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2.
J Med Virol ; 96(6): e29707, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38932451

ABSTRACT

Coxsackievirus B1 (CVB1), an enterovirus with multiple clinical presentations, has been associated with potential long-term consequences, including hand, foot, and mouth disease (HFMD), in some patients. However, the related animal models, transmission dynamics, and long-term tissue tropism of CVB1 have not been systematically characterized. In this study, we established a model of CVB1 respiratory infection in rhesus macaques and evaluated the clinical symptoms, viral load, and immune levels during the acute phase (0-14 days) and long-term recovery phase (15-30 days). We also investigated the distribution, viral clearance, and pathology during the long-term recovery period using 35 postmortem rhesus macaque tissue samples collected at 30 days postinfection (d.p.i.). The results showed that the infected rhesus macaques were susceptible to CVB1 and exhibited HFMD symptoms, viral clearance, altered cytokine levels, and the presence of neutralizing antibodies. Autopsy revealed positive viral loads in the heart, spleen, pancreas, soft palate, and olfactory bulb tissues. HE staining demonstrated pathological damage to the liver, spleen, lung, soft palate, and tracheal epithelium. At 30 d.p.i., viral antigens were detected in visceral, immune, respiratory, and muscle tissues but not in intestinal or neural tissues. Brain tissue examination revealed viral meningitis-like changes, and CVB1 antigen expression was detected in occipital, pontine, cerebellar, and spinal cord tissues at 30 d.p.i. This study provides the first insights into CVB1 pathogenesis in a nonhuman primate model of HFMD and confirms that CVB1 exhibits tissue tropism following long-term infection.


Subject(s)
Disease Models, Animal , Enterovirus B, Human , Hand, Foot and Mouth Disease , Macaca mulatta , Viral Load , Viral Tropism , Animals , Hand, Foot and Mouth Disease/virology , Hand, Foot and Mouth Disease/pathology , Enterovirus B, Human/physiology , Enterovirus B, Human/pathogenicity , Antibodies, Viral/blood , Antibodies, Neutralizing/blood , Antibodies, Neutralizing/immunology , Animals, Newborn , Cytokines/metabolism
3.
Front Cell Infect Microbiol ; 14: 1393680, 2024.
Article in English | MEDLINE | ID: mdl-38938877

ABSTRACT

Hand, foot, and mouth disease (HFMD) is a common infectious disease caused by enterovirus 71 (EV71) that frequently affects children, leading to severe infections in some cases. In general, when infection occurs, the body upregulates inflammatory responses to eliminate pathogenic microorganisms to protect the host from infection. However, EV71 may inhibit host's innate immunity to promote virus infection. At present, it is not fully understood how EV71 hijack the host cells for its own replication. Toll-like receptor 4 (TLR4), a natural immune receptor, historically associated with bacterial endotoxin-induced inflammatory responses. However, it is still unclear whether and how TLR4 is altered during EV71 infection. In this study, we observed a reduction in both TLR4 protein and gene transcript levels in RD, GES-1, and Vero cells following EV71 infection, as detected by RT-qPCR, immunofluorescence staining and western blot. Furthermore, we observed that the TLR4 downstream molecules of MYD88, p-NF-κB p65, p-TBK1 and related inflammatory cytokines were also reduced, suggesting that antiviral innate immune and inflammatory response were suppressed. To determine the impact of TLR4 changes on EV71 infection, we interfered EV71-infected RD cells with TLR4 agonist or inhibitor and the results showed that activation of TLR4 inhibited EV71 replication, while inhibition of TLR4 promote EV71 replication. Besides, EV71 replication was also promoted in TLR4 siRNA-transfected and EV71-infected RD cells. This suggests that down-regulation the expression of TLR4 by EV71 can inhibit host immune defense to promote EV71 self-replication. This novel mechanism may be a strategy for EV71 to evade host immunity.


Subject(s)
Enterovirus A, Human , Immunity, Innate , Signal Transduction , Toll-Like Receptor 4 , Virus Replication , Toll-Like Receptor 4/metabolism , Toll-Like Receptor 4/genetics , Enterovirus A, Human/immunology , Humans , Animals , Vero Cells , Chlorocebus aethiops , Host-Pathogen Interactions/immunology , Inflammation/metabolism , Inflammation/immunology , Myeloid Differentiation Factor 88/metabolism , Myeloid Differentiation Factor 88/genetics , Cell Line , Protein Serine-Threonine Kinases/metabolism , Protein Serine-Threonine Kinases/genetics , Cytokines/metabolism , NF-kappa B/metabolism , Hand, Foot and Mouth Disease/immunology , Hand, Foot and Mouth Disease/virology
4.
Viruses ; 16(6)2024 May 24.
Article in English | MEDLINE | ID: mdl-38932128

ABSTRACT

This study was conducted to efficiently produce virus-like particles (VLPs) of enterovirus 71 (EV71), a causative virus of hand, foot, and mouth disease (HFMD). The expression level of the P1 precursor, a structural protein of EV71, was modified to increase VLP production, and the optimal expression level and duration of the 3CD protein for P1 cleavage were determined. The expression level and duration of 3CD were controlled by the p10 promoter, which was weakened by repeated burst sequence (BS) applications, as well as the OpIE2 promoter, which was weakened by the insertion of random untranslated region sequences of various lengths. The cleavage and production efficiency of the P1 precursor were compared based on the expression time and level of 3CD, revealing that the p10-BS5 promoter with four repeated BSs was the most effective. When P1 and 3CD were expressed using the hyperexpression vector and the p10-BS5 promoter, high levels of structural protein production and normal HFMD-VLP formation were observed, respectively. This study suggests that the production efficiency of HFMD-VLPs can be significantly enhanced by increasing the expression of the P1 precursor and controlling the amount and duration of 3CD expression.


Subject(s)
Enterovirus A, Human , Promoter Regions, Genetic , Enterovirus A, Human/genetics , Enterovirus A, Human/physiology , Animals , Viral Proteins/genetics , Viral Proteins/metabolism , Humans , Hand, Foot and Mouth Disease/virology , Cell Line , Sf9 Cells , Genetic Vectors/genetics
5.
Int J Mol Sci ; 25(11)2024 May 23.
Article in English | MEDLINE | ID: mdl-38891876

ABSTRACT

Enterovirus A71 (EV-A71) is a major pathogen causing hand, foot, and mouth disease (HFMD) in children worldwide. It can lead to severe gastrointestinal, pulmonary, and neurological complications. The innate immune system, which rapidly detects pathogens via pathogen-associated molecular patterns or pathogen-encoded effectors, serves as the first defensive line against EV-A71 infection. Concurrently, the virus has developed various sophisticated strategies to evade host antiviral responses and establish productive infection. Thus, the virus-host interactions and conflicts, as well as the ability to govern biological events at this first line of defense, contribute significantly to the pathogenesis and outcomes of EV-A71 infection. In this review, we update recent progress on host innate immune responses to EV-A71 infection. In addition, we discuss the underlying strategies employed by EV-A71 to escape host innate immune responses. A better understanding of the interplay between EV-A71 and host innate immunity may unravel potential antiviral targets, as well as strategies that can improve patient outcomes.


Subject(s)
Enterovirus A, Human , Enterovirus Infections , Host-Pathogen Interactions , Immune Evasion , Immunity, Innate , Humans , Immune Evasion/immunology , Enterovirus A, Human/immunology , Enterovirus A, Human/pathogenicity , Host-Pathogen Interactions/immunology , Enterovirus Infections/immunology , Enterovirus Infections/virology , Animals , Hand, Foot and Mouth Disease/immunology , Hand, Foot and Mouth Disease/virology
6.
J Exp Med ; 221(8)2024 Aug 05.
Article in English | MEDLINE | ID: mdl-38836810

ABSTRACT

Coxsackievirus A10 (CV-A10) infection, a prominent cause of childhood hand-foot-and-mouth disease (HFMD), frequently manifests with the intriguing phenomenon of onychomadesis, characterized by nail shedding. However, the underlying mechanism is elusive. Here, we found that CV-A10 infection in mice could suppress Wnt/ß-catenin signaling by restraining LDL receptor-related protein 6 (LRP6) phosphorylation and ß-catenin accumulation and lead to onychomadesis. Mechanistically, CV-A10 mimics Dickkopf-related protein 1 (DKK1) to interact with Kringle-containing transmembrane protein 1 (KRM1), the CV-A10 cellular receptor. We further found that Wnt agonist (GSK3ß inhibitor) CHIR99021 can restore nail stem cell differentiation and protect against nail shedding. These findings provide novel insights into the pathogenesis of CV-A10 and related viruses in onychomadesis and guide prognosis assessment and clinical treatment of the disease.


Subject(s)
Intercellular Signaling Peptides and Proteins , Low Density Lipoprotein Receptor-Related Protein-6 , Wnt Signaling Pathway , Animals , Wnt Signaling Pathway/drug effects , Low Density Lipoprotein Receptor-Related Protein-6/metabolism , Low Density Lipoprotein Receptor-Related Protein-6/genetics , Mice , Intercellular Signaling Peptides and Proteins/metabolism , Intercellular Signaling Peptides and Proteins/genetics , Humans , beta Catenin/metabolism , Nail Diseases/metabolism , Nail Diseases/virology , Nail Diseases/pathology , Nails/metabolism , Nails/pathology , Cell Differentiation/drug effects , Mice, Inbred C57BL , Hand, Foot and Mouth Disease/virology , Hand, Foot and Mouth Disease/metabolism , Hand, Foot and Mouth Disease/pathology , Hand, Foot and Mouth Disease/complications , Phosphorylation/drug effects , Coxsackievirus Infections/complications , Coxsackievirus Infections/metabolism , Glycogen Synthase Kinase 3 beta/metabolism , Pyridines/pharmacology , Pyrimidines
7.
Emerg Microbes Infect ; 13(1): 2361814, 2024 Dec.
Article in English | MEDLINE | ID: mdl-38828746

ABSTRACT

Echovirus 11 (E11) has gained attention owing to its association with severe neonatal infections. From 2018 to 2023, a surge in severe neonatal cases and fatalities linked to a novel variant of genotype D5 was documented in China, France, and Italy. However, the prevention and control of E11 variants have been hampered by limited background data on the virus circulation and genetic variance. Therefore, the present study investigated the circulating dynamics of E11 and the genetic variation and molecular evolution of genotype D5 through the collection of strains from the national acute flaccid paralysis (AFP) and hand, foot, and mouth disease (HFMD) surveillance system in China during 2000-2022 and genetic sequences published in the GenBank database. The results of this study revealed a prevalent dynamic of E11 circulation, with D5 being the predominant genotype worldwide. Further phylogenetic analysis of genotype D5 indicated that it could be subdivided into three important geographic clusters (D5-CHN1: 2014-2019, D5-CHN2: 2016-2022, and D5-EUR: 2022-2023). Additionally, variant-specific (144) amino acid mutation sites and positive-selection pressure sites (132, 262) were identified in the VP1 region. Cluster-specific recombination patterns were also identified, with CVB5, E6, and CVB4 as the major recombinant viruses. These findings provide a preliminary landscape of E11 circulation worldwide and basic scientific data for further study of the pathogenicity of E11 variants.


Subject(s)
Enterovirus B, Human , Evolution, Molecular , Genetic Variation , Genotype , Phylogeny , China/epidemiology , Humans , Enterovirus B, Human/genetics , Enterovirus B, Human/classification , Enterovirus B, Human/isolation & purification , Infant, Newborn , Echovirus Infections/virology , Echovirus Infections/epidemiology , Hand, Foot and Mouth Disease/virology , Hand, Foot and Mouth Disease/epidemiology , Infant
8.
Front Public Health ; 12: 1377861, 2024.
Article in English | MEDLINE | ID: mdl-38751577

ABSTRACT

Background: Hand, foot, and mouth disease (HFMD) is a common infectious disease in children. Enterovirus A71 (EV71) and coxsackievirus A16 (CA16) have been identified as the predominant pathogens for several decades. In recent years, coxsackievirus A6 (CA6) and coxsackievirus A10 (CA10) have played increasingly important roles in a series of HFMD outbreaks. We performed a retrospective analysis of the epidemiology of HFMD and the spectrum of different viral serotypes, to elucidate the genetic and phylogenetic characteristics of the main serotypes in the Jiashan area during 2016 to 2022. Methods: Descriptive epidemiological methods were used to analyze the time and population distribution of HFMD in Jiashan during 2016 to 2022 based on surveillance data. Molecular diagnostic methods were performed to identify the viral serotypes and etiological characteristics of HFMD. Phylogenetic analyses was based on VP1 region of CA16 and CA6. Results: The average annual incidence rate of HFMD fluctuated from 2016 to 2022. Children aged 1-5 years accounted for 81.65% of cases and boys were more frequently affected than girls. Except when HFMD was affected by the COVID-19 epidemic in 2020 and 2022, epidemics usually peak in June to July, followed by a small secondary peak from October to December and a decline in February. Urban areas had a high average incidence and rural areas had the lowest. Among 560 sample collected in Jiashan, 472 (84.29%) were positive for enterovirus. The most frequently identified serotypes were CA6 (296, 52.86%), CA16 (102, 18.21%), EV71 (16, 2.86%), CA10 (14, 2.50%) and other enteroviruses (44, 7.86%). There were 71 and 142 VP1 sequences from CA16 and CA6, respectively. Substitution of N218D, A220L and V251I was detected in CA16 and may have been related to viral infectivity. Phylogenetic analysis showed that CA16 could be assigned to two genogroups, B1a and B1b, while all the CA6 sequences belonged to the D3a genogroup. Conclusion: CA6 and CA16 were the two major serotypes of enteroviruses circulating in the Jiashan area during 2016 to 2022. Continuous and comprehensive surveillance for HFMD is needed to better understand and evaluate the prevalence and evolution of the associated pathogens.


Subject(s)
Hand, Foot and Mouth Disease , Phylogeny , Hand, Foot and Mouth Disease/epidemiology , Hand, Foot and Mouth Disease/virology , Humans , China/epidemiology , Male , Female , Child, Preschool , Infant , Retrospective Studies , Child , Incidence , Enterovirus/genetics , Enterovirus/isolation & purification , Enterovirus/classification , Serogroup , Disease Outbreaks/statistics & numerical data , Adolescent
9.
Virol J ; 21(1): 122, 2024 May 30.
Article in English | MEDLINE | ID: mdl-38816865

ABSTRACT

Hand, Foot and Mouth Disease (HFMD) is a highly contagious viral illness primarily affecting children globally. A significant epidemiological transition has been noted in mainland China, characterized by a substantial increase in HFMD cases caused by non-Enterovirus A71 (EV-A71) and non-Coxsackievirus A16 (CVA16) enteroviruses (EVs). Our study conducts a retrospective examination of 36,461 EV-positive specimens collected from Guangdong, China, from 2013 to 2021. Epidemiological trends suggest that, following 2013, Coxsackievirus A6 (CVA6) and Coxsackievirus A10 (CVA10) have emerged as the primary etiological agents for HFMD. In stark contrast, the incidence of EV-A71 has sharply declined, nearing extinction after 2018. Notably, cases of CVA10 infection were considerably younger, with a median age of 1.8 years, compared to 2.3 years for those with EV-A71 infections, possibly indicating accumulated EV-A71-specific herd immunity among young children. Through extensive genomic sequencing and analysis, we identified the N136D mutation in the 2 A protein, contributing to a predominant subcluster within genogroup C of CVA10 circulating in Guangdong since 2017. Additionally, a high frequency of recombination events was observed in genogroup F of CVA10, suggesting that the prevalence of this lineage might be underrecognized. The dynamic landscape of EV genotypes, along with their potential to cause outbreaks, underscores the need to broaden surveillance efforts to include a more diverse spectrum of EV genotypes. Moreover, given the shifting dominance of EV genotypes, it may be prudent to re-evaluate and optimize existing vaccination strategies, which are currently focused primarily target EV-A71.


Subject(s)
Genome, Viral , Genotype , Hand, Foot and Mouth Disease , Phylogeny , China/epidemiology , Humans , Hand, Foot and Mouth Disease/epidemiology , Hand, Foot and Mouth Disease/virology , Child, Preschool , Infant , Retrospective Studies , Female , Male , Child , Molecular Epidemiology , Enterovirus/genetics , Enterovirus/classification , Enterovirus/isolation & purification , Enterovirus A, Human/genetics , Enterovirus A, Human/isolation & purification , Genomics , Incidence , Adolescent , Enterovirus Infections/epidemiology , Enterovirus Infections/virology
10.
J Clin Virol ; 173: 105691, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38749308

ABSTRACT

BACKGROUND: The increasing incidence of hand, foot, and mouth disease (HFMD) associated with Coxsackievirus A6 (CVA6) has become a very significant public health problem. The aim of this study is to investigate the recombination, geographic transmission, and evolutionary characteristics of the global CVA6. METHODS: From 2019 to 2022, 73 full-length CVA6 sequences were obtained from HFMD patients in China and analyzed in combination with 1032 published whole genome sequences. Based on this dataset, the phylogenetic features, recombinant diversity, Bayesian phylodynamic characteristics, and key amino acid variations in CVA6 were analyzed. RESULTS: The four genotypes of CVA6, A, D, E, and F, are divided into 24 recombinant forms (RFs, RF-A - RF-X) based on differences in the P3 coding region. The eastern China region plays a key role in the dissemination of CVA6 in China. VP1-137 and VP1-138 are located in the DE loop on the surface of the CVA6 VP1 protein, with the former being a highly variable site and the latter having more non-synonymous substitutions. CONCLUSIONS: Based on whole genome sequences, this study contributes to the CVA6 monitoring, early warning, and the pathogenic mechanism by studying recombination diversity, geographical transmission characteristics, and the variation of important amino acid sites.


Subject(s)
Evolution, Molecular , Genotype , Hand, Foot and Mouth Disease , Phylogeny , Recombination, Genetic , Humans , China/epidemiology , Hand, Foot and Mouth Disease/virology , Hand, Foot and Mouth Disease/epidemiology , Genome, Viral , Whole Genome Sequencing , Enterovirus/genetics , Enterovirus/classification , Enterovirus/isolation & purification , Genetic Variation , Bayes Theorem
11.
Viruses ; 16(4)2024 04 08.
Article in English | MEDLINE | ID: mdl-38675915

ABSTRACT

The enterovirus A71 (EV71) inactivated vaccine is an effective intervention to control the spread of the virus and prevent EV71-associated hand, foot, and mouth disease (HFMD). It is widely administered to infants and children in China. The empty particles (EPs) and full particles (FPs) generated during production have different antigenic and immunogenic properties. However, the antigen detection methods currently used were established without considering the differences in antigenicity between EPs and FPs. There is also a lack of other effective analytical methods for detecting the different particle forms, which hinders the consistency between batches of products. In this study, we analyzed the application of sedimentation velocity analytical ultracentrifugation (SV-AUC) in characterizing the EPs and FPs of EV71. Our results showed that the proportions of the two forms could be quantified simultaneously by SV-AUC. We also determined the repeatability and accuracy of this method and found that both parameters were satisfactory. We assessed SV-AUC for bulk vaccine quality control, and our findings indicated that SV-AUC can be used effectively to analyze the percentage of EPs and FPs and monitor the consistency of the process to ensure the quality of the vaccine.


Subject(s)
Enterovirus A, Human , Ultracentrifugation , Enterovirus A, Human/immunology , Enterovirus A, Human/isolation & purification , Ultracentrifugation/methods , Humans , Viral Vaccines/immunology , Vaccines, Inactivated/immunology , Virion/immunology , Virion/isolation & purification , Hand, Foot and Mouth Disease/virology , Hand, Foot and Mouth Disease/prevention & control , China , Quality Control
13.
Virol Sin ; 39(2): 290-300, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38331038

ABSTRACT

Coxsackievirus B3 (CVB3) is the pathogen causing hand, foot and mouth disease (HFMD), which manifests across a spectrum of clinical severity from mild to severe. However, CVB3-infected mouse models mainly demonstrate viral myocarditis and pancreatitis, failing to replicate human HFMD symptoms. Although several enteroviruses have been evaluated in Syrian hamsters and rhesus monkeys, there is no comprehensive data on CVB3. In this study, we have first tested the susceptibility of Syrian hamsters to CVB3 infection via different routes. The results showed that Syrian hamsters were successfully infected with CVB3 by intraperitoneal injection or nasal drip, leading to nasopharyngeal colonization, acute severe pathological injury, and typical HFMD symptoms. Notably, the nasal drip group exhibited a longer viral excretion cycle and more severe pathological damage. In the subsequent study, rhesus monkeys infected with CVB3 through nasal drips also presented signs of HFMD symptoms, viral excretion, serum antibody conversion, viral nucleic acids and antigens, and the specific organ damages, particularly in the heart. Surprisingly, there were no significant differences in myocardial enzyme levels, and the clinical symptoms resembled those often associated with common, mild infections. In summary, the study successfully developed severe Syrian hamsters and mild rhesus monkey models for CVB3-induced HFMD. These models could serve as a basis for understanding the disease pathogenesis, conducting pre-trial prevention and evaluation, and implementing post-exposure intervention.


Subject(s)
Disease Models, Animal , Enterovirus B, Human , Hand, Foot and Mouth Disease , Macaca mulatta , Mesocricetus , Animals , Hand, Foot and Mouth Disease/virology , Hand, Foot and Mouth Disease/pathology , Enterovirus B, Human/pathogenicity , Antibodies, Viral/blood , Cricetinae , Female , Virus Shedding , Nasopharynx/virology , Male
14.
J Cell Biol ; 222(12)2023 12 04.
Article in English | MEDLINE | ID: mdl-37906052

ABSTRACT

Enterovirus 71 (EV71) and Coxsackie A16 (CVA16) are two major causative agents of hand, foot, and mouth disease (HFMD) in young children. However, the mechanisms regulating the replication and pathogenesis of EV71/CVA16 remain incompletely understood. We performed a genome-wide CRISPR-Cas9 knockout screen and identified Ragulator as a mediator of EV71-induced apoptosis and pyroptosis. The Ragulator-Rag complex is required for EV71 and CVA16 replication. Upon infection, the Ragulator-Rag complex recruits viral 3D protein to the lysosomal surface through the interaction between 3D and RagB. Disruption of the lysosome-tethered Ragulator-Rag-3D complex significantly impairs the replication of EV71/CVA16. We discovered a novel EV71 inhibitor, ZHSI-1, which interacts with 3D and significantly reduces the lysosomal tethering of 3D. ZHSI-1 treatment significantly represses replication of EV71/CVA16 as well as virus-induced pyroptosis associated with viral pathogenesis. Importantly, ZHSI-1 treatment effectively protects against EV71 infection in neonatal and young mice. Thus, our study indicates that targeting lysosome-tethered Ragulator-Rag-3D may be an effective therapeutic strategy for HFMD.


Subject(s)
Enterovirus A, Human , Hand, Foot and Mouth Disease , Viral Nonstructural Proteins , Animals , Mice , Apoptosis , CRISPR-Cas Systems , Enterovirus A, Human/genetics , Lysosomes , Pyroptosis , Viral Nonstructural Proteins/genetics , Virus Replication , Hand, Foot and Mouth Disease/virology , Disease Models, Animal
15.
J Virol ; 97(11): e0107523, 2023 Nov 30.
Article in English | MEDLINE | ID: mdl-37847581

ABSTRACT

IMPORTANCE: Coxsackievirus A6 (CV-A6) is a major emerging pathogen associated with atypical hand, foot, and mouth disease and can cause serious complications such as encephalitis, acute flaccid paralysis, and neurorespiratory syndrome. Therefore, revealing the associated pathogenic mechanisms could benefit the control of CV-A6 infections. In this study, we demonstrate that the nonstructural 2CCV-A6 suppresses IFN-ß production, which supports CV-A6 infection. This is achieved by depleting RNA sensors such as melanoma differentiation-associated gene 5 and retinoic acid-inducible gene I (RIG-I) through the lysosomal pathway. Such a function is shared by 2CEV-A71 and 2CCV-B3 but not 2CCV-A16, suggesting the latter might have an alternative way to promote viral replication. This study broadens our understanding of enterovirus 2C protein regulation of the RIG-I-like receptor signaling pathway and reveals a novel mechanism by which CV-A6 and other enteroviruses evade the host innate immune response. These findings on 2C may provide new therapeutic targets for the development of effective inhibitors against CV-A6 and other enterovirus infections.


Subject(s)
Coxsackievirus Infections , Humans , Enterovirus A, Human/genetics , Enterovirus Infections/metabolism , Enterovirus Infections/virology , Hand, Foot and Mouth Disease/virology , Immunity, Innate , Coxsackievirus Infections/metabolism , Coxsackievirus Infections/virology , Interferon-beta/metabolism
16.
Curr Microbiol ; 79(9): 247, 2022 Jul 14.
Article in English | MEDLINE | ID: mdl-35834056

ABSTRACT

Noncoding RNAs (ncRNAs) represent the largest and main transcriptome products and play various roles in the biological activity of cells and pathological processes. Accumulating evidence shows that microRNA (miRNA), long non-coding RNA (lncRNA), and circular RNA (circRNA) are important ncRNAs that play vital regulatory roles during viral infection. Hand-foot-mouth disease (HFMD) virus causes hand-foot-mouth disease, and is also associated with various serious complications and high mortality. However, there is currently no effective treatment. In this review, we focus on advances in the understanding of the modulatory role of ncRNAs during HFMD virus infection. Specifically, we discuss the generation, classification, and regulatory mechanisms of miRNA, lncRNA, and circRNA in the interaction between virus and host, with a particular focus on their influence with viral replication and infection. Analysis of these underlying mechanisms can help provide a foundation for the development of ncRNA-based antiviral therapies.


Subject(s)
Hand, Foot and Mouth Disease , Host Microbial Interactions , MicroRNAs , RNA, Untranslated , Hand, Foot and Mouth Disease/genetics , Hand, Foot and Mouth Disease/virology , Host Microbial Interactions/genetics , Humans , MicroRNAs/genetics , RNA, Circular , RNA, Long Noncoding/genetics , RNA, Untranslated/genetics , Viruses/genetics
17.
J Virol ; 96(15): e0056122, 2022 08 10.
Article in English | MEDLINE | ID: mdl-35867561

ABSTRACT

Enterovirus A71 (EV-A71) is a human pathogen that causes hand, foot, and mouth disease, which can progress to severe neurological disease. EV-A71 infects humans via the human scavenger receptor B2 (hSCARB2). It can also infect neonatal mice experimentally. Wild-type (WT) EV-A71 strains replicate primarily in the muscle of neonatal mice; however, susceptibility lasts only for a week after birth. Mouse-adapted (MA) strains, which can be obtained by serial passages in neonatal mice, are capable of infecting both muscle and neurons of the central nervous system. It is not clear how the host range and tropism of EV-A71 are regulated and why neonatal mice lose their susceptibility during development. We hypothesized that EV-A71 infection in neonatal mice is mediated by mouse Scarb2 (mScarb2) protein. Rhabdomyosarcoma (RD) cells expressing mScarb2 were prepared. Both WT and MA strains infected mScarb2-expressing cells, but the infection efficiency of the WT strain was much lower than that of the MA strain. Infection by WT and MA strains in vivo was abolished completely in Scarb2-/- mice. Scarb2+/- mice, in which Scarb2 expression was approximately half of that in Scarb2+/+ mice, showed a milder pathology than Scarb2+/+ mice after infection with the WT strain. The Scarb2 expression level in muscle decreased with aging, which was consistent with the reduced susceptibility of aged mice to infection. These results indicated that EV-A71 infection is mediated by mScarb2 and that the severity of the disease, the spread of virus, and the susceptibility period are modulated by mScarb2 expression. IMPORTANCE EV-A71 infects humans naturally but can also infect neonatal mice. The tissue tropism and severity of EV-A71 disease are determined by several factors, among which the virus receptor is thought to be important. We show that EV-A71 can infect neonatal mice using mScarb2. However, the infection efficiency of WT strains via mScarb2 is so low that an elevated virus-receptor interaction associated with mouse adaptation mutation and decrease in mScarb2 expression level during development modulate the severity of the disease, the spread of virus, and the susceptibility period in the artificial neonatal mice model.


Subject(s)
CD36 Antigens , Enterovirus A, Human , Lysosomal Membrane Proteins , Receptors, Virus , Animals , Animals, Newborn/metabolism , Animals, Newborn/virology , CD36 Antigens/biosynthesis , CD36 Antigens/metabolism , Disease Models, Animal , Disease Susceptibility , Enterovirus A, Human/metabolism , Enterovirus A, Human/pathogenicity , Hand, Foot and Mouth Disease/metabolism , Hand, Foot and Mouth Disease/transmission , Hand, Foot and Mouth Disease/virology , Host Specificity , Humans , Lysosomal Membrane Proteins/biosynthesis , Lysosomal Membrane Proteins/metabolism , Mice , Receptors, Virus/biosynthesis , Receptors, Virus/metabolism , Viral Tropism , Virulence
19.
Sci Rep ; 12(1): 2293, 2022 02 10.
Article in English | MEDLINE | ID: mdl-35145190

ABSTRACT

Echovirus 9 (E9) belongs to the species Enterovirus B. So far, 12 whole genome sequences of E9 are available in GenBank. In this study, we determined the whole genomic sequences of five E9 strains isolated from the stools of patients with hand-foot-and-mouth disease in Kunming, Yunnan Province, China, in 2019. Their nucleotide and amino acid sequences shared 80.8-80.9% and 96.4-96.8% identity with the prototype Hill strain, respectively, and shared 99.3-99.9% and 99.1-99.8% mutual identity, respectively. Recombination analyses revealed that intertype recombination had occurred in the 2C and 3D regions of the five Yunnan E9 strains with coxsackieviruses B5 and B4, respectively. This study augmented the whole genome sequences of E9 in the GenBank database and extended the molecular characterization of this virus in China.


Subject(s)
Echovirus 9/genetics , Echovirus 9/isolation & purification , Genome, Viral/genetics , Hand, Foot and Mouth Disease/virology , Child, Preschool , China , Databases, Nucleic Acid , Enterovirus B, Human/genetics , Humans , Infant , Phylogeny , Recombination, Genetic , Whole Genome Sequencing
20.
Nat Commun ; 13(1): 890, 2022 02 16.
Article in English | MEDLINE | ID: mdl-35173169

ABSTRACT

Hand, foot and mouth disease (HFMD) caused by Human Enterovirus A71 (HEVA71) infection is typically a benign infection. However, in minority of cases, children can develop severe neuropathology that culminate in fatality. Approximately 36.9% of HEVA71-related hospitalizations develop neurological complications, of which 10.5% are fatal. Yet, the mechanism by which HEVA71 induces these neurological deficits remain unclear. Here, we show that HEVA71-infected astrocytes release CXCL1 which supports viral replication in neurons by activating the CXCR2 receptor-associated ERK1/2 signaling pathway. Elevated CXCL1 levels correlates with disease severity in a HEVA71-infected mice model. In humans infected with HEVA71, high CXCL1 levels are only present in patients presenting neurological complications. CXCL1 release is specifically triggered by VP4 synthesis in HEVA71-infected astrocytes, which then acts via its receptor CXCR2 to enhance viral replication in neurons. Perturbing CXCL1 signaling or VP4 myristylation strongly attenuates viral replication. Treatment with AZD5069, a CXCL1-specific competitor, improves survival and lessens disease severity in infected animals. Collectively, these results highlight the CXCL1-CXCR2 signaling pathway as a potential target against HFMD neuropathogenesis.


Subject(s)
Central Nervous System Diseases/virology , Chemokine CXCL1/metabolism , Enterovirus A, Human/metabolism , Hand, Foot and Mouth Disease/pathology , Receptors, Interleukin-8B/metabolism , Animals , Astrocytes/metabolism , Astrocytes/virology , Cell Line , Central Nervous System Diseases/pathology , Disease Models, Animal , Female , HEK293 Cells , Hand, Foot and Mouth Disease/virology , Humans , MAP Kinase Signaling System/physiology , Mice , Mice, Inbred BALB C , Pyrimidines/pharmacology , Rats , Severity of Illness Index , Sulfonamides/pharmacology
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