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1.
PLoS Biol ; 22(5): e3002626, 2024 May.
Artículo en Inglés | MEDLINE | ID: mdl-38728373

RESUMEN

All plant viruses were thought to encode in its genome a movement protein that acts as a "passport," allowing active movement within the host. A new study in PLOS Biology characterizes the first plant virus that can colonize its host without encoding this protein.


Asunto(s)
Enfermedades de las Plantas , Virus de Plantas , Virus de Plantas/fisiología , Virus de Plantas/genética , Virus de Plantas/patogenicidad , Enfermedades de las Plantas/virología , Plantas/virología , Proteínas de Movimiento Viral en Plantas/metabolismo , Proteínas de Movimiento Viral en Plantas/genética , Genoma Viral , Interacciones Huésped-Patógeno
2.
PLoS Biol ; 22(4): e3002600, 2024 Apr.
Artículo en Inglés | MEDLINE | ID: mdl-38662792

RESUMEN

The signature feature of all plant viruses is the encoding of movement proteins (MPs) that supports the movement of the viral genome into adjacent cells and through the vascular system. The recent discovery of umbravirus-like viruses (ULVs), some of which only encode replication-associated proteins, suggested that they, as with umbraviruses that lack encoded capsid proteins (CPs) and silencing suppressors, would require association with a helper virus to complete an infection cycle. We examined the infection properties of 2 ULVs: citrus yellow vein associated virus 1 (CY1), which only encodes replication proteins, and closely related CY2 from hemp, which encodes an additional protein (ORF5CY2) that was assumed to be an MP. We report that both CY1 and CY2 can independently infect the model plant Nicotiana benthamiana in a phloem-limited fashion when delivered by agroinfiltration. Unlike encoded MPs, ORF5CY2 was dispensable for infection of CY2, but was associated with faster symptom development. Examination of ORF5CY2 revealed features more similar to luteoviruses/poleroviruses/sobemovirus CPs than to 30K class MPs, which all share a similar single jelly-roll domain. In addition, only CY2-infected plants contained virus-like particles (VLPs) associated with CY2 RNA and ORF5CY2. CY1 RNA and a defective (D)-RNA that arises during infection interacted with host protein phloem protein 2 (PP2) in vitro and in vivo, and formed a high molecular weight complex with sap proteins in vitro that was partially resistant to RNase treatment. When CY1 was used as a virus-induced gene silencing (VIGS) vector to target PP2 transcripts, CY1 accumulation was reduced in systemic leaves, supporting the usage of PP2 for systemic movement. ULVs are therefore the first plant viruses encoding replication and CPs but no MPs, and whose systemic movement relies on a host MP. This explains the lack of discernable helper viruses in many ULV-infected plants and evokes comparisons with the initial viruses transferred into plants that must have similarly required host proteins for movement.


Asunto(s)
Nicotiana , Enfermedades de las Plantas , Proteínas de Movimiento Viral en Plantas , Nicotiana/virología , Nicotiana/genética , Nicotiana/metabolismo , Enfermedades de las Plantas/virología , Proteínas de Movimiento Viral en Plantas/metabolismo , Proteínas de Movimiento Viral en Plantas/genética , Virus ARN/genética , Virus ARN/fisiología , Virus ARN/metabolismo , Virus de Plantas/fisiología , Virus de Plantas/genética , Virus de Plantas/metabolismo , Virus de Plantas/patogenicidad , Proteínas de la Cápside/metabolismo , Proteínas de la Cápside/genética , ARN Viral/genética , ARN Viral/metabolismo , Genoma Viral , Floema/virología , Floema/metabolismo
3.
PLoS Biol ; 21(6): e3002157, 2023 06.
Artículo en Inglés | MEDLINE | ID: mdl-37319262

RESUMEN

Numerous, diverse plant viruses encode movement proteins (MPs) that aid the virus movement through plasmodesmata, the plant intercellular channels. MPs are essential for virus spread and propagation in distal tissues, and several unrelated MPs have been identified. The 30K superfamily of MPs (named after the molecular mass of tobacco mosaic virus MP, the classical model of plant virology) is the largest and most diverse MP variety, represented in 16 virus families, but its evolutionary origin remained obscure. Here, we show that the core structural domain of the 30K MPs is homologous to the jelly-roll domain of the capsid proteins (CPs) of small RNA and DNA viruses, in particular, those infecting plants. The closest similarity was observed between the 30K MPs and the CPs of the viruses in the families Bromoviridae and Geminiviridae. We hypothesize that the MPs evolved via duplication or horizontal acquisition of the CP gene in a virus that infected an ancestor of vascular plants, followed by neofunctionalization of one of the paralogous CPs, potentially through the acquisition of unique N- and C-terminal regions. During the subsequent coevolution of viruses with diversifying vascular plants, the 30K MP genes underwent explosive horizontal spread among emergent RNA and DNA viruses, likely permitting viruses of insects and fungi that coinfected plants to expand their host ranges, molding the contemporary plant virome.


Asunto(s)
Virus de Plantas , Virus del Mosaico del Tabaco , Proteínas de la Cápside/genética , Proteínas de Movimiento Viral en Plantas/genética , Proteínas de Movimiento Viral en Plantas/química , Proteínas de Movimiento Viral en Plantas/metabolismo , Virus del Mosaico del Tabaco/genética , Virus del Mosaico del Tabaco/metabolismo , Virus de Plantas/genética , Virus de Plantas/metabolismo , Plantas/genética , ARN , Nicotiana/genética
4.
PLoS Pathog ; 18(12): e1011062, 2022 12.
Artículo en Inglés | MEDLINE | ID: mdl-36574436

RESUMEN

Tobacco mosaic virus movement protein (TMV MP) is essential for virus spread between cells. To accomplish its task, TMV MP binds viral RNA, interacts with components of the cytoskeleton, and increases the size exclusion limit (SEL) of plasmodesmata. Plasmodesmata are gated intercellular channels that allow passage of small molecules and macromolecules, including RNA and protein, between plant cells. Moreover, plasmodesmata are diverse and those connecting different cell types appear to have unique mechanisms to regulate macromolecular trafficking, which likely contributes to the establishment of distinct cell boundaries. Consequently, TMV MP might be competent to mediate RNA transport through some but not all plasmodesmal gates. Due to a lack of viral mutants defective for movement between specific cell types, the ability of TMV MP in this regard is incompletely understood. In contrast, a number of trafficking impaired Potato spindle tuber viroid (PSTVd) mutants have been identified. PSTVd is a systemically infectious non-coding RNA that nevertheless can perform all functions required for replication as well as cell-to-cell and systemic spread. Previous studies have shown that PSTVd employs different structure and sequence elements to move between diverse cell types in host plants, and mutants defective for transport between specific cell types have been identified. Therefore, PSTVd may serve as a tool to analyze the functions of MPs of viral and cellular origin. To probe the RNA transport activity of TMV MP, transgenic plants expressing the protein were inoculated with PSTVd mutants. Remarkably, TMV MP complemented a PSTVd mutant defective for mesophyll entry but could not support two mutants impaired for phloem entry, suggesting it fails to productively interface with plasmodesmata at the phloem boundary and that additional viral and host factors may be required. Consistent with this idea, TMV co-infection, but not the combination of MP and coat protein (CP) expression, was able to complement one of the phloem entry mutants. These observations suggest that phloem loading is a critical impediment to establishing systemic infection that could involve the entire ensemble of TMV proteins. They also demonstrate a novel strategy for analysis of MPs.


Asunto(s)
Solanum tuberosum , Virus del Mosaico del Tabaco , Viroides , Virus del Mosaico del Tabaco/metabolismo , Viroides/genética , Solanum tuberosum/metabolismo , Floema/genética , Floema/metabolismo , ARN Viral/genética , ARN Viral/metabolismo , Proteínas de Movimiento Viral en Plantas/genética , Proteínas de Movimiento Viral en Plantas/metabolismo , Nicotiana
5.
Mol Plant Microbe Interact ; 36(11): 705-715, 2023 Nov.
Artículo en Inglés | MEDLINE | ID: mdl-37432156

RESUMEN

The NLR (nucleotide-binding leucine-rich repeat) class immune receptor Sw-5b confers resistance to Tomato spotted wilt orthotospovirus (TSWV). Although Sw-5b is known to activate immunity upon recognition of the TSWV movement protein NSm, we know very little about the downstream events that lead to resistance. Here, we investigated the Sw-5b-mediated early transcriptomic changes that occur in response to mechanical and thrips-mediated inoculation of TSWV, using near-isogenic tomato lines CNPH-LAM 147 (Sw5b+/+) and Santa Clara (Sw-5b-/-). We observed earlier Sw-5b-mediated transcriptional changes in response to thrips-mediated inoculation compared with that in response to mechanical inoculation of TSWV. With thrips-mediated inoculation, differentially expressed genes (DEGs) were observed at 12, 24, and 72 h postinoculation (hpi). Whereas with mechanical inoculation, DEGs were observed only at 72 hpi. Although some DEGs were shared between the two methods of inoculation, many DEGs were specific to either thrips-mediated or mechanical inoculation of TSWV. In response to thrips-mediated inoculation, an NLR immune receptor, cysteine-rich receptor-like kinase, G-type lectin S-receptor-like kinases, the ethylene response factor 1, and the calmodulin-binding protein 60 were induced. Fatty acid desaturase 2-9, cell death genes, DCL2b, RIPK/PBL14-like, ERF017, and WRKY75 were differentially expressed in response to mechanical inoculation. Our findings reveal Sw-5b responses specific to the method of TSWV inoculation. Although TSWV is transmitted in nature primarily by the thrips, Sw-5b responses to thrips inoculation have not been previously studied. Therefore, the DEGs we have identified in response to thrips-mediated inoculation provide a new foundation for understanding the mechanistic roles of these genes in the Sw-5b-mediated resistance. [Formula: see text] Copyright © 2023 The Author(s). This is an open access article distributed under the CC BY-NC-ND 4.0 International license.


Asunto(s)
Virus ARN , Solanum lycopersicum , Thysanoptera , Tospovirus , Animales , Solanum lycopersicum/genética , Thysanoptera/genética , Tospovirus/fisiología , Enfermedades de las Plantas , Proteínas de Movimiento Viral en Plantas/metabolismo , Virus ARN/metabolismo
6.
PLoS Pathog ; 17(9): e1009622, 2021 09.
Artículo en Inglés | MEDLINE | ID: mdl-34543360

RESUMEN

Both cellular and viral proteins can undergo phase separation and form membraneless compartments that concentrate biomolecules. The p26 movement protein from single-stranded, positive-sense Pea enation mosaic virus 2 (PEMV2) separates into a dense phase in nucleoli where p26 and related orthologues must interact with fibrillarin (Fib2) as a pre-requisite for systemic virus movement. Using in vitro assays, viral ribonucleoprotein complexes containing p26, Fib2, and PEMV2 genomic RNAs formed droplets that may provide the basis for self-assembly in planta. Mutating basic p26 residues (R/K-G) blocked droplet formation and partitioning into Fib2 droplets or the nucleolus and prevented systemic movement of a Tobacco mosaic virus (TMV) vector in Nicotiana benthamiana. Mutating acidic residues (D/E-G) reduced droplet formation in vitro, increased nucleolar retention 6.5-fold, and prevented systemic movement of TMV, thus demonstrating that p26 requires electrostatic interactions for droplet formation and charged residues are critical for nucleolar trafficking and virus movement. p26 readily partitioned into stress granules (SGs), which are membraneless compartments that assemble by clustering of the RNA binding protein G3BP following stress. G3BP is upregulated during PEMV2 infection and over-expression of G3BP restricted PEMV2 RNA accumulation >20-fold. Deletion of the NTF2 domain that is required for G3BP condensation restored PEMV2 RNA accumulation >4-fold, demonstrating that phase separation enhances G3BP antiviral activity. These results indicate that p26 partitions into membraneless compartments with either proviral (Fib2) or antiviral (G3BP) factors.


Asunto(s)
Interacciones Microbiota-Huesped/fisiología , Virus del Mosaico , Proteínas de Movimiento Viral en Plantas/metabolismo , Nicotiana/virología
7.
J Exp Bot ; 74(15): 4401-4414, 2023 08 17.
Artículo en Inglés | MEDLINE | ID: mdl-37210666

RESUMEN

Plasmodesmata (PD) are plasma membrane-lined cytoplasmic nanochannels that mediate cell-to-cell communication across the cell wall. A range of proteins are embedded in the PD plasma membrane and endoplasmic reticulum (ER), and function in regulating PD-mediated symplasmic trafficking. However, knowledge of the nature and function of the ER-embedded proteins in the intercellular movement of non-cell-autonomous proteins is limited. Here, we report the functional characterization of two ER luminal proteins, AtBiP1/2, and two ER integral membrane proteins, AtERdj2A/B, which are located within the PD. These PD proteins were identified as interacting proteins with cucumber mosaic virus (CMV) movement protein (MP) in co-immunoprecipitation studies using an Arabidopsis-derived plasmodesmal-enriched cell wall protein preparation (PECP). The AtBiP1/2 PD location was confirmed by TEM-based immunolocalization, and their AtBiP1/2 signal peptides (SPs) function in PD targeting. In vitro/in vivo pull-down assays revealed the association between AtBiP1/2 and CMV MP, mediated by AtERdj2A, through the formation of an AtBiP1/2-AtERdj2-CMV MP complex within PD. The role of this complex in CMV infection was established, as systemic infection was retarded in bip1/bip2w and erdj2b mutants. Our findings provide a model for a mechanism by which the CMV MP mediates cell-to-cell trafficking of its viral ribonucleoprotein complex.


Asunto(s)
Arabidopsis , Cucumovirus , Infecciones por Citomegalovirus , Arabidopsis/metabolismo , Plasmodesmos/metabolismo , Cucumovirus/metabolismo , Retículo Endoplásmico/metabolismo , Infecciones por Citomegalovirus/metabolismo , Proteínas de Movimiento Viral en Plantas/genética , Proteínas de Movimiento Viral en Plantas/metabolismo , Nicotiana/metabolismo
8.
PLoS Pathog ; 16(7): e1008709, 2020 07.
Artículo en Inglés | MEDLINE | ID: mdl-32730331

RESUMEN

Nine genera of viruses in five different families use triple gene block (TGB) proteins for virus movement. The TGB modules fall into two classes: hordei-like and potex-like. Although TGB-mediated viral movement has been extensively studied, determination of the constituents of the viral ribonucleoprotein (vRNP) movement complexes and the mechanisms underlying their involvement in vRNP-mediated movement are far from complete. In the current study, immunoprecipitation of TGB1 protein complexes formed during Barley stripe mosaic virus (BSMV) infection revealed the presence of the γb protein in the products. Further experiments demonstrated that TGB1 interacts with γb in vitro and in vivo, and that γb-TGB1 localizes at the periphery of chloroplasts and plasmodesmata (PD). Subcellular localization analyses of the γb protein in Nicotiana benthamiana epidermal cells indicated that in addition to chloroplast localization, γb also targets the ER, actin filaments and PD at different stages of viral infection. By tracking γb localization during BSMV infection, we demonstrated that γb is required for efficient cell-to-cell movement. The N-terminus of γb interacts with the TGB1 ATPase/helicase domain and enhances ATPase activity of the domain. Inactivation of the TGB1 ATPase activity also significantly impaired PD targeting. In vitro translation together with co-immunoprecipitation (co-IP) analyses revealed that TGB1-TGB3-TGB2 complex formation is enhanced by ATP hydrolysis. The γb protein positively regulates complex formation in the presence of ATP, suggesting that γb has a novel role in BSMV cell-to-cell movement by directly promoting TGB1 ATPase-mediated vRNP movement complex assembly. We further demonstrated that elimination of ATPase activity abrogates PD and actin targeting of Potato virus X (PVX) and Beet necrotic yellow vein virus (BNYVV) TGB1 proteins. These results expand our understanding of the multifunctional roles of γb and provide new insight into the functions of TGB1 ATPase domains in the movement of TGB-encoding viruses.


Asunto(s)
Nicotiana/virología , Proteínas de Movimiento Viral en Plantas/metabolismo , Virus de Plantas/fisiología , Proteínas de Unión al ARN/metabolismo , Proteínas no Estructurales Virales/metabolismo , Ensamble de Virus/fisiología , Adenosina Trifosfatasas/metabolismo , Potexvirus/fisiología , Ribonucleoproteínas/metabolismo
9.
Biochem Biophys Res Commun ; 521(1): 145-151, 2020 01 01.
Artículo en Inglés | MEDLINE | ID: mdl-31629470

RESUMEN

Despite decades of intensive studies, the failure to identify plasmodesmata (PD) localization sequences has constrained our understanding of Tobacco mosaic virus (TMV) movement. Recently, we identified the first PD localization signal (major PLS) in the TMV movement protein (MP), which encompasses the first 50 amino acid residues of the MP. Although the major PLS is sufficient for PD targeting, the efficiency is lower than the full-length TMV MP. To address this efficiency gap, we identified two additional PLS domains encompassing amino acid residues 61 to 80, and 147 to 170 of the MP and showed that these two domains target to PD, but do not transit to adjacent cells. We also demonstrated that the MP61-80 fragment interacts with Arabidopsis synaptotagmin A, which was also shown to interact with the major TMV MP PLS. Therefore, our findings have provided new insights to more fully understand the mechanism underlying plasmodesmal targeting of TMV MP.


Asunto(s)
Proteínas de Movimiento Viral en Plantas/metabolismo , Plasmodesmos/química , Virus del Mosaico del Tabaco/química , Arabidopsis/química , Arabidopsis/crecimiento & desarrollo , Arabidopsis/metabolismo , Proteínas de Arabidopsis/química , Proteínas de Arabidopsis/metabolismo , Proteínas de Movimiento Viral en Plantas/química , Plasmodesmos/metabolismo , Sinaptotagmina I/química , Sinaptotagmina I/metabolismo , Virus del Mosaico del Tabaco/metabolismo
10.
J Virol ; 93(15)2019 08 01.
Artículo en Inglés | MEDLINE | ID: mdl-31118256

RESUMEN

Positive-stranded RNA virus movement proteins (MPs) generally lack sequence-specific nucleic acid-binding activities and display cross-family movement complementarity with related and unrelated viruses. Negative-stranded RNA plant rhabdoviruses encode MPs with limited structural and functional relatedness with other plant virus counterparts, but the precise mechanisms of intercellular transport are obscure. In this study, we first analyzed the abilities of MPs encoded by five distinct rhabdoviruses to support cell-to-cell movement of two positive-stranded RNA viruses by using trans-complementation assays. Each of the five rhabdovirus MPs complemented the movement of MP-defective mutants of tomato mosaic virus and potato X virus. In contrast, movement of recombinant MP deletion mutants of sonchus yellow net nucleorhabdovirus (SYNV) and tomato yellow mottle-associated cytorhabdovirus (TYMaV) was rescued only by their corresponding MPs, i.e., SYNV sc4 and TYMaV P3. Subcellular fractionation analyses revealed that SYNV sc4 and TYMaV P3 were peripherally associated with cell membranes. A split-ubiquitin membrane yeast two-hybrid assay demonstrated specific interactions of the membrane-associated rhabdovirus MPs only with their cognate nucleoproteins (N) and phosphoproteins (P). More importantly, SYNV sc4-N and sc4-P interactions directed a proportion of the N-P complexes from nuclear sites of replication to punctate loci at the cell periphery that partially colocalized with the plasmodesmata. Our data show that cell-to-cell movement of plant rhabdoviruses is highly specific and suggest that cognate MP-nucleocapsid core protein interactions are required for intra- and intercellular trafficking.IMPORTANCE Local transport of plant rhabdoviruses likely involves the passage of viral nucleocapsids through MP-gated plasmodesmata, but the molecular mechanisms are not fully understood. We have conducted complementation assays with MPs encoded by five distinct rhabdoviruses to assess their movement specificity. Each of the rhabdovirus MPs complemented the movement of MP-defective mutants of two positive-stranded RNA viruses that have different movement strategies. In marked contrast, cell-to-cell movement of two recombinant plant rhabdoviruses was highly specific in requiring their cognate MPs. We have shown that these rhabdovirus MPs are localized to the cell periphery and associate with cellular membranes, and that they interact only with their cognate nucleocapsid core proteins. These interactions are able to redirect viral nucleocapsid core proteins from their sites of replication to the cell periphery. Our study provides a model for the specific inter- and intracellular trafficking of plant rhabdoviruses that may be applicable to other negative-stranded RNA viruses.


Asunto(s)
Proteínas de Movimiento Viral en Plantas/metabolismo , Virus de Plantas/fisiología , Rhabdoviridae/fisiología , Internalización del Virus , Membrana Celular/metabolismo , Prueba de Complementación Genética , Proteínas de Movimiento Viral en Plantas/genética , Virus de Plantas/genética , Unión Proteica , Rhabdoviridae/genética , Nicotiana/virología
11.
J Virol ; 93(5)2019 03 01.
Artículo en Inglés | MEDLINE | ID: mdl-30541845

RESUMEN

Plant viruses usually encode one or more movement proteins (MP) to accomplish their intercellular movement. A group of positive-strand RNA plant viruses requires three viral proteins (TGBp1, TGBp2, and TGBp3) that are encoded by an evolutionarily conserved genetic module of three partially overlapping open reading frames (ORFs), termed the triple gene block (TGB). However, how these three viral movement proteins function cooperatively in viral intercellular movement is still elusive. Using a novel in vivo double-stranded RNA (dsRNA) labeling system, we showed that the dsRNAs generated by potato virus X (PVX) RNA-dependent RNA polymerase (RdRp) are colocalized with viral RdRp, which are further tightly covered by "chain mail"-like TGBp2 aggregates and localizes alongside TGBp3 aggregates. We also discovered that TGBp2 interacts with the C-terminal domain of PVX RdRp, and this interaction is required for the localization of TGBp3 and itself to the RdRp/dsRNA bodies. Moreover, we reveal that the central and C-terminal hydrophilic domains of TGBp2 are required to interact with viral RdRp. Finally, we demonstrate that knockout of the entire TGBp2 or the domain involved in interacting with viral RdRp attenuates both PVX replication and movement. Collectively, these findings suggest that TGBp2 plays dual functional roles in PVX replication and intercellular movement.IMPORTANCE Many plant viruses contain three partially overlapping open reading frames (ORFs), termed the triple gene block (TGB), for intercellular movement. However, how the corresponding three proteins coordinate their functions remains obscure. In the present study, we provided multiple lines of evidence supporting the notion that PVX TGBp2 functions as the molecular adaptor bridging the interaction between the RdRp/dsRNA body and TGBp3 by forming "chain mail"-like structures in the RdRp/dsRNA body, which can also enhance viral replication. Taken together, our results provide new insights into the replication and movement of PVX and possibly also other TGB-containing plant viruses.


Asunto(s)
Nicotiana/virología , Proteínas de Movimiento Viral en Plantas/metabolismo , Potexvirus/metabolismo , Replicación Viral/fisiología , Retículo Endoplásmico/metabolismo , Enfermedades de las Plantas/virología , Dominios Proteicos/genética , ARN Viral/genética
12.
J Virol ; 92(21)2018 11 01.
Artículo en Inglés | MEDLINE | ID: mdl-30135122

RESUMEN

Plant virus cell-to-cell movement is an essential step in viral infections. This process is facilitated by specific virus-encoded movement proteins (MPs), which manipulate the cell wall channels between neighboring cells known as plasmodesmata (PD). Citrus psorosis virus (CPsV) infection in sweet orange involves the formation of tubule-like structures within PD, suggesting that CPsV belongs to "tubule-forming" viruses that encode MPs able to assemble a hollow tubule extending between cells to allow virus movement. Consistent with this hypothesis, we show that the MP of CPsV (MPCPsV) indeed forms tubule-like structures at PD upon transient expression in Nicotiana benthamiana leaves. Tubule formation by MPCPsV depends on its cleavage capacity, mediated by a specific aspartic protease motif present in its primary sequence. A single amino acid mutation in this motif abolishes MPCPsV cleavage, alters the subcellular localization of the protein, and negatively affects its activity in facilitating virus movement. The amino-terminal 34-kDa cleavage product (34KCPsV), but not the 20-kDa fragment (20KCPsV), supports virus movement. Moreover, similar to tubule-forming MPs of other viruses, MPCPsV (and also the 34KCPsV cleavage product) can homooligomerize, interact with PD-located protein 1 (PDLP1), and assemble tubule-like structures at PD by a mechanism dependent on the secretory pathway. 20KCPsV retains the protease activity and is able to cleave a cleavage-deficient MPCPsV in trans Altogether, these results demonstrate that CPsV movement depends on the autolytic cleavage of MPCPsV by an aspartic protease activity, which removes the 20KCPsV protease and thereby releases the 34KCPsV protein for PDLP1-dependent tubule formation at PD.IMPORTANCE Infection by citrus psorosis virus (CPsV) involves a self-cleaving aspartic protease activity within the viral movement protein (MP), which results in the production of two peptides, termed 34KCPsV and 20KCPsV, that carry the MP and viral protease activities, respectively. The underlying protease motif within the MP is also found in the MPs of other members of the Aspiviridae family, suggesting that protease-mediated protein processing represents a conserved mechanism of protein expression in this virus family. The results also demonstrate that CPsV and potentially other ophioviruses move by a tubule-guided mechanism. Although several viruses from different genera were shown to use this mechanism for cell-to-cell movement, our results also demonstrate that this mechanism is controlled by posttranslational protein cleavage. Moreover, given that tubule formation and virus movement could be inhibited by a mutation in the protease motif, targeting the protease activity for inactivation could represent an important approach for ophiovirus control.


Asunto(s)
Proteasas de Ácido Aspártico/metabolismo , Citrus sinensis/virología , Nicotiana/virología , Proteínas de Movimiento Viral en Plantas/metabolismo , Virus de Plantas/crecimiento & desarrollo , Plasmodesmos/fisiología , Aminoácidos/genética , Proteasas de Ácido Aspártico/genética , Microscopía Electrónica de Transmisión , Enfermedades de las Plantas/virología , Hojas de la Planta/virología , Proteínas de Movimiento Viral en Plantas/genética , Virus de Plantas/genética , Plasmodesmos/genética , Plasmodesmos/virología
13.
PLoS Pathog ; 13(6): e1006463, 2017 Jun.
Artículo en Inglés | MEDLINE | ID: mdl-28640879

RESUMEN

Plant virus movement proteins (MPs) localize to plasmodesmata (PD) to facilitate virus cell-to-cell movement. Numerous studies have suggested that MPs use a pathway either through the ER or through the plasma membrane (PM). Furthermore, recent studies reported that ER-PM contact sites and PM microdomains, which are subdomains found in the ER and PM, are involved in virus cell-to-cell movement. However, functional relationship of these subdomains in MP traffic to PD has not been described previously. We demonstrate here the intracellular trafficking of fig mosaic virus MP (MPFMV) using live cell imaging, focusing on its ER-directing signal peptide (SPFMV). Transiently expressed MPFMV was distributed predominantly in PD and patchy microdomains of the PM. Investigation of ER translocation efficiency revealed that SPFMV has quite low efficiency compared with SPs of well-characterized plant proteins, calreticulin and CLAVATA3. An MPFMV mutant lacking SPFMV localized exclusively to the PM microdomains, whereas SP chimeras, in which the SP of MPFMV was replaced by an SP of calreticulin or CLAVATA3, localized exclusively to the nodes of the ER, which was labeled with Arabidopsis synaptotagmin 1, a major component of ER-PM contact sites. From these results, we speculated that the low translocation efficiency of SPFMV contributes to the generation of ER-translocated and the microdomain-localized populations, both of which are necessary for PD localization. Consistent with this hypothesis, SP-deficient MPFMV became localized to PD when co-expressed with an SP chimera. Here we propose a new model for the intracellular trafficking of a viral MP. A substantial portion of MPFMV that fails to be translocated is transferred to the microdomains, whereas the remainder of MPFMV that is successfully translocated into the ER subsequently localizes to ER-PM contact sites and plays an important role in the entry of the microdomain-localized MPFMV into PD.


Asunto(s)
Arabidopsis/virología , Membrana Celular/virología , Retículo Endoplásmico/metabolismo , Proteínas de Movimiento Viral en Plantas/metabolismo , Plasmodesmos/virología , Virus del Mosaico del Tabaco/aislamiento & purificación , Arabidopsis/metabolismo , Membrana Celular/metabolismo , Retículo Endoplásmico/virología , Microdominios de Membrana/metabolismo , Microdominios de Membrana/virología , Microtúbulos/metabolismo , Microtúbulos/virología , Plasmodesmos/metabolismo , Transporte de Proteínas/fisiología , Nicotiana/virología , Virus del Mosaico del Tabaco/metabolismo
14.
Plant Physiol ; 176(3): 2052-2070, 2018 03.
Artículo en Inglés | MEDLINE | ID: mdl-29374107

RESUMEN

Virus movement proteins facilitate virus entry into the vascular system to initiate systemic infection. The potato mop-top virus (PMTV) movement protein, TGB1, is involved in long-distance movement of both viral ribonucleoprotein complexes and virions. Here, our analysis of TGB1 interactions with host Nicotiana benthamiana proteins revealed an interaction with a member of the heavy metal-associated isoprenylated plant protein family, HIPP26, which acts as a plasma membrane-to-nucleus signal during abiotic stress. We found that knockdown of NbHIPP26 expression inhibited virus long-distance movement but did not affect cell-to-cell movement. Drought and PMTV infection up-regulated NbHIPP26 gene expression, and PMTV infection protected plants from drought. In addition, NbHIPP26 promoter-reporter fusions revealed vascular tissue-specific expression. Mutational and biochemical analyses indicated that NbHIPP26 subcellular localization at the plasma membrane and plasmodesmata was mediated by lipidation (S-acylation and prenylation), as nonlipidated NbHIPP26 was predominantly in the nucleus. Notably, coexpression of NbHIPP26 with TGB1 resulted in a similar nuclear accumulation of NbHIPP26. TGB1 interacted with the carboxyl-terminal CVVM (prenyl) domain of NbHIPP26, and bimolecular fluorescence complementation revealed that the TGB1-HIPP26 complex localized to microtubules and accumulated in the nucleolus, with little signal at the plasma membrane or plasmodesmata. These data support a mechanism where interaction with TGB1 negates or reverses NbHIPP26 lipidation, thus releasing membrane-associated NbHIPP26 and redirecting it via microtubules to the nucleus, thereby activating the drought stress response and facilitating virus long-distance movement.


Asunto(s)
Nicotiana/metabolismo , Nicotiana/virología , Proteínas de Plantas/metabolismo , Proteínas de Movimiento Viral en Plantas/metabolismo , Virus de Plantas/metabolismo , Estrés Fisiológico , Acilación , Secuencia de Aminoácidos , Nucléolo Celular/metabolismo , Sequías , Regulación de la Expresión Génica de las Plantas , Glucuronidasa/metabolismo , Proteínas Fluorescentes Verdes/metabolismo , Lípidos/química , Modelos Biológicos , Filogenia , Enfermedades de las Plantas/virología , Hojas de la Planta/metabolismo , Proteínas de Plantas/química , Plantas Modificadas Genéticamente , Unión Proteica , Fracciones Subcelulares/metabolismo , Nicotiana/genética , Técnicas del Sistema de Dos Híbridos
15.
Plant J ; 89(2): 394-406, 2017 01.
Artículo en Inglés | MEDLINE | ID: mdl-27743414

RESUMEN

Plasmodesmata (PD) are microscopic pores connecting plant cells and enable cell-to-cell transport. Currently, little information is known about the molecular mechanisms regulating PD formation and development. To uncover components of PD development we made use of the 17 kDa movement protein (MP17) encoded by the Potato leafroll virus (PLRV). The protein is required for cell-to-cell movement of the virus and localises to complex PD. Forward genetic screening for Arabidopsis mutants with altered PD binding of MP17 revealed several mutant lines, while molecular genetics, biochemical and microscopic studies allowed further characterisation. Map-based cloning of one mutant revealed a point mutation in the choline transporter-like 1 (CHER1) protein, changing glycine247 into glutamate. Mutation in CHER1 resulted in a starch excess phenotype and stunted growth. Ultrastructure analysis of shoot apical meristems, developing and fully developed leaves showed reduced PD numbers and the absence of complex PD in fully developed leaves. This indicates that cher1 mutants are impaired in PD formation and development. Global lipid profiling revealed only slight modifications in the overall lipid composition, however, altered composition of PD-associated lipids cannot be ruled out. Thus, cher1 is devoid of complex PD in developed leaves and provides insights into the formation of complex PD at the molecular level.


Asunto(s)
Proteínas de Arabidopsis/metabolismo , Arabidopsis/fisiología , Proteínas de Transporte de Membrana/metabolismo , Plasmodesmos/fisiología , Proteínas de Arabidopsis/genética , Proteínas de Transporte de Membrana/genética , Meristema/genética , Meristema/ultraestructura , Mutación , Hojas de la Planta/genética , Hojas de la Planta/metabolismo , Proteínas de Movimiento Viral en Plantas/genética , Proteínas de Movimiento Viral en Plantas/metabolismo , Plantas Modificadas Genéticamente , Plasmodesmos/metabolismo , Polimorfismo de Nucleótido Simple
16.
PLoS Pathog ; 12(2): e1005443, 2016 Feb.
Artículo en Inglés | MEDLINE | ID: mdl-26863622

RESUMEN

Plant viruses move through plasmodesmata to infect new cells. The plant endoplasmic reticulum (ER) is interconnected among cells via the ER desmotubule in the plasmodesma across the cell wall, forming a continuous ER network throughout the entire plant. This ER continuity is unique to plants and has been postulated to serve as a platform for the intercellular trafficking of macromolecules. In the present study, the contribution of the plant ER membrane transport system to the intercellular trafficking of the NSm movement protein and Tomato spotted wilt tospovirus (TSWV) is investigated. We showed that TSWV NSm is physically associated with the ER membrane in Nicotiana benthamiana plants. An NSm-GFP fusion protein transiently expressed in single leaf cells was trafficked into neighboring cells. Mutations in NSm that impaired its association with the ER or caused its mis-localization to other subcellular sites inhibited cell-to-cell trafficking. Pharmacological disruption of the ER network severely inhibited NSm-GFP trafficking but not GFP diffusion. In the Arabidopsis thaliana mutant rhd3 with an impaired ER network, NSm-GFP trafficking was significantly reduced, whereas GFP diffusion was not affected. We also showed that the ER-to-Golgi secretion pathway and the cytoskeleton transport systems were not involved in the intercellular trafficking of TSWV NSm. Importantly, TSWV cell-to-cell spread was delayed in the ER-defective rhd3 mutant, and this reduced viral infection was not due to reduced replication. On the basis of robust biochemical, cellular and genetic analysis, we established that the ER membrane transport system serves as an important direct route for intercellular trafficking of NSm and TSWV.


Asunto(s)
Retículo Endoplásmico/metabolismo , Enfermedades de las Plantas/virología , Proteínas de Movimiento Viral en Plantas/metabolismo , Plasmodesmos/metabolismo , Solanum lycopersicum/virología , Tospovirus , Hojas de la Planta/metabolismo , Hojas de la Planta/virología , Plantas Modificadas Genéticamente , Transporte de Proteínas/fisiología , Nicotiana/virología
17.
Plant Physiol ; 174(2): 1067-1081, 2017 Jun.
Artículo en Inglés | MEDLINE | ID: mdl-28455401

RESUMEN

RNA silencing is an innate antiviral mechanism conserved in organisms across kingdoms. Such a cellular defense involves DICER or DICER-LIKEs (DCLs) that process plant virus RNAs into viral small interfering RNAs (vsiRNAs). Plants encode four DCLs that play diverse roles in cell-autonomous intracellular virus-induced RNA silencing (known as VIGS) against viral invasion. VIGS can spread between cells. However, the genetic basis and involvement of vsiRNAs in non-cell-autonomous intercellular VIGS remains poorly understood. Using GFP as a reporter gene together with a suite of DCL RNAi transgenic lines, here we show that despite the well-established activities of DCLs in intracellular VIGS and vsiRNA biogenesis, DCL4 acts to inhibit intercellular VIGS whereas DCL2 is required (likely along with DCL2-processed/dependent vsiRNAs and their precursor RNAs) for efficient intercellular VIGS trafficking from epidermal to adjacent cells. DCL4 imposed an epistatic effect on DCL2 to impede cell-to-cell spread of VIGS. Our results reveal previously unknown functions for DCL2 and DCL4 that may form a dual defensive frontline for intra- and intercellular silencing to double-protect cells from virus infection in Nicotiana benthamiana.


Asunto(s)
Carmovirus/metabolismo , Nicotiana/genética , Nicotiana/virología , Proteínas de Plantas/metabolismo , Interferencia de ARN , Proteínas Fluorescentes Verdes/metabolismo , Epidermis de la Planta/citología , Proteínas de Movimiento Viral en Plantas/metabolismo , ARN Interferente Pequeño/metabolismo , Transgenes
18.
Plant Physiol ; 173(4): 2399-2410, 2017 04.
Artículo en Inglés | MEDLINE | ID: mdl-28258211

RESUMEN

The tomato Tobacco mosaic virus resistance-22 (Tm-22 ) gene encodes a coiled-coil-nucleotide binding site-Leu-rich repeat protein lacking a conventional plasma membrane (PM) localization motif. Tm-22 confers plant extreme resistance against tobamoviruses including Tobacco mosaic virus (TMV) by recognizing the avirulence (Avr) viral movement protein (MP). However, the subcellular compartment where Tm-22 functions is unclear. Here, we demonstrate that Tm-22 interacts with TMV MP to form a protein complex at the PM We show that both inactive and active Tm-22 proteins are localized to the PM When restricted to PM by fusing Tm-22 to the S-acylated PM association motif, the Tm-22 fusion protein can still induce a hypersensitive response cell death, consistent with its activation at the PM Through analyses of viral MP mutants, we find that the plasmodesmata (PD) localization of the Avr protein MP is not required for Tm-22 function. These results suggest that Tm-22-mediated resistance takes place on PM without requirement of its Avr protein to be located to PD.


Asunto(s)
Membrana Celular/metabolismo , Nicotiana/metabolismo , Proteínas de Plantas/metabolismo , Proteínas de Movimiento Viral en Plantas/metabolismo , Plasmodesmos/metabolismo , Membrana Celular/virología , Resistencia a la Enfermedad/genética , Immunoblotting , Solanum lycopersicum/genética , Solanum lycopersicum/metabolismo , Solanum lycopersicum/virología , Microscopía Confocal , Mutación , Enfermedades de las Plantas/genética , Enfermedades de las Plantas/virología , Hojas de la Planta/genética , Hojas de la Planta/metabolismo , Hojas de la Planta/virología , Proteínas de Plantas/genética , Proteínas de Movimiento Viral en Plantas/genética , Plantas Modificadas Genéticamente , Plasmodesmos/virología , Unión Proteica , Nicotiana/genética , Nicotiana/virología , Virus del Mosaico del Tabaco/genética , Virus del Mosaico del Tabaco/metabolismo , Virus del Mosaico del Tabaco/fisiología
19.
Arch Virol ; 163(5): 1317-1323, 2018 May.
Artículo en Inglés | MEDLINE | ID: mdl-29392491

RESUMEN

The nonstructural protein pc6 encoded by rice grassy stunt virus (RGSV) plays a significant role in viral cell-to-cell movement, presumably by transport through plasmodesmata (PD). We confirmed the association of pc6 with PD, and also elucidated the mechanisms of protein targeting to PD. Several inhibitor treatments showed conclusively that pc6 is targeted to PD via the ER-to-Golgi secretory system and actin filaments. In addition, VIII-1 myosin was also found to be involved in pc6 PD targeting. Deletion mutants demonstrated that C-terminal amino acid residues 209-229 (transmembrane domain 2; TM2) are essential for pc6 to move through PD.


Asunto(s)
Retículo Endoplásmico/metabolismo , Aparato de Golgi/metabolismo , Proteínas de Movimiento Viral en Plantas/metabolismo , Plasmodesmos/virología , Tenuivirus/metabolismo , Proteínas no Estructurales Virales/metabolismo , Citoesqueleto de Actina/metabolismo , Miosinas/metabolismo , Enfermedades de las Plantas/virología , Transporte de Proteínas , Vías Secretoras , Eliminación de Secuencia , Tenuivirus/química , Tenuivirus/genética , Nicotiana/virología , Proteínas no Estructurales Virales/genética
20.
Mol Plant Microbe Interact ; 30(12): 974-983, 2017 12.
Artículo en Inglés | MEDLINE | ID: mdl-28840785

RESUMEN

Previously, we reported that coat protein (CP) of Wheat streak mosaic virus (WSMV) (genus Tritimovirus, family Potyviridae) tolerates deletion of amino acids 36 to 84 for efficient systemic infection of wheat. In this study, we demonstrated that WSMV mutants with deletion of CP amino acids 58 to 84 but not of 36 to 57 induced severe chlorotic streaks and spots, followed by acute chlorosis in wheat, maize, barley, and rye compared with mild to moderate chlorotic streaks and mosaic symptoms by wild-type virus. Deletion of CP amino acids 58 to 84 from the WSMV genome accelerated cell-to-cell movement, with increased accumulation of genomic RNAs and CP, compared with the wild-type virus. Microscopic examination of wheat tissues infected by green fluorescent protein-tagged mutants revealed that infection by mutants lacking CP amino acids 58 to 84 caused degradation of chloroplasts, resulting in acute macroscopic chlorosis. The profile of CP-specific proteins was altered in wheat infected by mutants causing acute chlorosis, compared with mutants eliciting wild-type symptoms. All deletion mutants accumulated CP-specific major protein similarly to that in wild-type virus; however, mutants that elicit acute chlorosis failed to accumulate a 31-kDa minor protein compared with wild-type virus or mutants lacking amino acids 36 to 57. Taken together, these data suggest that deletion of CP amino acids 58 to 84 from the WSMV genome enhanced accumulation of CP and genomic RNA, altered CP-specific protein profiles, and caused severe symptom phenotypes in multiple cereal hosts.


Asunto(s)
Proteínas de la Cápside/metabolismo , Grano Comestible/virología , Eliminación de Gen , Enfermedades de las Plantas/virología , Potyviridae/metabolismo , Aminoácidos/metabolismo , Cloroplastos/metabolismo , Genoma Viral , Interacciones Huésped-Patógeno , Enfermedades de las Plantas/genética , Proteínas de Movimiento Viral en Plantas/metabolismo , Potyviridae/genética , ARN Viral/metabolismo , Triticum/virología
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