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1.
Annu Rev Immunol ; 42(1): 551-584, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38941604

ABSTRACT

Poxviruses have evolved a wide array of mechanisms to evade the immune response, and we provide an overview of the different immunomodulatory strategies. Poxviruses prevent the recognition of viral DNA that triggers the immune responses and inhibit signaling pathways within the infected cell. A unique feature of poxviruses is the production of secreted proteins that mimic cytokines and cytokine receptors, acting as decoy receptors to neutralize the activity of cytokines and chemokines. The capacity of these proteins to evade cellular immune responses by inhibiting cytokine activation is complemented by poxviruses' strategies to block natural killer cells and cytotoxic T cells, often through interfering with antigen presentation pathways. Mechanisms that target complement activation are also encoded by poxviruses. Virus-encoded proteins that target immune molecules and pathways play a major role in immune modulation, and their contribution to viral pathogenesis, facilitating virus replication or preventing immunopathology, is discussed.


Subject(s)
Immune Evasion , Poxviridae Infections , Poxviridae , Humans , Poxviridae/immunology , Poxviridae/physiology , Animals , Poxviridae Infections/immunology , Cytokines/metabolism , Signal Transduction , Viral Proteins/metabolism , Viral Proteins/immunology , Antigen Presentation/immunology , Host-Pathogen Interactions/immunology
2.
Antiviral Res ; 228: 105943, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38909959

ABSTRACT

Poxviruses gained international attention due to the sharp rise in monkeypox cases in recent years, highlighting the urgent need for the development of a secure and reliable vaccine. This study involved the development of an innovative combined subunit vaccine (CSV) targeting poxviruses, with lumpy skin disease virus (LSDV) serving as the model virus. To this end, the potential sites for poxvirus vaccines were fully evaluated to develop and purify four recombinant proteins. These proteins were then successfully delivered to the dermis in a mouse model by utilizing dissolvable microneedle patches (DMPs). This approach simplified the vaccination procedure and significantly mitigated the associated risk. CSV-loaded DMPs contained four recombinant proteins and a novel adjuvant, CpG, which allowed DMPs to elicit the same intensity of humoral and cellular immunity as subcutaneous injection. Following immunization with SC and DMP, the mice exhibited notable levels of neutralizing antibodies, albeit at a low concentration. It is noteworthy that the CSV loaded into DMPs remained stable for at least 4 months at room temperature, effectively addressing the storage and transportation challenges. Based on the study findings, CSV-loaded DMPs are expected to be utilized worldwide as an innovative technique for poxvirus inoculation, especially in underdeveloped regions. This novel strategy is crucial for the development of future poxvirus vaccines.


Subject(s)
Antibodies, Neutralizing , Antibodies, Viral , Poxviridae Infections , Poxviridae , Vaccines, Subunit , Animals , Vaccines, Subunit/immunology , Vaccines, Subunit/administration & dosage , Mice , Antibodies, Neutralizing/immunology , Antibodies, Neutralizing/blood , Antibodies, Viral/blood , Antibodies, Viral/immunology , Poxviridae Infections/prevention & control , Poxviridae Infections/immunology , Female , Poxviridae/immunology , Viral Vaccines/immunology , Viral Vaccines/administration & dosage , Mice, Inbred BALB C , Lumpy skin disease virus/immunology , Vaccination , Immunity, Cellular , Immunity, Humoral , Recombinant Proteins/immunology , Recombinant Proteins/administration & dosage , Adjuvants, Vaccine/administration & dosage , Adjuvants, Immunologic/administration & dosage
3.
J Infect Public Health ; 17(7): 102470, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38865776

ABSTRACT

BACKGROUND: Poxviruses comprise a group of large double-stranded DNA viruses and are known to cause diseases in humans, livestock animals, and other animal species. The Mpox virus (MPXV; formerly Monkeypox), variola virus (VARV), and volepox virus (VPXV) are among the prevalent poxviruses of the Orthopoxviridae genera. The ongoing Mpox infectious disease pandemic caused by the Mpox virus has had a major impact on public health across the globe. To date, only limited repurposed antivirals and vaccines are available for the effective treatment of Mpox and other poxviruses that cause contagious diseases. METHODS: The present study was conducted with the primary goal of formulating multi-epitope vaccines against three evolutionary closed poxviruses i.e., MPXV, VARV, and VPXV using an integrated immunoinformatics and molecular modeling approach. DNA-dependent RNA polymerase (DdRp), a potential vaccine target of poxviruses, has been used to determine immunodominant B and T-cell epitopes followed by interactions analysis with Toll-like receptor 2 at the atomic level. RESULTS: Three multi-epitope vaccine constructs, namely DdRp_MPXV (V1), DdRp_VARV (V2), and DdRp_VPXV (V3) were designed. These vaccine constructs were found to be antigenic, non-allergenic, non-toxic, and soluble with desired physicochemical properties. Protein-protein docking and interaction profiling analysis depicts a strong binding pattern between the targeted immune receptor TLR2 and the structural models of the designed vaccine constructs, and manifested a number of biochemical bonds (hydrogen bonds, salt bridges, and non-bonded contacts). State-of-the-art all-atoms molecular dynamics simulations revealed highly stable interactions of vaccine constructs with TLR2 at the atomic level throughout the simulations on 300 nanoseconds. Additionally, the outcome of the immune simulation analysis suggested that designed vaccines have the potential to induce protective immunity against targeted poxviruses. CONCLUSIONS: Taken together, formulated next-generation polyvalent vaccines were found to have good efficacy against closely related poxviruses (MPXV, VARV, and VPXV) as demonstrated by our extensive immunoinformatics and molecular modeling evaluations; however, further experimental investigations are still needed.


Subject(s)
Computational Biology , Epitopes, T-Lymphocyte , Poxviridae , Viral Vaccines , Viral Vaccines/immunology , Poxviridae/immunology , Poxviridae/genetics , Computational Biology/methods , Epitopes, T-Lymphocyte/immunology , DNA-Directed RNA Polymerases/immunology , DNA-Directed RNA Polymerases/chemistry , DNA-Directed RNA Polymerases/genetics , Models, Molecular , Animals , Humans , Poxviridae Infections/prevention & control , Poxviridae Infections/immunology , Poxviridae Infections/virology , Epitopes, B-Lymphocyte/immunology , Molecular Docking Simulation , Immunoinformatics
4.
Nat Struct Mol Biol ; 31(7): 1001-1003, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38890551
5.
BMC Infect Dis ; 24(1): 483, 2024 May 10.
Article in English | MEDLINE | ID: mdl-38730352

ABSTRACT

BACKGROUND: Monkeypox (Mpox) is an important human pathogen without etiological treatment. A viral-host interactome study may advance our understanding of molecular pathogenesis and lead to the discovery of suitable therapeutic targets. METHODS: GEO Expression datasets characterizing mRNA profile changes in different host responses to poxviruses were analyzed for shared pathway identification, and then, the Protein-protein interaction (PPI) maps were built. The viral gene expression datasets of Monkeypox virus (MPXV) and Vaccinia virus (VACV) were used to identify the significant viral genes and further investigated for their binding to the library of targeting molecules. RESULTS: Infection with MPXV interferes with various cellular pathways, including interleukin and MAPK signaling. While most host differentially expressed genes (DEGs) are predominantly downregulated upon infection, marked enrichments in histone modifiers and immune-related genes were observed. PPI analysis revealed a set of novel virus-specific protein interactions for the genes in the above functional clusters. The viral DEGs exhibited variable expression patterns in three studied cell types: primary human monocytes, primary human fibroblast, and HeLa, resulting in 118 commonly deregulated proteins. Poxvirus proteins C6R derived protein K7 and K7R of MPXV and VACV were prioritized as targets for potential therapeutic interventions based on their histone-regulating and immunosuppressive properties. In the computational docking and Molecular Dynamics (MD) experiments, these proteins were shown to bind the candidate small molecule S3I-201, which was further prioritized for lead development. RESULTS: MPXV circumvents cellular antiviral defenses by engaging histone modification and immune evasion strategies. C6R-derived protein K7 binding candidate molecule S3I-201 is a priority promising candidate for treating Mpox.


Subject(s)
Host-Pathogen Interactions , Monkeypox virus , Vaccinia virus , Viral Proteins , Humans , Viral Proteins/genetics , Viral Proteins/metabolism , Vaccinia virus/genetics , Vaccinia virus/metabolism , HeLa Cells , Monkeypox virus/genetics , Mpox (monkeypox)/virology , Protein Interaction Maps , Gene Expression Profiling , Molecular Docking Simulation , Poxviridae/genetics , Poxviridae/metabolism , Fibroblasts/virology , Fibroblasts/metabolism
6.
Adv Exp Med Biol ; 1451: 21-33, 2024.
Article in English | MEDLINE | ID: mdl-38801569

ABSTRACT

In the last 4 years, the world has experienced two pandemics of bat-borne viruses. Firstly, in 2019 the SARS-CoV-2 pandemic started and has been causing millions of deaths around the world. In 2022, a Monkeypox pandemic rose in various countries of the world. Those pandemics have witnessed movements and initiatives from healthcare and research institutions to establish a worldwide understanding to battle any future pandemics and biological threats. One Health concept is a modern, comprehensive, unifying ways to improve humans, animals, and ecosystems' health. This concept shows how much they are intertwined and related to one another, whether it is an environmental, or a pathological relation. This review aims to describe Poxviridae and its impact on the One Health concept, by studying the underlying causes of how poxviruses can affect the health of animals, humans, and environments. Reviewing the effect of disease transmission between animal to human, human to human, and animal to animal with pox viruses as a third party to achieve a total understanding of infection and viral transmission. Thus, contributing to enhance detection, diagnosis, research, and treatments regarding the application of One Health.


Subject(s)
One Health , Poxviridae Infections , Poxviridae , Humans , Animals , Poxviridae Infections/virology , Poxviridae Infections/transmission , Poxviridae Infections/epidemiology , Poxviridae/physiology , Poxviridae/pathogenicity , Poxviridae/genetics , COVID-19/virology , COVID-19/transmission , COVID-19/epidemiology , Zoonoses/virology , Zoonoses/transmission , Zoonoses/epidemiology , SARS-CoV-2/pathogenicity , SARS-CoV-2/physiology , Pandemics , Viral Zoonoses/transmission , Viral Zoonoses/virology , Viral Zoonoses/epidemiology
7.
Adv Exp Med Biol ; 1451: 35-54, 2024.
Article in English | MEDLINE | ID: mdl-38801570

ABSTRACT

Poxvirus assembly has been an intriguing area of research for several decades. While advancements in experimental techniques continue to yield fresh insights, many questions are still unresolved. Large genome sizes of up to 380 kbp, asymmetrical structure, an exterior lipid bilayer, and a cytoplasmic life cycle are some notable characteristics of these viruses. Inside the particle are two lateral bodies and a protein wall-bound-biconcave core containing the viral nucleocapsid. The assembly progresses through five major stages-endoplasmic reticulum (ER) membrane alteration and rupture, crescent formation, immature virion formation, genome encapsidation, virion maturation and in a subset of viruses, additional envelopment of the virion prior to its dissemination. Several large dsDNA viruses have been shown to follow a comparable sequence of events. In this chapter, we recapitulate our understanding of the poxvirus morphogenesis process while reviewing the most recent advances in the field. We also briefly discuss how virion assembly aids in our knowledge of the evolutionary links between poxviruses and other Nucleocytoplasmic Large DNA Viruses (NCLDVs).


Subject(s)
Poxviridae , Virus Assembly , Poxviridae/genetics , Poxviridae/physiology , Virus Assembly/genetics , Humans , Genome, Viral , Virion/genetics , Virion/ultrastructure , Animals , Evolution, Molecular , Endoplasmic Reticulum/virology
8.
Adv Exp Med Biol ; 1451: 205-217, 2024.
Article in English | MEDLINE | ID: mdl-38801580

ABSTRACT

The family Poxviridae is a large family of viruses with a ubiquitous distribution, subdivided into two subfamilies: Chordopoxvirinae (poxviruses of vertebrates) and Entomopoxvirinae (poxviruses of insects). Only three species from the first subfamily, Orthopoxvirus (OPV), Molluscipoxvirus and Parapoxvirus, can infect the human being. In the paediatric population, viruses belonging to the first two subfamilies have the greatest importance. Following the eradication of smallpox in 1980, vaccination of the general population was discontinued after careful consideration of the risks and benefits. However, nearly all children and most of the world's population had little to no protection against OPV. The aim of this chapter is to review the current evidence on the aetiology, clinical manifestations, diagnosis and management of Poxviridae infections in children.


Subject(s)
Poxviridae Infections , Poxviridae , Humans , Child , Poxviridae Infections/virology , Poxviridae Infections/epidemiology , Poxviridae Infections/diagnosis , Poxviridae/classification , Poxviridae/genetics , Poxviridae/pathogenicity , Child, Preschool , Infant , Animals
9.
Adv Exp Med Biol ; 1451: 239-252, 2024.
Article in English | MEDLINE | ID: mdl-38801582

ABSTRACT

Although WHO-led global efforts led to eradication of smallpox over four decades ago, other poxviruses, especially monkeypox, have re-emerged to occupy the ecological niche vacated by smallpox. Many of these viruses produce similar lesions thus mandating a prompt laboratory confirmation. There has been considerable evolution in the techniques available to diagnose these infections and differentiate between them. With the 2022 multi-country outbreak of monkeypox, significant efforts were made to apprise the laboratory diagnosis of the virus and numerous real-time-PCR-based assays were made commercially available. This chapter discusses the sample collection and biosafety aspects along with the repertoire of diagnostic modalities, both traditional and emerging, for poxviruses which a special focus on monkeypox. The advantages and disadvantages of each technique have been illustrated. We have also reflected upon the newer advances and the existing lacunae.


Subject(s)
Poxviridae Infections , Humans , Poxviridae Infections/diagnosis , Poxviridae Infections/virology , Poxviridae/genetics , Poxviridae/isolation & purification , Animals , Smallpox/diagnosis , Smallpox/virology , Smallpox/epidemiology , Real-Time Polymerase Chain Reaction/methods , Mpox (monkeypox)/diagnosis , Mpox (monkeypox)/virology , Mpox (monkeypox)/epidemiology
10.
Adv Exp Med Biol ; 1451: 183-204, 2024.
Article in English | MEDLINE | ID: mdl-38801579

ABSTRACT

Poxviridae family includes several viruses that infecting humans usually causes skin lesions only, but in some cases their clinical course is complicated by viral pneumonia (with or without bacterial superinfections). Historically variola virus has been the poxviridae most frequently associated with the development of pneumonia with many large outbreaks worldwide before its eradication in 1980. It is still considered a biological threat for its potential in biological warfare and bioterrorism. Smallpox pneumonia can be severe with the onset of acute respiratory distress syndrome (ARDS) and death. Vaccinia virus, used for vaccination against smallpox exceptionally, in immunocompromised patients, can induce generalized (with also lung involvement) severe disease after vaccination. MPXV virus occasionally can cause pneumonia particularly in immunocompromised patients. The pathophysiology of poxviridae pneumonia is still an area of active research; however, in animal models these viruses can cause both direct damage to the lower airways epithelium and a hyperinflammatory syndrome, like a cytokine storm. Multiple mechanisms of immune evasion have also been described. The treatment of poxviridae pneumonia is mainly based on careful supportive care. Despite the absence of randomized clinical trials in patients with poxviridae pneumonia there are antiviral drugs, such as tecovirimat, cidofovir and brincidofovir, FDA-approved for use in smallpox and also available under an expanded access protocol for treatment of MPXV. There are 2 (replication-deficient modified vaccinia Ankara and replication-competent vaccinia virus) smallpox vaccines FDA-approved with the first one also approved for prevention of MPXV in adults that are at high risk of infection.


Subject(s)
Antiviral Agents , Poxviridae Infections , Humans , Animals , Poxviridae Infections/drug therapy , Poxviridae Infections/virology , Poxviridae Infections/immunology , Antiviral Agents/therapeutic use , Pneumonia, Viral/virology , Pneumonia, Viral/drug therapy , Pneumonia, Viral/complications , Poxviridae/pathogenicity , Poxviridae/physiology , Poxviridae/genetics , Vaccinia virus/pathogenicity , Vaccinia virus/physiology , Smallpox/virology , Smallpox/prevention & control , Variola virus/pathogenicity , Variola virus/genetics
11.
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
12.
Adv Exp Med Biol ; 1451: 369-381, 2024.
Article in English | MEDLINE | ID: mdl-38801591

ABSTRACT

Despite the significant advancement of new tools and technology in the field of medical biology and molecular biology, the challenges in the treatment of most cancer types remain constant with the problem of developing resistance toward drugs and no substantial enhancement in the overall survival rate of cancer patients. Immunotherapy has shown the most promising results in different clinical and preclinical trials in the treatment of various cancer due to its higher efficacy and minimum collateral damage in many cancer patients as compared to conventional chemotherapy and radiotherapy. An oncolytic virus is a new class of immunotherapy that can selectively replicate in tumor cells and destroy them by the process of cell lysis while exerting minimum or no effect on a normal cell. Besides this, it can also activate the host's innate immune system, which generates an anti-tumor immune response to eliminate the tumor cells. Several wild types and genetically modified viruses have been investigated to show oncolytic behavior. Vaccinia virus has been studied extensively and tested for its promising oncolytic nature on various model systems and clinical trials. Recently, several engineered vaccinia viruses have been developed that express the desired genes encoded for selective penetration in tumor cells and enhanced activation of the immune system for generating anti-tumor immunity. However, further investigation is required to prove their potential and enhance their therapeutic efficacy.


Subject(s)
Neoplasms , Oncolytic Virotherapy , Oncolytic Viruses , Poxviridae , Humans , Oncolytic Virotherapy/methods , Neoplasms/therapy , Neoplasms/immunology , Oncolytic Viruses/genetics , Oncolytic Viruses/physiology , Animals , Poxviridae/genetics , Poxviridae/physiology , Immunotherapy/methods , Vaccinia virus/genetics , Vaccinia virus/immunology , Vaccinia virus/physiology
13.
Adv Exp Med Biol ; 1451: 337-354, 2024.
Article in English | MEDLINE | ID: mdl-38801589

ABSTRACT

Poxviruses target innate immunity mediators such as tumor necrosis factors, interleukins, interferons, complement, and chemokines. It also targets adaptive immunity such as CD4+ T cells, CD4+ T cells, and B cells. Emerging of the recent epidemic of monkeypox virus (MPXV), a zoonotic disease native to Central and Western Africa, besides the lack of permitted treatments for poxviruses infections, encouraged researchers to identify effective inhibitors to help in preventing and treating poxviruses infections. Natural bioactive components, particularly polyphenolics, are promising for creating powerful antioxidants, anti-inflammatory, immune-stimulating, and antiviral agents. As a result, they are potentially effective therapies for preventing and treating viral diseases, such as infections caused by poxviruses including the recent pandemic MPXV. Polyphenolics: rosmarinic acid, caffeic acid, resveratrol, quercitrin, myricitrin, gingerol, gallotannin, and propolis-benzofuran A, as well as isoquinoline alkaloids: galanthamine and thalimonine represent prospective antiviral agents against MPXV, they can inhibit MPXV and other poxviruses via targeting different viral elements including DNA Topoisomerase I (TOP1), Thymidine Kinase (TK), serine/threonine protein kinase (Ser/Thr kinase), and protein A48R. The bioactive extracts of different traditional plants including Guiera senegalensis, Larrea tridentata, Sarracenia purpurea, Kalanchoe pinnata (Lam.) Pers., Zingiber officinale Roscoe, Quercus infectoria, Rhus chinensis, Prunella vulgaris L., Salvia rosmarinus, and Origanum vulgare also can inhibit the growth of different poxviruses including MPXV, vaccinia virus (VACV), variola virus, buffalopox virus, fowlpox virus, and cowpox virus. There is an urgent need for additional molecular studies to identify and confirm the anti-poxviruses properties of various natural bioactive components, especially those that showed potent antiviral activity against other viruses.


Subject(s)
Antiviral Agents , Poxviridae Infections , Poxviridae , Humans , Poxviridae Infections/drug therapy , Poxviridae Infections/virology , Poxviridae Infections/immunology , Animals , Antiviral Agents/pharmacology , Antiviral Agents/therapeutic use , Antiviral Agents/chemistry , Poxviridae/drug effects , Immunomodulating Agents/pharmacology , Immunomodulating Agents/therapeutic use , Immunomodulating Agents/chemistry , Complementary Therapies/methods , Biological Products/pharmacology , Biological Products/therapeutic use , Biological Products/chemistry
14.
Adv Exp Med Biol ; 1451: 331-336, 2024.
Article in English | MEDLINE | ID: mdl-38801588

ABSTRACT

Poxviruses belong to the family of double-stranded DNA viruses, and it is pathogenic for humans and spread worldwide. These viruses cause infections and various diseases in human. So, it is required to develop new drugs for the treatment of smallpox or other poxvirus infections. Very few potential compounds for the treatment of poxvirus such as smallpox, chickenpox, and monkeypox have been reported. Most of the compounds has used as vaccines. Cidofovir is most commonly used as a vaccine for the treatment of poxviruses. There are no phytochemicals reported for the treatment of poxviruses. Very few phytochemicals are under investigation for the treatment of poxviruses.


Subject(s)
Antiviral Agents , Poxviridae , Antiviral Agents/pharmacology , Antiviral Agents/therapeutic use , Humans , Poxviridae/drug effects , Poxviridae/physiology , Poxviridae/genetics , Animals , Poxviridae Infections/drug therapy , Poxviridae Infections/virology , Phytochemicals/therapeutic use , Phytochemicals/pharmacology , Phytochemicals/chemistry
15.
Adv Exp Med Biol ; 1451: 399-412, 2024.
Article in English | MEDLINE | ID: mdl-38801593

ABSTRACT

Historically, biological agents have been used to target various populations. One of the earliest examples could be the catastrophic effect of smallpox in Australia in the eighteenth century (as alleged by some historians). Modern biological techniques can be used to both create or provide protection against various agents of biological warfare. Any microorganism (viruses, bacteria, and fungi) or its toxins can be used as biological agents. Minnesota Department of Health has listed Smallpox (variola major) as a category A bioterrorism agent, even though it has been eradicated in 1980 through an extensive vaccination campaign. Category A agents are considered the highest risk to public health. Laboratory-associated outbreaks of poxviruses could cause unprecedented occupational hazards. Only two WHO-approved BSL-4 facilities in the United States and Russia are allowed to perform research on the variola virus. So, poxviruses present themselves as a classical case of a dual-use dilemma, since research with them can be used for both beneficial and harmful purposes. Although the importance of ethics in scientific research requires no further elaboration, ethical norms assume greater significance during experimentation with poxviruses. In this chapter, we will update the readers on the sensitive nature of conducting research with poxviruses, and how these viruses can be a source of potential biological weapons. Finally, specified ethical guidelines are explored to ensure safe research practices in virology.


Subject(s)
Biological Warfare Agents , Biological Warfare , Humans , Biological Warfare Agents/ethics , Biological Warfare/ethics , Poxviridae/genetics , Bioterrorism/ethics , Bioterrorism/prevention & control , Animals , Smallpox/prevention & control , Smallpox/virology , Poxviridae Infections/virology , Poxviridae Infections/prevention & control , Biomedical Research/ethics
16.
PLoS One ; 19(5): e0300778, 2024.
Article in English | MEDLINE | ID: mdl-38758816

ABSTRACT

Mpox (formerly known as monkeypox) virus and some related poxviruses including smallpox virus pose a significant threat to public health, and effective prevention and treatment strategies are needed. This study utilized a reverse vaccinology approach to retrieve conserved epitopes for monkeypox virus and construct a vaccine that could provide cross-protection against related viruses with similar antigenic properties. The selected virulent proteins of monkeypox virus, MPXVgp165, and Virion core protein P4a, were subjected to epitope mapping for vaccine construction. Two vaccines were constructed using selected T cell epitopes and B cell epitopes with PADRE and human beta-defensins adjuvants conjugated in the vaccine sequence. Both constructs were found to be highly antigenic, non-allergenic, nontoxic, and soluble, suggesting their potential to generate an adequate immune response and be safe for humans. Vaccine construct 1 was selected for molecular dynamic simulation studies. The simulation studies revealed that the TLR8-vaccine complex was more stable than the TLR3-vaccine complex. The lower RMSD and RMSF values of the TLR8 bound vaccine compared to the TLR3 bound vaccine suggested better stability and consistency of hydrogen bonds. The Rg values of the vaccine chain bound to TLR8 indicated overall stability, whereas the vaccine chain bound to TLR3 showed deviations throughout the simulation. These results suggest that the constructed vaccine could be a potential preventive measure against monkeypox and related viruses however, further experimental validation is required to confirm these findings.


Subject(s)
Molecular Dynamics Simulation , Monkeypox virus , Humans , Monkeypox virus/immunology , Epitopes, T-Lymphocyte/immunology , Epitopes, T-Lymphocyte/chemistry , Epitopes, B-Lymphocyte/immunology , Epitopes, B-Lymphocyte/chemistry , Computer Simulation , Poxviridae/immunology , Viral Vaccines/immunology , Epitope Mapping , Mpox (monkeypox)/prevention & control , Mpox (monkeypox)/immunology , Animals , Toll-Like Receptor 8/immunology
17.
Structure ; 32(6): 654-661.e3, 2024 Jun 06.
Article in English | MEDLINE | ID: mdl-38579705

ABSTRACT

There are three key components at the core of the mpox virus (MPXV) DNA polymerase holoenzyme: DNA polymerase F8, processivity factors A22, and the Uracil-DNA glycosylase E4. The holoenzyme is recognized as a vital antiviral target because MPXV replicates in the cytoplasm of host cells. Nucleotide analogs such as cidofovir and cytarabine (Ara-C) have shown potential in curbing MPXV replication and they also display promise against other poxviruses. However, the mechanism behind their inhibitory effects remains unclear. Here, we present the cryo-EM structure of the DNA polymerase holoenzyme F8/A22/E4 bound with its competitive inhibitor Ara-C-derived cytarabine triphosphate (Ara-CTP) at an overall resolution of 3.0 Å and reveal its inhibition mechanism. Ara-CTP functions as a direct chain terminator in proximity to the deoxycytidine triphosphate (dCTP)-binding site. The extra hydrogen bond formed with Asn665 makes it more potent in binding than dCTP. Asn665 is conserved among eukaryotic B-family polymerases.


Subject(s)
Cryoelectron Microscopy , DNA-Directed DNA Polymerase , Models, Molecular , DNA-Directed DNA Polymerase/chemistry , DNA-Directed DNA Polymerase/metabolism , Binding Sites , Protein Binding , Holoenzymes/chemistry , Holoenzymes/metabolism , Viral Proteins/chemistry , Viral Proteins/metabolism , Antiviral Agents/chemistry , Antiviral Agents/pharmacology , Poxviridae/chemistry , Poxviridae/genetics , Poxviridae/metabolism , Cytidine Triphosphate/metabolism , Cytidine Triphosphate/chemistry
18.
Nat Commun ; 15(1): 3059, 2024 Apr 18.
Article in English | MEDLINE | ID: mdl-38637500

ABSTRACT

The 2023 monkeypox (mpox) epidemic was caused by a subclade IIb descendant of a monkeypox virus (MPXV) lineage traced back to Nigeria in 1971. Person-to-person transmission appears higher than for clade I or subclade IIa MPXV, possibly caused by genomic changes in subclade IIb MPXV. Key genomic changes could occur in the genome's low-complexity regions (LCRs), which are challenging to sequence and are often dismissed as uninformative. Here, using a combination of highly sensitive techniques, we determine a high-quality MPXV genome sequence of a representative of the current epidemic with LCRs resolved at unprecedented accuracy. This reveals significant variation in short tandem repeats within LCRs. We demonstrate that LCR entropy in the MPXV genome is significantly higher than that of single-nucleotide polymorphisms (SNPs) and that LCRs are not randomly distributed. In silico analyses indicate that expression, translation, stability, or function of MPXV orthologous poxvirus genes (OPGs), including OPG153, OPG204, and OPG208, could be affected in a manner consistent with the established "genomic accordion" evolutionary strategies of orthopoxviruses. We posit that genomic studies focusing on phenotypic MPXV differences should consider LCR variability.


Subject(s)
Mpox (monkeypox) , Orthopoxvirus , Poxviridae , Humans , Monkeypox virus/genetics , Genomics , Mpox (monkeypox)/genetics
19.
Dis Aquat Organ ; 158: 55-64, 2024 Apr 25.
Article in English | MEDLINE | ID: mdl-38661137

ABSTRACT

Cetacean poxvirus (CePV) is the causative agent of tattoo skin disease (TSD) in dolphins, porpoises and whales, a condition characterized by pinhole, ring-like lesions or generalized tattoo-like skin lesions. This study genetically characterized cetacean poxviruses from stranded animals along mainland Portugal. Samples from skin lesions compatible with TSD were obtained from 4 odontocete species (Delphinus delphis, Stenella coeruleoalba, Phocoena phocoena, and Tursiops truncatus) and analyzed using a conventional PCR assay targeting the DNA polymerase gene partially. Among the positive samples (n = 29, 65.9%), a larger DNA polymerase gene fragment was obtained, allowing a robust phylogenetic analysis. Nineteen samples (43.2%) were successfully amplified and sequenced using Sanger sequencing. By combining 11 of these sequences with those from public databases, a maximum likelihood phylogenetic tree was constructed, revealing high heterogeneity within the group. These findings contribute to a better understanding of the genetic diversity, epidemiology, phylogenetics, and evolution of CePV.


Subject(s)
Cetacea , Phylogeny , Poxviridae Infections , Poxviridae , Animals , Portugal/epidemiology , Poxviridae/genetics , Poxviridae/isolation & purification , Poxviridae/classification , Poxviridae Infections/veterinary , Poxviridae Infections/virology , Poxviridae Infections/epidemiology , Cetacea/virology
20.
Biochem Biophys Res Commun ; 712-713: 149933, 2024 Jun 18.
Article in English | MEDLINE | ID: mdl-38640730

ABSTRACT

BEND family transcription factors directly interact with DNA through BEN domains and have been found across metazoan species. Interestingly, certain insect and mammalian viruses have also hijacked Bend genes into their genome. However, the phylogenetic classification and evolution of these viral BEN domains remain unclear. Building on our previous finding that in silico method accurately determine the 3D model of BEN domains, we used AlphaFold2 to predict the tertiary structures of poxviral BEN domains for comprehensive homologous comparison. We revealed that the majority of poxviral BEN modules exhibit characteristics of type II BEN. Additionally, electrostatic surface potential analysis found various poxviral BEN domains, including the first BEN of OPG067 in Orthopoxvirus, the third BEN of OPG067 in Yatapoxvirus and the third BEN of MC036R in MCV, have positively charged protein surfaces, indicating a structural basis for DNA loading. Notably, MC036R shares structural resemblance with human BEND3, as they both contain four BEN domains and an intrinsically disordered region. In summary, our discoveries provide deeper insights into the functional roles of BEN proteins within poxviruses.


Subject(s)
Poxviridae , Protein Domains , Viral Proteins , Poxviridae/genetics , Poxviridae/chemistry , Viral Proteins/chemistry , Viral Proteins/genetics , Viral Proteins/metabolism , Amino Acid Sequence , Models, Molecular , Humans , Structural Homology, Protein , Phylogeny , Transcription Factors/chemistry , Transcription Factors/genetics , Transcription Factors/metabolism
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