equine sera. The purified pseudovirus exhibited robust luciferase activity and was able to infect multiple mammalian cell lines, although with variable efficiency. Using hyper-immunized equine serum, we observed a strong correlation (ρ > 0.9, p < 0.001) between binding antibody titers measured by the Luminex assay with neutralizing antibody titers determined using the pseudovirus-based neutralization assay. These assays provide a safe, quantitative, and BSL-2-compatible platform for rabies serological evaluation and vaccine testing. Full article
(This article belongs to the Special Issue Rabies Virus: Treatment and Prevention—2nd Edition)
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15 pages, 1145 KB  
Article
Constitutive NF-kB Activation Is Amplified by VSV in Aggressive PC3 Prostate Cancer Cells That Resist Viral Oncolysis
by Alaa A. Abdelmageed, Jack F. Smerczynski, Mukul Kandwal, Lute J. Douglas, Tori L. Russell, Matthew C. Morris, Stephen Dewhurst and Maureen C. Ferran
Viruses 2026, 18(1), 67; https://doi.org/10.3390/v18010067 - 1 Jan 2026
Viewed by 1767
Abstract
Cancer cells often have defects in antiviral pathways, making them susceptible to oncolytic viruses like vesicular stomatitis virus (VSV). However, some cancer cells resist viral infection through the constitutive expression of interferon-stimulated genes. This study examined whether NF-κB activation and NF-κB-dependent antiviral signaling [...] Read more.
Cancer cells often have defects in antiviral pathways, making them susceptible to oncolytic viruses like vesicular stomatitis virus (VSV). However, some cancer cells resist viral infection through the constitutive expression of interferon-stimulated genes. This study examined whether NF-κB activation and NF-κB-dependent antiviral signaling contribute to resistance to VSV infection in the PC3 cell line, derived from an aggressive metastatic prostate cancer (PrCa) tumor. We found that NF-κB localized to the nucleus in VSV-infected PC3 cells, but not in the VSV-susceptible LNCaP PrCa cell line. Analysis of the upstream NF-κB inhibitor IκB-α revealed higher levels of both total and phosphorylated IκB-α in PC3 cells compared to LNCaP cells, indicating constitutive activation of the NF-κB pathway via an IκB-α-dependent mechanism. Notably, VSV infection did not alter IκB-α phosphorylation in PC3 cells, suggesting that VSV may amplify NF-κB signaling through an IκB-α–independent pathway. Furthermore, PC3 cells displayed elevated levels of the NF-κB p65 protein subunit compared to LNCaP cells, with its phosphorylated form significantly increased upon VSV infection. These results from phosphorylation assays confirm that multiple steps in the NF-κB pathway are differentially activated in PC3 and LNCaP cells. Finally, the expression of several NF-κB-dependent cytokines and proinflammatory genes, including IL12 and IL6, was upregulated following VSV infection in PC3 cells, as compared to LNCaP cells. Collectively, these findings suggest that enhanced NF-κB signaling may underlie the resistance of PC3 cells to VSV oncolysis, potentially offering new insights into therapeutic strategies targeting NF-κB in resistant prostate cancers. Full article
(This article belongs to the Section Human Virology and Viral Diseases)
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21 pages, 7298 KB  
Article
Switchable Retargeting of Lentiviral Vectors Through a VSV-G-Binding Adapter Molecule
by Vladislav A. Zhuchkov, Marat P. Valikhov, Yulia E. Kravchenko, Elena I. Frolova and Stepan P. Chumakov
Viruses 2025, 17(12), 1563; https://doi.org/10.3390/v17121563 - 29 Nov 2025
Viewed by 3729
Abstract
Selective gene delivery to defined cell populations remains one of the key challenges in lentiviral vector-based gene therapy. The vesicular stomatitis virus glycoprotein (VSV-G) confers high infectivity but lacks cell-type specificity because of the ubiquitous expression of its receptor, LDLR. To enable modular, [...] Read more.
Selective gene delivery to defined cell populations remains one of the key challenges in lentiviral vector-based gene therapy. The vesicular stomatitis virus glycoprotein (VSV-G) confers high infectivity but lacks cell-type specificity because of the ubiquitous expression of its receptor, LDLR. To enable modular, receptor-specific targeting while retaining the production efficiency of VSV-G-pseudotyped vectors, we designed a bispecific adapter, 929-B6, comprising a VSV-G-binding nanobody and an ERBB2-binding DARPin 9.29. Anti-VSV-G nanobodies were isolated from an alpaca immune library and screened in cell-based pseudoreceptor assays to identify the optimal binder (VSVG-B6). The resulting adapter was evaluated with receptor-ablated (VSV-Gmut) and wild-type VSV-G-pseudotyped LVs across ERBB2-positive and -negative cell lines and in a mouse xenograft model. 929-B6 enabled efficient, receptor-specific transduction of ERBB2-expressing cells without increasing infection of ERBB2-negative controls. Pre-incubation of VSV-Gmut-pseudotyped LVs with 1–2 µg/mL 929-B6 increased transduction up to eight-fold in ERBB2+ cells, with similar but smaller effects for VSV-G and VSV-Gmut + 929R pseudotypes. Across breast cancer lines, transduction enhancement correlated with ERBB2 surface density, and co-culture experiments confirmed selective entry into ERBB2+ populations. In vivo imaging of ERBB2+ tumors revealed a visible tumor-localized luminescent signal following administration of 929-B6-treated vectors. The 929-B6 adapter provides a rapid, scalable means to retarget standard LV stocks toward chosen receptors without re-engineering the envelope or co-packaging pseudoreceptor plasmids. Its modularity suggests a generalizable platform for both gene therapy and oncolytic applications requiring flexible, receptor-defined tropism. Full article
(This article belongs to the Section General Virology)
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17 pages, 2862 KB  
Article
Recombinant Oncolytic Vesicular Stomatitis Virus Expressing Mouse Interleukin-12 and Granulocyte-Macrophage Colony-Stimulating Factor (rVSV-dM51-mIL12-mGMCSF) for Immunotherapy of Lung Carcinoma
by Anastasia Ryapolova, Margarita Zinovieva, Kristina Vorona, Bogdan Krapivin, Vasiliy Moroz, Nizami Gasanov, Ilnaz Imatdinov, Almaz Imatdinov, Roman Ivanov, Alexander Karabelsky and Ekaterina Minskaia
Int. J. Mol. Sci. 2025, 26(17), 8567; https://doi.org/10.3390/ijms26178567 - 3 Sep 2025
Cited by 5 | Viewed by 2513
Abstract
The unique ability of oncolytic viruses (OVs) to replicate in and destroy malignant cells while leaving healthy cells intact and activating the host immune response makes them powerful targeted anti-cancer therapeutic agents. Vesicular stomatitis virus (VSV) only causes mild and asymptomatic infection, lacks [...] Read more.
The unique ability of oncolytic viruses (OVs) to replicate in and destroy malignant cells while leaving healthy cells intact and activating the host immune response makes them powerful targeted anti-cancer therapeutic agents. Vesicular stomatitis virus (VSV) only causes mild and asymptomatic infection, lacks pre-existing immunity, can be genetically engineered for enhanced efficiency and improved safety, and has a broad cell tropism. VSV can facilitate targeted delivery of immunostimulatory cytokines for an enhanced immune response against cancer cells, thus decreasing the possible toxicity frequently observed as a result of systemic delivery. In this study, the oncolytic potency of the two rVSV versions, rVSV-dM51-GFP, delivering green fluorescent protein (GFP), and rVSV-dM51-mIL12-mGMCSF, delivering mouse interleukin-12 (mIL-12) and granulocyte-macrophage colony-stimulating factor (mGMCSF), was compared on the four murine cancer cell lines of different origin and healthy mesenchymal stem cells (MSCs) at 24 h post-infection by flow cytometry. Lewis lung carcinoma (LL/2) cells were demonstrated to be more susceptible to the lytic effects of both rVSV versions compared to melanoma (B16-F10) cells. Detection of expression levels of antiviral and pro-apoptotic genes in response to the rVSV-dM51-GFP infection by quantitative PCR (qPCR) showed lower levels of IFIT, RIG-I, and N-cadherin and higher levels of IFNβ and p53 in LL/2 cells. Subsequently, C57BL/6 mice, infused subcutaneously with the LL/2 cells, were injected intratumorally with the rVSV-dM51-mIL12-mGMCSF 7 days later to assess the synergistic effect of rVSV and immunostimulatory factors. The in vivo study demonstrated that treatment with two rVSV-dM51-mIL12-mGMCSF doses 3 days apart resulted in a tumor growth inhibition index (TGII) of over 50%. Full article
(This article belongs to the Section Molecular Immunology)
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15 pages, 1636 KB  
Article
The Immunoproteasome Is Expressed but Dispensable for a Leukemia Infected Cell Vaccine
by Delphine Béland, Victor Mullins-Dansereau, Karen Geoffroy, Mélissa Viens, Kim Leclerc Desaulniers and Marie-Claude Bourgeois-Daigneault
Vaccines 2025, 13(8), 835; https://doi.org/10.3390/vaccines13080835 - 5 Aug 2025
Cited by 1 | Viewed by 2768
Abstract
Background/Objectives: Leukemia is associated with high recurrence rates and cancer vaccines are emerging as a promising immunotherapy against the disease. Here, we investigate the mechanism of action by which a personalized vaccine made from leukemia cells infected with an oncolytic virus (ICV) induces [...] Read more.
Background/Objectives: Leukemia is associated with high recurrence rates and cancer vaccines are emerging as a promising immunotherapy against the disease. Here, we investigate the mechanism of action by which a personalized vaccine made from leukemia cells infected with an oncolytic virus (ICV) induces anti-tumor immunity. Methods: Using the L1210 murine model, leukemia cells were infected and irradiated to create the ICV. The CRISPR-Cas9 system was used to engineer knockout cells to test in treatment efficacy studies. Results: We found that pro-inflammatory interferons (IFNs) that are produced by infected vaccine cells induce the immunoproteasome (ImP), a specialized proteasome subtype that is found in immune cells. Interestingly, we show that while a vaccine using the oncolytic vesicular stomatitis virus (oVSV) completely protects against tumor challenge, the wild-type (wt) virus, which does not induce the ImP, is not as effective. To delineate the contribution of the ImP for vaccine efficacy, we generated ImP-knockout cell lines and found no differences in treatment efficacy compared to wild-type cells. Furthermore, an ICV using another murine leukemia model that expresses the ImP only when infected by an IFN gamma-encoding variant of the virus demonstrated similar efficacy as the parental virus. Conclusions: Taken together, our data show that ImP expression by vaccine cells was not required for the efficacy of leukemia ICVs. Full article
(This article belongs to the Special Issue Personalised Cancer Vaccines)
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18 pages, 4051 KB  
Article
Chimeric Vesicular Stomatitis Virus Bearing Western Equine Encephalitis Virus Envelope Proteins E2-E1 Is a Suitable Surrogate for Western Equine Encephalitis Virus in a Plaque Reduction Neutralization Test
by Kerri L. Miazgowicz, Bailey E. Maloney, Melinda A. Brindley, Mattie Cassaday, Raegan J. Petch, Paul Bates, Aaron C. Brault and Amanda E. Calvert
Viruses 2025, 17(8), 1067; https://doi.org/10.3390/v17081067 - 31 Jul 2025
Viewed by 1882
Abstract
In December 2023, infections of western equine encephalitis virus (WEEV) within Argentina were reported to the World Health Organization (WHO). By April 2024, more than 250 human infections, 12 of which were fatal, and 2500 equine infections were identified in South America. Laboratory [...] Read more.
In December 2023, infections of western equine encephalitis virus (WEEV) within Argentina were reported to the World Health Organization (WHO). By April 2024, more than 250 human infections, 12 of which were fatal, and 2500 equine infections were identified in South America. Laboratory diagnosis and surveillance in affected countries were hindered by a lack of facilities equipped with BSL-3 laboratories, as confirmatory serodiagnosis for WEEV requires live virus in the plaque reduction neutralization test (PRNT). To expand serodiagnosis for WEEV in the Americas, we developed a virus chimera composed of vesicular stomatitis virus (VSV) engineered to display the E2-E1 glycoproteins of WEEV (VSV/WEEV) in place of the VSV glycoprotein (G). PRNT90 and IC90 values of parental WEEV and VSV/WEEV were analogous using sera collected from mice, horses, and chickens. VSV/WEEV rapidly formed plaques with clear borders and reduced the assay readout time by approximately 8 h compared to the parental virus. Overall, we demonstrate that chimeric VSV/WEEV is a suitable surrogate for WEEV in a diagnostic PRNT. Use of chimeric VSV/WEEV in place of authentic WEEV will dramatically expand testing capacity by enabling PRNTs to be performed at BSL-2 containment, while simultaneously decreasing the health risk to testing personnel. Full article
(This article belongs to the Special Issue Mosquito-Borne Encephalitis Viruses)
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20 pages, 3846 KB  
Article
Early to Late VSV-G Expression in AcMNPV BV Enhances Transduction in Mammalian Cells but Does Not Affect Virion Yield in Insect Cells
by Jorge Alejandro Simonin, Franco Uriel Cuccovia Warlet, María del Rosario Bauzá, María del Pilar Plastine, Victoria Alfonso, Fernanda Daniela Olea, Carolina Susana Cerrudo and Mariano Nicolás Belaich
Vaccines 2025, 13(7), 693; https://doi.org/10.3390/vaccines13070693 - 26 Jun 2025
Cited by 1 | Viewed by 2418
Abstract
Background/Objectives: Baculoviruses represent promising gene delivery vectors for mammalian systems, combining high safety profiles with substantial cargo capacity. While pseudotyping with vesicular stomatitis virus G-protein (VSV-G) enhances transduction efficiency, optimal expression strategies during the Autographa californica multiple nucleopolyhedrovirus (AcMNPV) infection cycle remain unexplored. [...] Read more.
Background/Objectives: Baculoviruses represent promising gene delivery vectors for mammalian systems, combining high safety profiles with substantial cargo capacity. While pseudotyping with vesicular stomatitis virus G-protein (VSV-G) enhances transduction efficiency, optimal expression strategies during the Autographa californica multiple nucleopolyhedrovirus (AcMNPV) infection cycle remain unexplored. This study investigates how VSV-G expression timing affects pseudotype incorporation into budded virions (BVs) and subsequent transduction efficacy. Methods: Three recombinant AcMNPV constructs were generated, each expressing VSV-G under distinct baculoviral promoters (ie1, gp64, and p10) and GFP via a CMV promoter. VSV-G incorporation was verified by Western blot, while transduction efficiency was quantified in mammalian cell lines (fluorescence microscopy/flow cytometry) and rat hind limbs. Viral productivity was assessed through production kinetics and plaque assays. Results: All the pseudotyped viruses showed significantly enhanced transduction capacity versus controls, strongly correlating with VSV-G incorporation levels. The p10 promoter drove the highest VSV-G expression and transduction efficiency. Crucially, BV production yields and infectivity remained unaffected by VSV-G expression timing. The in vivo results mirrored the cell culture findings, with p10-driven constructs showing greater GFP expression at low doses (104 virions). Conclusions: Strategic VSV-G expression via very late promoters (particularly p10) maximizes baculoviral transduction without compromising production yields. This study establishes a framework for optimizing pseudotyped BV systems, demonstrating that late-phase glycoprotein expression balances high mammalian transduction with preserved insect-cell productivity—a critical advancement for vaccine vector development. Full article
(This article belongs to the Special Issue Viral Vector-Based Vaccines and Therapeutics)
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9 pages, 511 KB  
Brief Report
Immunotherapeutic Blockade of CD47 Increases Virus Neutralization Antibodies
by Lamin B. Cham, Thamer A. Hamdan, Hilal Bhat, Bello Sirajo, Murtaza Ali, Khaled Saeed Tabbara, Eman Farid, Mohamed-Ridha Barbouche and Tom Adomati
Vaccines 2025, 13(6), 602; https://doi.org/10.3390/vaccines13060602 - 31 May 2025
Cited by 3 | Viewed by 2129
Abstract
Background/Objectives: CD47 is a cell surface glycoprotein moderately expressed in healthy cells and upregulated in cancer and viral infected cells. CD47’s interaction with signal regulatory protein alpha (SIRPα) inhibits phagocytic cells and its interaction with thrombospondin-1 inhibits T cell response. Experimental evidence has [...] Read more.
Background/Objectives: CD47 is a cell surface glycoprotein moderately expressed in healthy cells and upregulated in cancer and viral infected cells. CD47’s interaction with signal regulatory protein alpha (SIRPα) inhibits phagocytic cells and its interaction with thrombospondin-1 inhibits T cell response. Experimental evidence has revealed that the blockade of CD47 resulted in the increased activation and function of both innate and adaptive immune cells, therefore exerting antitumoral and antiviral effects. Recent studies have shown that the combination of vaccines and immune checkpoint inhibitors could be a promising approach to increasing vaccine immunogenicity. Here, we investigated the vaccinal effect of anti-CD47 antibodies and discussed the possibilities of combining anti-CD47 treatments with vaccines. Methods: Using vesicular stomatitis virus (VSV), a widely used replication-competent vaccine vector, we evaluated the impact of the immunotherapeutic blockade of CD47 on cellular, humoral, and protective immunity. We infected C57BL/6 mice with VSV, treated them with anti-CD47 antibodies or an isotype, and evaluated the total immunoglobulin (Ig), IgG neutralizing antibodies, B cell activation, CD8+ T cell effector function, and survival of the mice. Results: We found that the treatments of anti-CD47 antibodies led to significantly increased Ig and IgG neutralizing antibody levels compared to the isotype treatment. Flow cytometric analysis of B cells revealed no difference in the number of circulating B cells; however, we observed an increased surface expression of CD80 and CD86 in B cells among anti-CD47-treated mice. Further analysis of the impact of CD47 blockade on T immunity revealed a significantly higher percentage of IFN-γ+ CD4 and IFN-γ+ CD8 T cells in anti-CD47-treated mice. Upon infecting mice with a lethal VSV dose, we observed a significantly higher survival rate among the anti-CD47-treated mice compared to control mice. Conclusions: Our results indicate that anti-CD47 treatment induces a stronger cellular and humoral immune response, leading to better protection. As such, immunotherapy by CD47 blockade in combination with vaccines could be a promising approach to improve vaccine efficacy. Full article
(This article belongs to the Section Vaccines against Infectious Diseases)
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15 pages, 3730 KB  
Article
The Pseudotyped Replication-Deficient VSV with Spike from PEDV Induces Neutralizing Antibody Against PEDV
by Jingxuan Yi, Huaye Luo, Kang Zhang, Lilei Lv, Siqi Li, Yifeng Jiang, Yanjun Zhou, Zuzhang Wei and Changlong Liu
Vaccines 2025, 13(3), 223; https://doi.org/10.3390/vaccines13030223 - 24 Feb 2025
Cited by 1 | Viewed by 3638
Abstract
Background: Porcine epidemic diarrhea virus (PEDV) is a significant pathogen in swine, causing substantial economic losses worldwide. Despite the availability of existing vaccines, there is a critical need for novel vaccine platforms that ensure robust protection while maintaining safety. Methods: A recombinant replication-deficient [...] Read more.
Background: Porcine epidemic diarrhea virus (PEDV) is a significant pathogen in swine, causing substantial economic losses worldwide. Despite the availability of existing vaccines, there is a critical need for novel vaccine platforms that ensure robust protection while maintaining safety. Methods: A recombinant replication-deficient vesicular stomatitis virus (VSV) vaccine, rVSV∆G-PEDV-S, was developed by pseudotyping the virus with the spike (S) protein from PEDV. To achieve high-titer pseudotyped rVSV particles, a stable Huh7 cell line expressing the PEDV S protein (Huh7-PEDV-S) was generated. The infectivity and replication capacity of rVSV∆G-PEDV-S were evaluated in PEDV-susceptible cell lines and Huh7-PEDV-S cells. The vaccine’s immunogenicity and safety were assessed in BALB/c mice vaccinated intramuscularly with rVSV∆G-PEDV-S. Results: The pseudotyped rVSV∆G-PEDV-S demonstrated infectivity in PEDV-susceptible cell lines and robust replication in Huh7-PEDV-S cells, while remaining replication-deficient in non-complementary cells. In vaccinated BALB/c mice, the vaccine elicited a strong humoral immune response, characterized by high levels of PEDV S1-specific IgG and neutralizing antibodies. No adverse effects, including weight loss or behavioral changes, were observed in the vaccinated mice, confirming the vaccine’s safety. Conclusions: The rVSV∆G-PEDV-S vaccine represents a promising platform for controlling PEDV outbreaks. Its replication-deficient design and pseudotyping methodology ensure safety and adaptability to emerging PEDV variants. These findings highlight the potential of rVSV∆G-PEDV-S as a safe and effective solution to the ongoing challenges posed by PEDV. Full article
(This article belongs to the Special Issue Animal Virus Infection, Immunity and Vaccines)
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Article
Bovine Serum Albumin Nanoparticle-Mediated Delivery of Ribavirin and Mycophenolic Acid for Enhanced Antiviral Therapeutics
by Mayra A. Castañeda Cataña, Andrea P. Rivas Marquina, Martín M. Dodes Traian, M. Josefina Carlucci, Elsa B. Damonte, Oscar E. Pérez, Eva C. Arrua and Claudia S. Sepúlveda
Viruses 2025, 17(2), 138; https://doi.org/10.3390/v17020138 - 21 Jan 2025
Cited by 6 | Viewed by 3138
Abstract
The global spread of viral diseases is a public health issue. Ribavirin (RBV) and mycophenolic acid (MPA) are well-known wide-spectrum antiviral agents. The present study evaluated the potential of bovine serum albumin (BSA) nanoparticles (NPs) as a vehicle to improve the efficacy of [...] Read more.
The global spread of viral diseases is a public health issue. Ribavirin (RBV) and mycophenolic acid (MPA) are well-known wide-spectrum antiviral agents. The present study evaluated the potential of bovine serum albumin (BSA) nanoparticles (NPs) as a vehicle to improve the efficacy of molecules with antiviral activity. The results demonstrated that NPs offer a promising strategy for the delivery of antiviral drugs, improving their stability and reducing toxicity compared to free agents. BSA-based NPs effectively encapsulated hydrophilic molecules such as MPA and water-soluble compounds such as RBV, achieving encapsulation efficiencies of 10% and 20%, respectively. The purified NPs exhibited a particle size between 60 and 100 nm and did not show toxicity at the evaluated concentrations. In cellular viral infection models against Zika virus (ZIKV), Junín virus (JUNV), vesicular stomatitis virus (VSV) and herpes simplex virus (HSV-1), the BSA-based NPs loaded with MPA or RBV demonstrated antiviral properties superior to those of non-encapsulated agents, as well as 100- and 200-fold effective dose reductions, respectively. These findings clearly indicate the potential of BSA NPs as a novel platform for the development of safer and more efficient antiviral therapies. Full article
(This article belongs to the Special Issue Novel and Repurposed Antiviral Agents, 2nd Edition)
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