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1.
Hum Vaccin Immunother ; 20(1): 2346390, 2024 Dec 31.
Article in English | MEDLINE | ID: mdl-38691025

ABSTRACT

Middle East respiratory coronavirus (MERS-CoV) is a newly emergent, highly pathogenic coronavirus that is associated with 34% mortality rate. MERS-CoV remains listed as priority pathogen by the WHO. Since its discovery in 2012 and despite the efforts to develop coronaviruses vaccines to fight against SARS-CoV-2, there are currently no MERS-CoV vaccine that has been approved. Therefore, there is high demand to continue on the development of prophylactic vaccines against MERS-CoV. Current advancements in vaccine developments can be adapted for the development of improved MERS-CoV vaccines candidates. Nucleic acid-based vaccines, including pDNA and mRNA, are relatively new class of vaccine platforms. In this work, we developed pDNA and mRNA vaccine candidates expressing S.FL gene of MERS-CoV. Further, we synthesized a silane functionalized hierarchical aluminosilicate to encapsulate each vaccine candidates. We tested the nucleic acid vaccine candidates in mice and evaluated humoral antibodies response. Interestingly, we determined that the non-encapsulated, codon optimized S.FL pDNA vaccine candidate elicited the highest level of antibody responses against S.FL and S1 of MERS-CoV. Encapsulation of mRNA with nanoporous aluminosilicate increased the humoral antibody responses, whereas encapsulation of pDNA did not. These findings suggests that MERS-CoV S.FL pDNA vaccine candidate induced the highest level of humoral responses. This study will enhance further optimization of nanosilica as potential carrier for mRNA vaccines. In conclusion, this study suggests MERS-CoV pDNA vaccine candidate as a suitable vaccine platform for further pivotal preclinical testings.


Subject(s)
Antibodies, Viral , Coronavirus Infections , Middle East Respiratory Syndrome Coronavirus , Nanoparticles , Silicon Dioxide , Vaccines, DNA , Viral Vaccines , Animals , Vaccines, DNA/immunology , Vaccines, DNA/genetics , Vaccines, DNA/administration & dosage , Middle East Respiratory Syndrome Coronavirus/immunology , Middle East Respiratory Syndrome Coronavirus/genetics , Mice , Viral Vaccines/immunology , Viral Vaccines/genetics , Viral Vaccines/administration & dosage , Antibodies, Viral/immunology , Coronavirus Infections/prevention & control , Coronavirus Infections/immunology , Silicon Dioxide/chemistry , Mice, Inbred BALB C , Female , Humans , Spike Glycoprotein, Coronavirus/immunology , Spike Glycoprotein, Coronavirus/genetics , Antibodies, Neutralizing/immunology , Antibodies, Neutralizing/blood , Vaccine Development
2.
BMC Infect Dis ; 24(1): 476, 2024 May 07.
Article in English | MEDLINE | ID: mdl-38714948

ABSTRACT

Severe fever with thrombocytopenia syndrome (SFTS) is an emerging tick-borne viral disease caused by the SFTS virus (Dabie bandavirus), which has become a substantial risk to public health. No specific treatment is available now, that calls for an effective vaccine. Given this, we aimed to develop a multi-epitope DNA vaccine through the help of bioinformatics. The final DNA vaccine was inserted into a special plasmid vector pVAX1, consisting of CD8+ T cell epitopes, CD4+ T cell epitopes and B cell epitopes (six epitopes each) screened from four genome-encoded proteins--nuclear protein (NP), glycoprotein (GP), RNA-dependent RNA polymerase (RdRp), as well as nonstructural protein (NSs). To ascertain if the predicted structure would be stable and successful in preventing infection, an immunological simulation was run on it. In conclusion, we designed a multi-epitope DNA vaccine that is expected to be effective against Dabie bandavirus, but in vivo trials are needed to verify this claim.


Subject(s)
Epitopes, T-Lymphocyte , Phlebovirus , Severe Fever with Thrombocytopenia Syndrome , Vaccines, DNA , Viral Vaccines , Vaccines, DNA/immunology , Vaccines, DNA/genetics , Phlebovirus/immunology , Phlebovirus/genetics , Severe Fever with Thrombocytopenia Syndrome/prevention & control , Severe Fever with Thrombocytopenia Syndrome/immunology , Epitopes, T-Lymphocyte/immunology , Epitopes, T-Lymphocyte/genetics , Viral Vaccines/immunology , Viral Vaccines/genetics , Humans , Computer-Aided Design , Epitopes, B-Lymphocyte/immunology , Epitopes, B-Lymphocyte/genetics , Animals , Computational Biology
3.
Viruses ; 16(5)2024 05 10.
Article in English | MEDLINE | ID: mdl-38793639

ABSTRACT

African Swine Fever Virus (ASFV) is a large dsDNA virus that encodes at least 150 proteins. The complexity of ASFV and lack of knowledge of effector immune functions and protective antigens have hindered the development of safe and effective ASF vaccines. In this study, we constructed four Orf virus recombinant vectors expressing individual ASFV genes B602L, -CP204L, E184L, and -I73R (ORFVΔ121-ASFV-B602L, -CP204L, -E184L, and -I73R). All recombinant viruses expressed the heterologous ASFV proteins in vitro. We then evaluated the immunogenicity of the recombinants by immunizing four-week-old piglets. In two independent animal studies, we observed high antibody titers against ASFV p30, encoded by CP204L gene. Using Pepscan ELISA, we identified a linear B-cell epitope of 12 amino acids in length (Peptide 15) located in an exposed loop region of p30 as an immunodominant ASFV epitope. Additionally, antibodies elicited against ASFV p30 presented antibody-dependent cellular cytotoxicity (ADCC) activity. These results underscore the role of p30 on antibody responses elicited against ASFV and highlight an important functional epitope that contributes to p30-specific antibody responses.


Subject(s)
African Swine Fever Virus , African Swine Fever , Antibodies, Viral , Antibody-Dependent Cell Cytotoxicity , Epitopes, B-Lymphocyte , Immunodominant Epitopes , African Swine Fever Virus/immunology , African Swine Fever Virus/genetics , Animals , Swine , Antibodies, Viral/immunology , Epitopes, B-Lymphocyte/immunology , Epitopes, B-Lymphocyte/genetics , Immunodominant Epitopes/immunology , Immunodominant Epitopes/genetics , African Swine Fever/immunology , African Swine Fever/virology , Viral Proteins/immunology , Viral Proteins/genetics , Viral Vaccines/immunology , Viral Vaccines/genetics
4.
Viruses ; 16(5)2024 05 16.
Article in English | MEDLINE | ID: mdl-38793675

ABSTRACT

The emergence of new virulent genotypes and the continued genetic drift of Newcastle disease virus (NDV) implies that distinct genotypes of NDV are simultaneously evolving in different geographic locations across the globe, including throughout Africa, where NDV is an important veterinary pathogen. Expanding the genomic diversity of NDV increases the possibility of diagnostic and vaccine failures. In this review, we systematically analyzed the genetic diversity of NDV genotypes in Africa using the Preferred Reporting Items for Systematic Reviews and Meta-Analyses (PRISMA) guidelines. Information published between 1999 and 2022 were used to obtain the genetic background of different genotypes of NDV and their geographic distributions in Africa. The following genotypes were reported in Africa: I, II, III, IV, V, VI, VII, VIII, XI, XIII, XIV, XVII, XVIII, XX, and XXI. A new putative genotype has been detected in the Democratic Republic of the Congo. However, of 54 African countries, only 26 countries regularly report information on NDV outbreaks, suggesting that this number may be vastly underestimated. With eight different genotypes, Nigeria is the country with the greatest genotypic diversity of NDV among African countries. Genotype VII is the most prevalent group of NDV in Africa, which was reported in 15 countries. A phylogeographic analysis of NDV sequences revealed transboundary transmission of the virus in Eastern Africa, Western and Central Africa, and in Southern Africa. A regional and continental collaboration is recommended for improved NDV risk management in Africa.


Subject(s)
Genetic Variation , Genotype , Newcastle Disease , Newcastle disease virus , Phylogeny , Newcastle disease virus/genetics , Newcastle disease virus/classification , Newcastle disease virus/isolation & purification , Newcastle Disease/virology , Newcastle Disease/epidemiology , Africa/epidemiology , Animals , Genome, Viral , Vaccination/veterinary , Chickens/virology , Viral Vaccines/genetics , Viral Vaccines/immunology , Poultry Diseases/virology , Poultry Diseases/epidemiology , Phylogeography
5.
Methods Mol Biol ; 2786: 51-87, 2024.
Article in English | MEDLINE | ID: mdl-38814390

ABSTRACT

Vectored RNA vaccines offer a variety of possibilities to engineer targeted vaccines. They are cost-effective and safe, but replication competent, activating the humoral as well as the cellular immune system.This chapter focuses on RNA vaccines derived from negative-strand RNA viruses from the order Mononegavirales with special attention to Newcastle disease virus-based vaccines and their generation. It shall provide an overview on the advantages and disadvantages of certain vector platforms as well as their scopes of application, including an additional section on experimental COVID-19 vaccines.


Subject(s)
Genetic Vectors , Newcastle disease virus , mRNA Vaccines , Animals , Humans , COVID-19/prevention & control , COVID-19/immunology , COVID-19/virology , Genetic Vectors/genetics , Newcastle disease virus/genetics , Newcastle disease virus/immunology , RNA Viruses/genetics , RNA Viruses/immunology , SARS-CoV-2/immunology , SARS-CoV-2/genetics , Viral Vaccines/immunology , Viral Vaccines/genetics , mRNA Vaccines/genetics , mRNA Vaccines/immunology
6.
Methods Mol Biol ; 2786: 89-133, 2024.
Article in English | MEDLINE | ID: mdl-38814391

ABSTRACT

While mRNA vaccines have shown their worth, they have the same failing as inactivated vaccines, namely they have limited half-life, are non-replicating, and therefore limited to the size of the vaccine payload for the amount of material translated. New advances averting these problems are combining replicon RNA (RepRNA) technology with nanotechnology. RepRNA are large self-replicating RNA molecules (typically 12-15 kb) derived from viral genomes defective in at least one essential structural protein gene. They provide sustained antigen production, effectively increasing vaccine antigen payloads over time, without the risk of producing infectious progeny. The major limitations with RepRNA are RNase-sensitivity and inefficient uptake by dendritic cells (DCs), which need to be overcome for efficacious RNA-based vaccine design. We employed biodegradable delivery vehicles to protect the RepRNA and promote DC delivery. Condensing RepRNA with polyethylenimine (PEI) and encapsulating RepRNA into novel Coatsome-replicon vehicles are two approaches that have proven effective for delivery to DCs and induction of immune responses in vivo.


Subject(s)
Dendritic Cells , Genome, Viral , Pestivirus , RNA, Viral , Replicon , Animals , Dendritic Cells/immunology , Dendritic Cells/metabolism , RNA, Viral/genetics , Pestivirus/genetics , Pestivirus/immunology , Replicon/genetics , Viral Vaccines/immunology , Viral Vaccines/genetics , Viral Vaccines/administration & dosage , Mice , Polyethyleneimine/chemistry , mRNA Vaccines , Vaccines, Synthetic/immunology , Vaccines, Synthetic/genetics , Vaccines, Synthetic/administration & dosage
7.
Methods Mol Biol ; 2786: 289-300, 2024.
Article in English | MEDLINE | ID: mdl-38814400

ABSTRACT

In this protocol, we outline how to produce a chimeric viral vaccine in a biosafety level 1 (BSL1) environment. An animal viral vector RNA encapsidated with tobacco mosaic virus (TMV) coat protein can be fully assembled in planta. Agrobacterium cultures containing each component are inoculated together into tobacco leaves and the self-assembled hybrid chimeric viral vaccine is harvested 4 days later and purified with a simple PEG precipitation. The viral RNA delivery vector is derived from the BSL1 insect virus, Flock House virus (FHV), and replicates in human and animal cells but does not spread systemically. A polyethylene glycol purification protocol is also provided to collect and purify these vaccines for immunological tests. In this update, we also provide a protocol for in trans co-inoculation of a modified FHV protein A, which significantly increased the yield of in planta chimeric viral vaccine.


Subject(s)
Nicotiana , Replicon , Tobacco Mosaic Virus , Viral Vaccines , Nicotiana/genetics , Viral Vaccines/immunology , Viral Vaccines/genetics , Animals , Tobacco Mosaic Virus/genetics , Tobacco Mosaic Virus/immunology , Replicon/genetics , RNA, Viral/genetics , Genetic Vectors/genetics , Nodaviridae/genetics , Nodaviridae/immunology , Plants, Genetically Modified/genetics , Capsid Proteins/genetics , Capsid Proteins/immunology , Agrobacterium/genetics , Humans
8.
Open Vet J ; 14(1): 90-107, 2024 Jan.
Article in English | MEDLINE | ID: mdl-38633144

ABSTRACT

Background: Being a ubiquitous, highly contagious virus with a continuous mutation and a large number of evolutions worldwide, the infectious bronchitis virus (IBV) continues to wreak problems among Egyptian chickens and generate economic losses. The commonly applied IBV vaccination protocols in broilers include alternatives to classic and/or variant attenuated live virus vaccines. Aim: The current study targeted to assess the protective efficacy of concurrent and successive Ma5 and 4/91 vaccine strain regimens against the field variant II IBV strain (IBV-EGY-ZU/Ck-127/2021) in chickens. Methods: Commercial broiler chickens were vaccinated with Ma5 and 4/91 strains simultaneously at 1 and 14 days of age. The evaluation parameters included clinical protection and humoral and early innate immunity aspects in the renal tissues of vaccinated and infected birds. Results: The vaccine regimen ameliorated the clinical and histopathological lesions against variant II IBV and enhanced body gain as well as succeeded in preventing tracheal shedding and minimizing cloacal shedding of the field virus. The IL-1ß mRNA gene expression was evident as early as 24 hours, with highly significant upregulation at 48 hours post vaccination and 24 hours post challenge (PC) in vaccinated birds. Remarkable upregulation was observed in oligoadenylate synthetases (OAS) expression 48 hours PC in vaccinated and unvaccinated infected birds. The vaccinated birds developed a significant antibody titer of 704.0 ± 111.98 at 28 days of age, with a consistent antibody titer increase after the challenge. Conclusion: Overall, a combination of heterologous protectotype commercial vaccines achieved good protection against the Egyptian variant II IBV strain. This vaccine program could be an effective protocol against the threat posed by IBV viruses circulating in the Egyptian field.


Subject(s)
Coronavirus Infections , Infectious bronchitis virus , Poultry Diseases , Viral Vaccines , Animals , Chickens , Infectious bronchitis virus/genetics , Egypt , Coronavirus Infections/veterinary , Viral Vaccines/genetics
9.
Open Vet J ; 14(1): 32-45, 2024 Jan.
Article in English | MEDLINE | ID: mdl-38633185

ABSTRACT

Background: Despite the strict preventive immunization used in Egypt, Newcastle disease remained a prospective risk to the commercial and backyard chicken industries. The severe economic losses caused by the Newcastle disease virus (NDV) highlight the importance of the trials for the improvement and development of vaccines and vaccination programs. Aim: In the present study, we evaluated the effectiveness of two vaccination schemes for protection against the velogenic NDV (vNDV) challenge. Methods: Four groups (A-D) of commercial broiler chickens were used. Two groups (G-A and G-B) were vaccinated with priming live HB1 GII simultaneously with inactivated GVII vaccines at 5 days of age, then boosted with live LaSota GII vaccine in group A and live recombinant NDV GVII vaccine in group B on day 16. Groups A to C were challenged with NDV/Chicken/Egypt/ALEX/ZU-NM99/2019 strain (106 Embryo infective dose 50/0.1 ml) at 28 days of age. Results: Two vaccination schemes achieved 93.3% clinical protection against NDV with body gain enhancement; whereas, 80% of the unvaccinated-challenged birds died. On day 28, the mean HI antibody titers were 4.3 ± 0.33 and 5.3 ± 0.33 log2 in groups A and B, respectively. As well as both programs remarkably reduced virus shedding. The two vaccination schemes displayed close protection efficacy against the vNDV challenge. Conclusion: Therefore, using the combination of a live attenuated vaccine with an inactivated genetically matched strain vaccine and then boosting it with one of the available live vaccines could be considered one of the most effective programs against current field vNDV infection in Egypt.


Subject(s)
Newcastle Disease , Viral Vaccines , Animals , Newcastle disease virus/genetics , Chickens , Egypt , Prospective Studies , Vaccination/veterinary , Viral Vaccines/genetics , Vaccines, Synthetic/genetics , Genotype
10.
Viruses ; 16(4)2024 03 30.
Article in English | MEDLINE | ID: mdl-38675881

ABSTRACT

Rabbit hemorrhagic disease virus 2 (RHDV2) emerged in the United States in 2018 and has spread in both domestic and wild rabbits nationwide. The virus has a high mortality rate and can spread rapidly once introduced in a rabbit population. Vaccination against RHDV2 provides the best protection against disease and should be considered by all rabbit owners. Here, we investigate the duration of immunity provided by vaccination with the Medgene Platform conditionally licensed commercial vaccine 6 months following the initial series. Rabbits received either the vaccination or a placebo and were challenged with RHDV2 6 months later. All vaccinated rabbits survived challenge whereas 18/19 non-vaccinated controls succumbed to infection within 10 or fewer days post-challenge. These results demonstrate lasting immunity following vaccination with the Medgene RHDV2 vaccine.


Subject(s)
Baculoviridae , Caliciviridae Infections , Hemorrhagic Disease Virus, Rabbit , Vaccination , Vaccines, Synthetic , Viral Vaccines , Animals , Hemorrhagic Disease Virus, Rabbit/immunology , Hemorrhagic Disease Virus, Rabbit/genetics , Rabbits , Caliciviridae Infections/prevention & control , Caliciviridae Infections/immunology , Caliciviridae Infections/virology , Caliciviridae Infections/veterinary , Viral Vaccines/immunology , Viral Vaccines/administration & dosage , Viral Vaccines/genetics , Vaccines, Synthetic/immunology , Vaccines, Synthetic/administration & dosage , Vaccines, Synthetic/genetics , Baculoviridae/genetics , Baculoviridae/immunology , Antibodies, Viral/blood , Antibodies, Viral/immunology
11.
Viruses ; 16(4)2024 03 30.
Article in English | MEDLINE | ID: mdl-38675887

ABSTRACT

PRRS is a viral disease that profoundly impacts the global swine industry, causing significant economic losses. The development of a novel and effective vaccine is crucial to halt the rapid transmission of this virus. There have been several vaccination attempts against PRRSV using both traditional and alternative vaccine design development approaches. Unfortunately, there is no currently available vaccine that can completely control this disease. Thus, our study aimed to develop an mRNA vaccine using the antigens expressed by single or fused PRRSV structural proteins. In this study, the nucleotide sequence of the immunogenic mRNA was determined by considering the antigenicity of structural proteins and the stability of spatial structure. Purified GP5 protein served as the detection antigen in the immunological evaluation. Furthermore, cellular mRNA expression was detected by immunofluorescence and western blotting. In a mice experiment, the Ab titer in serum and the activation of spleen lymphocytes triggered by the antigen were detected by ELISA and ICS, respectively. Our findings demonstrated that both mRNA vaccines can significantly stimulate cellular and humoral immune responses. More specifically, the GP5-mRNA exhibited an immunological response that was similar to that of the commercially available vaccine when administered in high doses. To conclude, our vaccine may show promising results against the wild-type virus in a natural host.


Subject(s)
Antibodies, Viral , Immunity, Cellular , Immunity, Humoral , Mice, Inbred BALB C , Porcine Reproductive and Respiratory Syndrome , Porcine respiratory and reproductive syndrome virus , Viral Envelope Proteins , Viral Vaccines , mRNA Vaccines , Animals , Porcine respiratory and reproductive syndrome virus/immunology , Porcine respiratory and reproductive syndrome virus/genetics , Mice , Porcine Reproductive and Respiratory Syndrome/prevention & control , Porcine Reproductive and Respiratory Syndrome/immunology , Antibodies, Viral/blood , Antibodies, Viral/immunology , Viral Vaccines/immunology , Viral Vaccines/administration & dosage , Viral Vaccines/genetics , Swine , Female , Viral Structural Proteins/immunology , Viral Structural Proteins/genetics , RNA, Messenger/genetics
12.
Viruses ; 16(4)2024 04 17.
Article in English | MEDLINE | ID: mdl-38675963

ABSTRACT

Southern Africa Territories 2 (SAT2) foot-and-mouth disease (FMD) has crossed long-standing regional boundaries in recent years and entered the Middle East. However, the existing vaccines offer poor cross-protection against the circulating strains in the field. Therefore, there is an urgent need for an alternative design approach for vaccines in anticipation of a pandemic of SAT2 Foot-and-mouth disease virus (FMDV). The porcine parvovirus (PPV) VP2 protein can embed exogenous epitopes into the four loops on its surface, assemble into virus-like particles (VLPs), and induce antibodies and cytokines to PPV and the exogenous epitope. In this study, chimeric porcine parvovirus VP2 VLPs (chimeric PPV-SAT2-VLPs) expressing the T-and/or B-cell epitopes of the structural protein VP1 of FMDV SAT2 were produced using the recombinant pFastBac™ Dual vector of baculoviruses in Sf9 and HF cells We used the Bac-to-Bac system to construct the recombinant baculoviruses. The VP2-VLP--SAT2 chimeras displayed chimeric T-cell epitope (amino acids 21-40 of VP1) and/or the B-cell epitope (amino acids 135-174) of SAT FMDV VP1 by substitution of the corresponding regions at the N terminus (amino acids 2-23) and/or loop 2 and/or loop 4 of the PPV VP2 protein, respectively. In mice, the chimeric PPV-SAT2-VLPs induced specific antibodies against PPV and the VP1 protein of SAT2 FMDV. The VP2-VLP-SAT2 chimeras induced specific antibodies to PPV and the VP1 protein specific epitopes of FMDV SAT2. In this study, as a proof-of-concept, successfully generated chimeric PPV-VP2 VLPs expressing epitopes of the structural protein VP1 of FMDV SAT2 that has a potential to prevent FMDV SAT2 and PPV infection in pigs.


Subject(s)
Antibodies, Viral , Antigens, Viral , Capsid Proteins , Foot-and-Mouth Disease Virus , Foot-and-Mouth Disease , Parvovirus, Porcine , Vaccines, Virus-Like Particle , Viral Vaccines , Animals , Foot-and-Mouth Disease Virus/immunology , Foot-and-Mouth Disease Virus/genetics , Mice , Foot-and-Mouth Disease/immunology , Foot-and-Mouth Disease/prevention & control , Foot-and-Mouth Disease/virology , Capsid Proteins/immunology , Capsid Proteins/genetics , Parvovirus, Porcine/immunology , Parvovirus, Porcine/genetics , Antibodies, Viral/immunology , Antibodies, Viral/blood , Viral Vaccines/immunology , Viral Vaccines/genetics , Vaccines, Virus-Like Particle/immunology , Vaccines, Virus-Like Particle/genetics , Swine , Immunity, Humoral , Immunity, Cellular , Epitopes, T-Lymphocyte/immunology , Epitopes, T-Lymphocyte/genetics , Epitopes, B-Lymphocyte/immunology , Epitopes, B-Lymphocyte/genetics , Serogroup , Mice, Inbred BALB C , Female , Epitopes/immunology , Epitopes/genetics , Sf9 Cells , Antibodies, Neutralizing/immunology , Antibodies, Neutralizing/blood
13.
PLoS Negl Trop Dis ; 18(4): e0012120, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38648230

ABSTRACT

Chikungunya fever virus (CHIKV) is a mosquito-borne alphavirus that causes wide-spread human infections and epidemics in Asia, Africa and recently, in the Americas. CHIKV is considered a priority pathogen by CEPI and WHO. Despite recent approval of a live-attenuated CHIKV vaccine, development of additional vaccines is warranted due to the worldwide outbreaks of CHIKV. Previously, we developed immunization DNA (iDNA) plasmid capable of launching live-attenuated CHIKV vaccine in vivo. Here we report the use of CHIKV iDNA plasmid to prepare a novel, live-attenuated CHIKV vaccine V5040 with rearranged RNA genome. In V5040, genomic RNA was rearranged to encode capsid gene downstream from the glycoprotein genes. Attenuated mutations derived from experimental CHIKV 181/25 vaccine were also engineered into E2 gene of V5040. The DNA copy of rearranged CHIKV genomic RNA with attenuated mutations was cloned into iDNA plasmid pMG5040 downstream from the CMV promoter. After transfection in vitro, pMG5040 launched replication of V5040 virus with rearranged genome and attenuating E2 mutations. Furthermore, V5040 virus was evaluated in experimental murine models for general safety and immunogenicity. Vaccination with V5040 virus subcutaneously resulted in elicitation of CHIKV-specific, virus-neutralizing antibodies. The results warrant further evaluation of V5040 virus with rearranged genome as a novel live-attenuated vaccine for CHIKV.


Subject(s)
Antibodies, Viral , Chikungunya Fever , Chikungunya virus , Genome, Viral , Vaccines, Attenuated , Viral Vaccines , Virus Replication , Animals , Vaccines, Attenuated/immunology , Vaccines, Attenuated/genetics , Vaccines, Attenuated/administration & dosage , Mice , Chikungunya virus/genetics , Chikungunya virus/immunology , Viral Vaccines/immunology , Viral Vaccines/genetics , Viral Vaccines/administration & dosage , Chikungunya Fever/prevention & control , Chikungunya Fever/immunology , Chikungunya Fever/virology , Antibodies, Viral/blood , Female , Humans , Chlorocebus aethiops , Antibodies, Neutralizing/blood , Vero Cells , Mice, Inbred BALB C
14.
J Virol ; 98(5): e0195723, 2024 May 14.
Article in English | MEDLINE | ID: mdl-38557247

ABSTRACT

Zoonotic coronaviruses pose a continuous threat to human health, with newly identified bat-borne viruses like swine acute diarrhea syndrome coronavirus (SADS-CoV) causing high mortality in piglets. In vitro studies indicate that SADS-CoV can infect cell lines from diverse species, including humans, highlighting its potential risk to human health. However, the lack of tools to study viral entry, along with the absence of vaccines or antiviral therapies, perpetuates this threat. To address this, we engineered an infectious molecular clone of Vesicular Stomatitis Virus (VSV), replacing its native glycoprotein (G) with SADS-CoV spike (S) and inserting a Venus reporter at the 3' leader region to generate a replication-competent rVSV-Venus-SADS S virus. Serial passages of rVSV-Venus-SADS S led to the identification of an 11-amino-acid truncation in the cytoplasmic tail of the S protein, which allowed more efficient viral propagation due to increased cell membrane anchoring of the S protein. The S protein was integrated into rVSV-Venus-SADS SΔ11 particles, susceptible to neutralization by sera from SADS-CoV S1 protein-immunized rabbits. Additionally, we found that TMPRSS2 promotes SADS-CoV spike-mediated cell entry. Furthermore, we assessed the serum-neutralizing ability of mice vaccinated with rVSV-Venus-SADS SΔ11 using a prime-boost immunization strategy, revealing effective neutralizing antibodies against SADS-CoV infection. In conclusion, we have developed a safe and practical tool for studying SADS-CoV entry and exploring the potential of a recombinant VSV-vectored SADS-CoV vaccine.IMPORTANCEZoonotic coronaviruses, like swine acute diarrhea syndrome coronavirus (SADS-CoV), pose a continual threat to human and animal health. To combat this, we engineered a safe and efficient tool by modifying the Vesicular Stomatitis Virus (VSV), creating a replication-competent rVSV-Venus-SADS S virus. Through serial passages, we optimized the virus for enhanced membrane anchoring, a key factor in viral propagation. This modified virus, rVSV-Venus-SADS SΔ11, proved susceptible to neutralization, opening avenues for potential vaccines. Additionally, our study revealed the role of TMPRSS2 in SADS-CoV entry. Mice vaccinated with rVSV-Venus-SADS SΔ11 developed potent neutralizing antibodies against SADS-CoV. In conclusion, our work presents a secure and practical tool for studying SADS-CoV entry and explores the promise of a recombinant VSV-vectored SADS-CoV vaccine.


Subject(s)
Antibodies, Viral , Spike Glycoprotein, Coronavirus , Virus Internalization , Virus Replication , Animals , Spike Glycoprotein, Coronavirus/genetics , Spike Glycoprotein, Coronavirus/immunology , Spike Glycoprotein, Coronavirus/metabolism , Mice , Humans , Antibodies, Viral/immunology , Swine , Antibodies, Neutralizing/immunology , Coronavirus Infections/virology , Coronavirus Infections/prevention & control , Viral Vaccines/immunology , Viral Vaccines/genetics , Vesicular stomatitis Indiana virus/genetics , Alphacoronavirus/genetics , Vesiculovirus/genetics , Angiotensin-Converting Enzyme 2/metabolism , Angiotensin-Converting Enzyme 2/genetics , Cell Line , Vero Cells , Serine Endopeptidases/genetics , Serine Endopeptidases/metabolism , Serine Endopeptidases/immunology , Rabbits , Chlorocebus aethiops , HEK293 Cells
15.
J Virol ; 98(5): e0176223, 2024 May 14.
Article in English | MEDLINE | ID: mdl-38563762

ABSTRACT

Severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) emerged at the end of 2019 and is responsible for the largest human pandemic in 100 years. Thirty-four vaccines are currently approved for use worldwide, and approximately 67% of the world population has received a complete primary series of one, yet countries are dealing with new waves of infections, variant viruses continue to emerge, and breakthrough infections are frequent secondary to waning immunity. Here, we evaluate a measles virus (MV)-vectored vaccine expressing a stabilized prefusion SARS-CoV-2 spike (S) protein (MV-ATU3-S2PΔF2A; V591) with demonstrated immunogenicity in mouse models (see companion article [J. Brunet, Z. Choucha, M. Gransagne, H. Tabbal, M.-W. Ku et al., J Virol 98:e01693-23, 2024, https://doi.org/10.1128/jvi.01693-23]) in an established African green monkey model of disease. Animals were vaccinated with V591 or the control vaccine (an equivalent MV-vectored vaccine with an irrelevant antigen) intramuscularly using a prime/boost schedule, followed by challenge with an early pandemic isolate of SARS-CoV-2 at 56 days post-vaccination. Pre-challenge, only V591-vaccinated animals developed S-specific antibodies that had virus-neutralizing activity as well as S-specific T cells. Following the challenge, V591-vaccinated animals had lower infectious virus and viral (v) RNA loads in mucosal secretions and stopped shedding virus in these secretions earlier. vRNA loads were lower in these animals in respiratory and gastrointestinal tract tissues at necropsy. This correlated with a lower disease burden in the lungs as quantified by PET/CT at early and late time points post-challenge and by pathological analysis at necropsy.IMPORTANCESevere acute respiratory syndrome coronavirus 2 (SARS-CoV-2) is responsible for the largest human pandemic in 100 years. Even though vaccines are currently available, countries are dealing with new waves of infections, variant viruses continue to emerge, breakthrough infections are frequent, and vaccine hesitancy persists. This study uses a safe and effective measles vaccine as a platform for vaccination against SARS-CoV-2. The candidate vaccine was used to vaccinate African green monkeys (AGMs). All vaccinated AGMs developed robust antigen-specific immune responses. After challenge, these AGMs produced less virus in mucosal secretions, for a shorter period, and had a reduced disease burden in the lungs compared to control animals. At necropsy, lower levels of viral RNA were detected in tissue samples from vaccinated animals, and the lungs of these animals lacked the histologic hallmarks of SARS-CoV-2 disease observed exclusively in the control AGMs.


Subject(s)
COVID-19 Vaccines , COVID-19 , Measles virus , SARS-CoV-2 , Spike Glycoprotein, Coronavirus , Animals , Spike Glycoprotein, Coronavirus/immunology , Spike Glycoprotein, Coronavirus/genetics , Chlorocebus aethiops , SARS-CoV-2/immunology , SARS-CoV-2/genetics , COVID-19/prevention & control , COVID-19/immunology , COVID-19/virology , Measles virus/immunology , Measles virus/genetics , COVID-19 Vaccines/immunology , Humans , Antibodies, Viral/immunology , Antibodies, Viral/blood , Antibodies, Neutralizing/immunology , Antibodies, Neutralizing/blood , Genetic Vectors , Vero Cells , Pandemics/prevention & control , Female , Betacoronavirus/immunology , Betacoronavirus/genetics , Pneumonia, Viral/prevention & control , Pneumonia, Viral/virology , Pneumonia, Viral/immunology , Coronavirus Infections/prevention & control , Coronavirus Infections/immunology , Coronavirus Infections/virology , Coronavirus Infections/veterinary , Viral Vaccines/immunology , Viral Vaccines/genetics , Viral Vaccines/administration & dosage , Disease Models, Animal
16.
Front Cell Infect Microbiol ; 14: 1346349, 2024.
Article in English | MEDLINE | ID: mdl-38628551

ABSTRACT

Efficient precision vaccines against several highly pathogenic zoonotic viruses are currently lacking. Proteolytic activation is instrumental for a number of these viruses to gain host-cell entry and develop infectivity. For SARS-CoV-2, this process is enhanced by the insertion of a furin cleavage site at the junction of the spike protein S1/S2 subunits upstream of the metalloprotease TMPRSS2 common proteolytic site. Here, we describe a new approach based on specific epitopes selection from the region involved in proteolytic activation and infectivity for the engineering of precision candidate vaccinating antigens. This approach was developed through its application to the design of SARS-CoV-2 cross-variant candidates vaccinating antigens. It includes an in silico structural analysis of the viral region involved in infectivity, the identification of conserved immunogenic epitopes and the selection of those eliciting specific immune responses in infected people. The following step consists of engineering vaccinating antigens that carry the selected epitopes and mimic their 3D native structure. Using this approach, we demonstrated through a Covid-19 patient-centered study of a 500 patients' cohort, that the epitopes selected from SARS-CoV-2 protein S1/S2 junction elicited a neutralizing antibody response significantly associated with mild and asymptomatic COVID-19 (p<0.001), which strongly suggests protective immunity. Engineered antigens containing the SARS-CoV-2 selected epitopes and mimicking the native epitopes 3D structure generated neutralizing antibody response in mice. Our data show the potential of this combined computational and experimental approach for designing precision vaccines against viruses whose pathogenicity is contingent upon proteolytic activation.


Subject(s)
COVID-19 , Viral Vaccines , Humans , Animals , Mice , SARS-CoV-2/genetics , COVID-19/prevention & control , Viral Vaccines/genetics , Epitopes/genetics , Antibodies, Neutralizing , Antibodies, Viral
17.
Viruses ; 16(4)2024 03 25.
Article in English | MEDLINE | ID: mdl-38675846

ABSTRACT

Replicating RNA, including self-amplifying RNA (saRNA) and trans-amplifying RNA (taRNA), holds great potential for advancing the next generation of RNA-based vaccines. Unlike in vitro transcribed mRNA found in most current RNA vaccines, saRNA or taRNA can be massively replicated within cells in the presence of RNA-amplifying enzymes known as replicases. We recently demonstrated that this property could enhance immune responses with minimal injected RNA amounts. In saRNA-based vaccines, replicase and antigens are encoded on the same mRNA molecule, resulting in very long RNA sequences, which poses significant challenges in production, delivery, and stability. In taRNA-based vaccines, these challenges can be overcome by splitting the replication system into two parts: one that encodes replicase and the other that encodes a short antigen-encoding RNA called transreplicon. Here, we review the identification and use of transreplicon RNA in alphavirus research, with a focus on the development of novel taRNA technology as a state-of-the art vaccine platform. Additionally, we discuss remaining challenges essential to the clinical application and highlight the potential benefits related to the unique properties of this future vaccine platform.


Subject(s)
Alphavirus , RNA, Viral , Alphavirus/genetics , Alphavirus/immunology , RNA, Viral/genetics , Animals , Humans , Viral Vaccines/immunology , Viral Vaccines/genetics , Virus Replication , Alphavirus Infections/virology , Alphavirus Infections/prevention & control , Alphavirus Infections/immunology , Vaccine Development
18.
Microb Pathog ; 190: 106630, 2024 May.
Article in English | MEDLINE | ID: mdl-38556102

ABSTRACT

Porcine circovirus type 2 (PCV2) is a globally prevalent infectious pathogen affecting swine, with its capsid protein (Cap) being the sole structural protein critical for vaccine development. Prior research has demonstrated that PCV2 Cap proteins produced in Escherichia coli (E. coli) can form virus-like particles (VLPs) in vitro, and nuclear localization signal peptides (NLS) play a pivotal role in stabilizing PCV2 VLPs. Recently, PCV2d has emerged as an important strain within the PCV2 epidemic. In this study, we systematically optimized the PCV2d Cap protein and successfully produced intact PCV2d VLPs containing NLS using E. coli. The recombinant PCV2d Cap protein was purified through affinity chromatography, yielding 7.5 mg of recombinant protein per 100 ml of bacterial culture. We augmented the conventional buffer system with various substances such as arginine, ß-mercaptoethanol, glycerol, polyethylene glycol, and glutathione to promote VLP assembly. The recombinant PCV2d Cap self-assembled into VLPs approximately 20 nm in diameter, featuring uniform distribution and exceptional stability in the optimized buffer. We developed the vaccine and immunized pigs and mice, evaluating the immunogenicity of the PCV2d VLPs vaccine by measuring PCV2-IgG, IL-4, TNF-α, and IFN-γ levels, comparing them to commercial vaccines utilizing truncated PCV2 Cap antigens. The HE staining and immunohistochemical tests confirmed that the PCV2 VLPs vaccine offered robust protection. The results revealed that animals vaccinated with the PCV2d VLPs vaccine exhibited high levels of PCV2 antibodies, with TNF-α and IFN-γ levels rapidly increasing at 14 days post-immunization, which were higher than those observed in commercially available vaccines, particularly in the mouse trial. This could be due to the fact that full-length Cap proteins can assemble into more stable PCV2d VLPs in the assembling buffer. In conclusion, our produced PCV2d VLPs vaccine elicited stronger immune responses in pigs and mice compared to commercial vaccines. The PCV2d VLPs from this study serve as an excellent candidate vaccine antigen, providing insights for PCV2d vaccine research.


Subject(s)
Antibodies, Viral , Capsid Proteins , Circovirus , Escherichia coli , Recombinant Proteins , Vaccines, Virus-Like Particle , Animals , Circovirus/immunology , Circovirus/genetics , Swine , Vaccines, Virus-Like Particle/immunology , Vaccines, Virus-Like Particle/genetics , Capsid Proteins/immunology , Capsid Proteins/genetics , Escherichia coli/genetics , Escherichia coli/metabolism , Mice , Antibodies, Viral/immunology , Antibodies, Viral/blood , Recombinant Proteins/immunology , Recombinant Proteins/genetics , Circoviridae Infections/prevention & control , Circoviridae Infections/immunology , Swine Diseases/prevention & control , Viral Vaccines/immunology , Viral Vaccines/genetics , Vaccine Development , Antigens, Viral/immunology , Antigens, Viral/genetics , Immunoglobulin G/blood , Cost-Benefit Analysis , Female , Interferon-gamma/metabolism , Immunogenicity, Vaccine
19.
Microbiol Spectr ; 12(4): e0347723, 2024 Apr 02.
Article in English | MEDLINE | ID: mdl-38456681

ABSTRACT

Canine distemper virus (CDV) poses a severe threat to both domesticated and wild animals, including multiple carnivores. With the continued expansion of its host range, there is an urgent need for the development of a safer and more effective vaccine. In this study, we developed subunit vaccines based on a bacterium-like particle (BLP) delivery platform containing BLPs-F and BLPs-H, which display the CDV F and H glycoprotein antigens, respectively, using the antigen-protein anchor fusions produced by a recombinant baculovirus insect cell expression system. The combination of BLPs-F and BLPs-H (CDV-BLPs), formulated with colloidal manganese salt [Mn jelly (MnJ)] adjuvant, triggered robust CDV-specific antibody responses and a substantial increase in the number of interferon gamma (IFN-γ)-secreting CD4+ and CD8+ T cells in mice. Dogs immunized intramuscularly with this vaccine not only produced CDV-specific IgG but also displayed elevated concentrations of IFN-γ and interleukin 6 in their serum, along with an increase of the CD3+CD4+ and CD3+CD8+ T cell subsets. Consequently, this heightened immune response provided effective protection against disease development and reduced viral shedding levels following challenge with a virulent strain. These findings suggest that this BLP-based subunit vaccine has the potential to become a novel canine distemper vaccine. IMPORTANCE: Many sensitive species require a safe and effective distemper vaccine. Non-replicating vaccines are preferred. We constructed subunit particles displaying canine distemper virus (CDV) antigens based on a bacterium-like particle (BLP) delivery platform. The CDV-BLPs formulated with theMn jelly adjuvant induced robust humoral and cell-mediated immune responses to CDV in mice and dogs, thereby providing effective protection against a virulent virus challenge. This work is an important step in developing a CDV subunit vaccine.


Subject(s)
Distemper Virus, Canine , Viral Vaccines , Dogs , Animals , Mice , Distemper Virus, Canine/genetics , Viral Vaccines/genetics , CD8-Positive T-Lymphocytes , Antibodies, Viral , Recombinant Proteins , Vaccines, Subunit/genetics
20.
Viruses ; 16(3)2024 02 28.
Article in English | MEDLINE | ID: mdl-38543742

ABSTRACT

The African swine fever virus (ASFV) mutant ASFV-G-∆I177L is a safe and efficacious vaccine which induces protection against the challenge of its parental virus, the Georgia 2010 isolate. Although a genetic DIVA (differentiation between infected and vaccinated animals) assay has been developed for this vaccine, still there is not a serological DIVA test for differentiating between animals vaccinated with ASFV-G-∆I177L and those infected with wild-type viruses. In this report, we describe the development of the ASFV-G-∆I177L mutant having deleted the EP402R gene, which encodes for the viral protein responsible for mediating the hemadsorption of swine erythrocytes. The resulting virus, ASFV-G-∆I177L/∆EP402R, does not have a decreased ability to replicates in swine macrophages when compared with the parental ASFV-G-∆I177L. Domestic pigs intramuscularly (IM) inoculated with either 102 or 106 HAD50 of ASFV-G-∆I177L/∆EP402R remained clinically normal, when compared with a group of mock-vaccinated animals, indicating the absence of residual virulence. Interestingly, an infectious virus could not be detected in the blood samples of the ASFV-G-∆I177L/∆EP402R-inoculated animals in either group at any of the time points tested. Furthermore, while all of the mock-inoculated animals presented a quick and lethal clinical form of ASF after the intramuscular inoculation challenge with 102 HAD50 of highly virulent parental field isolate Georgia 2010 (ASFV-G), all of the ASFV-G-∆I177L/∆EP402R-inoculated animals were protected, remaining clinically normal until the end of the observational period. Most of the ASFV-G-∆I177L/∆EP402R-inoculated pigs developed strong virus-specific antibody responses against viral antigens, reaching maximum levels at 28 days post inoculation. Importantly, all of the sera collected at that time point in the ASFV-G-∆I177L/∆EP402R-inoculated pigs did not react in a direct ELISA coated with the recombinant EP402R protein. Conversely, the EP402R protein was readily recognized by the pool of sera from the animals immunized with recombinant live attenuated vaccine candidates ASFV-G-∆I177L, ASFV-G-∆MGF, or ASFV-G-∆9GL/∆UK. Therefore, ASFV-G-∆I177L/∆EP402R is a novel, safe and efficacious candidate with potential to be used as an antigenically DIVA vaccine.


Subject(s)
African Swine Fever Virus , African Swine Fever , Viral Vaccines , Swine , Animals , Viral Vaccines/genetics , Sus scrofa , Virulence , Vaccines, Synthetic/genetics , Vaccines, Attenuated/genetics , Recombinant Proteins/genetics , Gene Deletion
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