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1.
Vet Microbiol ; 295: 110148, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38851152

ABSTRACT

Water buffalo Hunnivirus (BufHuV) belongs to the family Picornaviridae and is a newly discovered member of the Hunnivirus A genus. It causes intestinal diseases in cattle, mainly lead to subclinical infections, thereby seriously threatening the health of cattle herds. In addition, it can also bring about various clinical disease syndromes which results in severe economic losses to the cattle industry. To date, there have been no reports worldwide on the study of Hunnivirus virus infecting host cells and causing innate immune responses. In this study, we found that interferon treatment effectively blocked BufHuV replication and infection with the virus weakened the host antiviral responses. Inhibiting the transcription of IFN-ß and ISGs induced by either Sendai virus (SeV) or poly(I:C) in MDBK and HCT-8 cells, were dependent on the IRF3 or NF-κB signaling pathways, and this inhibited the activation of IFN-ß promoter by TBK1 and its upstream molecules, RIGI and MDA5. By constructing and screening five BufHuV proteins, we found that VP2, 2 C, 3 C and 3D inhibited the activation of IFN-ß promoter induced by SeV. Subsequently, we showed that VP2 inhibited the activation of IRF3 induced by SeV or poly (I:C), and it inhibited IRF3 activation by inhibiting its phosphorylation and nuclear translocation. In addition, we confirmed that VP2 inhibited the activation of IFNß induced by signaling molecules, MDA5 and TBKI. In summary, these findings provide new insights into the pathogenesis of Hunnivirus and its mechanisms involved in evading host immune responses.


Subject(s)
Interferon Regulatory Factor-3 , Interferon-beta , Interferon-beta/genetics , Interferon-beta/immunology , Interferon Regulatory Factor-3/metabolism , Interferon Regulatory Factor-3/genetics , Animals , Humans , Cell Line , Signal Transduction/drug effects , Viral Structural Proteins/genetics , Viral Structural Proteins/metabolism , Virus Replication/drug effects , Immunity, Innate , Cattle , Buffaloes/virology , NF-kappa B/metabolism
2.
J Mol Biol ; 436(12): 168595, 2024 Jun 15.
Article in English | MEDLINE | ID: mdl-38724003

ABSTRACT

During the late stage of infection, alphabaculoviruses produce many occlusion bodies (OBs) in the nuclei of the insect host's cells through the hyperexpression of polyhedrin (POLH), a major OB component encoded by polh. The strong polh promoter has been used to develop a baculovirus expression vector system for recombinant protein expression in cultured insect cells and larvae. However, the relationship between POLH accumulation and the polh coding sequence remains largely unelucidated. This study aimed to assess the importance of polh codon usage and/or nucleotide sequences in POLH accumulation by generating a baculovirus Bombyx mori nucleopolyhedrovirus (BmNPV) expressing mutant polh (co-polh) optimized according to the codon preference of its host insect. Although the deduced amino acid sequence of CO-POLH was the same as that of wild-type POLH, POLH accumulation was significantly lower in cells infected with the co-polh mutant. This reduction was due to decreased polh mRNA levels rather than translational repression. Analysis of mutant viruses with chimeric polh revealed that a 30 base-pair (bp) 5' proximal polh coding region was necessary for maintaining high polh mRNA levels. Sequence comparison of wild-type polh and co-polh identified five nucleotide differences in this region, indicating that these nucleotides were critical for polh hyperexpression. Furthermore, luciferase reporter assays showed that the 30 bp 5' coding region was sufficient for maintaining the polh promoter-driven high level of polh mRNA. Thus, our whole-gene scanning by codon optimization identified important hidden nucleotides for polh hyperexpression in alphabaculoviruses.


Subject(s)
Bombyx , Nucleopolyhedroviruses , Occlusion Body Matrix Proteins , Nucleopolyhedroviruses/genetics , Animals , Occlusion Body Matrix Proteins/genetics , Bombyx/virology , Bombyx/genetics , Nucleotides/genetics , Nucleotides/metabolism , Promoter Regions, Genetic , Viral Structural Proteins/genetics , Viral Structural Proteins/metabolism , Codon/genetics , Gene Expression Regulation, Viral , Cell Line
3.
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
4.
Viruses ; 16(4)2024 03 27.
Article in English | MEDLINE | ID: mdl-38675855

ABSTRACT

The foot-and-mouth disease virus is a highly contagious and economically devastating virus of cloven-hooved animals, including cattle, buffalo, sheep, and goats, causing reduced animal productivity and posing international trade restrictions. For decades, chemically inactivated vaccines have been serving as the most effective strategy for the management of foot-and-mouth disease. Inactivated vaccines are commercially produced in cell culture systems, which require successful propagation and adaptation of field isolates, demanding a high cost and laborious time. Cell culture adaptation is chiefly indebted to amino acid substitutions in surface-exposed capsid proteins, altering the necessity of RGD-dependent receptors to heparan sulfate macromolecules for virus binding. Several amino acid substations in VP1, VP2, and VP3 capsid proteins of FMDV, both at structural and functional levels, have been characterized previously. This literature review combines frequently reported amino acid substitutions in virus capsid proteins, their critical roles in virus adaptation, and functional characterization of the substitutions. Furthermore, this data can facilitate molecular virologists to develop new vaccine strains against the foot-and-mouth disease virus, revolutionizing vaccinology via reverse genetic engineering and synthetic biology.


Subject(s)
Amino Acid Substitution , Capsid Proteins , Foot-and-Mouth Disease Virus , Viral Tropism , Animals , Capsid Proteins/genetics , Capsid Proteins/metabolism , Capsid Proteins/chemistry , Cell Culture Techniques , Foot-and-Mouth Disease/virology , Foot-and-Mouth Disease Virus/genetics , Foot-and-Mouth Disease Virus/metabolism , Receptors, Virus/metabolism , Receptors, Virus/genetics , Viral Structural Proteins/genetics , Viral Structural Proteins/metabolism
5.
J Virol ; 98(5): e0018124, 2024 May 14.
Article in English | MEDLINE | ID: mdl-38639485

ABSTRACT

Infectious bursal disease (IBD) is an acute and fatal immunosuppressive disease caused by infectious bursal disease virus (IBDV). As an obligate intracellular parasite, IBDV infection is strictly regulated by host factors. Knowledge on the antiviral activity and possible mechanism of host factors might provide the theoretical basis for the prevention and control of IBD. In this study, RNA-sequencing results indicated that many host factors were induced by IBDV infection, among which the expression levels of OASL (2´,5´-oligadenylate synthetase-like protein) was significantly upregulated. OASL overexpression significantly inhibited IBDV replication, whereas OASL knockdown promoted IBDV replication. Interestingly, the antiviral ability of OASL was independent of its canonical enzymatic activity, i.e., OASL targeted viral protein VP2 for degradation, depending on the autophagy receptor p62/SQSTM1 in the autophagy pathway. Additionally, the 316 lysine (K) of VP2 was the key site for autophagy degradation, and its replacement with arginine disrupted VP2 degradation induced by OASL and enhanced IBDV replication. Importantly, our results for the first time indicate a unique and potent defense mechanism of OASL against double-stranded RNA virus by interaction with viral proteins, which leads to their degradation. IMPORTANCE: OASL (2´,5´-oligadenylate synthetase-like protein) exhibits broad-spectrum antiviral effects against single-stranded RNA viruses in mammals, potentially serving as a promising target for novel antiviral strategies. However, its role in inhibiting the replication of double-stranded RNA viruses (dsRNA viruses), such as infectious bursal disease virus (IBDV), in avian species remains unclear. Our findings indicated a unique and potent defense mechanism of OASL against dsRNA viruses. It has been previously shown in mammals that OASL inhibits virus replication through increasing interferon production. The groundbreaking aspect of our study is the finding that OASL has the ability to interact with IBDV viral protein VP2 and target it for degradation and thus exerts its antiviral effect. Our results reveal the interaction between avian natural antiviral immune response and IBDV infection. Our study not only enhances our understanding of bird defenses against viral infections but can also inform strategies for poultry disease management.


Subject(s)
2',5'-Oligoadenylate Synthetase , Autophagy , Birnaviridae Infections , Chickens , Infectious bursal disease virus , Viral Structural Proteins , Virus Replication , Infectious bursal disease virus/physiology , Animals , Birnaviridae Infections/virology , Birnaviridae Infections/metabolism , Viral Structural Proteins/metabolism , Viral Structural Proteins/genetics , 2',5'-Oligoadenylate Synthetase/metabolism , 2',5'-Oligoadenylate Synthetase/genetics , Poultry Diseases/virology , Poultry Diseases/metabolism , Host-Pathogen Interactions , HEK293 Cells , Humans , Cell Line
6.
J Virol ; 98(3): e0153623, 2024 Mar 19.
Article in English | MEDLINE | ID: mdl-38315014

ABSTRACT

African swine fever (ASF) is a highly contagious viral disease that affects domestic and wild pigs. The causative agent of ASF is African swine fever virus (ASFV), a large double-stranded DNA virus with a complex virion structure. Among the various proteins encoded by ASFV, A137R is a crucial structural protein associated with its virulence. However, the structure and molecular mechanisms underlying the functions of A137R remain largely unknown. In this study, we present the structure of A137R determined by cryogenic electron microscopy single-particle reconstruction, which reveals that A137R self-oligomerizes to form a dodecahedron-shaped cage composed of 60 polymers. The dodecahedron is literally equivalent to a T = 1 icosahedron where the icosahedral vertexes are located in the center of each dodecahedral facet. Within each facet, five A137R protomers are arranged in a head-to-tail orientation with a long N-terminal helix forming the edge through which adjacent facets stitch together to form the dodecahedral cage. Combining structural analysis and biochemical evidence, we demonstrate that the N-terminal domain of A137R is crucial and sufficient for mediating the assembly of the dodecahedron. These findings imply the role of A137R cage as a core component in the icosahedral ASFV virion and suggest a promising molecular scaffold for nanotechnology applications. IMPORTANCE: African swine fever (ASF) is a lethal viral disease of pigs caused by African swine fever virus (ASFV). No commercial vaccines and antiviral treatments are available for the prevention and control of the disease. A137R is a structural protein of ASFV that is associated with its virulence. The discovery of the dodecahedron-shaped cage structure of A137R in this study is of great importance in understanding ASFV pathogenicity. This finding sheds light on the molecular mechanisms underlying the functions of A137R. Furthermore, the dodecahedral cage formed by A137R shows promise as a molecular scaffold for nanoparticle vectors. Overall, this study provides valuable insights into the structure and function of A137R, contributing to our understanding of ASFV and potentially opening up new avenues for the development of vaccines or treatments for ASF.


Subject(s)
African Swine Fever Virus , Swine , Viral Structural Proteins , Animals , African Swine Fever/virology , African Swine Fever Virus/chemistry , African Swine Fever Virus/growth & development , African Swine Fever Virus/pathogenicity , African Swine Fever Virus/ultrastructure , Cryoelectron Microscopy , Structure-Activity Relationship , Swine/virology , Viral Structural Proteins/chemistry , Viral Structural Proteins/metabolism , Viral Structural Proteins/ultrastructure , Virion/chemistry , Virion/metabolism , Virion/ultrastructure , Virulence
7.
Vet Microbiol ; 291: 110026, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38364467

ABSTRACT

This study demonstrates for the first time that the matrix (M) protein of BEFV is a nuclear targeting protein that shuttles between the nucleus and the cytoplasm in a transcription-, carrier-, and energy-dependent manner. Experiments performed in both intact cells and digitonin-permeabilized cells revealed that M protein targets the nucleolus and requires carrier, cytosolic factors or energy input. By employing sequence and mutagenesis analyses, we have determined both nuclear localization signal (NLS) 6KKGKSK11 and nuclear export signal (NES) 98LIITSYL TI106 of M protein that are important for the nucleocytoplasmic shuttling of M protein. Furthermore, we found that both lamin A/C and chromosome maintenance region 1 (CRM-1) proteins could be coimmunoprecipitated and colocalized with the BEFV M protein. Knockdown of lamin A/C by shRNA and inhibition of CRM-1 by leptomycin B significantly reduced virus yield. Collectively, this study provides novel insights into nucleocytoplasmic shuttling of the BEFV M protein modulated by lamin A/C and CRM-1 and by a transcription- and carrier- and energy-dependent pathway.


Subject(s)
Active Transport, Cell Nucleus , Ephemeral Fever Virus, Bovine , Lamin Type A , Nuclear Localization Signals , Animals , Active Transport, Cell Nucleus/genetics , Cell Nucleus/metabolism , Chromosomes/metabolism , Cytoplasm/metabolism , Lamin Type A/genetics , Lamin Type A/metabolism , Ephemeral Fever Virus, Bovine/metabolism , Viral Structural Proteins/metabolism
8.
J Virol ; 97(11): e0112523, 2023 Nov 30.
Article in English | MEDLINE | ID: mdl-37902398

ABSTRACT

IMPORTANCE: The Avibirnavirus infectious bursal disease virus is still an important agent which largely threatens global poultry farming industry economics. VP3 is a multifunctional scaffold structural protein that is involved in virus morphogenesis and the regulation of diverse cellular signaling pathways. However, little is known about the roles of VP3 phosphorylation during the IBDV life cycle. In this study, we determined that IBDV infection induced the upregulation of Cdc7 expression and phosphorylated the VP3 Ser13 site to promote viral replication. Moreover, we confirmed that the negative charge addition of phosphoserine on VP3 at the S13 site was essential for IBDV proliferation. This study provides novel insight into the molecular mechanisms of VP3 phosphorylation-mediated regulation of IBDV replication.


Subject(s)
Avibirnavirus , Cell Cycle Proteins , Chickens , Infectious bursal disease virus , Protein Serine-Threonine Kinases , Viral Structural Proteins , Virus Replication , Animals , Avibirnavirus/chemistry , Avibirnavirus/growth & development , Avibirnavirus/metabolism , Birnaviridae Infections/enzymology , Birnaviridae Infections/metabolism , Birnaviridae Infections/veterinary , Birnaviridae Infections/virology , Capsid Proteins/chemistry , Capsid Proteins/metabolism , Cell Cycle Proteins/metabolism , Chickens/virology , Infectious bursal disease virus/chemistry , Infectious bursal disease virus/metabolism , Phosphorylation , Protein Serine-Threonine Kinases/metabolism , Viral Structural Proteins/chemistry , Viral Structural Proteins/metabolism
9.
Viruses ; 15(10)2023 10 06.
Article in English | MEDLINE | ID: mdl-37896835

ABSTRACT

Herpesviruses are enveloped and have an amorphous protein layer surrounding the capsid, which is termed the tegument. Tegument proteins perform critical functions throughout the viral life cycle. This review provides a comprehensive and comparative analysis of the roles of specific tegument proteins in capsid transport and virion morphogenesis of selected, well-studied prototypes of each of the three subfamilies of Herpesviridae i.e., human herpesvirus-1/herpes simplex virus-1 (Alphaherpesvirinae), human herpesvirus-5/cytomegalovirus (Betaherpesvirinae) and human herpesvirus -8/Kaposi's sarcomavirus (Gammaherpesvirinae). Most of the current knowledge is based on alpha herpesviruses, in particular HSV-1. While some tegument proteins are released into the cytoplasm after virus entry, several tegument proteins remain associated with the capsid and are responsible for transport to and docking at the nucleus. After replication and capsid formation, the capsid is enveloped at the nuclear membrane, which is referred to as primary envelopment, followed by de-envelopment and release into the cytoplasm. This requires involvement of at least three tegument proteins. Subsequently, multiple interactions between tegument proteins and capsid proteins, other tegument proteins and glycoproteins are required for assembly of the virus particles and envelopment at the Golgi, with certain tegument proteins acting as the central hub for these interactions. Some redundancy in these interactions ensures appropriate morphogenesis.


Subject(s)
Herpesviridae , Herpesvirus 1, Human , Herpesvirus 8, Human , Humans , Capsid Proteins/metabolism , Capsid/metabolism , Virus Assembly , Herpesviridae/metabolism , Herpesvirus 1, Human/metabolism , Herpesvirus 8, Human/metabolism , Morphogenesis , Virion/metabolism , Viral Structural Proteins/metabolism
10.
J Virol ; 97(10): e0059123, 2023 10 31.
Article in English | MEDLINE | ID: mdl-37768084

ABSTRACT

IMPORTANCE: Alphaviruses threaten public health continuously, and Getah virus (GETV) is a re-emerging alphavirus that can potentially infect humans. Approved antiviral drugs and vaccines against alphaviruses are few available, but several host antiviral factors have been reported. Here, we used GETV as a model of alphaviruses to screen for additional host factors. Tetrachlorodibenzo-p-dioxin-inducible poly(ADP ribose) polymerase was identified to inhibit GETV replication by inducing ubiquitination of the glycoprotein E2, causing its degradation by recruiting the E3 ubiquitin ligase membrane-associated RING-CH8 (MARCH8). Using GETV as a model virus, focusing on the relationship between viral structural proteins and host factors to screen antiviral host factors provides new insights for antiviral studies on alphaviruses.


Subject(s)
Alphavirus , Host Microbial Interactions , Nucleoside Transport Proteins , Poly(ADP-ribose) Polymerases , Transcriptome , Humans , Alphavirus/growth & development , Alphavirus/immunology , Glycoproteins/metabolism , Nucleoside Transport Proteins/genetics , Nucleoside Transport Proteins/metabolism , Poly(ADP-ribose) Polymerases/genetics , Poly(ADP-ribose) Polymerases/metabolism , Ubiquitination , Viral Structural Proteins/metabolism , Virus Replication
11.
J Virol ; 97(7): e0053223, 2023 07 27.
Article in English | MEDLINE | ID: mdl-37367226

ABSTRACT

During viral infection, host defensive proteins either enhance the host immune response or antagonize viral components directly. In this study, we report on the following two mechanisms employed by zebrafish mitogen-activated protein kinase kinase 7 (MAP2K7) to protect the host during spring viremia of carp virus (SVCV) infection: stabilization of host IRF7 and degradation of SVCV P protein. In vivo, map2k7+/- (map2k7-/- is a lethal mutation) zebrafish showed a higher lethality, more pronounced tissue damage, and more viral proteins in major immune organs than the controls. At the cellular level, overexpression of map2k7 significantly enhanced host cell antiviral capacity, and viral replication and proliferation were significantly suppressed. Additionally, MAP2K7 interacted with the C terminus of IRF7 and stabilized IRF7 by increasing K63-linked polyubiquitination. On the other hand, during MAP2K7 overexpression, SVCV P proteins were significantly decreased. Further analysis demonstrated that SVCV P protein was degraded by the ubiquitin-proteasome pathway, as the attenuation of K63-linked polyubiquitination was mediated by MAP2K7. Furthermore, the deubiquitinase USP7 was indispensable in P protein degradation. These results confirm the dual functions of MAP2K7 during viral infection. IMPORTANCE Normally, during viral infection, host antiviral factors individually modulate the host immune response or antagonize viral components to defense infection. In the present study, we report that zebrafish MAP2K7 plays a crucial positive role in the host antiviral process. According to the weaker antiviral capacity of map2k7+/- zebrafish than that of the control, we find that MAP2K7 reduces host lethality through two pathways, as follows: enhancing K63-linked polyubiquitination to promote host IRF7 stability and attenuating K63-mediated polyubiquitination to degrade the SVCV P protein. These two mechanisms of MAP2K7 reveal a special antiviral response in lower vertebrates.


Subject(s)
Fish Diseases , Interferon Regulatory Factors , Mitogen-Activated Protein Kinases , Rhabdoviridae Infections , Ubiquitination , Viral Structural Proteins , Animals , Fish Diseases/immunology , Fish Diseases/virology , Interferon Regulatory Factors/genetics , Interferon Regulatory Factors/metabolism , Rhabdoviridae/genetics , Rhabdoviridae/immunology , Rhabdoviridae Infections/immunology , Rhabdoviridae Infections/virology , Zebrafish/genetics , Zebrafish/immunology , Zebrafish Proteins/genetics , Zebrafish Proteins/metabolism , Protein Stability , Proteolysis , Viral Structural Proteins/metabolism , Mitogen-Activated Protein Kinases/genetics , Mitogen-Activated Protein Kinases/metabolism , Up-Regulation
12.
Int J Mol Sci ; 24(10)2023 May 09.
Article in English | MEDLINE | ID: mdl-37239817

ABSTRACT

The use of infectious bursal disease virus (IBDV) reverse genetics to engineer tagged reporter viruses has revealed that the virus factories (VFs) of the Birnaviridae family are biomolecular condensates that show properties consistent with liquid-liquid phase separation (LLPS). Although the VFs are not bound by membranes, it is currently thought that viral protein 3 (VP3) initially nucleates the formation of the VF on the cytoplasmic leaflet of early endosomal membranes, and likely drives LLPS. In addition to VP3, IBDV VFs contain VP1 (the viral polymerase) and the dsRNA genome, and they are the sites of de novo viral RNA synthesis. Cellular proteins are also recruited to the VFs, which are likely to provide an optimal environment for viral replication; the VFs grow due to the synthesis of the viral components, the recruitment of other proteins, and the coalescence of multiple VFs in the cytoplasm. Here, we review what is currently known about the formation, properties, composition, and processes of these structures. Many open questions remain regarding the biophysical nature of the VFs, as well as the roles they play in replication, translation, virion assembly, viral genome partitioning, and in modulating cellular processes.


Subject(s)
Birnaviridae , Infectious bursal disease virus , Birnaviridae/metabolism , Viral Replication Compartments , Cell Line , Virus Replication , Viral Proteins/genetics , Viral Proteins/metabolism , Transport Vesicles/metabolism , Viral Structural Proteins/metabolism
13.
J Mol Biol ; 435(16): 168153, 2023 08 15.
Article in English | MEDLINE | ID: mdl-37210029

ABSTRACT

Viral factories of liquid-like nature serve as sites for transcription and replication in most viruses. The respiratory syncytial virus factories include replication proteins, brought together by the phosphoprotein (P) RNA polymerase cofactor, present across non-segmented negative stranded RNA viruses. Homotypic liquid-liquid phase separation of RSV-P is governed by an α-helical molten globule domain, and strongly self-downmodulated by adjacent sequences. Condensation of P with the nucleoprotein N is stoichiometrically tuned, defining aggregate-droplet and droplet-dissolution boundaries. Time course analysis show small N-P nuclei gradually coalescing into large granules in transfected cells. This behavior is recapitulated in infection, with small puncta evolving to large viral factories, strongly suggesting that P-N nucleation-condensation sequentially drives viral factories. Thus, the tendency of P to undergo phase separation is moderate and latent in the full-length protein but unleashed in the presence of N or when neighboring disordered sequences are deleted. This, together with its capacity to rescue nucleoprotein-RNA aggregates suggests a role as a "solvent-protein".


Subject(s)
Nucleoproteins , Respiratory Syncytial Virus, Human , Viral Replication Compartments , Viral Structural Proteins , DNA-Directed RNA Polymerases/metabolism , Nucleoproteins/metabolism , Respiratory Syncytial Virus, Human/metabolism , Respiratory Syncytial Virus, Human/physiology , Viral Replication Compartments/metabolism , Virus Replication , Viral Structural Proteins/metabolism , Humans
14.
J Virol ; 97(3): e0163722, 2023 03 30.
Article in English | MEDLINE | ID: mdl-36786602

ABSTRACT

The infectious bursal diseases virus (IBDV) polymerase, VP1 protein, is responsible for transcription, initial translation and viral genomic replication. Knowledge about the new kind of post-translational modification of VP1 supports identification of novel drugs against the virus. Because the arginine residue is known to be methylated by protein arginine methyltransferase (PRMT) enzyme, we investigated whether IBDV VP1 is a substrate for known PRMTs. In this study, we show that VP1 is specifically associated with and methylated by PRMT5 at the arginine 426 (R426) residue. IBDV infection causes the accumulation of PRMT5 in the cytoplasm, which colocalizes with VP1 as a punctate structure. In addition, ectopic expression of PRMT5 significantly enhances the viral replication. In the presence of PMRT5, enzyme inhibitor and knockout of PRMT5 remarkably decreased viral replication. The polymerase activity of VP1 was severely damaged when R426 mutated to alanine, resulting in impaired viral replication. Our study reports a novel form of post-translational modification of VP1, which supports its polymerase function to facilitate the viral replication. IMPORTANCE Post-translational modification of infectious bursal disease virus (IBDV) VP1 is important for the regulation of its polymerase activity. Investigation of the significance of specific modification of VP1 can lead to better understanding of viral replication and can probably also help in identifying novel targets for antiviral compounds. Our work demonstrates the molecular mechanism of VP1 methylation mediated by PRMT5, which is critical for viral polymerase activity, as well as viral replication. Our study expands a novel insight into the function of arginine methylation of VP1, which might be useful for limiting the replication of IBDV.


Subject(s)
Infectious bursal disease virus , Protein-Arginine N-Methyltransferases , Virus Replication , Animals , Cell Line , Chickens , Infectious bursal disease virus/enzymology , Infectious bursal disease virus/genetics , Methylation , Protein Processing, Post-Translational , Protein-Arginine N-Methyltransferases/genetics , Protein-Arginine N-Methyltransferases/metabolism , Viral Structural Proteins/genetics , Viral Structural Proteins/metabolism , Virus Replication/genetics , Mutation
15.
J Gen Virol ; 104(1)2023 01.
Article in English | MEDLINE | ID: mdl-36748631

ABSTRACT

Equine herpesvirus type 1 (EHV-1) UL11 is a 74-amino-acid (aa) protein encoded by ORF51. UL11 is modified by acylation including myristoylation and palmitoylation. Myristoylation of EHV-1 UL11 is assumed to occur on the N-terminal glycine, while palmitoylation is assumed to occur on the seventh and ninth cysteines. ORF51, which encodes the first 24 aa, overlaps ORF50 encoding UL12. We previously demonstrated that UL11 was essential for EHV-1 replication in cultured cells and that UL11 was localized at the Golgi apparatus where herpesviruses obtain their final envelope. It is unclear whether the acylation is related to the localization of EHV-1 UL11 and viral replication. In this study, we investigated the role of UL11 acylation in the intracellular localization and viral growth and replication of EHV-1. We constructed seven UL11 acylation mutant plasmids and seven UL11 acylation mutant BAC DNAs; then, we analysed the localizations of the mutant UL11s and attempted virus rescue. We found that both the N-terminal glycine and the seventh or ninth cysteine, especially N-terminal glycine, were involved in the localization of UL11 and viral replication. Taken together, these results suggest that EHV-1 viral growth requires that UL11 is modified by myristoylation of an N-terminal glycine and by palmitoylation of at least one of the cysteines, and that UL11 is localized at the Golgi apparatus. This study shows that a single amino acid in EHV-1 can determine the fate of viral replication.


Subject(s)
Herpesvirus 1, Equid , Animals , Horses , Herpesvirus 1, Equid/genetics , Glycine/metabolism , Viral Structural Proteins/metabolism , Virus Replication , Cell Line , Amino Acids/metabolism , Cysteine
16.
J Virol ; 97(1): e0194122, 2023 01 31.
Article in English | MEDLINE | ID: mdl-36602364

ABSTRACT

Infectious bursal disease virus (IBDV) is a double-stranded RNA (dsRNA) virus belonging to the genus Avibirnavirus in the family Birnaviridae. It can cause serious failure of vaccination in young poultry birds with impaired immune systems. Post-translational modifications of the VP1 protein are essential for viral RNA transcription, genome replication, and viral multiplication. Little information is available so far regarding the exact mechanism of phosphorylation of IBDV VP1 and its significance in the viral life cycle. Here, we provide several lines of evidence that the cyclin-dependent kinase 1 (CDK1)-cyclin B1 complex phosphorylates VP1, which facilitates viral replication. We show that the CDK1-cyclin B1 specifically interacts with VP1 and phosphorylates VP1 on the serine 7 residue, located in the N-terminal 7SPAQ10 region, which follows the optimal phosphorylation motif of CDK1, p-S/T-P. Additionally, IBDV infection drives the cytoplasmic accumulation of CDK1-cyclin B1, which co-localizes with VP1, supporting the kinase activity of CDK1-cyclin B1. Treatment with CDK1 inhibitor RO3306 and knockdown of CDK1-cyclin B1 severely disrupts the polymerase activity of VP1, resulting in diminished viral replication. Moreover, the replication of S7A mutant recombinant IBDV was significantly decreased compared to that of wild-type (WT) IBDV. Thus, CDK1-cyclin B1 is a crucial enzyme which phosphorylates IBDV VP1 on serine 7, which is necessary both for the polymerase activity of VP1 and for viral replication. IMPORTANCE Infectious bursal disease virus still poses a great economic threat to the global poultry farming industry. Detailed information on the steps of viral genome replication is essential for the development of antiviral therapeutics. Phosphorylation is a common post-translational modification in several viral proteins. There is a lack of information regarding the significance of VP1 phosphorylation and its role in modulating the viral life cycle. In this study, we found that CDK1-cyclin B1 accumulates in the cytoplasm and phosphorylates VP1 on serine 7. The presence of a CDK1 inhibitor and the silencing of CDK1-cyclin B1 decrease IBDV replication. The mutation of VP1 serine 7 to alanine reduces VP1 polymerase activity, disrupting the viral life cycle, which suggests that this residue serves an essential function. Our study offers novel insights into the regulatory mechanism of VP1 phosphorylation.


Subject(s)
Birnaviridae Infections , CDC2 Protein Kinase , Cyclin B1 , Infectious bursal disease virus , Animals , Birnaviridae Infections/virology , CDC2 Protein Kinase/metabolism , Cell Line , Chickens , Cyclin B1/metabolism , Infectious bursal disease virus/genetics , Phosphorylation , Viral Structural Proteins/metabolism , Virus Replication/genetics
17.
J Biol Chem ; 298(9): 102337, 2022 09.
Article in English | MEDLINE | ID: mdl-35931116

ABSTRACT

Respiratory syncytial virus has a negative-sense single-stranded RNA genome constitutively encapsidated by the viral nucleoprotein N, forming a helical nucleocapsid which is the template for viral transcription and replication by the viral polymerase L. Recruitment of L onto the nucleocapsid depends on the viral phosphoprotein P, which is an essential L cofactor. A prerequisite for genome and antigenome encapsidation is the presence of the monomeric, RNA-free, neosynthesized N protein, named N0. Stabilization of N0 depends on the binding of the N-terminal residues of P to its surface, which prevents N oligomerization. However, the mechanism involved in the transition from N0-P to nucleocapsid assembly, and thus in the specificity of viral genome encapsidation, is still unknown. Furthermore, the specific role of N oligomerization and RNA in the morphogenesis of viral factories, where viral transcription and replication occur, have not been elucidated although the interaction between P and N complexed to RNA has been shown to be responsible for this process. Here, using a chimeric protein comprising N and the first 40 N-terminal residues of P, we succeeded in purifying a recombinant N0-like protein competent for RNA encapsidation in vitro. Our results showed the importance of RNA length for stable encapsidation and revealed that the nature of the 5' end of RNA does not explain the specificity of encapsidation. Finally, we showed that RNA encapsidation is crucial for the in vitro reconstitution of pseudo-viral factories. Together, our findings provide insight into respiratory syncytial virus viral genome encapsidation specificity.


Subject(s)
Nucleocapsid , Nucleoproteins , RNA, Viral , Respiratory Syncytial Virus, Human , Viral Genome Packaging , Viral Structural Proteins , Humans , Nucleocapsid/chemistry , Nucleocapsid/physiology , Nucleoproteins/chemistry , Nucleoproteins/metabolism , Phosphoproteins/metabolism , RNA, Viral/chemistry , RNA, Viral/metabolism , Recombinant Fusion Proteins/chemistry , Respiratory Syncytial Virus, Human/chemistry , Respiratory Syncytial Virus, Human/physiology , Viral Structural Proteins/chemistry , Viral Structural Proteins/metabolism
18.
Viruses ; 14(7)2022 06 28.
Article in English | MEDLINE | ID: mdl-35891402

ABSTRACT

Alphaviruses cause significant outbreaks of febrile illness and debilitating multi-joint arthritis for prolonged periods after initial infection. We have previously reported that several host hnRNP proteins bind to the Sindbis virus (SINV) RNAs, and disrupting the sites of these RNA-protein interactions results in decreased viral titers in tissue culture models of infection. Intriguingly, the primary molecular defect associated with the disruption of the hnRNP interactions is enhanced viral structural protein expression; however, the precise underlying mechanisms spurring the enhanced gene expression remain unknown. Moreover, our previous efforts were unable to functionally dissect whether the observed phenotypes were due to the loss of hnRNP binding or the incorporation of polymorphisms into the primary nucleotide sequence of SINV. To determine if the loss of hnRNP binding was the primary cause of attenuation or if the disruption of the RNA sequence itself was responsible for the observed phenotypes, we utilized an innovative protein tethering approach to restore the binding of the hnRNP proteins in the absence of the native interaction site. Specifically, we reconstituted the hnRNP I interaction by incorporating the 20nt bovine immunodeficiency virus transactivation RNA response (BIV-TAR) at the site of the native hnRNP I interaction sequence, which will bind with high specificity to proteins tagged with a TAT peptide. The reestablishment of the hnRNP I-vRNA interaction via the BIV-TAR/TAT tethering approach restored the phenotype back to wild-type levels. This included an apparent decrease in structural protein expression in the absence of the native primary nucleotide sequences corresponding to the hnRNP I interaction site. Collectively, the characterization of the hnRNP I interaction site elucidated the role of hnRNPs during viral infection.


Subject(s)
Immunodeficiency Virus, Bovine , Sindbis Virus , Animals , Binding Sites , Cattle , Heterogeneous-Nuclear Ribonucleoproteins/genetics , Heterogeneous-Nuclear Ribonucleoproteins/metabolism , Protein Binding , RNA, Viral/metabolism , Sindbis Virus/genetics , Viral Structural Proteins/metabolism
19.
Nat Microbiol ; 7(7): 1041-1053, 2022 07.
Article in English | MEDLINE | ID: mdl-35637330

ABSTRACT

Immune evasion and inhibition of apoptosis are required for successful virus infection. However, inhibition of apoptosis can increase antiviral immune responses, which can then clear viral infections. Here we show that human cytomegalovirus (HCMV)-encoded UL37 exon-1 protein (UL37x1) not only inhibits apoptosis but also suppresses the cGAS-STING immune pathway. Using co-immunoprecipitation assays, we found that UL37x1 binds to TBK1 to abrogate the TBK1-STING-IRF3 interaction. Although the anti-apoptosis function of UL37x1 increases immune signalling, the immunosuppressive role of UL37x1 counteracts this undesirable side-effect. Furthermore, we used mutational analyses to show that the loss of either immunosuppressive or anti-apoptotic function of UL37x1 significantly reduced HCMV replication in human primary foreskin fibroblasts and humanized mice by over twofold. Finally, loss of both functions resulted in over fourfold reduction of HCMV replication in the same cell type and mouse model, showing that both UL37x1 functions are crucial for HCMV infection. We conclude that this sophisticated mechanism enables HCMV to control innate immunity and apoptosis to ensure efficient infection.


Subject(s)
Cytomegalovirus , Immediate-Early Proteins , Animals , Apoptosis , Humans , Immediate-Early Proteins/metabolism , Immune Evasion , Immunity, Innate , Mice , Viral Structural Proteins/metabolism , Virus Replication
20.
J Virol ; 96(7): e0205321, 2022 04 13.
Article in English | MEDLINE | ID: mdl-35285683

ABSTRACT

Fecal-oral pathogens encounter constitutively expressed enteric alpha-defensins in the intestine during replication and transmission. Alpha-defensins can be potently antiviral and antibacterial; however, their primary sequences, the number of isoforms, and their activity against specific microorganisms often vary greatly between species, reflecting adaptation to species-specific pathogens. Therefore, alpha-defensins might influence not only microbial evolution and tissue tropism within a host but also species tropism and zoonotic potential. To investigate these concepts, we generated a panel of enteric and myeloid alpha-defensins from humans, rhesus macaques, and mice and tested their activity against group A rotaviruses, an important enteric viral pathogen of humans and animals. Rotaviral adaptation to the rhesus macaque correlated with resistance to rhesus enteric, but not myeloid, alpha-defensins and sensitivity to human alpha-defensins. While mouse rotaviral infection was increased in the presence of mouse enteric alpha-defensins, two prominent genotypes of human rotaviruses were differentially sensitive to human enteric alpha-defensins. Furthermore, the effects of cross-species alpha-defensins on human and mouse rotaviruses did not follow an obvious pattern. Thus, exposure to alpha-defensins may have shaped the evolution of some, but not all, rotaviruses. We then used a genetic approach to identify the viral attachment and penetration protein, VP4, as a determinant of alpha-defensin sensitivity. Our results provide a foundation for future studies of the VP4-dependent mechanism of defensin neutralization, highlight the species-specific activities of alpha-defensins, and focus future efforts on a broader range of rotaviruses that differ in VP4 to uncover the potential for enteric alpha-defensins to influence species tropism. IMPORTANCE Rotavirus is a leading cause of severe diarrhea in young children. Like other fecal-oral pathogens, rotaviruses encounter abundant, constitutively expressed defensins in the small intestine. These peptides are a vital part of the vertebrate innate immune system. By investigating the impact that defensins from multiple species have on the infectivity of different strains of rotavirus, we show that some rotaviral infections can be inhibited by defensins. We also found that some, but not all, rotaviruses may have evolved resistance to defensins in the intestine of their host species, and some even appropriate defensins to increase their infectivity. Because rotaviruses infect a broad range of animals and rotaviral infections are highly prevalent in children, identifying immune defenses against infection and how they vary across species and among viral genotypes is important for our understanding of the evolution, transmission, and zoonotic potential of these viruses as well as the improvement of vaccines.


Subject(s)
Rotavirus Infections , Rotavirus , alpha-Defensins , Animals , Humans , Intestine, Small/immunology , Intestine, Small/virology , Macaca mulatta , Mice , Rotavirus/drug effects , Rotavirus/genetics , Rotavirus Infections/physiopathology , Rotavirus Infections/virology , Viral Structural Proteins/metabolism , alpha-Defensins/genetics , alpha-Defensins/metabolism , alpha-Defensins/pharmacology
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