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2.
Vet Res ; 55(1): 63, 2024 May 17.
Article in English | MEDLINE | ID: mdl-38760810

ABSTRACT

The maintenance of viral protein homeostasis depends on the interaction between host cell proteins and viral proteins. As a molecular chaperone, heat shock protein 70 (HSP70) has been shown to play an important role in viral infection. Our results showed that HSP70 can affect translation, replication, assembly, and release during the life cycle of duck hepatitis A virus type 1 (DHAV-1). We demonstrated that HSP70 can regulate viral translation by interacting with the DHAV-1 internal ribosome entry site (IRES). In addition, HSP70 interacts with the viral capsid proteins VP1 and VP3 and promotes their stability by inhibiting proteasomal degradation, thereby facilitating the assembly of DHAV-1 virions. This study demonstrates the specific role of HSP70 in regulating DHAV-1 replication, which are helpful for understanding the pathogenesis of DHAV-1 infection and provide additional information about the role of HSP70 in infection by different kinds of picornaviruses, as well as the interaction between picornaviruses and host cells.


Subject(s)
HSP70 Heat-Shock Proteins , Hepatitis Virus, Duck , Internal Ribosome Entry Sites , Virus Replication , Hepatitis Virus, Duck/physiology , Hepatitis Virus, Duck/genetics , HSP70 Heat-Shock Proteins/metabolism , HSP70 Heat-Shock Proteins/genetics , Animals , Viral Structural Proteins/metabolism , Viral Structural Proteins/genetics , Ducks , Poultry Diseases/virology , Picornaviridae Infections/veterinary , Picornaviridae Infections/virology , Picornaviridae Infections/metabolism , Capsid Proteins/metabolism , Capsid Proteins/genetics , Hepatitis, Viral, Animal/virology , Hepatitis, Viral, Animal/metabolism , Protein Biosynthesis
3.
Arch Virol ; 169(6): 125, 2024 May 16.
Article in English | MEDLINE | ID: mdl-38753082

ABSTRACT

Bovine rhinitis B virus (BRBV) (genus Aphthovirus, family Picornaviridae) is a significant etiological agent of the bovine respiratory disease complex. Despite global reports on BRBV, genomic data for Japanese strains are not available. In this study, we aimed to obtain genomic information on BRBV in Japan and analyze its genetic characteristics. In nasal swabs from 66 cattle, BRBV was detected in 6 out of 10 symptomatic and 4 out of 56 asymptomatic cattle. Using metagenomic sequencing and Sanger sequencing, the nearly complete genome sequences of two Japanese BRBV strains, IBA/2211/2 and LAV/238002, from symptomatic and asymptomatic cattle, respectively, were determined. These viruses shared significant genetic similarity with known BRBV strains and exhibited unique mutations and recombination events, indicating dynamic evolution, influenced by regional environmental and biological factors. Notably, the leader gene was only approximately 80% and 90% identical in its nucleotide and amino acid sequence, respectively, to all of the BRBV strains with sequences in the GenBank database, indicating significant genetic divergence in the Japanese BRBV leader gene. These findings provide insights into the genetic makeup of Japanese BRBV strains, enriching our understanding of their genetic diversity and evolutionary mechanisms.


Subject(s)
Aphthovirus , Cattle Diseases , Genome, Viral , Phylogeny , Cattle , Japan/epidemiology , Animals , Genome, Viral/genetics , Cattle Diseases/virology , Aphthovirus/genetics , Aphthovirus/isolation & purification , Aphthovirus/classification , Genetic Variation , Picornaviridae Infections/veterinary , Picornaviridae Infections/virology , Metagenomics
4.
New Microbiol ; 47(1): 60-67, 2024 May.
Article in English | MEDLINE | ID: mdl-38700885

ABSTRACT

Acute respiratory tract infection (ARTI) is common in all age groups, especially in children and the elderly. About 85% of children who present with bronchiolitis are infected with respiratory syncytial virus (RSV); however, nearly one-third are coinfected with another respiratory virus, such as human rhinovirus (HRV). Therefore, it is necessary to explore the immune response to coinfection to better understand the molecular and cellular pathways involving virus-virus interactions that might be modulated by innate immunity and additional host cell response mechanisms. This study aims to investigate the host innate immune response against RSV-HRV coinfection compared with monoinfection. Human primary bronchial/tracheal epithelial cells (HPECs) were infected with RSV, HRV, or coinfected with both viruses, and the infected cells were collected at 48 and 72 hours. Gene expression profiles of IL-6, CCL5, TNF-α, IFN-ß, IFN-λ1, CXCL10, IL-10, IL-13, IRF3, and IRF7 were investigated using real-time quantitative PCR, which revealed that RSV-infected cells exhibited increased expression of IL-10, whereas HRV infection increased the expression of CXCL10, IL-10, and CCL5. IFN-λ1 and CXCL10 expression was significantly different between the coinfection and monoinfection groups. In conclusion, our study revealed that two important cytokines, IFN-λ1 and CXCL10, exhibited increased expression during coinfection.


Subject(s)
Bronchi , Chemokine CXCL10 , Coinfection , Epithelial Cells , Interferon Lambda , Interferons , Interleukins , Picornaviridae Infections , Respiratory Syncytial Virus Infections , Rhinovirus , Humans , Rhinovirus/physiology , Coinfection/virology , Chemokine CXCL10/genetics , Chemokine CXCL10/metabolism , Epithelial Cells/virology , Respiratory Syncytial Virus Infections/immunology , Respiratory Syncytial Virus Infections/virology , Bronchi/virology , Bronchi/cytology , Picornaviridae Infections/virology , Picornaviridae Infections/immunology , Interferons/genetics , Interferons/metabolism , Respiratory Syncytial Virus, Human/physiology , Respiratory Syncytial Virus, Human/genetics , Cells, Cultured , Respiratory Syncytial Viruses/physiology
6.
Sci Rep ; 14(1): 12037, 2024 05 27.
Article in English | MEDLINE | ID: mdl-38802579

ABSTRACT

Canine kobuvirus (CaKoV) is a pathogen associated with canine gastrointestinal disease (GID). This study examined 327 rectal swabs (RS), including 113 from Vietnam (46 healthy, 67 with GID) and 214 from Thailand (107 healthy and 107 with GID). CaKoV was detected in both countries, with prevalences of 28.3% (33/113) in Vietnam and 7.9% (17/214) in Thailand. Additionally, CaKoV was found in both dogs with diarrhea and healthy dogs. CaKoV was mainly found in puppies under six months of age (30.8%). Co-detection with other canine viruses were also observed. The complete coding sequence (CDS) of nine Vietnamese and four Thai CaKoV strains were characterized. Phylogenetic analysis revealed a close genetic relationship between Vietnamese and Thai CaKoV strains, which were related to the Chinese strains. CDS analysis indicated a distinct lineage for two Vietnamese CaKoV strains. Selective pressure analysis on the viral capsid (VP1) region showed negative selection, with potential positive selection sites on B-cell epitopes. This study, the first of its kind in Vietnam, provides insights into CaKoV prevalence in dogs of different ages and healthy statuses, updates CaKoV occurrence in Thailand, and sheds light on its molecular characteristics and immune evasion strategies.


Subject(s)
Dog Diseases , Kobuvirus , Phylogeny , Picornaviridae Infections , Animals , Dogs , Thailand/epidemiology , Vietnam/epidemiology , Kobuvirus/genetics , Kobuvirus/immunology , Dog Diseases/virology , Dog Diseases/epidemiology , Dog Diseases/immunology , Picornaviridae Infections/veterinary , Picornaviridae Infections/virology , Picornaviridae Infections/epidemiology , Picornaviridae Infections/immunology , Evolution, Molecular , Prevalence , Gastrointestinal Diseases/virology , Gastrointestinal Diseases/veterinary , Gastrointestinal Diseases/epidemiology , Gastrointestinal Diseases/immunology
7.
Virol J ; 21(1): 102, 2024 05 02.
Article in English | MEDLINE | ID: mdl-38698421

ABSTRACT

Human parechovirus, a member of the Picornaviridae family (PeVs), can lead to severe infections, including severe meningitis, meningoencephalitis, and sepsis-like syndrome. We report a case of human parechovirus-related encephalitis in a 52-year-old woman diagnosed with glioblastoma multiforme. She underwent surgical resection in June 2022. Unfortunately, her disease recurred, and she underwent a second resection in August 2022, followed by radiation therapy and Temozolomide therapy. She presented to the hospital with acute confusion followed by seizures, necessitating intubation for airway support. A cerebrospinal fluid (CSF) sample was obtained and processed using the Biofire FilmArray, which reported the detection of HSV-1. Despite being on Acyclovir, the patient did not show signs of improvement. Consequently, a second CSF sample was obtained and sent for next-generation sequencing (NGS), which returned a positive result for Parechovirus. In this presented case, the patient exhibited symptoms of an unknown infectious cause. The utilization of NGS and metagenomic analysis helped identify Parechovirus as the primary pathogen present, in addition to previously identified HSV. This comprehensive approach facilitated a thorough assessment of the underlying infection and guided targeted treatment. In conclusion, the application of NGS techniques and metagenomic analysis proved instrumental in identifying the root cause of the infection.


Subject(s)
Immunocompromised Host , Parechovirus , Picornaviridae Infections , Humans , Female , Middle Aged , Picornaviridae Infections/virology , Picornaviridae Infections/diagnosis , Parechovirus/genetics , Parechovirus/isolation & purification , Parechovirus/classification , Saudi Arabia , High-Throughput Nucleotide Sequencing , Glioblastoma/virology , Metagenomics , Encephalitis, Viral/virology , Encephalitis, Viral/diagnosis , Herpesvirus 1, Human/genetics , Herpesvirus 1, Human/isolation & purification , Hospitalization
8.
PLoS One ; 19(5): e0301771, 2024.
Article in English | MEDLINE | ID: mdl-38809876

ABSTRACT

Human Parechoviruses (HPeVs) have rarely been considered in the virological investigation of Acute Flacid Paralysis (AFP) cases in Africa, where enteric infections are very common. This study investigated the prevalence and genetic diversity of HPeV in 200 children aged ≤ 15 years with AFP in Cameroon from 2018 to 2019. HPeVs were detected in their faecal RNA using 5'-untranslated real-time RT-PCR. Detected HPeVs were typed by phylogenetic comparison with homologous sequences from homotypic reference strains. Overall, HPeV RNA was detected in 11.0% (22/200) of the 200 stool samples tested. Twelve HPeVs were successfully sequenced and reliably assigned to HPeV-A1, A4, A5, A10, A14, A15, A17 and A18 genotypes. Phylogenetic analyses revealed a high genetic variability among the studied HPeVs, as well as between the studied HPeVs and their previously reported counterparts from Cameroon in 2014. These findings suggest that different HPeV genotypes co-circulate in Cameroon without documented epidemics.


Subject(s)
Feces , Genetic Variation , Genotype , Parechovirus , Phylogeny , Picornaviridae Infections , Humans , Cameroon/epidemiology , Child , Parechovirus/genetics , Parechovirus/isolation & purification , Parechovirus/classification , Child, Preschool , Female , Picornaviridae Infections/epidemiology , Picornaviridae Infections/virology , Male , Infant , Feces/virology , Adolescent , Paralysis/virology , Paralysis/epidemiology , RNA, Viral/genetics
9.
Vet Microbiol ; 293: 110100, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38718527

ABSTRACT

Recent epidemiological studies have discovered that a lot of cases of porcine epidemic diarrhea virus (PEDV) infection are frequently accompanied by porcine kobuvirus (PKV) infection, suggesting a potential relationship between the two viruses in the development of diarrhea. To investigate the impact of PKV on PEDV pathogenicity and the number of intestinal lymphocytes, piglets were infected with PKV or PEDV or co-infected with both viruses. Our findings demonstrate that co-infected piglets exhibit more severe symptoms, acute gastroenteritis, and higher PEDV replication compared to those infected with PEDV alone. Notably, PKV alone does not cause significant intestinal damage but enhances PEDV's pathogenicity and alters the number of intestinal lymphocytes. These results underscore the complexity of viral interactions in swine diseases and highlight the need for comprehensive diagnostic and treatment strategies addressing co-infections.


Subject(s)
Coinfection , Coronavirus Infections , Intestines , Kobuvirus , Lymphocytes , Porcine epidemic diarrhea virus , Swine Diseases , Animals , Porcine epidemic diarrhea virus/pathogenicity , Porcine epidemic diarrhea virus/physiology , Swine , Swine Diseases/virology , Coinfection/virology , Coinfection/veterinary , Coronavirus Infections/veterinary , Coronavirus Infections/virology , Lymphocytes/virology , Kobuvirus/pathogenicity , Kobuvirus/genetics , Intestines/virology , Diarrhea/virology , Diarrhea/veterinary , Virus Replication , Gastroenteritis/virology , Gastroenteritis/veterinary , Picornaviridae Infections/veterinary , Picornaviridae Infections/virology
10.
Virulence ; 15(1): 2333562, 2024 12.
Article in English | MEDLINE | ID: mdl-38622757

ABSTRACT

The Picornaviridae are a large group of positive-sense, single-stranded RNA viruses, and most research has focused on the Enterovirus genus, given they present a severe health risk to humans. Other picornaviruses, such as foot-and-mouth disease virus (FMDV) and senecavirus A (SVA), affect agricultural production with high animal mortality to cause huge economic losses. The 3Dpol protein of picornaviruses is widely known to be used for genome replication; however, a growing number of studies have demonstrated its non-polymerase roles, including modulation of host cell biological processes, viral replication complex assembly and localization, autophagy, and innate immune responses. Currently, there is no effective vaccine to control picornavirus diseases widely, and clinical therapeutic strategies have limited efficiency in combating infections. Many efforts have been made to develop different types of drugs to prohibit virus survival; the most important target for drug development is the virus polymerase, a necessary element for virus replication. For picornaviruses, there are also active efforts in targeted 3Dpol drug development. This paper reviews the interaction of 3Dpol proteins with the host and the progress of drug development targeting 3Dpol.


Subject(s)
Enterovirus , Foot-and-Mouth Disease Virus , Picornaviridae Infections , Animals , Humans , Gene Products, pol/metabolism , Foot-and-Mouth Disease Virus/genetics , Foot-and-Mouth Disease Virus/metabolism , Virus Replication , RNA, Viral/genetics
11.
Front Immunol ; 15: 1365521, 2024.
Article in English | MEDLINE | ID: mdl-38629064

ABSTRACT

3D polymerase, also known as RNA-dependent RNA polymerase, is encoded by all known picornaviruses, and their structures are highly conserved. In the process of picornavirus replication, 3D polymerase facilitates the assembly of replication complexes and directly catalyzes the synthesis of viral RNA. The nuclear localization signal carried by picornavirus 3D polymerase, combined with its ability to interact with other viral proteins, viral RNA and cellular proteins, indicate that its noncatalytic role is equally important in viral infections. Recent studies have shown that 3D polymerase has multiple effects on host cell biological functions, including inducing cell cycle arrest, regulating host cell translation, inducing autophagy, evading immune responses, and triggering inflammasome formation. Thus, 3D polymerase would be a very valuable target for the development of antiviral therapies. This review summarizes current studies on the structure of 3D polymerase and its regulation of host cell responses, thereby improving the understanding of picornavirus-mediated pathogenesis caused by 3D polymerase.


Subject(s)
Picornaviridae Infections , Picornaviridae , Humans , Virus Replication/genetics , Picornaviridae/genetics , Viral Proteins/genetics , RNA, Viral/genetics
12.
Pediatr Infect Dis J ; 43(5): 463-466, 2024 May 01.
Article in English | MEDLINE | ID: mdl-38635913

ABSTRACT

Neonatal meningoencephalitis caused by human parechovirus infection is being increasingly recognized in recent literature. While most cases are postnatally acquired, intrauterine infection is rare, presents early and has a more severe impact on brain health and development. We discuss here an infant born preterm at 34 weeks gestational age, with neonatal course remarkable for severe encephalopathy presenting on day 2 of life due to human parechovirus meningoencephalitis transmitted in utero. Early magnetic resonance brain imaging detected extensive white matter injury and subsequently evolved into multicystic leukoencephalopathy. Posthospital discharge, infant was noted to have early neurodevelopmental impairment at 4 months corrected age.


Subject(s)
Meningoencephalitis , Parechovirus , Picornaviridae Infections , Infant, Newborn , Infant , Humans , Picornaviridae Infections/diagnosis , Picornaviridae Infections/pathology , Infant, Premature , Brain/diagnostic imaging , Brain/pathology , Meningoencephalitis/diagnostic imaging , Meningoencephalitis/pathology , Magnetic Resonance Imaging/methods , Neuroimaging
13.
J Med Virol ; 96(4): e29582, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38590253

ABSTRACT

To understand the prevalence of rhinovirus (RV) among acute respiratory infection (ARI) patients, 10-year ARI surveillance in multiple provinces of China were conducted during 2012-2021. Of 15 645 ARI patients, 1180 (7.54%) were confirmed to have RV infection and 820 (69.49%) were children under 5 years of age. RV typing was performed on the 527 VP1 gene sequences, and species A, B, and C accounted for 73.24%, 4.93%, and 21.82%, respectively. Although no significant difference in the proportions of age groups or disease severity was found between RV species, RV-C was more frequently detected in children under 5 years of age, RV-A was more frequently detected in elderly individuals (≥60), and the proportions of pneumonia in RV-A and RV-C patients were higher than those in RV-B patients. The epidemic peak of RV-A was earlier than that of RV-C. A total of 57 types of RV-A, 13 types of RV-B, and 35 types of RV-C were identified in RV-infected patients, and two uncertain RV types were also detected. The findings showed a few differences in epidemiological and clinical features between RV species in ARI patients, and RV-A and RV-C were more prevalent than RV-B.


Subject(s)
Enterovirus Infections , Picornaviridae Infections , Respiratory Tract Infections , Child , Humans , Infant , Child, Preschool , Aged , Rhinovirus/genetics , Prevalence , Picornaviridae Infections/epidemiology , Respiratory Tract Infections/epidemiology , China/epidemiology , Genetic Variation
14.
Nat Commun ; 15(1): 3469, 2024 Apr 24.
Article in English | MEDLINE | ID: mdl-38658526

ABSTRACT

Human parechoviruses (PeV-A) are increasingly being recognized as a cause of infection in neonates and young infants, leading to a spectrum of clinical manifestations ranging from mild gastrointestinal and respiratory illnesses to severe sepsis and meningitis. However, the host factors required for parechovirus entry and infection remain poorly characterized. Here, using genome-wide CRISPR/Cas9 loss-of-function screens, we identify myeloid-associated differentiation marker (MYADM) as a host factor essential for the entry of several human parechovirus genotypes including PeV-A1, PeV-A2 and PeV-A3. Genetic knockout of MYADM confers resistance to PeV-A infection in cell lines and in human gastrointestinal epithelial organoids. Using immunoprecipitation, we show that MYADM binds to PeV-A1 particles via its fourth extracellular loop, and we identify critical amino acid residues within the loop that mediate binding and infection. The demonstrated interaction between MYADM and PeV-A1, and its importance specifically for viral entry, suggest that MYADM is a virus receptor. Knockout of MYADM does not reduce PeV-A1 attachment to cells pointing to a role at the post-attachment stage. Our study suggests that MYADM is a multi-genotype receptor for human parechoviruses with potential as an antiviral target to combat disease associated with emerging parechoviruses.


Subject(s)
Parechovirus , Picornaviridae Infections , Virus Internalization , Humans , Cell Line , CRISPR-Cas Systems , HEK293 Cells , Organoids/virology , Organoids/metabolism , Parechovirus/genetics , Parechovirus/metabolism , Picornaviridae Infections/virology , Picornaviridae Infections/metabolism , Protein Binding , Receptors, Virus/metabolism , Receptors, Virus/genetics
15.
Viruses ; 16(4)2024 03 27.
Article in English | MEDLINE | ID: mdl-38675861

ABSTRACT

A less than one-month-old infant with symptoms of rhinitis died unexpectedly in his sleep. He was not born prematurely and had no known underlying disease. Cerebrospinal fluid, nasopharyngeal and lung samples, and rectal swab were found to be positive for subgroup A rhinovirus, while the blood was negative. This case highlights the important finding that the rhinovirus, a common pathogen associated with upper respiratory tract infections, can sometimes, as the only pathogen, lead to complications such as a cerebrospinal infection and be involved in the sudden infant death syndrome (SIDS). Vigilance is necessary in case of viral infections in the infant's environment, and measures of hygiene and protection must be encouraged in order to reduce the risk of the SIDS.


Subject(s)
Picornaviridae Infections , Rhinovirus , Sudden Infant Death , Humans , Sudden Infant Death/etiology , Picornaviridae Infections/complications , Picornaviridae Infections/virology , Male , Infant , Respiratory Tract Infections/virology , Infant, Newborn
16.
Pharm. pract. (Granada, Internet) ; 22(1): 1-11, Ene-Mar, 2024.
Article in English | IBECS | ID: ibc-231359

ABSTRACT

Human rhinoviruses (HRVs) are associated with a wide spectrum of clinical manifestations, ranging from mild cold symptoms to more severe respiratory illnesses, significantly burdening global healthcare systems. At the molecular level, HRVs belong to the Picornaviridae family and are classified into three species: HRV-A, HRV-B, and HRV-C. Advances in genomic sequencing and phylogenetic analysis have revealed a remarkable genetic diversity within HRV species, with over 160 serotypes identified. This genetic variability contributes to the ability of HRVs to evade host immune responses and facilitates their continuous circulation in the population. This review provides an overview of the molecular and clinical aspects of HRV infections.(AU)


Subject(s)
Humans , Rhinovirus/genetics , Rhinovirus/classification , Respiratory Tract Diseases/drug therapy , Genome/genetics , Picornaviridae/genetics , Picornaviridae Infections/microbiology
17.
Vet Res ; 55(1): 40, 2024 Mar 26.
Article in English | MEDLINE | ID: mdl-38532469

ABSTRACT

The interaction between viral components and cellular proteins plays a crucial role in viral replication. In a previous study, we showed that the 3'-untranslated region (3'-UTR) is an essential element for the replication of duck hepatitis A virus type 1 (DHAV-1). However, the underlying mechanism is still unclear. To gain a deeper understanding of this mechanism, we used an RNA pull-down and a matrix-assisted laser desorption/ionization time-of-flight mass spectrometry assay to identify new host factors that interact with the 3'-UTR. We selected interleukin-2 enhancer binding factor 2 (ILF2) for further analysis. We showed that ILF2 interacts specifically with both the 3'-UTR and the 3D polymerase (3Dpol) of DHAV-1 through in vitro RNA pull-down and co-immunoprecipitation assays, respectively. We showed that ILF2 negatively regulates viral replication in duck embryo fibroblasts (DEFs), and that its overexpression in DEFs markedly suppresses DHAV-1 replication. Conversely, ILF2 silencing resulted in a significant increase in viral replication. In addition, the RNA-dependent RNA polymerase (RdRP) activity of 3Dpol facilitated viral replication by enhancing viral RNA translation efficiency, whereas ILF2 disrupted the role of RdRP in viral RNA translation efficiency to suppress DHAV-1 replication. At last, DHAV-1 replication markedly suppressed the expression of ILF2 in DEFs, duck embryo hepatocytes, and different tissues of 1 day-old ducklings. A negative correlation was observed between ILF2 expression and the viral load in primary cells and different organs of young ducklings, suggesting that ILF2 may affect the viral load both in vitro and in vivo.


Subject(s)
Hepatitis Virus, Duck , Hepatitis, Viral, Animal , Picornaviridae Infections , Poultry Diseases , Animals , Interleukin-2/genetics , RNA-Dependent RNA Polymerase/genetics , Gene Expression Regulation , RNA, Viral/genetics , Ducks/genetics , Picornaviridae Infections/veterinary
18.
Infect Genet Evol ; 120: 105585, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38508364

ABSTRACT

In this study, a picornavirus and a nidovirus were identified from a single available nasopharyngeal swab (NPS) sample of a freshly deceased sheep, as the only vertebrate viruses found with viral metagenomics and next-generation sequencing methods. The sample was originated from a mixed feedlot farm in Hungary where sheep and cattle were held together but in separate stalls. Most of the sheep had respiratory signs (coughing and increased respiratory effort) at the time of sampling. Other NPS were not, but additional enteric samples were collected from sheep (n = 27) and cattle (n = 11) of the same farm at that time. The complete/nearly complete genomes of the identified viruses were determined using RT-PCR and Nanopore (MinION-Flonge) / Dye-terminator sequencing techniques. The results of detailed genomic and phylogenetic analyses indicate that the identified picornavirus most likely belongs to a type 4 genotype of species Bovine rhinitis B virus (BRBV-4, OR885914) of genus Aphthovirus, family Picornaviridae while the ovine nidovirus (OvNV, OR885915) - as a novel variant - could belong to the recently created Bovine nidovirus 1 (BoNV) species of genus Bostovirus, family Tobaniviridae. None of the identified viruses were detectable in the enteric samples using RT-PCR and generic screening primer pairs. Both viruses are well-known respiratory pathogens of cattle, but their presence was not demonstrated before in other animals, like sheep. Furthermore, neither BRBV-4 nor BoNVs were investigated in European cattle and/or sheep flocks, therefore it cannot be determined whether the presence of these viruses in sheep was a result of a single host species switch/spillover event or these viruses are circulating in not just cattle but sheep populations as well. Further studies required to investigate the spread of these viruses in Hungarian and European sheep and cattle populations and to identify their pathogenic potential in sheep.


Subject(s)
Phylogeny , Picornaviridae Infections , Picornaviridae , Sheep Diseases , Animals , Hungary , Picornaviridae/genetics , Picornaviridae/isolation & purification , Picornaviridae/classification , Sheep , Sheep Diseases/virology , Cattle , Picornaviridae Infections/veterinary , Picornaviridae Infections/virology , Coinfection/virology , Coinfection/veterinary , Genome, Viral , Nidovirales/genetics , Nidovirales/isolation & purification , Nidovirales/classification , Nidovirales Infections/veterinary , Nidovirales Infections/virology
19.
Nat Commun ; 15(1): 2532, 2024 Mar 21.
Article in English | MEDLINE | ID: mdl-38514653

ABSTRACT

Picornaviruses are a leading cause of central nervous system (CNS) infections. While genotypes such as parechovirus A3 (PeV-A3) and echovirus 11 (E11) can elicit severe neurological disease, the highly prevalent PeV-A1 is not associated with CNS disease. Here, we expand our current understanding of these differences in PeV-A CNS disease using human brain organoids and clinical isolates of the two PeV-A genotypes. Our data indicate that PeV-A1 and A3 specific differences in neurological disease are not due to infectivity of CNS cells as both viruses productively infect brain organoids with a similar cell tropism. Proteomic analysis shows that PeV-A infection significantly alters the host cell metabolism. The inflammatory response following PeV-A3 (and E11 infection) is significantly more potent than that upon PeV-A1 infection. Collectively, our findings align with clinical observations and suggest a role for neuroinflammation, rather than viral replication, in PeV-A3 (and E11) infection.


Subject(s)
Central Nervous System Diseases , Parechovirus , Picornaviridae Infections , Humans , Parechovirus/genetics , Proteomics , Inflammation , Brain , Enterovirus B, Human
20.
Mol Cell Proteomics ; 23(5): 100757, 2024 May.
Article in English | MEDLINE | ID: mdl-38556169

ABSTRACT

Picornaviridae represent a large family of single-stranded positive RNA viruses of which different members can infect both humans and animals. These include the enteroviruses (e.g., poliovirus, coxsackievirus, and rhinoviruses) as well as the cardioviruses (e.g., encephalomyocarditis virus). Picornaviruses have evolved to interact with, use, and/or evade cellular host systems to create the optimal environment for replication and spreading. It is known that viruses modify kinase activity during infection, but a proteome-wide overview of the (de)regulation of cellular kinases during picornavirus infection is lacking. To study the kinase activity landscape during picornavirus infection, we here applied dedicated targeted mass spectrometry-based assays covering ∼40% of the human kinome. Our data show that upon infection, kinases of the MAPK pathways become activated (e.g., ERK1/2, RSK1/2, JNK1/2/3, and p38), while kinases involved in regulating the cell cycle (e.g., CDK1/2, GWL, and DYRK3) become inactivated. Additionally, we observed the activation of CHK2, an important kinase involved in the DNA damage response. Using pharmacological kinase inhibitors, we demonstrate that several of these activated kinases are essential for the replication of encephalomyocarditis virus. Altogether, the data provide a quantitative understanding of the regulation of kinome activity induced by picornavirus infection, providing a resource important for developing novel antiviral therapeutic interventions.


Subject(s)
Picornaviridae Infections , Picornaviridae , Humans , Picornaviridae/physiology , Picornaviridae/enzymology , Picornaviridae Infections/virology , Picornaviridae Infections/metabolism , HeLa Cells , Proteome/metabolism , Protein Kinases/metabolism , Virus Replication , Phosphorylation
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