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1.
Proc Natl Acad Sci U S A ; 121(29): e2317977121, 2024 Jul 16.
Article in English | MEDLINE | ID: mdl-38990941

ABSTRACT

In a recent characterization of the Severe Acute Respiratory Syndrome Coronavirus 2 (SARS-CoV-2) variability present in 30 diagnostic samples from patients of the first COVID-19 pandemic wave, 41 amino acid substitutions were documented in the RNA-dependent RNA polymerase (RdRp) nsp12. Eight substitutions were selected in this work to determine whether they had an impact on the RdRp activity of the SARS-CoV-2 nsp12-nsp8-nsp7 replication complex. Three of these substitutions were found around the polymerase central cavity, in the template entry channel (D499G and M668V), and within the motif B (V560A), and they showed polymerization rates similar to the wild type RdRp. The remaining five mutations (P323L, L372F, L372P, V373A, and L527H) were placed near the nsp12-nsp8F contact surface; residues L372, V373, and L527 participated in a large hydrophobic cluster involving contacts between two helices in the nsp12 fingers and the long α-helix of nsp8F. The presence of any of these five amino acid substitutions resulted in important alterations in the RNA polymerization activity. Comparative primer elongation assays showed different behavior depending on the hydrophobicity of their side chains. The substitution of L by the bulkier F side chain at position 372 slightly promoted RdRp activity. However, this activity was dramatically reduced with the L372P, and L527H mutations, and to a lesser extent with V373A, all of which weaken the hydrophobic interactions within the cluster. Additional mutations, specifically designed to disrupt the nsp12-nsp8F interactions (nsp12-V330S, nsp12-V341S, and nsp8-R111A/D112A), also resulted in an impaired RdRp activity, further illustrating the importance of this contact interface in the regulation of RNA synthesis.


Subject(s)
Point Mutation , RNA, Viral , SARS-CoV-2 , Viral Nonstructural Proteins , SARS-CoV-2/genetics , SARS-CoV-2/metabolism , Viral Nonstructural Proteins/genetics , Viral Nonstructural Proteins/metabolism , Viral Nonstructural Proteins/chemistry , RNA, Viral/genetics , RNA, Viral/metabolism , Humans , Coronavirus RNA-Dependent RNA Polymerase/genetics , Coronavirus RNA-Dependent RNA Polymerase/metabolism , Polymerization , COVID-19/virology , Amino Acid Substitution , RNA-Dependent RNA Polymerase/genetics , RNA-Dependent RNA Polymerase/metabolism , Models, Molecular
2.
Nat Commun ; 15(1): 5799, 2024 Jul 10.
Article in English | MEDLINE | ID: mdl-38987544

ABSTRACT

Germ granules are biomolecular condensates present in most animal germ cells. One function of germ granules is to help maintain germ cell totipotency by organizing mRNA regulatory machinery, including small RNA-based gene regulatory pathways. The C. elegans germ granule is compartmentalized into multiple subcompartments whose biological functions are largely unknown. Here, we identify an uncharted subcompartment of the C. elegans germ granule, which we term the E granule. The E granule is nonrandomly positioned within the germ granule. We identify five proteins that localize to the E granule, including the RNA-dependent RNA polymerase (RdRP) EGO-1, the Dicer-related helicase DRH-3, the Tudor domain-containing protein EKL-1, and two intrinsically disordered proteins, EGC-1 and ELLI-1. Localization of EGO-1 to the E granule enables synthesis of a specialized class of 22G RNAs, which derive exclusively from 5' regions of a subset of germline-expressed mRNAs. Defects in E granule assembly elicit disordered production of endogenous siRNAs, which disturbs fertility and the RNAi response. Our results define a distinct subcompartment of the C. elegans germ granule and suggest that one function of germ granule compartmentalization is to facilitate the localized production of specialized classes of small regulatory RNAs.


Subject(s)
Caenorhabditis elegans Proteins , Caenorhabditis elegans , Cytoplasmic Granules , Germ Cells , Caenorhabditis elegans/metabolism , Caenorhabditis elegans/genetics , Caenorhabditis elegans Proteins/metabolism , Caenorhabditis elegans Proteins/genetics , Animals , Germ Cells/metabolism , Cytoplasmic Granules/metabolism , RNA, Messenger/metabolism , RNA, Messenger/genetics , DEAD-box RNA Helicases/metabolism , DEAD-box RNA Helicases/genetics , RNA-Dependent RNA Polymerase/metabolism , RNA-Dependent RNA Polymerase/genetics , Intrinsically Disordered Proteins/metabolism , Intrinsically Disordered Proteins/genetics
3.
Arch Virol ; 169(8): 166, 2024 Jul 12.
Article in English | MEDLINE | ID: mdl-38995418

ABSTRACT

The virus family Phenuiviridae (order Hareavirales, comprising segmented negative-sense single stranded RNA viruses) has highly diverse members that are known to infect animals, plants, protozoans, and fungi. In this study, we identified a novel phenuivirus infecting a strain of the entomopathogenic fungus Cordyceps javanica isolated from a small brown plant hopper (Laodelphax striatellus), and this virus was tentatively named "Cordyceps javanica negative-strand RNA virus 1" (CjNRSV1). The CjNRSV1 genome consists of three negative-sense single stranded RNA segments (RNA1-3) with lengths of 7252, 2401, and 1117 nt, respectively. The 3'- and 5'-terminal regions of the RNA1, 2, and 3 segments have identical sequences, and the termini of the RNA segments are complementary to each other, reflecting a common characteristic of viruses in the order Hareavirales. RNA1 encodes a large protein (∼274 kDa) containing a conserved domain for the bunyavirus RNA-dependent RNA polymerase (RdRP) superfamily, with 57-80% identity to the RdRP encoded by phenuiviruses in the genus Laulavirus. RNA2 encodes a protein (∼79 kDa) showing sequence similarity (47-63% identity) to the movement protein (MP, a plant viral cell-to-cell movement protein)-like protein (MP-L) encoded by RNA2 of laulaviruses. RNA3 encodes a protein (∼28 kDa) with a conserved domain of the phenuivirid nucleocapsid protein superfamily. Phylogenetic analysis using the RdRPs of various phenuiviruses and other unclassified phenuiviruses showed CjNRSV1 to be grouped with established members of the genus Laulavirus. Our results suggest that CjNRSV1 is a novel fungus-infecting member of the genus Laulavirus in the family Phenuiviridae.


Subject(s)
Cordyceps , Genome, Viral , Phylogeny , RNA, Viral , Cordyceps/genetics , RNA, Viral/genetics , Fungal Viruses/classification , Fungal Viruses/genetics , Fungal Viruses/isolation & purification , Viral Proteins/genetics , Negative-Sense RNA Viruses/genetics , Negative-Sense RNA Viruses/classification , RNA-Dependent RNA Polymerase/genetics , RNA Viruses/genetics , RNA Viruses/classification , RNA Viruses/isolation & purification , Amino Acid Sequence , Open Reading Frames
4.
Arch Virol ; 169(8): 160, 2024 Jul 09.
Article in English | MEDLINE | ID: mdl-38981875

ABSTRACT

A novel monopartite dsRNA virus, tentatively named "sponge gourd amalgavirus 1" (SGAV1), was discovered by high-throughput sequencing in sponge gourd (Luffa cylindrica) displaying mosaic symptoms in Jiashan County, Zhejiang Province, China. The genome of SGAV1 is 3,447 nucleotides in length and contains partially overlapping open reading frames (ORFs) encoding a putative replication factory matrix-like protein and a fusion protein, respectively. The fusion protein of SGAV1 shares 57.07% identity with the homologous protein of salvia miltiorrhiza amalgavirus 1 (accession no. DAZ91057.1). Phylogenetic analysis based on the RNA-dependent RNA polymerase (RdRp) protein suggests that SGAV1 belongs to the genus Amalgavirus of the family Amalgaviridae. Moreover, analysis of SGAV1-derived small interfering RNAs indicated that SGAV1 was actively replicating in the host plant. Semi-quantitative RT-PCR showed higher levels of SGAV1 expression in leaves than in flowers and fruits. This is the first report of a novel amalgavirus found in sponge gourd in China.


Subject(s)
Genome, Viral , Luffa , Open Reading Frames , Phylogeny , Genome, Viral/genetics , Luffa/virology , Animals , China , Double Stranded RNA Viruses/genetics , Double Stranded RNA Viruses/classification , Double Stranded RNA Viruses/isolation & purification , Whole Genome Sequencing , Viral Proteins/genetics , RNA, Viral/genetics , RNA-Dependent RNA Polymerase/genetics
5.
Arch Virol ; 169(8): 161, 2024 Jul 09.
Article in English | MEDLINE | ID: mdl-38981885

ABSTRACT

Here, we report a novel ourmia-like mycovirus, named "Phomopsis asparagi magoulivirus 1" (PaMV1), derived from the phytopathogenic fungus Phomopsis asparagi. The genome of PaMV1 consists of a positive-sense single-stranded RNA (+ ssRNA) that is 2,639 nucleotides in length, with a GC content of 57.13%. It contains a single open reading frame (ORF) encoding a putative RNA-dependent RNA polymerase (RdRp) consisting of 686 amino acids with a molecular mass of 78.57 kDa. Phylogenetic analysis based on RdRp sequences revealed that PaMV1 grouped together with Diaporthe gulyae magoulivirus 1 (DgMV1) in a distinct clade. Sequence comparisons and phylogenetic analysis suggest that PaMV1 is a novel member of the genus Magoulivirus, family Botourmiaviridae.


Subject(s)
Fungal Viruses , Genome, Viral , Open Reading Frames , Phomopsis , Phylogeny , RNA, Viral , Fungal Viruses/genetics , Fungal Viruses/classification , Fungal Viruses/isolation & purification , Phomopsis/virology , RNA, Viral/genetics , Whole Genome Sequencing , RNA-Dependent RNA Polymerase/genetics , Base Composition , Plant Diseases/microbiology , Plant Diseases/virology , Viral Proteins/genetics , Base Sequence , RNA Viruses/genetics , RNA Viruses/isolation & purification , RNA Viruses/classification
6.
Arch Virol ; 169(8): 159, 2024 Jul 08.
Article in English | MEDLINE | ID: mdl-38972922

ABSTRACT

In this study, we identified a novel partitivirus, named "Cordyceps militaris partitivirus 1" (CmPV1), in Cordyceps militaris strain RCEF7506. The complete genome of CmPV1 comprises two segments, dsRNA1 and dsRNA2, each encoding a single protein. dsRNA1 (2,206 bp) encodes an RNA-dependent RNA polymerase (RdRp), and dsRNA2 (2,256 bp) encodes a coat protein (CP). Sequence analysis revealed that dsRNA1 has the highest similarity to that of Bipolaris maydis partitivirus 2 (BmPV2), whereas dsRNA2 shows the highest similarity to human blood-associated partitivirus (HuBPV). Phylogenetic analysis based on RdRp sequences suggests that CmPV1 is a new member of the genus Betapartitivirus of the family Partitiviridae. This is the first documentation of a betapartitivirus infecting the entomopathogenic fungus C. militaris.


Subject(s)
Cordyceps , Fungal Viruses , Genome, Viral , Phylogeny , RNA Viruses , Cordyceps/genetics , Cordyceps/virology , Cordyceps/isolation & purification , Genome, Viral/genetics , Fungal Viruses/genetics , Fungal Viruses/isolation & purification , Fungal Viruses/classification , RNA Viruses/genetics , RNA Viruses/isolation & purification , RNA Viruses/classification , RNA, Viral/genetics , RNA-Dependent RNA Polymerase/genetics , Open Reading Frames , Viral Proteins/genetics , Capsid Proteins/genetics
7.
Arch Virol ; 169(8): 165, 2024 Jul 11.
Article in English | MEDLINE | ID: mdl-38990253

ABSTRACT

Monilinia fructicola is one of the most devastating fungal diseases of rosaceous fruit crops, both in the field and postharvest, causing significant yield losses. Here, we report the discovery of a novel positive single-stranded RNA virus, Monilinia fructicola hypovirus 3 (MfHV3), in a strain (hf-1) of the phytopathogenic fungus Monilinia fructicola. The complete genome of MfHV3 is 9259 nucleotides (nt) in length and contains a single large open reading frame (ORF) from nt position 462 to 8411. This ORF encodes a polyprotein with three conserved domains, namely UDP-glycosyltransferase, RNA-dependent RNA polymerase (RdRp), and DEAD-like helicase. The MfHV3 polyprotein shares the highest similarity with Colletotrichum camelliae hypovirus 1. Phylogenetic analysis indicated that MfHV3 clustered with members of the genus Betahypovirus within the family Hypoviridae. Taken together, the results of genomic organization comparisons, amino acid sequence alignments, and phylogenetic analysis convincingly show that MfHV3 is a new member of the genus Betahypovirus, family Hypoviridae.


Subject(s)
Ascomycota , Fungal Viruses , Genome, Viral , Open Reading Frames , Phylogeny , Plant Diseases , Ascomycota/virology , Ascomycota/genetics , Fungal Viruses/genetics , Fungal Viruses/classification , Fungal Viruses/isolation & purification , Plant Diseases/microbiology , Plant Diseases/virology , RNA, Viral/genetics , Viral Proteins/genetics , Whole Genome Sequencing , RNA Viruses/genetics , RNA Viruses/classification , RNA Viruses/isolation & purification , RNA-Dependent RNA Polymerase/genetics , Amino Acid Sequence
8.
Int J Mol Sci ; 25(11)2024 May 26.
Article in English | MEDLINE | ID: mdl-38891989

ABSTRACT

Negeviruses are insect-specific enveloped RNA viruses that exhibit a wide geographic distribution. A novel nege-like virus, tentatively named Aphis gossypii nege-like virus (AGNLV, GenBank: OR880429.1), was isolated from aphids (Aphis gossypii) in Lijiang City, Yunnan, China. AGNLV has a genome sequence of 9258 nt (excluding the polyA tail) encoding three open reading frames (ORFs). ORF1 (7149 nt) encodes a viral methyltransferase, a viral RNA helicase, and an RNA-dependent RNA polymerase. ORF2 (1422 nt) encodes a DiSB-ORF2_chro domain and ORF3 encodes an SP24 domain. The genome sequence of AGNLV shares the highest nucleotide identity of 60.0% and 59.5% with Wuhan house centipede virus 1 (WHCV1) and Astegopteryx formosana nege-like virus (AFNLV), respectively. Phylogenetic analysis based on the RNA-dependent RNA polymerase shows that AGNLV is clustered with other negeviruses and nege-like viruses discovered in aphids, forming a distinct "unclassified clade". Interestingly, AGNLV only encodes three ORFs, whereas AFNLV and WHCV1 have four ORFs. Structure and transmembrane domain predictions show the presence of eight alpha helices and five transmembrane helices in the AGNLV ORF3. Translational enhancement of the AGNLV 5' UTR was similar to that of the 5' UTR of plant viruses. Our findings provide evidence of the diversity and structure of nege-like viruses and are the first record of such a virus from a member of the genus Aphis.


Subject(s)
Aphids , Genome, Viral , Open Reading Frames , Phylogeny , Animals , Aphids/virology , China , RNA Viruses/genetics , RNA Viruses/isolation & purification , RNA Viruses/classification , RNA-Dependent RNA Polymerase/genetics , Viral Proteins/genetics , Viral Proteins/chemistry , Insect Viruses/genetics , Insect Viruses/isolation & purification , Insect Viruses/classification , RNA, Viral/genetics
9.
PLoS Pathog ; 20(6): e1011642, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38875296

ABSTRACT

Influenza viruses transcribe and replicate their genome in the nucleus of the infected cells, two functions that are supported by the viral RNA-dependent RNA-polymerase (FluPol). FluPol displays structural flexibility related to distinct functional states, from an inactive form to conformations competent for replication and transcription. FluPol machinery is constituted by a structurally-invariant core comprising the PB1 subunit stabilized with PA and PB2 domains, whereas the PA endonuclease and PB2 C-domains can pack in different configurations around the core. To get insights into the functioning of FluPol, we selected single-domain nanobodies (VHHs) specific of the influenza A FluPol core. When expressed intracellularly, some of them exhibited inhibitory activity on type A FluPol, but not on the type B one. The most potent VHH (VHH16) binds PA and the PA-PB1 dimer with an affinity below the nanomolar range. Ectopic intracellular expression of VHH16 in virus permissive cells blocks multiplication of different influenza A subtypes, even when induced at late times post-infection. VHH16 was found to interfere with the transport of the PA-PB1 dimer to the nucleus, without affecting its handling by the importin ß RanBP5 and subsequent steps in FluPol assembly. Using FluPol mutants selected after passaging in VHH16-expressing cells, we identified the VHH16 binding site at the interface formed by PA residues with the N-terminus of PB1, overlapping or close to binding sites of two host proteins, ANP32A and RNA-polymerase II RPB1 subunit which are critical for virus replication and transcription, respectively. These data suggest that the VHH16 neutralization is likely due to several activities, altering the import of the PA-PB1 dimer into the nucleus as well as inhibiting specifically virus transcription and replication. Thus, the VHH16 binding site represents a new Achilles' heel for FluPol and as such, a potential target for antiviral development.


Subject(s)
Antiviral Agents , Influenza A virus , RNA-Dependent RNA Polymerase , Single-Domain Antibodies , Virus Replication , Single-Domain Antibodies/immunology , Humans , Antiviral Agents/pharmacology , Influenza A virus/immunology , Animals , RNA-Dependent RNA Polymerase/metabolism , Viral Proteins/metabolism , Influenza, Human/immunology , Influenza, Human/virology , HEK293 Cells , Dogs , Madin Darby Canine Kidney Cells
10.
Arch Virol ; 169(7): 151, 2024 Jun 20.
Article in English | MEDLINE | ID: mdl-38902586

ABSTRACT

A new fusagra-like virus infecting papaya (Carica papaya L.) was genetically characterized. The genome of the virus, provisionally named "papaya sticky fruit-associated virus" (PSFaV), is a single molecule of double-stranded RNA, 9,199 nucleotides (nt) in length, containing two discontinuous open reading frames. Pairwise sequence comparisons based on complete RNA-dependent-RNA-polymerase (RdRp) sequences revealed identity of 79.4% and 83.3% at the nt and amino acid (aa) level, respectively, to babaco meleira-like virus (BabMelV), an uncharacterized virus sequence discovered in babaco (Vasconcellea x heilbornii) in Ecuador. Additional plant-associated viruses with sequence identity in the 50% range included papaya meleira virus (PMeV) isolates from Brazil. Phylogenetic analysis based on the amino acid sequences of the capsid protein (CP), RdRp, and CP-RdRp fusion protein genes placed PSFaV in a group within a well-supported clade that shares a recent ancestor with Sclerotium rolfsii RNA virus 2 and Phlebiopsis gigantea mycovirus dsRNA 2, two fungus-associated fusagraviruses. Genomic features and phylogenetic relatedness suggest that PSFaV, along with its closest relative BabMelV, represent a species of novel plant-associated virus classified within the recently established family Fusagraviridae.


Subject(s)
Carica , Genome, Viral , Open Reading Frames , Phylogeny , Plant Diseases , RNA, Viral , Carica/virology , Genome, Viral/genetics , Ecuador , Plant Diseases/virology , RNA, Viral/genetics , Whole Genome Sequencing , RNA Viruses/genetics , RNA Viruses/classification , RNA Viruses/isolation & purification , RNA-Dependent RNA Polymerase/genetics , Capsid Proteins/genetics
11.
Arch Virol ; 169(7): 140, 2024 Jun 08.
Article in English | MEDLINE | ID: mdl-38850451

ABSTRACT

A novel totivirus, named "birch toti-like virus" (BTLV), was discovered in European white birch (Betula pendula) plants. The genome of BTLV is 4,967 nucleotides long and contains two overlapping open reading frames (ORFs) coding for the capsid protein (CP) and an RNA-dependent RNA-polymerase (RdRP). The encoded CP and RdRP proteins shared 46.9% and 60.2% amino acid sequence identity, respectively, with those of Panax notoginseng virus B. The presence of a putative slippery heptamer signal 82 nt upstream of the stop codon of ORF1 suggests that a -1 translational frameshifting strategy is involved in the expression of ORF2, like in other totiviruses. Phylogenetic analysis based on the CP and RdRP amino acid sequences placed this virus within a clade of plant-associated totiviruses, with taro-associated virus as its closest relative. Hence, based on its distinct host and the amino acid sequence similarity between BTLV and its relatives, we conclude that birch toti-like virus is a new member of the genus Totivirus.


Subject(s)
Betula , Genome, Viral , Open Reading Frames , Phylogeny , Plant Diseases , Betula/virology , Genome, Viral/genetics , Plant Diseases/virology , Capsid Proteins/genetics , Totiviridae/genetics , Totiviridae/classification , Totiviridae/isolation & purification , Amino Acid Sequence , RNA-Dependent RNA Polymerase/genetics , Viral Proteins/genetics , RNA, Viral/genetics
12.
J Gen Virol ; 105(6)2024 Jun.
Article in English | MEDLINE | ID: mdl-38888587

ABSTRACT

Turtlegrass virus X, which infects the seagrass Thalassia testudinum, is the only potexvirus known to infect marine flowering plants. We investigated potexvirus distribution in seagrasses using a degenerate reverse transcription polymerase chain reaction (RT-PCR) assay originally designed to capture potexvirus diversity in terrestrial plants. The assay, which implements Potex-5 and Potex-2RC primers, successfully amplified a 584 nt RNA-dependent RNA polymerase (RdRp) fragment from TVX-infected seagrasses. Following validation, we screened 74 opportunistically collected, apparently healthy seagrass samples for potexviruses using this RT-PCR assay. The survey examined the host species T. testudinum, Halodule wrightii, Halophila stipulacea, Syringodium filiforme, Ruppia maritima, and Zostera marina. Potexvirus PCR products were successfully generated only from T. testudinum samples and phylogenetic analysis of sequenced PCR products revealed five distinct TVX sequence variants. Although the RT-PCR assay revealed limited potexvirus diversity in seagrasses, the expanded geographic distribution of TVX shown here emphasizes the importance of future studies to investigate T. testudinum populations across its native range and understand how the observed fine-scale genetic diversity affects host-virus interactions.


Subject(s)
Genetic Variation , Phylogeny , Potexvirus , Potexvirus/genetics , Potexvirus/isolation & purification , Potexvirus/classification , Gulf of Mexico , Plant Diseases/virology , Hydrocharitaceae/virology , RNA-Dependent RNA Polymerase/genetics , RNA, Viral/genetics , Zosteraceae/virology
13.
mBio ; 15(6): e0037724, 2024 Jun 12.
Article in English | MEDLINE | ID: mdl-38752738

ABSTRACT

Ascospores, forcibly released into the air from perithecia, are the primary inoculum for Fusarium head blight. In Fusarium graminearum, the biological functions of four RNA-dependent RNA polymerases (RdRPs) (Fgrdrp1-4) have been reported, but their regulatory mechanisms are poorly understood and the function of Fgrdrp5 is still unknown. In this study, we found that in addition to Fgrdrp1 and Fgrdrp2, Fgrdrp5 also plays an important role in ascospore discharge, and they all participate in the generation of turgor pressure in a polyol-dependent manner. Moreover, these three genes all affect the maturation of ascospores. Deep sequencing and co-analysis of small RNA and mRNA certified that Fgrdrp1, Fgrdrp2, and Fgrdrp5 partly share their functions in the biogenesis and accumulation of exonic small interference RNA (ex-siRNA), and these three RdRPs negatively regulate the expression levels of ex-siRNA corresponding genes, including certain genes associated with ascospore development or discharge. Furthermore, the differentially expressed genes of deletion mutants, those involved in lipid and sugar metabolism or transport as well as sexual development-related transcription factors, may also contribute to the defects in ascospore maturation or ascospore discharge. In conclusion, our study suggested that the components of the dicer-dependent ex-siRNA-mediated RNA interference pathway include at least Fgrdrp1, Fgrdrp2, and Fgrdrp5. IMPORTANCE: We found that in addition to Fgrdrp1 and Fgrdrp2, Fgrdrp5 also plays important roles in ascospore maturation and ascospore discharge of Fusarium graminearum. These three RNA-dependent RNA polymerases participate in the biogenesis and accumulation of exonic small interference RNA and then regulate ascospore discharge.


Subject(s)
Fusarium , Gene Expression Regulation, Fungal , RNA-Dependent RNA Polymerase , Spores, Fungal , Spores, Fungal/genetics , Spores, Fungal/growth & development , RNA-Dependent RNA Polymerase/metabolism , RNA-Dependent RNA Polymerase/genetics , Fusarium/genetics , Fusarium/enzymology , RNA Interference , Fungal Proteins/genetics , Fungal Proteins/metabolism , RNA, Small Interfering/genetics , RNA, Small Interfering/metabolism
14.
Methods Mol Biol ; 2808: 9-17, 2024.
Article in English | MEDLINE | ID: mdl-38743359

ABSTRACT

Protein-fragment complementation assays (PCAs) are powerful tools to investigate protein-protein interactions in a cellular context. These are especially useful to study unstable proteins and weak interactions that may not resist protein isolation or purification. The PCA based on the reconstitution of the Gaussia princeps luciferase (split-luc) is a sensitive approach allowing the mapping of protein-protein interactions and the semiquantitative measurement of binding affinity. Here, we describe the split-luc protocol we used to map the viral interactome of measles virus polymerase complex.


Subject(s)
Measles virus , Protein Binding , Protein Interaction Mapping , Protein Interaction Mapping/methods , Humans , Luciferases/metabolism , Luciferases/genetics , Viral Proteins/metabolism , RNA-Dependent RNA Polymerase/metabolism
15.
Methods Mol Biol ; 2808: 19-33, 2024.
Article in English | MEDLINE | ID: mdl-38743360

ABSTRACT

Morbilliviruses such as measles virus (MeV) are responsible for major morbidity and mortality worldwide, despite the availability of an effective vaccine and global vaccination campaigns. MeV belongs to the mononegavirus order of viral pathogens that store their genetic information in non-segmented negative polarity RNA genomes. Genome replication and viral gene expression are carried out by a virus-encoded RNA-dependent RNA polymerase (RdRP) complex that has no immediate host cell analog. To better understand the organization and regulation of the viral RdRP and mechanistically characterize antiviral candidates, biochemical RdRP assays have been developed that employ purified recombinant polymerase complexes and synthetic RNA templates to monitor the initiation of RNA synthesis and RNA elongation in vitro. In this article, we will discuss strategies for the efficient expression and preparation of mononegavirus polymerase complexes, provide detailed protocols for the execution and optimization of RdRP assays, evaluate alternative options for the choice of template and detection system, and describe the application of the assay for the characterization of inhibitor candidates. Although MeV RdRP assays are the focus of this article, the general strategies and experimental approaches are readily transferable to related viruses in the mononegavirus order.


Subject(s)
Measles virus , RNA-Dependent RNA Polymerase , Virus Replication , Measles virus/genetics , RNA-Dependent RNA Polymerase/metabolism , RNA-Dependent RNA Polymerase/genetics , RNA, Viral/genetics , Mononegavirales/genetics , Animals , Viral Proteins/metabolism , Viral Proteins/genetics , Humans
16.
ACS Infect Dis ; 10(6): 2047-2062, 2024 Jun 14.
Article in English | MEDLINE | ID: mdl-38811007

ABSTRACT

Dengue virus (DENV) nonstructural protein 5 (NS5), consisting of methyltransferase and RNA-dependent RNA polymerase (RdRp) domains, is critical for viral RNA synthesis within endoplasmic reticulum-derived replication complexes in the cytoplasm. However, a significant proportion of NS5 is localized to the nucleus of infected cells for DENV2, 3, and 4, whereas DENV1 NS5 is localized diffusely in the cytoplasm. We still have an incomplete understanding of how the DENV NS5 subcellular localization is regulated. Within NS5, two putative nuclear localization signal (NLS) sequences have been identified: NLSCentral residing in the palm of the RdRp domain as well as the recently discovered NLSC-term residing in the flexible region at the C-terminal of the RdRp domain. We have previously shown that DENV2 NS5 nuclear localization can be significantly reduced by single-point mutations to the NLSC-term. Here, we present biochemical, virological, and structural data demonstrating that the relative importance of either NLS in NS5 nuclear localization is unique to each of the four DENV serotypes. DENV1 NS5's cytoplasmic localization appears to be due to a functionally weak interaction between its NLSCentral and importin-α (IMPα), while DENV2 NS5 is almost exclusively nuclear through its NLSC-term's strong interaction with IMPα. Both NLSs of DENV3 NS5 appear to contribute to directing its nuclear localization. Lastly, in the case of DENV4, the regulation of its NS5 nuclear localization remains an enigma but appears to be associated with its NLSC-term.


Subject(s)
Cell Nucleus , Dengue Virus , Nuclear Localization Signals , Serogroup , Viral Nonstructural Proteins , Viral Nonstructural Proteins/metabolism , Viral Nonstructural Proteins/genetics , Viral Nonstructural Proteins/chemistry , Dengue Virus/genetics , Dengue Virus/physiology , Cell Nucleus/metabolism , Humans , Cytoplasm/metabolism , Virus Replication , RNA-Dependent RNA Polymerase/metabolism , RNA-Dependent RNA Polymerase/genetics , RNA-Dependent RNA Polymerase/chemistry , Animals , Dengue/virology , Protein Transport
17.
J Med Chem ; 67(11): 8791-8816, 2024 Jun 13.
Article in English | MEDLINE | ID: mdl-38775356

ABSTRACT

The spread of the influenza virus has caused devastating pandemics and huge economic losses worldwide. Antiviral drugs with diverse action modes are urgently required to overcome the challenges of viral mutation and drug resistance, and targeted protein degradation strategies constitute excellent candidates for this purpose. Herein, the first degradation of the influenza virus polymerase acidic (PA) protein using small-molecule degraders developed by hydrophobic tagging (HyT) technology to effectively combat the influenza virus was reported. The SAR results revealed that compound 19b with Boc2-(L)-Lys demonstrated excellent inhibitory activity against A/WSN/33/H1N1 (EC50 = 0.015 µM) and amantadine-resistant strain (A/PR/8/H1N1), low cytotoxicity, high selectivity, substantial degradation ability, and good drug-like properties. Mechanistic studies demonstrated that the proteasome system and autophagic lysosome pathway were the potential drivers of these HyT degraders. Thus, this study provides a powerful tool for investigating the targeted degradation of influenza virus proteins and for antiviral drug development.


Subject(s)
Antiviral Agents , Hydrophobic and Hydrophilic Interactions , Thiourea , Antiviral Agents/pharmacology , Antiviral Agents/chemistry , Antiviral Agents/chemical synthesis , Humans , Dogs , Animals , Thiourea/pharmacology , Thiourea/analogs & derivatives , Thiourea/chemistry , Structure-Activity Relationship , Influenza A Virus, H1N1 Subtype/drug effects , Madin Darby Canine Kidney Cells , Proteolysis/drug effects , Viral Proteins/metabolism , Viral Proteins/chemistry , Viral Proteins/antagonists & inhibitors , RNA-Dependent RNA Polymerase/antagonists & inhibitors , RNA-Dependent RNA Polymerase/metabolism , Drug Resistance, Viral/drug effects
18.
Arch Virol ; 169(6): 126, 2024 May 16.
Article in English | MEDLINE | ID: mdl-38753067

ABSTRACT

A novel mitovirus was identified in Fusarium oxysporum f. sp. melonis strain T-SD3 and designated as "Fusarium oxysporum mitovirus 3" (FoMV3). The virus was isolated from diseased muskmelon plants with the typical symptom of fusarium wilt. The complete genome of FoMV3 is 2269 nt in length with a predicted AU content of 61.40% and contains a single open reading frame (ORF) using the fungal mitochondrial genetic code. The ORF was predicted to encode a polypeptide of 679 amino acids (aa) containing a conserved RNA-dependent RNA polymerase (RdRp) domain with a molecular mass of 77.39 kDa, which contains six conserved motifs with the highly conserved GDD tripeptide in motif IV. The 5'-untranslated region (UTR) and 3'-UTR of FoMV3 were predicted to fold into stem-loop structures. BLASTp analysis revealed that the RdRp of FoMV3 shared the highest aa sequence identity (83.85%) with that of Fusarium asiaticum mitovirus 5 (FaMV5, a member of the family Mitoviridae) infecting F. asiaticum, the causal agent of wheat fusarium head blight. Phylogenetic analysis further suggested that FoMV3 is a new member of the genus Unuamitovirus within the family Mitoviridae. This is the first report of a new mitovirus associated with F. oxysporum f. sp. melonis.


Subject(s)
Fungal Viruses , Fusarium , Genome, Viral , Open Reading Frames , Phylogeny , Plant Diseases , Fusarium/virology , Plant Diseases/microbiology , Plant Diseases/virology , Fungal Viruses/genetics , Fungal Viruses/isolation & purification , Fungal Viruses/classification , RNA Viruses/genetics , RNA Viruses/isolation & purification , RNA Viruses/classification , Whole Genome Sequencing , RNA, Viral/genetics , RNA-Dependent RNA Polymerase/genetics , Viral Proteins/genetics , Cucumis melo/virology , Cucumis melo/microbiology , Amino Acid Sequence , 5' Untranslated Regions , 3' Untranslated Regions , Base Sequence
19.
Arch Virol ; 169(6): 123, 2024 May 16.
Article in English | MEDLINE | ID: mdl-38753216

ABSTRACT

Chinese bayberry is a fruit that is appreciated for its taste. A novel totivirus associated with rolling, disfiguring, chlorotic and vein-clearing symptoms on the leaf apices of Chinese bayberry was identified by transcriptome sequencing and reverse transcription PCR (RT-PCR). The complete genome of the virus was determined to be 4959 nucleotides long, and it contains two open reading frames (ORFs). Its genomic organization is similar to that of previously reported totiviruses. ORF1 encodes a putative coat protein (CP) of 765 aa, and ORF2 encodes an RNA-dependent RNA polymerase (RdRp) of 815 aa. These two putative proteins share 55.1% and 62.6%, amino acid sequence identity, respectively, with the corresponding proteins of Panax notoginseng virus A, respectively. According to the demarcation criteria for totivirus species established by the International Committee on Taxonomy of Viruses (ICTV), the new virus should be considered a member of a new species in the genus totivirus, family Orthototiviridae, which we have tentatively named ''Myrica rubra-associated totivirus'' (MRaTV).


Subject(s)
Genome, Viral , Myrica , Open Reading Frames , Phylogeny , Plant Diseases , Plant Leaves , Totivirus , Whole Genome Sequencing , Genome, Viral/genetics , Plant Diseases/virology , Plant Leaves/virology , Myrica/virology , Myrica/genetics , Totivirus/genetics , Totivirus/isolation & purification , Totivirus/classification , Viral Proteins/genetics , RNA-Dependent RNA Polymerase/genetics , RNA, Viral/genetics
20.
ACS Synth Biol ; 13(6): 1773-1780, 2024 Jun 21.
Article in English | MEDLINE | ID: mdl-38806167

ABSTRACT

Self-replicating RNAs (srRNAs) are synthetic molecules designed to mimic the self-replicating ability of viral RNAs. srRNAs hold significant promise for a range of applications, including enhancing protein expression, reprogramming cells into pluripotent stem cells, and creating cell-free systems for experimental evolution. However, the development of srRNAs for use in bacterial systems remains limited. Here, we demonstrate how a srRNA scaffold from Emesvirus zinderi can be engineered into a self-encoding srRNA by incorporating the coding region of the catalytically active replicase subunit. With the help of in vitro replication assays, including an in vitro translation-coupled replication approach, we show that the resulting system enables complete replication cycles of RNA both in cis and trans, including long cargo RNAs such as tethered 5S, 16S, and 23S rRNAs. In summary, our findings suggest that these srRNAs have significant potential for fundamental research, synthetic biology, and general in vitro evolution.


Subject(s)
RNA, Viral , Replicon , RNA, Viral/genetics , Replicon/genetics , Synthetic Biology/methods , RNA-Dependent RNA Polymerase/genetics , RNA-Dependent RNA Polymerase/metabolism
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