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1.
Annu Rev Cell Dev Biol ; 29: 551-69, 2013.
Article in English | MEDLINE | ID: mdl-24099087

ABSTRACT

Virus budding is a complex, multistep process in which viral proteins make specific alterations in membrane curvature. Many different viral proteins can deform the membrane and form a budding virion, but very few can mediate membrane scission to complete the budding process. As a result, enveloped viruses have developed numerous ways of facilitating membrane scission, including hijacking host cellular scission machinery and expressing their own scission proteins. These proteins mediate scission in very different ways, though the biophysical mechanics underlying their actions may be similar. In this review, we explore the mechanisms of membrane scission and the ways in which enveloped viruses use these systems to mediate the release of budding virions.


Subject(s)
Virus Release , Cell Membrane/chemistry , Cell Membrane/virology , Endosomal Sorting Complexes Required for Transport/metabolism , Humans , Viral Proteins/metabolism
2.
Cell ; 142(6): 902-13, 2010 Sep 17.
Article in English | MEDLINE | ID: mdl-20850012

ABSTRACT

Many viruses utilize host ESCRT proteins for budding; however, influenza virus budding is thought to be ESCRT-independent. In this study we have found a role for the influenza virus M2 proton-selective ion channel protein in mediating virus budding. We observed that a highly conserved amphipathic helix located within the M2 cytoplasmic tail mediates a cholesterol-dependent alteration in membrane curvature. The 17 amino acid amphipathic helix is sufficient for budding into giant unilamellar vesicles, and mutation of this sequence inhibited budding of transfected M2 protein in vivo. We show that M2 localizes to the neck of budding virions and that mutation of the M2 amphipathic helix results in failure of the virus to undergo membrane scission and virion release. These data suggest that M2 mediates the final steps of budding for influenza viruses, bypassing the need for host ESCRT proteins.


Subject(s)
Endosomal Sorting Complexes Required for Transport/metabolism , Influenza A virus/metabolism , Viral Matrix Proteins/metabolism , Virus Release , Animals , Cell Line , Cell Membrane/chemistry , Cell Membrane/metabolism , Dogs , Humans , Influenza A virus/ultrastructure , Membrane Lipids/metabolism , Microscopy, Electron , Protein Structure, Tertiary , Viral Matrix Proteins/analysis , Viral Matrix Proteins/chemistry
3.
Opt Express ; 31(10): 16690-16708, 2023 May 08.
Article in English | MEDLINE | ID: mdl-37157743

ABSTRACT

We demonstrate a fully submerged underwater LiDAR transceiver system based on single-photon detection technologies. The LiDAR imaging system used a silicon single-photon avalanche diode (SPAD) detector array fabricated in complementary metal-oxide semiconductor (CMOS) technology to measure photon time-of-flight using picosecond resolution time-correlated single-photon counting. The SPAD detector array was directly interfaced to a Graphics Processing Unit (GPU) for real-time image reconstruction capability. Experiments were performed with the transceiver system and target objects immersed in a water tank at a depth of 1.8 meters, with the targets placed at a stand-off distance of approximately 3 meters. The transceiver used a picosecond pulsed laser source with a central wavelength of 532 nm, operating at a repetition rate of 20 MHz and average optical power of up to 52 mW, dependent on scattering conditions. Three-dimensional imaging was demonstrated by implementing a joint surface detection and distance estimation algorithm for real-time processing and visualization, which achieved images of stationary targets with up to 7.5 attenuation lengths between the transceiver and the target. The average processing time per frame was approximately 33 ms, allowing real-time three-dimensional video demonstrations of moving targets at ten frames per second at up to 5.5 attenuation lengths between transceiver and target.

4.
Proc Natl Acad Sci U S A ; 117(9): 4931-4941, 2020 03 03.
Article in English | MEDLINE | ID: mdl-32075920

ABSTRACT

Paramyxoviruses are enveloped, nonsegmented, negative-strand RNA viruses that cause a wide spectrum of human and animal diseases. The viral genome, packaged by the nucleoprotein (N), serves as a template for the polymerase complex, composed of the large protein (L) and the homo-tetrameric phosphoprotein (P). The ∼250-kDa L possesses all enzymatic activities necessary for its function but requires P in vivo. Structural information is available for individual P domains from different paramyxoviruses, but how P interacts with L and how that affects the activity of L is largely unknown due to the lack of high-resolution structures of this complex in this viral family. In this study we determined the structure of the L-P complex from parainfluenza virus 5 (PIV5) at 4.3-Šresolution using cryoelectron microscopy, as well as the oligomerization domain (OD) of P at 1.4-Šresolution using X-ray crystallography. P-OD associates with the RNA-dependent RNA polymerase domain of L and protrudes away from it, while the X domain of one chain of P is bound near the L nucleotide entry site. The methyltransferase (MTase) domain and the C-terminal domain (CTD) of L adopt a unique conformation, positioning the MTase active site immediately above the poly-ribonucleotidyltransferase domain and near the likely exit site for the product RNA 5' end. Our study reveals a potential mechanism that mononegavirus polymerases may employ to switch between transcription and genome replication. This knowledge will assist in the design and development of antivirals against paramyxoviruses.


Subject(s)
Methyltransferases/chemistry , Methyltransferases/metabolism , Paramyxovirinae/enzymology , Viral Proteins/chemistry , Viral Proteins/metabolism , Catalytic Domain , Cryoelectron Microscopy , Crystallography, X-Ray , Genome, Viral , Methyltransferases/genetics , Models, Molecular , Nucleoproteins/chemistry , Parainfluenza Virus 5/chemistry , Paramyxovirinae/genetics , Phosphoproteins/chemistry , Protein Binding , Protein Conformation , Protein Domains
5.
Mol Cell ; 55(5): 771-81, 2014 Sep 04.
Article in English | MEDLINE | ID: mdl-25127512

ABSTRACT

Cytoplasmic pattern recognition receptors detect non-self RNAs during virus infections and initiate antiviral signaling. One receptor, MDA5, possesses essential signaling domains, but weak RNA binding. A second receptor, LGP2, rapidly detects diverse dsRNA species, but lacks signaling domains. Accumulating evidence suggests LGP2 and MDA5 work together to detect viral RNA and generate a complete antiviral response, but the basis for their cooperation has been elusive. Experiments presented here address this gap in antiviral signaling, revealing that LGP2 assists MDA5-RNA interactions leading to enhanced MDA5-mediated antiviral signaling. LGP2 increases the initial rate of MDA5-RNA interaction and regulates MDA5 filament assembly, resulting in the formation of more numerous, shorter MDA5 filaments that are shown to generate equivalent or greater signaling activity in vivo than the longer filaments containing only MDA5. These findings provide a mechanism for LGP2 coactivation of MDA5 and a biological context for MDA5-RNA filaments in antiviral responses.


Subject(s)
DEAD-box RNA Helicases/metabolism , RNA Helicases/physiology , RNA, Viral/metabolism , Adenosine Triphosphate/metabolism , DEAD-box RNA Helicases/chemistry , DEAD-box RNA Helicases/immunology , HEK293 Cells , Humans , Hydrolysis , Immunity, Innate , Interferon-Induced Helicase, IFIH1 , RNA Helicases/immunology , RNA Helicases/metabolism , RNA, Double-Stranded/metabolism , RNA, Viral/immunology , Signal Transduction
6.
J Virol ; 94(6)2020 02 28.
Article in English | MEDLINE | ID: mdl-31896588

ABSTRACT

Influenza viruses are highly infectious and are the leading cause of human respiratory diseases and may trigger severe epidemics and occasional pandemics. Although antiviral drugs against influenza viruses have been developed, there is an urgent need to design new strategies to develop influenza virus inhibitors due to the increasing resistance of viruses toward currently available drugs. In this study, we examined the antiviral activity of natural compounds against the following influenza virus strains: A/WSN/33 (H1N1), A/Udorn/72 (H3N2), and B/Lee/40. Papaverine (a nonnarcotic alkaloid that has been used for the treatment of heart disease, impotency, and psychosis) was found to be an effective inhibitor of multiple strains of influenza virus. Kinetic studies demonstrated that papaverine inhibited influenza virus infection at a late stage in the virus life cycle. An alteration in influenza virus morphology and viral ribonucleoprotein (vRNP) localization was observed as an effect of papaverine treatment. Papaverine is a well-known phosphodiesterase inhibitor and also modifies the mitogen-activated protein kinase (MAPK) pathway by downregulating the phosphorylation of MEK and extracellular signal-regulated kinase (ERK). Thus, the modulation of host cell signaling pathways by papaverine may be associated with the nuclear retention of vRNPs and the reduction of influenza virus titers. Interestingly, papaverine also inhibited paramyxoviruses parainfluenza virus 5 (PIV5), human parainfluenza virus 3 (HPIV3), and respiratory syncytial virus (RSV) infections. We propose that papaverine can be a potential candidate to be used as an antiviral agent against a broad range of influenza viruses and paramyxoviruses.IMPORTANCE Influenza viruses are important human pathogens that are the causative agents of epidemics and pandemics. Despite the availability of an annual vaccine, a large number of cases occur every year globally. Here, we report that papaverine, a vasodilator, shows inhibitory action against various strains of influenza virus as well as the paramyxoviruses PIV5, HPIV3, and RSV. A significant effect of papaverine on the influenza virus morphology was observed. Papaverine treatment of influenza-virus-infected cells resulted in the inhibition of virus at a later time in the virus life cycle through the suppression of nuclear export of vRNP and also interfered with the host cellular cAMP and MEK/ERK cascade pathways. This study explores the use of papaverine as an effective inhibitor of both influenza viruses as well as paramyxoviruses.


Subject(s)
Antiviral Agents/pharmacology , Drug Repositioning , Orthomyxoviridae Infections , Orthomyxoviridae/metabolism , Papaverine/pharmacology , Paramyxoviridae Infections , Paramyxovirinae/metabolism , Animals , Dogs , Drug Evaluation, Preclinical , HEK293 Cells , Humans , MAP Kinase Signaling System/drug effects , Madin Darby Canine Kidney Cells , Orthomyxoviridae Infections/drug therapy , Orthomyxoviridae Infections/metabolism , Orthomyxoviridae Infections/pathology , Paramyxoviridae Infections/metabolism , Paramyxoviridae Infections/pathology
7.
J Virol ; 92(5)2018 03 01.
Article in English | MEDLINE | ID: mdl-29237836

ABSTRACT

Parainfluenza virus 5 (PIV5) belongs to the family Paramyxoviridae, which consists of enveloped viruses with a nonsegmented negative-strand RNA genome encapsidated by the nucleoprotein (N). Paramyxovirus replication is regulated by the phosphoprotein (P) through protein-protein interactions with N and the RNA polymerase (L). The chaperone activity of P is essential to maintain the unassembled RNA-free form of N in order to prevent nonspecific RNA binding and premature N oligomerization. Here, we determined the crystal structure of unassembled PIV5 N in complex with a P peptide (N0P) derived from the N terminus of P (P50) at 2.65 Å. The PIV5 N0P consists of two domains: an N-terminal domain (NTD) and a C-terminal domain (CTD) separated by a hinge region. The cleft at the hinge region of RNA-bound PIV5 N was previously shown to be an RNA binding site. The N0P structure shows that the P peptide binds to the CTD of N and extends toward the RNA binding site to inhibit N oligomerization and, hence, RNA binding. Binding of P peptide also keeps the PIV5 N in the open form. A molecular dynamics (MD) analysis of both the open and closed forms of N shows the flexibility of the CTD and the preference of the N protein to be in an open conformation. The gradual opening of the hinge region, to release the RNA, was also observed. Together, these results advance our knowledge of the conformational swapping of N required for the highly regulated paramyxovirus replication.IMPORTANCE Paramyxovirus replication is regulated by the interaction of P with N and L proteins. Here, we report the crystal structure of unassembled parainfluenza virus 5 (PIV5) N chaperoned with P peptide. Our results provide a detailed understanding of the binding of P to N. The conformational switching of N between closed and open forms during its initial interaction with P, as well as during RNA release, was analyzed. Our data also show the plasticity of the CTD and the importance of domain movement for conformational switching. The results improve our understanding of the mechanism of interchanging N conformations for RNA replication and release.


Subject(s)
Nucleoproteins/chemistry , Parainfluenza Virus 5/chemistry , Paramyxovirinae/chemistry , Peptides/chemistry , Phosphoproteins/chemistry , Binding Sites , Crystallography, X-Ray , Models, Molecular , Nucleoproteins/metabolism , Peptides/metabolism , Phosphoproteins/metabolism , Protein Binding , Protein Conformation , Protein Folding , Protein Interaction Domains and Motifs , RNA, Viral/chemistry , RNA, Viral/metabolism , RNA-Binding Proteins/chemistry , RNA-Binding Proteins/metabolism , Viral Proteins/chemistry , Viral Proteins/metabolism , Virus Replication
9.
Arch Virol ; 164(4): 1233-1244, 2019 Apr.
Article in English | MEDLINE | ID: mdl-30663023

ABSTRACT

In October 2018, the order Mononegavirales was amended by the establishment of three new families and three new genera, abolishment of two genera, and creation of 28 novel species. This article presents the updated taxonomy of the order Mononegavirales as now accepted by the International Committee on Taxonomy of Viruses (ICTV).


Subject(s)
Mononegavirales/classification , Mononegavirales/genetics , Mononegavirales/isolation & purification , Phylogeny , Virology/organization & administration
10.
Proc Natl Acad Sci U S A ; 113(4): 1056-61, 2016 Jan 26.
Article in English | MEDLINE | ID: mdl-26712026

ABSTRACT

Hendra virus (HeV) is one of the two prototypical members of the Henipavirus genus of paramyxoviruses, which are designated biosafety level 4 (BSL-4) organisms due to the high mortality rate of Nipah virus (NiV) and HeV in humans. Paramyxovirus cell entry is mediated by the fusion protein, F, in response to binding of a host receptor by the attachment protein. During posttranslational processing, the fusion peptide of F is released and, upon receptor-induced triggering, inserts into the host cell membrane. As F undergoes a dramatic refolding from its prefusion to postfusion conformation, the fusion peptide brings the host and viral membranes together, allowing entry of the viral RNA. Here, we present the crystal structure of the prefusion form of the HeV F ectodomain. The structure shows very high similarity to the structure of prefusion parainfluenza virus 5 (PIV5) F, with the main structural differences in the membrane distal apical loops and the fusion peptide cleavage loop. Functional assays of mutants show that the apical loop can tolerate perturbation in length and surface residues without loss of function, except for residues involved in the stability and conservation of the F protein fold. Structure-based disulfide mutants were designed to anchor the fusion peptide to conformationally invariant residues of the F head. Two mutants were identified that inhibit F-mediated fusion by stabilizing F in its prefusion conformation.


Subject(s)
Hendra Virus/chemistry , Viral Fusion Proteins/chemistry , Amino Acid Sequence , Crystallography, X-Ray , Disulfides/chemistry , HEK293 Cells , Humans , Molecular Sequence Data , Protein Conformation , Protein Stability
11.
Proc Natl Acad Sci U S A ; 113(27): E3844-51, 2016 07 05.
Article in English | MEDLINE | ID: mdl-27335462

ABSTRACT

Parainfluenza virus 5 (PIV5) is an enveloped, single-stranded, negative-sense RNA virus of the Paramyxoviridae family. PIV5 fusion and entry are mediated by the coordinated action of the receptor-binding protein, hemagglutinin-neuraminidase (HN), and the fusion protein (F). Upon triggering by HN, F undergoes an irreversible ATP- and pH-independent conformational change, going down an energy gradient from a metastable prefusion state to a highly stable postfusion state. Previous studies have highlighted key conformational changes in the F-protein refolding pathway, but a detailed understanding of prefusion F-protein metastability remains elusive. Here, using two previously described F-protein mutations (S443D or P22L), we examine the capacity to modulate PIV5 F stability and the mechanisms by which these point mutants act. The S443D mutation destabilizes prefusion F proteins by disrupting a hydrogen bond network at the base of the F-protein globular head. The introduction of a P22L mutation robustly rescues destabilized F proteins through a local hydrophobic interaction between the N-terminal helix and a hydrophobic pocket. Prefusion stabilization conferred by a P22L-homologous mutation is demonstrated in the F protein of Newcastle disease virus, a paramyxovirus of a different genus, suggesting a conserved stabilizing structural element within the paramyxovirus family. Taken together, the available data suggest that movement of the N-terminal helix is a necessary early step for paramyxovirus F-protein refolding and presents a novel target for structure-based drug design.


Subject(s)
Parainfluenza Virus 5/metabolism , Viral Fusion Proteins/metabolism , Amino Acid Substitution , Animals , Chlorocebus aethiops , Molecular Conformation , Mutation , Protein Stability , Vero Cells
12.
J Virol ; 91(9)2017 05 01.
Article in English | MEDLINE | ID: mdl-28202765

ABSTRACT

Influenza virus assembles and buds at the plasma membrane of virus-infected cells. The viral proteins assemble at the same site on the plasma membrane for budding to occur. This involves a complex web of interactions among viral proteins. Some proteins, like hemagglutinin (HA), NA, and M2, are integral membrane proteins. M1 is peripherally membrane associated, whereas NP associates with viral RNA to form an RNP complex that associates with the cytoplasmic face of the plasma membrane. Furthermore, HA and NP have been shown to be concentrated in cholesterol-rich membrane raft domains, whereas M2, although containing a cholesterol binding motif, is not raft associated. Here we identify viral proteins in planar sheets of plasma membrane using immunogold staining. The distribution of these proteins was examined individually and pairwise by using the Ripley K function, a type of nearest-neighbor analysis. Individually, HA, NA, M1, M2, and NP were shown to self-associate in or on the plasma membrane. HA and M2 are strongly coclustered in the plasma membrane; however, in the case of NA and M2, clustering depends upon the expression system used. Despite both proteins being raft resident, HA and NA occupy distinct but adjacent membrane domains. M2 and M1 strongly cocluster, but the association of M1 with HA or NA is dependent upon the means of expression. The presence of HA and NP at the site of budding depends upon the coexpression of other viral proteins. Similarly, M2 and NP occupy separate compartments, but an association can be bridged by the coexpression of M1.IMPORTANCE The complement of influenza virus proteins necessary for the budding of progeny virions needs to accumulate at budozones. This is complicated by HA and NA residing in lipid raft-like domains, whereas M2, although an integral membrane protein, is not raft associated. Other necessary protein components such as M1 and NP are peripherally associated with the membrane. Our data define spatial relationships between viral proteins in the plasma membrane. Some proteins, such as HA and M2, inherently cocluster within the membrane, although M2 is found mostly at the periphery of regions of HA, consistent with the proposed role of M2 in scission at the end of budding. The association between some pairs of influenza virus proteins, such as M2 and NP, appears to be brokered by additional influenza virus proteins, in this case M1. HA and NA, while raft associated, reside in distinct domains, reflecting their distributions in the viral membrane.


Subject(s)
Cell Membrane/metabolism , Hemagglutinin Glycoproteins, Influenza Virus/metabolism , Influenza A virus/metabolism , Membrane Microdomains/metabolism , Neuraminidase/metabolism , Viral Matrix Proteins/metabolism , Animals , Cell Line , Chlorocebus aethiops , Dogs , HEK293 Cells , Humans , Influenza A virus/genetics , Madin Darby Canine Kidney Cells , RNA, Viral/genetics , Staining and Labeling , Viral Proteins/metabolism , Virus Assembly , Virus Release/physiology
13.
Syst Biol ; 66(3): 463-473, 2017 05 01.
Article in English | MEDLINE | ID: mdl-27798405

ABSTRACT

Botanical, mycological, zoological, and prokaryotic species names follow the Linnaean format, consisting of an italicized Latinized binomen with a capitalized genus name and a lower case species epithet (e.g., Homo sapiens). Virus species names, however, do not follow a uniform format, and, even when binomial, are not Linnaean in style. In this thought exercise, we attempted to convert all currently official names of species included in the virus family Arenaviridae and the virus order Mononegavirales to Linnaean binomials, and to identify and address associated challenges and concerns. Surprisingly, this endeavor was not as complicated or time-consuming as even the authors of this article expected when conceiving the experiment. [Arenaviridae; binomials; ICTV; International Committee on Taxonomy of Viruses; Mononegavirales; virus nomenclature; virus taxonomy.].


Subject(s)
Classification , Viruses , Terminology as Topic
14.
Arch Virol ; 163(5): 1395-1404, 2018 May.
Article in English | MEDLINE | ID: mdl-29372404

ABSTRACT

A number of unassigned viruses in the family Paramyxoviridae need to be classified either as a new genus or placed into one of the seven genera currently recognized in this family. Furthermore, numerous new paramyxoviruses continue to be discovered. However, attempts at classification have highlighted the difficulties that arise by applying historic criteria or criteria based on sequence alone to the classification of the viruses in this family. While the recent taxonomic change that elevated the previous subfamily Pneumovirinae into a separate family Pneumoviridae is readily justified on the basis of RNA dependent -RNA polymerase (RdRp or L protein) sequence motifs, using RdRp sequence comparisons for assignment to lower level taxa raises problems that would require an overhaul of the current criteria for assignment into genera in the family Paramyxoviridae. Arbitrary cut off points to delineate genera and species would have to be set if classification was based on the amino acid sequence of the RdRp alone or on pairwise analysis of sequence complementarity (PASC) of all open reading frames (ORFs). While these cut-offs cannot be made consistent with the current classification in this family, resorting to genus-level demarcation criteria with additional input from the biological context may afford a way forward. Such criteria would reflect the increasingly dynamic nature of virus taxonomy even if it would require a complete revision of the current classification.


Subject(s)
Paramyxoviridae/classification , Phylogeny , Genome, Viral , Open Reading Frames , Paramyxoviridae/genetics , RNA-Dependent RNA Polymerase/genetics
15.
Arch Virol ; 163(8): 2283-2294, 2018 Aug.
Article in English | MEDLINE | ID: mdl-29637429

ABSTRACT

In 2018, the order Mononegavirales was expanded by inclusion of 1 new genus and 12 novel species. This article presents the updated taxonomy of the order Mononegavirales as now accepted by the International Committee on Taxonomy of Viruses (ICTV) and summarizes additional taxonomic proposals that may affect the order in the near future.


Subject(s)
Mononegavirales/classification , Animals , Humans , Mononegavirales/genetics , Mononegavirales/isolation & purification , Mononegavirales Infections/veterinary , Mononegavirales Infections/virology , Phylogeny
16.
Proc Natl Acad Sci U S A ; 112(14): E1792-9, 2015 Apr 07.
Article in English | MEDLINE | ID: mdl-25831513

ABSTRACT

Parainfluenza virus 5 (PIV5) is a member of the Paramyxoviridae family of membrane-enveloped viruses with a negative-sense RNA genome that is packaged and protected by long filamentous nucleocapsid-helix structures (RNPs). These RNPs, consisting of ∼2,600 protomers of nucleocapsid (N) protein, form the template for viral transcription and replication. We have determined the 3D X-ray crystal structure of the nucleoprotein (N)-RNA complex from PIV5 to 3.11-Šresolution. The structure reveals a 13-mer nucleocapsid ring whose diameter, cavity, and pitch/height dimensions agree with EM data from early studies on the Paramyxovirinae subfamily of native RNPs, indicating that it closely represents one-turn in the building block of the RNP helices. The PIV5-N nucleocapsid ring encapsidates a nuclease resistant 78-nt RNA strand in its positively charged groove formed between the N-terminal (NTD) and C-terminal (CTD) domains of its successive N protomers. Six nucleotides precisely are associated with each N protomer, with alternating three-base-in three-base-out conformation. The binding of six nucleotides per protomer is consistent with the "rule of six" that governs the genome packaging of the Paramyxovirinae subfamily of viruses. PIV5-N protomer subdomains are very similar in structure to the previously solved Nipah-N structure, but with a difference in the angle between NTD/CTD at the RNA hinge region. Based on the Nipah-N structure we modeled a PIV5-N open conformation in which the CTD rotates away from the RNA strand into the inner spacious nucleocapsid-ring cavity. This rotation would expose the RNA for the viral polymerase activity without major disruption of the nucleocapsid structure.


Subject(s)
Nucleoproteins/chemistry , Parainfluenza Virus 5/chemistry , RNA, Viral/chemistry , Binding Sites , Crystallography, X-Ray , Escherichia coli/virology , Microscopy, Electron , Models, Molecular , Protein Binding , Protein Structure, Secondary , Protein Structure, Tertiary
17.
Proc Natl Acad Sci U S A ; 112(40): 12504-9, 2015 Oct 06.
Article in English | MEDLINE | ID: mdl-26392524

ABSTRACT

Paramyxoviruses include many important animal and human pathogens. Most paramyxoviruses have two integral membrane proteins: fusion protein (F) and attachment proteins hemagglutinin, hemagglutinin-neuraminidase, or glycoprotein (G), which are critical for viral entry into cells. J paramyxovirus (JPV) encodes four integral membrane proteins: F, G, SH, and transmembrane (TM). The function of TM is not known. In this work, we have generated a viable JPV lacking TM (JPV∆TM). JPV∆TM formed opaque plaques compared with JPV. Quantitative syncytia assays showed that JPV∆TM was defective in promoting cell-to-cell fusion (i.e., syncytia formation) compared with JPV. Furthermore, cells separately expressing F, G, TM, or F plus G did not form syncytia whereas cells expressing F plus TM formed some syncytia. However, syncytia formation was much greater with coexpression of F, G, and TM. Biochemical analysis indicates that F, G, and TM interact with each other. A small hydrophobic region in the TM ectodomain from amino acid residues 118 to 132, the hydrophobic loop (HL), was important for syncytial promotion, suggesting that the TM HL region plays a critical role in cell-to-cell fusion.


Subject(s)
Membrane Proteins/genetics , Mutation , Paramyxovirinae/genetics , Viral Proteins/genetics , Animals , Cell Fusion , Cell Line , Chlorocebus aethiops , Electrophoresis, Polyacrylamide Gel , Flow Cytometry , Fluorescent Antibody Technique , Giant Cells/metabolism , Glycoproteins/genetics , Glycoproteins/metabolism , HEK293 Cells , Humans , Membrane Proteins/metabolism , Paramyxovirinae/growth & development , Paramyxovirinae/metabolism , Protein Binding , Vero Cells , Viral Fusion Proteins/genetics , Viral Fusion Proteins/metabolism , Viral Plaque Assay , Viral Proteins/metabolism
18.
J Gen Virol ; 98(12): 2912-2913, 2017 Dec.
Article in English | MEDLINE | ID: mdl-29087278

ABSTRACT

The family Pneumoviridae comprises large enveloped negative-sense RNA viruses. This taxon was formerly a subfamily within the Paramyxoviridae, but was reclassified in 2016 as a family with two genera, Orthopneumovirus and Metapneumovirus. Pneumoviruses infect a range of mammalian species, while some members of the Metapneumovirus genus may also infect birds. Some viruses are specific and pathogenic for humans, such as human respiratory syncytial virus and human metapneumovirus. There are no known vectors for pneumoviruses and transmission is thought to be primarily by aerosol droplets and contact. This is a summary of the International Committee on Taxonomy of Viruses (ICTV) Report on the taxonomy of the Pneumoviridae, which is available at www.ictv.global/report/pneumoviridae.


Subject(s)
RNA Virus Infections/veterinary , RNA Virus Infections/virology , RNA Viruses/classification , Animals , Birds/virology , Humans , Mammals/virology , RNA Viruses/genetics , RNA Viruses/isolation & purification , Virus Replication
19.
J Virol ; 90(20): 9172-81, 2016 10 15.
Article in English | MEDLINE | ID: mdl-27489276

ABSTRACT

UNLABELLED: The Paramyxoviridae comprise a large family of enveloped, negative-sense, single-stranded RNA viruses with significant economic and public health implications. For nearly all paramyxoviruses, infection is initiated by fusion of the viral and host cell plasma membranes in a pH-independent fashion. Fusion is orchestrated by the receptor binding protein hemagglutinin-neuraminidase (HN; also called H or G depending on the virus type) protein and a fusion (F) protein, the latter undergoing a major refolding process to merge the two membranes. Mechanistic details regarding the coupling of receptor binding to F activation are not fully understood. Here, we have identified the flexible loop region connecting the bulky enzymatically active head and the four-helix bundle stalk to be essential for fusion promotion. Proline substitution in this region of HN of parainfluenza virus 5 (PIV5) and Newcastle disease virus HN abolishes cell-cell fusion, whereas HN retains receptor binding and neuraminidase activity. By using reverse genetics, we engineered recombinant PIV5-EGFP viruses with mutations in the head-stalk linker region of HN. Mutations in this region abolished virus recovery and infectivity. In sum, our data suggest that the loop region acts as a "hinge" around which the bulky head of HN swings to-and-fro to facilitate timely HN-mediate F-triggering, a notion consistent with the stalk-mediated activation model of paramyxovirus fusion. IMPORTANCE: Paramyxovirus fusion with the host cell plasma membrane is essential for virus infection. Membrane fusion is orchestrated via interaction of the receptor binding protein (HN, H, or G) with the viral fusion glycoprotein (F). Two distinct models have been suggested to describe the mechanism of fusion: these include "the clamp" and the "provocateur" model of activation. By using biochemical and reverse genetics tools, we have obtained strong evidence in favor of the HN stalk-mediated activation of paramyxovirus fusion. Specifically, our data strongly support the notion that the short linker between the head and stalk plays a role in "conformational switching" of the head group to facilitate F-HN interaction and triggering.


Subject(s)
HN Protein/metabolism , Newcastle disease virus/physiology , Parainfluenza Virus 5/physiology , Virus Attachment , Virus Internalization , Animals , Cell Line , DNA Mutational Analysis , HN Protein/genetics , Humans , Mutagenesis, Site-Directed , Newcastle disease virus/genetics , Parainfluenza Virus 5/genetics
20.
J Virol ; 90(17): 7778-88, 2016 09 01.
Article in English | MEDLINE | ID: mdl-27334593

ABSTRACT

UNLABELLED: Paramyxoviridae consist of a large family of enveloped, negative-sense, nonsegmented single-stranded RNA viruses that account for a significant number of human and animal diseases. The fusion process for nearly all paramyxoviruses involves the mixing of the host cell plasma membrane and the virus envelope in a pH-independent fashion. Fusion is orchestrated via the concerted action of two surface glycoproteins: an attachment protein called hemagglutinin-neuraminidase (HN [also called H or G depending on virus type and substrate]), which acts as a receptor binding protein, and a fusion (F) protein, which undergoes a major irreversible refolding process to merge the two membranes. Recent biochemical evidence suggests that receptor binding by HN is dispensable for cell-cell fusion. However, factors that influence the stability and/or conformation of the HN 4-helix bundle (4HB) stalk have not been studied. Here, we used oxidative cross-linking as well as functional assays to investigate the role of the structurally unresolved membrane-proximal stalk region (MPSR) (residues 37 to 58) of HN in the context of headless and full-length HN membrane fusion promotion. Our data suggest that the receptor binding head serves to stabilize the stalk to regulate fusion. Moreover, we found that the MPSR of HN modulates receptor binding and neuraminidase activity without a corresponding regulation of F triggering. IMPORTANCE: Paramyxoviruses require two viral membrane glycoproteins, the attachment protein variously called HN, H, or G and the fusion protein (F), to couple host receptor recognition to virus-cell fusion. The HN protein has a globular head that is attached to a membrane-anchored flexible stalk of ∼80 residues and has three activities: receptor binding, neuraminidase, and fusion activation. In this report, we have identified the functional significance of the membrane-proximal stalk region (MPSR) (HN, residues 37 to 56) of the paramyxovirus parainfluenza virus (PIV5), a region of the HN stalk that has not had its structure determined by X-ray crystallography. Our data suggest that the MPSR influences receptor binding and neuraminidase activity via an indirect mechanism. Moreover, the receptor binding head group stabilizes the 4HB stalk as part of the general mechanism to fine-tune F-activation.


Subject(s)
Avulavirus/enzymology , Avulavirus/physiology , HN Protein/metabolism , Neuraminic Acids/metabolism , Virus Attachment , Virus Internalization , Animals , Avulavirus/genetics , Cell Line , DNA Mutational Analysis , HN Protein/genetics , Humans , Mutagenesis
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