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1.
Front Immunol ; 15: 1395870, 2024.
Article in English | MEDLINE | ID: mdl-38799422

ABSTRACT

Emerging infectious diseases represent a significant threat to global health, with West Nile virus (WNV) being a prominent example due to its potential to cause severe neurological disorders alongside mild feverish conditions. Particularly prevalent in the continental United States, WNV has emerged as a global concern, with outbreaks indicating the urgent need for effective prophylactic measures. The current problem is that the absence of a commercial vaccine against WNV highlights a critical gap in preventive strategies against WNV. This study aims to address this gap by proposing a novel, multivalent vaccine designed using immunoinformatics approaches to elicit comprehensive humoral and cellular immune responses against WNV. The objective of the study is to provide a theoretical framework for experimental scientists to formulate of vaccine against WNV and tackle the current problem by generating an immune response inside the host. The research employs reverse vaccinology and subtractive proteomics methodologies to identify NP_041724.2 polyprotein and YP_009164950.1 truncated flavivirus polyprotein NS1 as the prime antigens. The selection process for epitopes focused on B and T-cell reactivity, antigenicity, water solubility, and non-allergenic properties, prioritizing candidates with the potential for broad immunogenicity and safety. The designed vaccine construct integrates these epitopes, connected via GPGPG linkers, and supplemented with an adjuvant with the help of another linker EAAAK, to enhance immunogenicity. Preliminary computational analyses suggest that the proposed vaccine could achieve near-universal coverage, effectively targeting approximately 99.74% of the global population, with perfect coverage in specific regions such as Sweden and Finland. Molecular docking and immune simulation studies further validate the potential efficacy of the vaccine, indicating strong binding affinity with toll-like receptor 3 (TLR-3) and promising immune response profiles, including significant antibody-mediated and cellular responses. These findings present the vaccine construct as a viable candidate for further development and testing. While the theoretical and computational results are promising, advancing from in-silico predictions to a tangible vaccine requires comprehensive laboratory validation. This next step is essential to confirm the vaccine's efficacy and safety in eliciting an immune response against WNV. Through this study, we propose a novel approach to vaccine development against WNV and contribute to the broader field of immunoinformatics, showcasing the potential to accelerate the design of effective vaccines against emerging viral threats. The journey from hypothesis to practical solution embodies the interdisciplinary collaboration essential for modern infectious disease management and prevention strategies.


Subject(s)
Computational Biology , Immunodominant Epitopes , Proteome , Vaccines, Subunit , West Nile Fever , West Nile Virus Vaccines , West Nile virus , West Nile virus/immunology , Immunodominant Epitopes/immunology , Humans , Proteome/immunology , West Nile Fever/prevention & control , West Nile Fever/immunology , West Nile Fever/virology , Computational Biology/methods , West Nile Virus Vaccines/immunology , Vaccines, Subunit/immunology , Vaccine Development , Epitopes, T-Lymphocyte/immunology , Epitopes, B-Lymphocyte/immunology , Proteomics/methods , Immunoinformatics , Protein Subunit Vaccines
2.
Cell Host Microbe ; 32(5): 632-634, 2024 May 08.
Article in English | MEDLINE | ID: mdl-38723601

ABSTRACT

Inducing HIV-1 broadly neutralizing antibodies (bnAbs) through vaccination poses exceptional challenges. In this issue of Cell Host & Microbe, Wiehe and colleagues report the elicitation of affinity-matured bnAbs in knock-in mice through boosting immunogen vaccination, which selects for key improbable mutations.


Subject(s)
AIDS Vaccines , Antibodies, Neutralizing , HIV Antibodies , HIV Infections , HIV-1 , Vaccine Development , AIDS Vaccines/immunology , AIDS Vaccines/genetics , HIV-1/immunology , HIV-1/genetics , Animals , Mice , HIV Antibodies/immunology , Antibodies, Neutralizing/immunology , HIV Infections/prevention & control , HIV Infections/immunology , Humans , Gene Knock-In Techniques , Immunization, Secondary , Vaccination
3.
Pediatr Clin North Am ; 71(3): 529-549, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38754940

ABSTRACT

This article considers ethical considerations surrounding pediatric vaccine development for pandemic preparedness, examines some historical cases of pediatric vaccines developed during past smallpox, influenza, and 2019 coronavirus disease pandemics, and discusses the current state of vaccine development for pandemic preparedness, including vaccines against smallpox/mpox, influenza, anthrax, and Ebola that are included in the US Strategic National Stockpile and vaccines being developed against priority pathogens identified by the World Health Organization.


Subject(s)
Vaccine Development , Humans , Child , Pandemics/prevention & control , COVID-19/prevention & control , COVID-19/epidemiology , Vaccines , United States
4.
Sci Rep ; 14(1): 10842, 2024 05 12.
Article in English | MEDLINE | ID: mdl-38735993

ABSTRACT

Yellow fever outbreaks are prevalent, particularly in endemic regions. Given the lack of an established treatment for this disease, significant attention has been directed toward managing this arbovirus. In response, we developed a multiepitope vaccine designed to elicit an immune response, utilizing advanced immunoinformatic and molecular modeling techniques. To achieve this, we predicted B- and T-cell epitopes using the sequences from all structural (E, prM, and C) and nonstructural proteins of 196 YFV strains. Through comprehensive analysis, we identified 10 cytotoxic T-lymphocyte (CTL) and 5T-helper (Th) epitopes that exhibited overlap with B-lymphocyte epitopes. These epitopes were further evaluated for their affinity to a wide range of human leukocyte antigen system alleles and were rigorously tested for antigenicity, immunogenicity, allergenicity, toxicity, and conservation. These epitopes were linked to an adjuvant ( ß -defensin) and to each other using ligands, resulting in a vaccine sequence with appropriate physicochemical properties. The 3D structure of this sequence was created, improved, and quality checked; then it was anchored to the Toll-like receptor. Molecular Dynamics and Quantum Mechanics/Molecular Mechanics simulations were employed to enhance the accuracy of docking calculations, with the QM portion of the simulations carried out utilizing the density functional theory formalism. Moreover, the inoculation model was able to provide an optimal codon sequence that was inserted into the pET-28a( +) vector for in silico cloning and could even stimulate highly relevant humoral and cellular immunological responses. Overall, these results suggest that the designed multi-epitope vaccine can serve as prophylaxis against the yellow fever virus.


Subject(s)
Epitopes, T-Lymphocyte , Yellow Fever Vaccine , Yellow Fever , Yellow fever virus , Yellow Fever Vaccine/immunology , Yellow fever virus/immunology , Yellow fever virus/genetics , Humans , Yellow Fever/prevention & control , Yellow Fever/immunology , Epitopes, T-Lymphocyte/immunology , Epitopes, B-Lymphocyte/immunology , Vaccinology/methods , Models, Molecular , Vaccine Development , Molecular Dynamics Simulation , T-Lymphocytes, Cytotoxic/immunology
5.
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
6.
Front Immunol ; 15: 1380732, 2024.
Article in English | MEDLINE | ID: mdl-38690283

ABSTRACT

Haemophilus parainfluenzae is a Gram-negative opportunist pathogen within the mucus of the nose and mouth without significant symptoms and has an ability to cause various infections ranging from ear, eye, and sinus to pneumonia. A concerning development is the increasing resistance of H. parainfluenzae to beta-lactam antibiotics, with the potential to cause dental infections or abscesses. The principal objective of this investigation is to utilize bioinformatics and immuno-informatic methodologies in the development of a candidate multi-epitope Vaccine. The investigation focuses on identifying potential epitopes for both B cells (B lymphocytes) and T cells (helper T lymphocytes and cytotoxic T lymphocytes) based on high non-toxic and non-allergenic characteristics. The selection process involves identifying human leukocyte antigen alleles demonstrating strong associations with recognized antigenic and overlapping epitopes. Notably, the chosen alleles aim to provide coverage for 90% of the global population. Multi-epitope constructs were designed by using suitable linker sequences. To enhance the immunological potential, an adjuvant sequence was incorporated using the EAAAK linker. The final vaccine construct, comprising 344 amino acids, was achieved after the addition of adjuvants and linkers. This multi-epitope Vaccine demonstrates notable antigenicity and possesses favorable physiochemical characteristics. The three-dimensional conformation underwent modeling and refinement, validated through in-silico methods. Additionally, a protein-protein molecular docking analysis was conducted to predict effective binding poses between the multi-epitope Vaccine and the Toll-like receptor 4 protein. The Molecular Dynamics (MD) investigation of the docked TLR4-vaccine complex demonstrated consistent stability over the simulation period, primarily attributed to electrostatic energy. The docked complex displayed minimal deformation and enhanced rigidity in the motion of residues during the dynamic simulation. Furthermore, codon translational optimization and computational cloning was performed to ensure the reliability and proper expression of the multi-Epitope Vaccine. It is crucial to emphasize that despite these computational validations, experimental research in the laboratory is imperative to demonstrate the immunogenicity and protective efficacy of the developed vaccine. This would involve practical assessments to ascertain the real-world effectiveness of the multi-epitope Vaccine.


Subject(s)
Computational Biology , Epitopes, B-Lymphocyte , Epitopes, T-Lymphocyte , Humans , Epitopes, T-Lymphocyte/immunology , Computational Biology/methods , Epitopes, B-Lymphocyte/immunology , Molecular Docking Simulation , Haemophilus Infections/prevention & control , Haemophilus Infections/immunology , Toll-Like Receptor 4/immunology , Toll-Like Receptor 4/metabolism , Toll-Like Receptor 4/chemistry , Vaccine Development
7.
Front Immunol ; 15: 1372349, 2024.
Article in English | MEDLINE | ID: mdl-38698863

ABSTRACT

Pseudomonas aeruginosa (Pa) is an opportunistic bacterial pathogen responsible for severe hospital acquired infections in immunocompromised and elderly individuals. Emergence of increasingly drug resistant strains and the absence of a broad-spectrum prophylactic vaccine against both T3SA+ (type III secretion apparatus) and ExlA+/T3SA- Pa strains worsen the situation in a post-pandemic world. Thus, we formulated a candidate subunit vaccine (called ExlA/L-PaF/BECC/ME) against both Pa types. This bivalent vaccine was generated by combining the C-terminal active moiety of exolysin A (ExlA) produced by non-T3SA Pa strains with our T3SA-based vaccine platform, L-PaF, in an oil-in-water emulsion. The ExlA/L-PaF in ME (MedImmune emulsion) was then mixed with BECC438b, an engineered lipid A analogue and a TLR4 agonist. This formulation was administered intranasally (IN) to young and elderly mice to determine its potency across a diverse age-range. The elderly mice were used to mimic the infection seen in elderly humans, who are more susceptible to serious Pa disease compared to their young adult counterparts. After Pa infection, mice immunized with ExlA/L-PaF/BECC/ME displayed a T cell-mediated adaptive response while PBS-vaccinated mice experienced a rapid onset inflammatory response. Important genes and pathways were observed, which give rise to an anti-Pa immune response. Thus, this vaccine has the potential to protect aged individuals in our population from serious Pa infection.


Subject(s)
Emulsions , Pseudomonas Infections , Pseudomonas Vaccines , Pseudomonas aeruginosa , Vaccines, Subunit , Animals , Pseudomonas aeruginosa/immunology , Vaccines, Subunit/immunology , Vaccines, Subunit/administration & dosage , Mice , Pseudomonas Infections/immunology , Pseudomonas Infections/prevention & control , Pseudomonas Vaccines/immunology , Pseudomonas Vaccines/administration & dosage , Female , Vaccine Development , Humans , Antibodies, Bacterial/immunology , Antibodies, Bacterial/blood , Disease Models, Animal , Bacterial Proteins/immunology , Bacterial Proteins/genetics
8.
Vaccine ; 42(16): 3621-3629, 2024 Jun 11.
Article in English | MEDLINE | ID: mdl-38704253

ABSTRACT

Recent data indicate increasing disease burden and importance of Plasmodium vivax (Pv) malaria. A robust assay will be essential for blood-stage Pv vaccine development. Results of the in vitro growth inhibition assay (GIA) with transgenic P. knowlesi (Pk) parasites expressing the Pv Duffy-binding protein region II (PvDBPII) correlate with in vivo protection in the first PvDBPII controlled human malaria infection (CHMI) trials, making the PkGIA an ideal selection tool once the precision of the assay is defined. To determine the precision in percentage of inhibition in GIA (%GIA) and in GIA50 (antibody concentration that gave 50 %GIA), ten GIAs with transgenic Pk parasites were conducted with four different anti-PvDBPII human monoclonal antibodies (mAbs) at concentrations of 0.016 to 2 mg/mL, and three GIAs with eighty anti-PvDBPII human polyclonal antibodies (pAbs) at 10 mg/mL. A significant assay-to-assay variation was observed, and the analysis revealed a standard deviation (SD) of 13.1 in the mAb and 5.94 in the pAb dataset for %GIA, with a LogGIA50 SD of 0.299 (for mAbs). Moreover, the ninety-five percent confidence interval (95 %CI) for %GIA or GIA50 in repeat assays was calculated in this investigation. The error range determined in this study will help researchers to compare PkGIA results from different assays and studies appropriately, thus supporting the development of future blood-stage malaria vaccine candidates, specifically second-generation PvDBPII-based formulations.


Subject(s)
Antibodies, Protozoan , Antigens, Protozoan , Malaria Vaccines , Plasmodium knowlesi , Plasmodium vivax , Protozoan Proteins , Receptors, Cell Surface , Malaria Vaccines/immunology , Plasmodium knowlesi/immunology , Plasmodium knowlesi/genetics , Protozoan Proteins/immunology , Protozoan Proteins/genetics , Plasmodium vivax/immunology , Antigens, Protozoan/immunology , Antigens, Protozoan/genetics , Humans , Receptors, Cell Surface/immunology , Receptors, Cell Surface/genetics , Antibodies, Protozoan/immunology , Antibodies, Protozoan/blood , Malaria, Vivax/prevention & control , Malaria, Vivax/immunology , Antibodies, Monoclonal/immunology , Vaccine Development/methods , Animals
9.
Viruses ; 16(5)2024 05 10.
Article in English | MEDLINE | ID: mdl-38793638

ABSTRACT

Coronavirus disease 2019 (COVID-19), the global pandemic caused by severe acute respiratory syndrome 2 virus (SARS-CoV-2) infection, has caused millions of infections and fatalities worldwide. Extensive SARS-CoV-2 research has been conducted to develop therapeutic drugs and prophylactic vaccines, and even though some drugs have been approved to treat SARS-CoV-2 infection, treatment efficacy remains limited. Therefore, preventive vaccination has been implemented on a global scale and represents the primary approach to combat the COVID-19 pandemic. Approved vaccines vary in composition, although vaccine design has been based on either the key viral structural (spike) protein or viral components carrying this protein. Therefore, mutations of the virus, particularly mutations in the S protein, severely compromise the effectiveness of current vaccines and the ability to control COVID-19 infection. This review begins by describing the SARS-CoV-2 viral composition, the mechanism of infection, the role of angiotensin-converting enzyme 2, the host defence responses against infection and the most common vaccine designs. Next, this review summarizes the common mutations of SARS-CoV-2 and how these mutations change viral properties, confer immune escape and influence vaccine efficacy. Finally, this review discusses global strategies that have been employed to mitigate the decreases in vaccine efficacy encountered against new variants.


Subject(s)
COVID-19 Vaccines , COVID-19 , Mutation , SARS-CoV-2 , Vaccine Development , Humans , SARS-CoV-2/immunology , SARS-CoV-2/genetics , COVID-19 Vaccines/immunology , COVID-19/prevention & control , COVID-19/immunology , COVID-19/virology , Spike Glycoprotein, Coronavirus/immunology , Spike Glycoprotein, Coronavirus/genetics , Angiotensin-Converting Enzyme 2/metabolism , Angiotensin-Converting Enzyme 2/genetics , Angiotensin-Converting Enzyme 2/immunology
10.
Expert Rev Vaccines ; 23(1): 570-583, 2024.
Article in English | MEDLINE | ID: mdl-38733272

ABSTRACT

INTRODUCTION: The mRNA vaccine technologies have progressed rapidly in recent years. The COVID-19 pandemic has accelerated the application of mRNA vaccines, with research and development and clinical trials underway for many vaccines. Application of the quality by design (QbD) framework to mRNA vaccine development and establishing standardized quality control protocols for mRNA vaccines are essential for the continued development of high-quality mRNA vaccines. AREAS COVERED: mRNA vaccines include linear mRNA, self-amplifying mRNA, and circular RNA vaccines. This article summarizes the progress of research on quality control of these three types of vaccines and presents associated challenges and considerations. EXPERT OPINION: Although there has been rapid progress in research on linear mRNA vaccines, their degradation patterns remain unclear. In addition, standardized assays for key impurities, such as residual dsRNA and T7 RNA polymerase, are still lacking. For self-amplifying mRNA vaccines, a key focus should be control of stability in vivo and in vitro. For circular RNA vaccines, standardized assays, and reference standards for determining degree of circularization should be established and optimized.


Subject(s)
COVID-19 Vaccines , COVID-19 , Quality Control , mRNA Vaccines , Humans , COVID-19 Vaccines/immunology , COVID-19 Vaccines/administration & dosage , COVID-19 Vaccines/standards , COVID-19/prevention & control , Vaccines, Synthetic/immunology , Vaccines, Synthetic/administration & dosage , Vaccine Development , Animals , RNA, Messenger/genetics , RNA, Messenger/immunology , SARS-CoV-2/immunology , SARS-CoV-2/genetics
11.
Med Sci (Basel) ; 12(2)2024 May 22.
Article in English | MEDLINE | ID: mdl-38804384

ABSTRACT

mRNA vaccines have emerged as an optimistic technological platform for vaccine innovation in this new scientific era. mRNA vaccines have dramatically altered the domain of vaccinology by offering a versatile and rapid approach to combating infectious diseases and virus-induced cancers. Clinical trials have demonstrated efficacy rates of 94-95% in preventing COVID-19, and mRNA vaccines have been increasingly recognized as a powerful vaccine platform. Although mRNA vaccines have played an essential role in the COVID-19 pandemic, they still have several limitations; their instability and degradation affect their storage, delivery, and over-all efficiency. mRNA is typically enclosed in a transport mechanism to facilitate its entry into the target cell because it is an unstable and negatively charged molecule. For instance, mRNA that is given using lipid-nanoparticle-based vaccine delivery systems (LNPs) solely enters cells through endocytosis, establishing an endosome without damaging the cell membrane. The COVID-19 pandemic has accelerated the development of mRNA vaccine platforms used to treat and prevent several infectious diseases. This technology has the potential to change the future course of the disease by providing a safe and effective way to combat infectious diseases and cancer. A single-stranded genetic sequence found in mRNA vaccines instructs host cells to produce proteins inside ribosomes to elicit immunological responses and prepare the immune system to fight infections or cancer cells. The potential applications of mRNA vaccine technology are vast and can lead to the development of a preferred vaccine pattern. As a result, a new generation of vaccinations has gradually gained popularity and access to the general population. To adapt the design of an antigen, and even combine sequences from different variations in response to new changes in the viral genome, mRNA vaccines may be used. Current mRNA vaccines provide adequate safety and protection, but the duration of that protection can only be determined if further clinical research is conducted.


Subject(s)
COVID-19 , SARS-CoV-2 , mRNA Vaccines , Humans , COVID-19/prevention & control , SARS-CoV-2/immunology , Pandemics/prevention & control , Oncogenic Viruses , Vaccines, Synthetic , Vaccine Development , COVID-19 Vaccines/immunology , Pneumonia, Viral/prevention & control , Coronavirus Infections/prevention & control , Betacoronavirus , Viral Vaccines/immunology , RNA, Messenger , Neoplasms
12.
Hum Vaccin Immunother ; 20(1): 2347019, 2024 Dec 31.
Article in English | MEDLINE | ID: mdl-38807261

ABSTRACT

Influenza A viruses pose a significant threat to global health, impacting both humans and animals. Zoonotic transmission, particularly from swine and avian species, is the primary source of human influenza outbreaks. Notably, avian influenza viruses of the H5N1, H7N9, and H9N2 subtypes are of pandemic concern through their global spread and sporadic human infections. Preventing and controlling these viruses is critical due to their high threat level. Vaccination remains the most effective strategy for influenza prevention and control in humans, despite varying vaccine efficacy across strains. This review focuses specifically on pandemic preparedness for avian influenza viruses. We delve into vaccines tested in animal models and summarize clinical trials conducted on H5N1, H7N9, and H9N2 vaccines in humans.


Subject(s)
Birds , Influenza Vaccines , Influenza in Birds , Influenza, Human , Pandemics , Animals , Influenza Vaccines/immunology , Influenza Vaccines/administration & dosage , Humans , Influenza, Human/prevention & control , Influenza, Human/epidemiology , Influenza, Human/immunology , Influenza in Birds/prevention & control , Influenza in Birds/epidemiology , Pandemics/prevention & control , Vaccine Development , Influenza A Virus, H7N9 Subtype/immunology , Influenza A Virus, H9N2 Subtype/immunology , Influenza A Virus, H5N1 Subtype/immunology , Clinical Trials as Topic , Disease Models, Animal , Vaccination , Pandemic Preparedness
13.
Hum Vaccin Immunother ; 20(1): 2355037, 2024 Dec 31.
Article in English | MEDLINE | ID: mdl-38813652

ABSTRACT

BACKGROUND: In recent years, infectious diseases like COVID-19 have had profound global socio-economic impacts. mRNA vaccines have gained prominence due to their rapid development, industrial adaptability, simplicity, and responsiveness to new variants. Notably, the 2023 Nobel Prize in Physiology or Medicine recognized significant contributions to mRNA vaccine research. METHODS: Our study employed a comprehensive bibliometric analysis using the Web of Science Core Collection (WoSCC) database, encompassing 5,512 papers on mRNA vaccines from 2003 to 2023. We generated cooperation maps, co-citation analyses, and keyword clustering to evaluate the field's developmental history and achievements. RESULTS: The analysis yielded knowledge maps highlighting countries/institutions, influential authors, frequently published and highly cited journals, and seminal references. Ongoing research hotspots encompass immune responses, stability enhancement, applications in cancer prevention and treatment, and combating infectious diseases using mRNA technology. CONCLUSIONS: mRNA vaccines represent a transformative development in infectious disease prevention. This study provides insights into the field's growth and identifies key research priorities, facilitating advancements in vaccine technology and addressing future challenges.


Subject(s)
Bibliometrics , COVID-19 , mRNA Vaccines , Humans , COVID-19/prevention & control , COVID-19/immunology , Vaccines, Synthetic/immunology , Vaccines, Synthetic/administration & dosage , COVID-19 Vaccines/immunology , COVID-19 Vaccines/administration & dosage , Biomedical Research/trends , Vaccine Development , SARS-CoV-2/immunology , SARS-CoV-2/genetics , RNA, Messenger/genetics
14.
Sci Rep ; 14(1): 10375, 2024 05 06.
Article in English | MEDLINE | ID: mdl-38710737

ABSTRACT

Tuberculosis (TB) a disease caused by Mycobacterium tuberculosis (Mtb) poses a significant threat to human life, and current BCG vaccinations only provide sporadic protection, therefore there is a need for developing efficient vaccines. Numerous immunoinformatic methods have been utilized previously, here for the first time a deep learning framework based on Deconvolutional Neural Networks (DCNN) and Bidirectional Long Short-Term Memory (DCNN-BiLSTM) was used to predict Mtb Multiepitope vaccine (MtbMEV) subunits against six Mtb H37Rv proteins. The trained model was used to design MEV within a few minutes against TB better than other machine learning models with 99.5% accuracy. The MEV has good antigenicity, and physiochemical properties, and is thermostable, soluble, and hydrophilic. The vaccine's BLAST search ruled out the possibility of autoimmune reactions. The secondary structure analysis revealed 87% coil, 10% beta, and 2% alpha helix, while the tertiary structure was highly upgraded after refinement. Molecular docking with TLR3 and TLR4 receptors showed good binding, indicating high immune reactions. Immune response simulation confirmed the generation of innate and adaptive responses. In-silico cloning revealed the vaccine is highly expressed in E. coli. The results can be further experimentally verified using various analyses to establish a candidate vaccine for future clinical trials.


Subject(s)
Mycobacterium tuberculosis , Neural Networks, Computer , Tuberculosis Vaccines , Tuberculosis Vaccines/immunology , Mycobacterium tuberculosis/immunology , Humans , Molecular Docking Simulation , Vaccine Development/methods , Epitopes/immunology , Tuberculosis/prevention & control , Tuberculosis/immunology , Antigens, Bacterial/immunology , Antigens, Bacterial/chemistry
15.
Hum Vaccin Immunother ; 20(1): 2345940, 2024 Dec 31.
Article in English | MEDLINE | ID: mdl-38714324

ABSTRACT

Traditional vaccines have limits against some persistent infections and pathogens. The development of novel vaccine technologies is particularly critical for the future. Exosomes play an important role in physiological and pathological processes. Exosomes present many advantages, such as inherent capacity being biocompatible, non-toxic, which make them a more desirable candidate for vaccines. However, research on exosomes are in their infancy and the barriers of low yield, low purity, and weak targeting of exosomes limit their applications in vaccines. Accordingly, further exploration is necessary to improve these problems and subsequently facilitate the functional studies of exosomes. In this study, we reviewed the origin, classification, functions, modifications, separation and purification, and characterization methods of exosomes. Meanwhile, we focused on the role and mechanism of exosomes for cancer and COVID-19 vaccines.


Subject(s)
COVID-19 Vaccines , Cancer Vaccines , Exosomes , Exosomes/immunology , Humans , COVID-19 Vaccines/immunology , Cancer Vaccines/immunology , COVID-19/prevention & control , COVID-19/immunology , SARS-CoV-2/immunology , Neoplasms/immunology , Animals , Vaccine Development
16.
Open Vet J ; 14(4): 941-951, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38808296

ABSTRACT

African swine fever virus (ASFV) poses a significant threat to global swine populations, necessitating a profound understanding of viral strategies against host antiviral innate immunity. This review synthesizes current knowledge regarding ASFV proteins and their intricate interactions with host defenses. Noteworthy findings encompass the modulation of interferon signaling, manipulation of inflammatory pathways, and the impact on cellular apoptosis. The implications of these findings provide a foundation for advancing vaccine strategies against ASFV. In conclusion, this review consolidates current knowledge, emphasizing the adaptability of ASFV in subverting host immunity. Identified research gaps underscore the need for continued exploration, presenting opportunities for developing targeted vaccines. This synthesis provides a roadmap for future investigations, aiming to enhance our preparedness against the devastating impact of ASFV on global swine populations.


Subject(s)
African Swine Fever Virus , African Swine Fever , Immunity, Innate , Viral Proteins , Viral Vaccines , African Swine Fever Virus/immunology , Animals , Swine , African Swine Fever/immunology , African Swine Fever/prevention & control , African Swine Fever/virology , Viral Proteins/immunology , Viral Vaccines/immunology , Vaccine Development
17.
Viruses ; 16(5)2024 05 18.
Article in English | MEDLINE | ID: mdl-38793684

ABSTRACT

Hepatitis C virus (HCV) is a major medical health burden and the leading cause of chronic liver disease and cancer worldwide. More than 58 million people are chronically infected with HCV, with 1.5 million new infections occurring each year. An effective HCV vaccine is a major public health and medical need as recognized by the World Health Organization. However, due to the high variability of the virus and its ability to escape the immune response, HCV rapidly accumulates mutations, making vaccine development a formidable challenge. An effective vaccine must elicit broadly neutralizing antibodies (bnAbs) in a consistent fashion. After decades of studies from basic research through clinical development, the antigen of choice is considered the E1E2 envelope glycoprotein due to conserved, broadly neutralizing antigenic domains located in the constituent subunits of E1, E2, and the E1E2 heterodimeric complex itself. The challenge has been elicitation of robust humoral and cellular responses leading to broad virus neutralization due to the relatively low immunogenicity of this antigen. In view of this challenge, structure-based vaccine design approaches to stabilize key antigenic domains have been hampered due to the lack of E1E2 atomic-level resolution structures to guide them. Another challenge has been the development of a delivery platform in which a multivalent form of the antigen can be presented in order to elicit a more robust anti-HCV immune response. Recent nanoparticle vaccines are gaining prominence in the field due to their ability to facilitate a controlled multivalent presentation and trafficking to lymph nodes, where they can interact with both the cellular and humoral components of the immune system. This review focuses on recent advances in understanding the E1E2 heterodimeric structure to facilitate a rational design approach and the potential for development of a multivalent nanoparticle-based HCV E1E2 vaccine. Both aspects are considered important in the development of an effective HCV vaccine that can effectively address viral diversity and escape.


Subject(s)
Hepacivirus , Hepatitis C , Vaccine Development , Viral Envelope Proteins , Viral Hepatitis Vaccines , Hepacivirus/immunology , Hepacivirus/genetics , Hepacivirus/chemistry , Humans , Viral Envelope Proteins/immunology , Viral Envelope Proteins/chemistry , Viral Envelope Proteins/genetics , Viral Hepatitis Vaccines/immunology , Hepatitis C/prevention & control , Hepatitis C/immunology , Hepatitis C/virology , Antibodies, Neutralizing/immunology , Animals , Hepatitis C Antibodies/immunology
18.
Adv Exp Med Biol ; 1451: 273-287, 2024.
Article in English | MEDLINE | ID: mdl-38801584

ABSTRACT

Smallpox was a significant cause of mortality for over three thousand years, amounting to 10% of deaths yearly. Edward Jenner discovered smallpox vaccination in 1796, which rapidly became a smallpox infection preventive practice throughout the world and eradicated smallpox infection by 1980. After smallpox eradication, monkeypox vaccines have been used primarily in research and in outbreaks in Africa, where the disease is endemic. In the present, the vaccines are being used for people who work with animals or in high-risk areas, as well as for healthcare workers treating patients with monkeypox. Among all orthopoxviruses (OPXV), monkeypox viral (MPXV) infection occurs mainly in cynomolgus monkeys, natural reservoirs, and occasionally causes severe multi-organ infection in humans, who were the incidental hosts. The first case of the present epidemic of MXPV was identified on May 7, 2022, and rapidly increased the number of cases. In this regard, the WHO declared the outbreak, an international public health emergency on July 23, 2022. The first monkeypox vaccine was developed in the 1960s by the US Army and was based on the vaccinia virus, which is also used in smallpox vaccines. In recent years, newer monkeypox vaccines have been developed based on other viruses such as Modified Vaccinia Ankara (MVA). These newer vaccines are safer and can provide longer-lasting immunity with fewer side effects. For the future, there is ongoing research to improve the current vaccines and to develop new ones. One notable advance has been the development of a recombinant vaccine that uses a genetically modified vaccinia virus to express monkeypox antigens. This vaccine has shown promising results in pre-clinical trials and is currently undergoing further testing in clinical trials. Another recent development has been the use of a DNA vaccine, which delivers genetic material encoding monkeypox antigens directly into cells. This type of vaccine has shown effectiveness in animal studies and is also undergoing clinical testing in humans. Overall, these recent advances in monkeypox vaccine development hold promise for protecting individuals against this potentially serious disease.


Subject(s)
Smallpox Vaccine , Humans , Animals , Smallpox Vaccine/immunology , Smallpox/prevention & control , Smallpox/immunology , Smallpox/epidemiology , Smallpox/history , History, 21st Century , History, 20th Century , Mpox (monkeypox)/prevention & control , Mpox (monkeypox)/epidemiology , Mpox (monkeypox)/immunology , Poxviridae Infections/prevention & control , Poxviridae Infections/immunology , Poxviridae Infections/epidemiology , Poxviridae/immunology , Poxviridae/genetics , Monkeypox virus/immunology , Monkeypox virus/genetics , Vaccination , Viral Vaccines/immunology , Vaccine Development
19.
Adv Exp Med Biol ; 1451: 289-300, 2024.
Article in English | MEDLINE | ID: mdl-38801585

ABSTRACT

Monkeypox virus (MPXV) of poxviridae family causes a zoonotic disease called monkeypox (Mpox). MPXV cases have a fatality ratio ranging from 0 to 11% globally and have been more prevalent in children. There are three generations of smallpox vaccines that protect against MPXV. First and second generation of the vaccinia virus (VACV) vaccine protects MPXV. However, various adverse side effects were associated with the first and second generations of vaccines. In contrast, the Modified Vaccinia Ankara-Bavarian Nordic (MVA-BN) replication-incompetent vaccine shows fewer adverse effects and a significant amount of neutralizing antibodies in mammalian cells. A third-generation Modified Vaccinia Ankara-Bavarian Nordic (MVA-BN) was approved to prevent Mpox in 2019. Recently, MVA-BN-based Imvanex, Imvamune, and JYNNEOS vaccines have also been administered against MPXV. Globally, the World Health Organization (WHO) declared a global health emergency in May 2022 due to increased MPXV cases. Various computational studies have also designed a multi-epitope-based vaccine against the MPXV. In the multi-epitope-based vaccine, different epitopes like B-cell, Cytotoxic T Lymphocyte (CTL), CD8+, and CD4+ epitopes were derived from MPXV proteins. Further, these epitopes were linked with the help of various linkers to design a multi-epitope vaccine against MPXV. In summary, we have provided an overview of the current status of the vaccine against MPXV.


Subject(s)
Monkeypox virus , Mpox (monkeypox) , Smallpox Vaccine , Vaccine Development , Humans , Mpox (monkeypox)/prevention & control , Mpox (monkeypox)/immunology , Animals , Monkeypox virus/immunology , Monkeypox virus/genetics , Smallpox Vaccine/immunology , Antibodies, Neutralizing/immunology
20.
Methods Mol Biol ; 2786: 135-144, 2024.
Article in English | MEDLINE | ID: mdl-38814392

ABSTRACT

The recent COVID-19 pandemic as well as other past and recent outbreaks of newly or re-emerging viruses show the urgent need to develop potent new vaccine approaches, that enable a quick response to prevent global spread of infectious diseases. The breakthrough of first messenger RNA (mRNA)-based vaccines 2019 approved only months after identification of the causative virus, severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2), opens a big new field for vaccine engineering. Currently, two major types of mRNA are being pursued as vaccines for the prevention of infectious diseases. One is non-replicating mRNA, including nucleoside-modified mRNA, used in the current COVID-19 vaccines of Moderna and BioNTech (Sahin et al., Nat Rev Drug Discov 13(10):759-780, 2014; Baden et al., N Engl J Med 384(5):403-416, 2021; Polack et al., N Engl J Med 383(27):2603-2615, 2020), the other is self-amplifying RNA (saRNA) derived from RNA viruses. Recently, trans-amplifying RNA, a split vector system, has been described as a third class of mRNA (Spuul et al., J Virol 85(10):4739-4751, 2011; Blakney et al., Front Mol Biosci 5:71, 2018; Beissert et al., Mol Ther 28(1):119-128, 2020). In this chapter we review the different types of mRNA currently used for vaccine development with focus on trans-amplifying RNA.


Subject(s)
COVID-19 Vaccines , COVID-19 , SARS-CoV-2 , mRNA Vaccines , Humans , SARS-CoV-2/genetics , SARS-CoV-2/immunology , COVID-19 Vaccines/immunology , COVID-19 Vaccines/genetics , COVID-19/prevention & control , COVID-19/virology , COVID-19/immunology , RNA, Viral/genetics , Vaccines, Synthetic/immunology , Vaccines, Synthetic/genetics , RNA, Messenger/genetics , RNA, Messenger/immunology , Vaccine Development , Animals
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