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1.
Theor Appl Genet ; 137(8): 198, 2024 Aug 06.
Article in English | MEDLINE | ID: mdl-39107580

ABSTRACT

KEY MESSAGE: The Ra extreme resistance against potato virus A was mapped to the upper of chromosome 4 in tetraploid potato. Potato virus A (PVA) is one of the major viruses affecting potato worldwide and can cause serious disease symptoms and yield losses. Previously, we determined that potato cultivar Barbara harbors Rysto (genotype: Ryryryry) and Ra (genotype: Rararara) that each independently confer extreme resistance to PVA. In this study, employing a combination of next-generation sequencing and bulked-segregant analysis, we further located this novel Ra on chromosome 4 using a tetraploid BC1 potato population derived from a Ry-free progeny (Rararararyryryry) of Barbara (RarararaRyryryry) × F58050 (rararararyryryry). Using 29 insertion-deletion (InDel) markers spanning chromosome 4, Ra was delimited by the InDel markers M8-83 and M10-8 within a genetic interval of 1.46 cM, corresponding to a 1.86-Mb genomic region in the potato DM reference genome. The InDel marker M10-8, which is closely linked with the resistance against PVA in the Ry-free segregating populations, was then used to screen 43 selected Rysto-free tetraploid potato breeding clones. The phenotype to PVA was significantly correlated with the present/absent of the marker, albeit with a 9.3% false positive rate and a 14.0% false negative rate. These findings are of importance in furthering the cloning of Ra and employing the marker-assisted selection for PVA resistance.


Subject(s)
Chromosome Mapping , Disease Resistance , Plant Diseases , Potyvirus , Solanum tuberosum , Solanum tuberosum/genetics , Solanum tuberosum/virology , Disease Resistance/genetics , Plant Diseases/virology , Plant Diseases/genetics , Potyvirus/pathogenicity , Phenotype , Genotype , Genetic Markers , INDEL Mutation , Chromosomes, Plant/genetics , Tetraploidy , Plant Breeding
2.
PLoS Pathog ; 20(8): e1012424, 2024 Aug.
Article in English | MEDLINE | ID: mdl-39102439

ABSTRACT

Manipulating evolutionary forces imposed by hosts on pathogens like genetic drift and selection could avoid the emergence of virulent pathogens. For instance, increasing genetic drift could decrease the risk of pathogen adaptation through the random fixation of deleterious mutations or the elimination of favorable ones in the pathogen population. However, no experimental proof of this approach is available for a plant-pathogen system. We studied the impact of pepper (Capsicum annuum) lines carrying the same major resistance gene but contrasted genetic backgrounds on the evolution of Potato virus Y (PVY). The pepper lines were chosen for the contrasted levels of genetic drift (inversely related to Ne, the effective population size) they exert on PVY populations, as well as for their contrasted resistance efficiency (inversely related to the initial replicative fitness, Wi, of PVY in these lines). Experimental evolution was performed by serially passaging 64 PVY populations every month on six contrasted pepper lines during seven months. These PVY populations exhibited highly divergent evolutionary trajectories, ranging from viral extinctions to replicative fitness gains. The sequencing of the PVY VPg cistron, where adaptive mutations are likely to occur, allowed linking these replicative fitness gains to parallel adaptive nonsynonymous mutations. Evolutionary trajectories were well explained by the genetic drift imposed by the host. More specifically, Ne, Wi and their synergistic interaction played a major role in the fate of PVY populations. When Ne was low (i.e. strong genetic drift), the final PVY replicative fitness remained close to the initial replicative fitness, whereas when Ne was high (i.e. low genetic drift), the final PVY replicative fitness was high independently of the replicative fitness of the initially inoculated virus. We show that combining a high resistance efficiency (low Wi) and a strong genetic drift (low Ne) is the best solution to increase resistance durability, that is, to avoid virus adaptation on the long term.


Subject(s)
Capsicum , Genetic Drift , Plant Diseases , Potyvirus , Capsicum/virology , Capsicum/genetics , Potyvirus/genetics , Potyvirus/pathogenicity , Plant Diseases/virology , Plant Diseases/genetics , Host-Pathogen Interactions/genetics , Disease Resistance/genetics , Adaptation, Physiological/genetics , Mutation
3.
Proc Natl Acad Sci U S A ; 121(35): e2403424121, 2024 Aug 27.
Article in English | MEDLINE | ID: mdl-39159367

ABSTRACT

Many virus genomes encode proteases that facilitate infection. The molecular mechanism of plant recognition of viral proteases is largely unexplored. Using the system of Vigna unguiculata and cowpea mosaic virus (CPMV), we identified a cowpea lipid transfer protein (LTP1) which interacts with CPMV-encoded 24KPro, a cysteine protease, but not with the enzymatically inactive mutant 24KPro(C166A). Biochemical assays showed that LTP1 inhibited 24KPro proteolytic cleavage of the coat protein precursor large coat protein-small coat protein. Transient overexpression of LTP1 in cowpea reduced CPMV infection, whereas RNA interference-mediated LTP1 silencing increased CPMV accumulation in cowpea. LTP1 is mainly localized in the apoplast of uninfected plant cells, and after CPMV infection, most of the LTP1 is relocated to intracellular compartments, including chloroplast. Moreover, in stable LTP1-transgenic Nicotiana benthamiana plants, LTP1 repressed soybean mosaic virus (SMV) nuclear inclusion a protease activity, and accumulation of SMV was significantly reduced. We propose that cowpea LTP1 suppresses CPMV and SMV accumulation by directly inhibiting viral cysteine protease activity.


Subject(s)
Carrier Proteins , Comovirus , Nicotiana , Plant Diseases , Plant Proteins , Vigna , Comovirus/metabolism , Comovirus/physiology , Comovirus/genetics , Vigna/virology , Vigna/metabolism , Nicotiana/virology , Nicotiana/metabolism , Nicotiana/genetics , Carrier Proteins/metabolism , Carrier Proteins/genetics , Plant Proteins/metabolism , Plant Proteins/genetics , Plant Diseases/virology , Cysteine Proteases/metabolism , Cysteine Proteases/genetics , Plants, Genetically Modified , Viral Proteins/metabolism , Viral Proteins/genetics , Capsid Proteins/metabolism , Capsid Proteins/genetics , Potyvirus/physiology , Potyvirus/metabolism , Endopeptidases
4.
Sci Adv ; 10(34): eadn3010, 2024 Aug 23.
Article in English | MEDLINE | ID: mdl-39178251

ABSTRACT

The eukaryotic mRNA surveillance pathway, a pivotal guardian of mRNA fidelity, stands at the nexus of diverse biological processes, including antiviral immunity. Despite the recognized function of splicing factors on mRNA fate, the intricate interplay shaping the mRNA surveillance pathway remains elusive. We illustrate that the conserved splicing factor U2 snRNP auxiliary factor large subunit B (U2AF65B) modulates splicing of mRNA surveillance complex, contributing to transcriptomic homeostasis in maize. The functionality of the mRNA surveillance pathway requires ZmU2AF65B-mediated normal splicing of upstream frameshift 3 (ZmUPF3) pre-mRNA, encoding a core factor in this pathway. Intriguingly, sugarcane mosaic virus (SCMV)-coded nuclear inclusion protein a protease (NIa-Pro) hinders the splicing function of ZmU2AF65B. Furthermore, NIa-Pro disrupts ZmU2AF65B binding to ZmUPF3 pre-mRNA, leading to dysregulated splicing of ZmUPF3 transcripts and, consequently, impairing mRNA surveillance, thus facilitating viral infection. Together, this study establishes that splicing governs the mRNA surveillance pathway and identifies a pathogenic protein capable of disrupting this regulation to compromise RNA immunity.


Subject(s)
Potyvirus , RNA Splicing , RNA, Messenger , Zea mays , Zea mays/virology , Zea mays/genetics , RNA, Messenger/genetics , RNA, Messenger/metabolism , Potyvirus/genetics , Plant Proteins/genetics , Plant Proteins/metabolism , Viral Proteins/genetics , Viral Proteins/metabolism , Plant Diseases/virology , Plant Diseases/genetics , Splicing Factor U2AF/metabolism , Splicing Factor U2AF/genetics , RNA Precursors/genetics , RNA Precursors/metabolism , Gene Expression Regulation, Plant
5.
Shokuhin Eiseigaku Zasshi ; 65(3): 67-71, 2024.
Article in Japanese | MEDLINE | ID: mdl-39034138

ABSTRACT

In the Japanese official detection method for unauthorized genetically modified (GM) papayas, one of two types of real-time PCR reagents with DNA polymerase (TaqMan Gene Master Mix [TaqMan Gene] or FastGene QPCR Probe Mastermix w/ROX [FastGene]) is primarily used for measurement. In 2022, we conducted a laboratory performance study on the unauthorized GM papaya line PRSV-YK, and the results revealed that high threshold cycle (Cq) values for the PRSV-YK detection test were obtained using TaqMan Gene with the 7500 Fast & 7500 Real-Time PCR System (ABI7500) and QuantStudio 12K Flex (QS12K), indicating the possibility of false negatives. The possibility of similar problems with all unauthorized GM papaya lines detection tests needs to be evaluated. In this study, we performed detection tests on unauthorized GM papaya lines (PRSV-YK, PRSV-SC, and PRSV-HN), the cauliflower mosaic virus 35S promotor (CaM), and a papaya positive control (Chy), and examined how the limits of detection (LOD) for each test are affected by two types of DNA polymerases (TaqMan Gene and FastGene) and three types of real-time PCR instruments (ABI7500, QS12K, and LightCycler 480 Instrument II [LC480]). In the PRSV-YK and PRSV-SC detection tests using ABI7500 and QS12K, measurement with TaqMan Gene showed a higher LOD than FastGene. In this case, an exponential amplification curve was confirmed on the amplification plot; however, the amplification curve did not cross the ΔRn threshold line and the correct Cq value was not obtained with a threshold line=0.2. The other tests (PRSV-HN, CaM, and Chy with ABI7500 and QS12K, and all detection tests with LC480) showed no important differences in the LOD for each test using either DNA polymerase. Therefore, when performing PRSV-YK and PRSV-SC detection tests with the ABI7500 or QS12K, FastGene should be used to avoid false negatives for foods containing GM papaya lines PRSV-YK and PRSV-SC at low mixing levels.


Subject(s)
Carica , DNA-Directed DNA Polymerase , Plants, Genetically Modified , Real-Time Polymerase Chain Reaction , Carica/genetics , Real-Time Polymerase Chain Reaction/methods , Plants, Genetically Modified/genetics , Food, Genetically Modified , Caulimovirus/genetics , Potyvirus/genetics , Potyvirus/isolation & purification
6.
New Phytol ; 243(4): 1539-1553, 2024 Aug.
Article in English | MEDLINE | ID: mdl-39021237

ABSTRACT

The interactions among plant viruses, insect vectors, and host plants have been well studied; however, the roles of insect viruses in this system have largely been neglected. We investigated the effects of MpnDV infection on aphid and PVY transmission using bioassays, RNA interference (RNAi), and GC-MS methods and green peach aphid (Myzus persicae (Sulzer)), potato virus Y (PVY), and densovirus (Myzus persicae nicotianae densovirus, MpnDV) as model systems. MpnDV increased the activities of its host, promoting population dispersal and leading to significant proliferation in tobacco plants by significantly enhancing the titer of the sesquiterpene (E)-ß-farnesene (EßF) via up-regulation of expression levels of the MpFPPS1 gene. The proliferation and dispersal of MpnDV-positive individuals were faster than that of MpnDV-negative individuals in PVY-infected tobacco plants, which promoted the transmission of PVY. These results combined showed that an insect virus may facilitate the transmission of a plant virus by enhancing the locomotor activity and population proliferation of insect vectors. These findings provide novel opportunities for controlling insect vectors and plant viruses, which can be used in the development of novel management strategies.


Subject(s)
Aphids , Densovirus , Nicotiana , Plant Diseases , Aphids/virology , Aphids/physiology , Animals , Nicotiana/virology , Nicotiana/parasitology , Plant Diseases/virology , Densovirus/physiology , Densovirus/genetics , Potyvirus/physiology , Potyvirus/pathogenicity , Sesquiterpenes/metabolism , Plant Viruses/physiology , Plant Viruses/pathogenicity
7.
Shokuhin Eiseigaku Zasshi ; 65(3): 61-66, 2024.
Article in Japanese | MEDLINE | ID: mdl-39034137

ABSTRACT

Since the establishment of procedures for the safety assessment of food products that use recombinant DNA technology, the manufacture, import, and sale of genetically modified (GM) foods that have not undergone safety assessment are prohibited under the Food Sanitation Act. Therefore, a performance study to confirm the GM food testing operations of each laboratory is very important to ensure the reliability of the GM food monitoring system. In 2022, GM papaya line PRSV-YK-which has not yet been authorized in Japan-was selected for testing, and a papaya paste and a DNA solution were used as the test samples. With these samples, a laboratory performance study of the DNA extraction and real-time PCR operations was conducted. This confirmed that the 18 participating laboratories were generally performing the DNA extraction and real-time PCR operations correctly. However, some laboratories using certain DNA amplification reagent with some real-time PCR instruments were not able to determine the PRSV-YK detection test. This suggests that the PRSV-YK detection test may not be able to correctly detect samples containing GM papaya when performed with these combinations of instruments and reagent. In order to ensure the reliability of the PRSV-YK detection test, it is necessary to examine in detail how the combination of DNA polymerase reagents and real-time PCR instruments affects the detection limit, and to implement an appropriate solution.


Subject(s)
Carica , Food, Genetically Modified , Plants, Genetically Modified , Carica/genetics , DNA, Plant/genetics , DNA, Plant/analysis , Food Analysis/methods , Food Safety , Japan , Plants, Genetically Modified/genetics , Potyvirus/genetics , Potyvirus/isolation & purification , Real-Time Polymerase Chain Reaction/methods , Reproducibility of Results
8.
Talanta ; 277: 126437, 2024 Sep 01.
Article in English | MEDLINE | ID: mdl-38901194

ABSTRACT

The Papaya ringspot virus (PRSV)-resistant genetically modified (GM) papaya 'Huanong No.1' has been certified as safe for consumption and widely planted in China for about 18 years. To protect consumers' rights and facilitate government supervision and monitoring, it is necessary to establish a simple, rapid, and specific detection method for 'Huanong No.1'. Herein, we developed a platform based on recombinase polymerase amplification (RPA) coupled with CRISPR-Cas12a for the detection of 'Huanong No.1'. The RPA-CRISPR-Cas12a platform was found to have high specificity, with amplification signals only present in 'Huanong No.1'. Additionally, the platform was highly sensitive, with a limit of detection (LOD) of approximately 20 copies. The detection process was fast and could be completed in less than 1 h. This novel platform enables the rapid on-site visualization detection of 'Huanong No.1', eliminating dependence on laboratory conditions and specialized instruments, and can serve as a technical reference for the rapid detection of other GM plants.


Subject(s)
CRISPR-Cas Systems , Carica , Nucleic Acid Amplification Techniques , Plants, Genetically Modified , Carica/genetics , Carica/virology , CRISPR-Cas Systems/genetics , Plants, Genetically Modified/genetics , Nucleic Acid Amplification Techniques/methods , Potyvirus/genetics , Potyvirus/isolation & purification , Recombinases/metabolism , Limit of Detection , Bacterial Proteins , Endodeoxyribonucleases , CRISPR-Associated Proteins
9.
Virus Genes ; 60(4): 423-433, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38833150

ABSTRACT

White yam (Dioscorea rotundata) plants collected from farmers' fields and planted at the Areka Agricultural Research Center, Southern Ethiopia, displayed mosaic, mottling, and chlorosis symptoms. To determine the presence of viral pathogens, an investigation for virome characterization was conducted by Illumina high-throughput sequencing. The bioinformatics analysis allowed the assembly of five viral genomes, which according to the ICTV criteria were assigned to a novel potyvirus (3 genome sequences) and a novel crinivirus (2 genome sequences). The potyvirus showed ~ 66% nucleotide (nt) identity in the polyprotein sequence to yam mosaic virus (NC004752), clearly below the demarcation criteria of 76% identity. For the crinivirus, the RNA 1 and RNA 2 shared the highest sequence identity to lettuce chlorosis virus, and alignment of the aa sequence of the RdRp, CP and HSP70h (~ 49%, 45% and 76% identity), considered for the demarcation criteria, revealed the finding of a novel virus species. The names Ethiopian yam virus (EYV) and Yam virus 1 (YV-1) are proposed for the two tentative new virus species.


Subject(s)
Crinivirus , Dioscorea , Genome, Viral , Phylogeny , Plant Diseases , Potyvirus , Dioscorea/virology , Potyvirus/genetics , Potyvirus/isolation & purification , Potyvirus/classification , Ethiopia , Plant Diseases/virology , Crinivirus/genetics , Crinivirus/isolation & purification , Crinivirus/classification , Genome, Viral/genetics , RNA, Viral/genetics , High-Throughput Nucleotide Sequencing , Coinfection/virology
10.
Arch Virol ; 169(7): 143, 2024 Jun 12.
Article in English | MEDLINE | ID: mdl-38864946

ABSTRACT

Potyvirus genomes are expressed as polyproteins that are autocatalytically cleaved to produce 10 to 12 multifunctional proteins, among which P1 is the most variable. It has long been hypothesized that P1 plays role(s) in host adaptation and host specificity. We tested this hypothesis using two phylogenetically distinct potyviruses: soybean mosaic virus (SMV), with a narrow host range, and clover yellow vein virus (ClYVV), with a broader host range. When the full-length P1 cistron of SMV-N was replaced with P1 from ClYVV-No.30, the chimera systemically infected only SMV-N-permissive hosts. Hence, there were no changes in the host range or host specificity of the chimeric viruses. Despite sharing only 20.3% amino acid sequence identity, predicted molecular models of P1 proteins from SMV-N and ClYVV-No.30 showed analogous topologies. These observations suggest that P1 of ClYVV-No.30 can functionally replace P1 of SMV-N. However, the P1 proteins of these two potyviruses are not determinants of host specificity and host range.


Subject(s)
Host Specificity , Plant Diseases , Potyvirus , Viral Proteins , Potyvirus/genetics , Potyvirus/physiology , Plant Diseases/virology , Viral Proteins/genetics , Viral Proteins/metabolism , Glycine max/virology , Nicotiana/virology , Phylogeny
11.
Mol Plant Pathol ; 25(6): e13487, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38877765

ABSTRACT

We had previously reported that a plum pox virus (PPV)-based chimera that had its P1-HCPro bi-cistron replaced by a modified one from potato virus Y (PVY) increased its virulence in some Nicotiana benthamiana plants, after mechanical passages. This correlated with the natural acquisition of amino acid substitutions in several proteins, including in HCPro at either position 352 (Ile→Thr) or 454 (Leu→Arg), or of mutations in non-coding regions. Thr in position 352 is not found among natural potyviruses, while Arg in 454 is a reversion to the native PVY HCPro amino acid. We show here that both mutations separately contributed to the increased virulence observed in the passaged chimeras that acquired them, and that Thr in position 352 is no intragenic suppressor to a Leu in position 454, because their combined effects were cumulative. We demonstrate that Arg in position 454 improved HCPro autocatalytic cleavage, while Thr in position 352 increased its accumulation and the silencing suppression of a reporter in agropatch assays. We assessed infection by four cloned chimera variants expressing HCPro with none of the two substitutions, one of them or both, in wild-type versus DCL2/4-silenced transgenic plants. We found that during infection, the transgenic context of altered small RNAs affected the accumulation of the four HCPro variants differently and hence, also infection virulence.


Subject(s)
Amino Acid Substitution , Nicotiana , Potyvirus , Viral Proteins , Virulence/genetics , Nicotiana/virology , Potyvirus/pathogenicity , Potyvirus/genetics , Viral Proteins/metabolism , Viral Proteins/genetics , Plant Diseases/virology , Chimera , Plum Pox Virus/pathogenicity , Plum Pox Virus/genetics , Cysteine Endopeptidases/metabolism , Cysteine Endopeptidases/genetics , Mutation/genetics
12.
Transgenic Res ; 33(3): 149-157, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38842603

ABSTRACT

RNA silencing is an innate immune mechanism of plants against invasion by viral pathogens. Artificial microRNA (amiRNA) can be engineered to specifically induce RNA silencing against viruses in transgenic plants and has great potential for disease control. Here, we describe the development and application of amiRNA-based technology to induce resistance to soybean mosaic virus (SMV), a plant virus with a positive-sense single-stranded RNA genome. We have shown that the amiRNA targeting the SMV P1 coding region has the highest antiviral activity than those targeting other SMV genes in a transient amiRNA expression assay. We transformed the gene encoding the P1-targeting amiRNA and obtained stable transgenic Nicotiana benthamiana lines (amiR-P1-3-1-2-1 and amiR-P1-4-1-2-1). Our results have demonstrated the efficient suppression of SMV infection in the P1-targeting amiRNA transgenic plants in an expression level-dependent manner. In particular, the amiR-P1-3-1-2-1 transgenic plant showed high expression of amiR-P1 and low SMV accumulation after being challenged with SMV. Thus, a transgenic approach utilizing the amiRNA technology appears to be effective in generating resistance to SMV.


Subject(s)
Disease Resistance , MicroRNAs , Nicotiana , Plant Diseases , Plants, Genetically Modified , Potyvirus , MicroRNAs/genetics , Plants, Genetically Modified/genetics , Plants, Genetically Modified/virology , Plants, Genetically Modified/immunology , Nicotiana/genetics , Nicotiana/virology , Nicotiana/immunology , Plant Diseases/virology , Plant Diseases/genetics , Plant Diseases/immunology , Disease Resistance/genetics , Potyvirus/pathogenicity , Potyvirus/genetics , RNA Interference , Glycine max/genetics , Glycine max/virology , Glycine max/immunology
13.
Virol J ; 21(1): 147, 2024 Jun 28.
Article in English | MEDLINE | ID: mdl-38943139

ABSTRACT

Vertical transmission, the transfer of pathogens across generations, is a critical mechanism for the persistence of plant viruses. The transmission mechanisms are diverse, involving direct invasion through the suspensor and virus entry into developing gametes before achieving symplastic isolation. Despite the progress in understanding vertical virus transmission, the environmental factors influencing this process remain largely unexplored. We investigated the complex interplay between vertical transmission of plant viruses and pollination dynamics, focusing on common bean (Phaseolus vulgaris). The intricate relationship between plants and pollinators, especially bees, is essential for global ecosystems and crop productivity. We explored the impact of virus infection on seed transmission rates, with a particular emphasis on bean common mosaic virus (BCMV), bean common mosaic necrosis virus (BCMNV), and cucumber mosaic virus (CMV). Under controlled growth conditions, BCMNV exhibited the highest seed transmission rate, followed by BCMV and CMV. Notably, in the field, bee-pollinated BCMV-infected plants showed a reduced transmission rate compared to self-pollinated plants. This highlights the influence of pollinators on virus transmission dynamics. The findings demonstrate the virus-specific nature of seed transmission and underscore the importance of considering environmental factors, such as pollination, in understanding and managing plant virus spread.


Subject(s)
Phaseolus , Plant Diseases , Pollination , Animals , Plant Diseases/virology , Bees/virology , Phaseolus/virology , Seeds/virology , Infectious Disease Transmission, Vertical , Cucumovirus/physiology , Potyvirus/physiology
14.
Viruses ; 16(6)2024 May 22.
Article in English | MEDLINE | ID: mdl-38932116

ABSTRACT

Papaya ringspot virus (PRSV) limits papaya production worldwide. Previously, we generated transgenic lines of hybrid Tainung No.2 (TN-2) carrying the coat protein (CP) gene of PRSV with broad resistance to PRSV strains. Unfortunately, all of them were female, unacceptable for growers and consumers in practical applications. With our reported flanking sequences and the newly released papaya genomic information, the CP-transgene insert was identified at a non-coding region in chromosome 3 of the papaya genome, and the flanking sequences were verified and extended. The female transgenic line 16-0-1 was first used for backcrossing with the parental Sunrise cultivar six times and then followed by selfing three times. With multi-level molecular markers developed from the PRSV CP transgene and the genomic flanking sequences, the presence and zygosity of the CP transgene were characterized at the seedling stage. Meanwhile, hermaphrodite genotype was identified by a sex-linked marker. With homozygotic transgene and horticultural properties of Sunrise, a selected hermaphrodite individual was propagated by tissue culture (TC) and used as maternal progenitor to cross with non-transgenic parental cultivar Thailand to generate a new hybrid cultivar TN-2 with a hemizygotic CP-transgene. Three selected hermaphrodite individuals of transgenic TN were micropropagated by TC, and they showed broad-spectrum resistance to different PRSV strains from Taiwan, Hawaii, Thailand, and Mexico under greenhouse conditions. The selected clone TN-2 #1, with excellent horticultural traits, also showed complete resistance to PRSV under field conditions. These selected TC clones of hermaphrodite transgenic TN-2 provide a novel cultivation system in Taiwan and elsewhere.


Subject(s)
Capsid Proteins , Carica , Disease Resistance , Plant Diseases , Plants, Genetically Modified , Potyvirus , Transgenes , Carica/virology , Carica/genetics , Potyvirus/genetics , Plants, Genetically Modified/virology , Disease Resistance/genetics , Plant Diseases/virology , Capsid Proteins/genetics , Genome, Plant , Chromosome Mapping
15.
BMC Genomics ; 25(1): 620, 2024 Jun 19.
Article in English | MEDLINE | ID: mdl-38898399

ABSTRACT

BACKGROUND: Soybean mosaic disease caused by soybean mosaic virus (SMV) is one of the most devastating and widespread diseases in soybean producing areas worldwide. The WRKY transcription factors (TFs) are widely involved in plant development and stress responses. However, the roles of the GmWRKY TFs in resistance to SMV are largely unclear. RESULTS: Here, 185 GmWRKYs were characterized in soybean (Glycine max), among which 60 GmWRKY genes were differentially expressed during SMV infection according to the transcriptome data. The transcriptome data and RT-qPCR results showed that the expression of GmWRKY164 decreased after imidazole treatment and had higher expression levels in the incompatible combination between soybean cultivar variety Jidou 7 and SMV strain N3. Remarkably, the silencing of GmWRKY164 reduced callose deposition and enhanced virus spread during SMV infection. In addition, the transcript levels of the GmGSL7c were dramatically lower upon the silencing of GmWRKY164. Furthermore, EMSA and ChIP-qPCR revealed that GmWRKY164 can directly bind to the promoter of GmGSL7c, which contains the W-box element. CONCLUSION: Our findings suggest that GmWRKY164 plays a positive role in resistance to SMV infection by regulating the expression of GmGSL7c, resulting in the deposition of callose and the inhibition of viral movement, which provides guidance for future studies in understanding virus-resistance mechanisms in soybean.


Subject(s)
Disease Resistance , Gene Expression Regulation, Plant , Glycine max , Plant Diseases , Plant Proteins , Potyvirus , Transcription Factors , Glycine max/virology , Glycine max/genetics , Disease Resistance/genetics , Plant Diseases/virology , Plant Diseases/genetics , Transcription Factors/genetics , Transcription Factors/metabolism , Potyvirus/physiology , Potyvirus/pathogenicity , Plant Proteins/genetics , Plant Proteins/metabolism , Promoter Regions, Genetic
16.
Mol Plant Pathol ; 25(5): e13466, 2024 May.
Article in English | MEDLINE | ID: mdl-38767756

ABSTRACT

The movement of potyviruses, the largest genus of single-stranded, positive-sense RNA viruses responsible for serious diseases in crops, is very complex. As potyviruses developed strategies to hijack the host secretory pathway and plasmodesmata (PD) for their transport, the goal of this study was to identify membrane and/or PD-proteins that interact with the 6K2 protein, a potyviral protein involved in replication and cell-to-cell movement of turnip mosaic virus (TuMV). Using split-ubiquitin membrane yeast two-hybrid assays, we screened an Arabidopsis cDNA library for interactors of TuMV6K2. We isolated AtHVA22a (Hordeum vulgare abscisic acid responsive gene 22), which belongs to a multigenic family of transmembrane proteins, homologous to Receptor expression-enhancing protein (Reep)/Deleted in polyposis (DP1)/Yop1 family proteins in animal and yeast. HVA22/DP1/Yop1 family genes are widely distributed in eukaryotes, but the role of HVA22 proteins in plants is still not well known, although proteomics analysis of PD fractions purified from Arabidopsis suspension cells showed that AtHVA22a is highly enriched in a PD proteome. We confirmed the interaction between TuMV6K2 and AtHVA22a in yeast, as well as in planta by using bimolecular fluorescence complementation and showed that TuMV6K2/AtHVA22a interaction occurs at the level of the viral replication compartment during TuMV infection. Finally, we showed that the propagation of TuMV is increased when AtHVA22a is overexpressed in planta but slowed down upon mutagenesis of AtHVA22a by CRISPR-Cas9. Altogether, our results indicate that AtHVA22a plays an agonistic effect on TuMV propagation and that the C-terminal tail of the protein is important in this process.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Potyvirus , Potyvirus/pathogenicity , Potyvirus/physiology , Arabidopsis/virology , Arabidopsis/genetics , Arabidopsis/metabolism , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/genetics , Plant Diseases/virology , Viral Proteins/metabolism , Viral Proteins/genetics , Virus Replication , Nicotiana/virology , Nicotiana/genetics
17.
PLoS One ; 19(5): e0302692, 2024.
Article in English | MEDLINE | ID: mdl-38722893

ABSTRACT

Tobacco vein necrosis (TVN) is a complex phenomenon regulated by different genetic determinants mapped in the HC-Pro protein (amino acids N330, K391 and E410) and in two regions of potato virus Y (PVY) genome, corresponding to the cytoplasmic inclusion (CI) protein and the nuclear inclusion protein a-protease (NIa-Pro), respectively. A new determinant of TVN was discovered in the MK isolate of PVY which, although carried the HC-Pro determinants associated to TVN, did not induce TVN. The HC-Pro open reading frame (ORF) of the necrotic infectious clone PVY N605 was replaced with that of the non-necrotic MK isolate, which differed only by one amino acid at position 392 (T392 instead of I392). The cDNA clone N605_MKHCPro inoculated in tobacco induced only weak mosaics at the systemic level, demostrating that the amino acid at position 392 is a new determinant for TVN. No significant difference in accumulation in tobacco was observed between N605 and N605_MKHCPro. Since phylogenetic analyses showed that the loss of necrosis in tobacco has occurred several times independently during PVY evolution, these repeated evolutions strongly suggest that tobacco necrosis is a costly trait in PVY.


Subject(s)
Nicotiana , Phylogeny , Plant Diseases , Potyvirus , Viral Proteins , Amino Acid Sequence , Cysteine Endopeptidases/genetics , Cysteine Endopeptidases/metabolism , Molecular Sequence Data , Necrosis , Nicotiana/virology , Open Reading Frames/genetics , Plant Diseases/virology , Point Mutation , Potyvirus/genetics , Potyvirus/pathogenicity , Viral Proteins/genetics , Viral Proteins/metabolism
18.
J Agric Food Chem ; 72(23): 12925-12934, 2024 Jun 12.
Article in English | MEDLINE | ID: mdl-38809684

ABSTRACT

Potato virus Y (PVY) relies on aphids and tubers to spread in the field and causes serious economic losses in the potato industry. Here, we found that pyrido[1,2-α] pyrimidinone mesoionic compounds with insecticidal activity against aphids possessed a good inhibitory effect on PVY. Among them, compound 35 had the best inhibitory activity against PVY (EC50 = 104 µg/mL), even superior to that of ningnanmycin (125 µg/mL). The fluorescence and qPCR results confirmed that compound 35 could inhibit the proliferation of PVY in Nicotiana benthamiana. Preliminary experiments on the mechanism of action indicated that compound 35 had good binding affinity with the coat protein (CP), which plays an essential role in aphid-PVY interactions. Molecular docking revealed that compound 35 could bind to the pocket of CP formed by Ser52, Glu204, and Arg208. Compound 35 had substantially lower binding affinity (Kd) values with CPS52A (219 µM), CPE204A (231 µM), and CPR208A (189 µM) than those with CPWT (5.80 µM). A luciferase assay confirmed that mutating Ser52, Glu204, and Arg208 significantly affected the expression level of CP and further reduced virus proliferation. Therefore, the broad-spectrum activity of compound 35 provides a unique strategy for the prevention and treatment of PVY.


Subject(s)
Antiviral Agents , Aphids , Molecular Docking Simulation , Nicotiana , Plant Diseases , Potyvirus , Aphids/drug effects , Antiviral Agents/pharmacology , Antiviral Agents/chemistry , Animals , Plant Diseases/virology , Plant Diseases/prevention & control , Potyvirus/drug effects , Potyvirus/genetics , Potyvirus/chemistry , Nicotiana/virology , Pyrimidinones/pharmacology , Pyrimidinones/chemistry , Insecticides/chemistry , Insecticides/pharmacology , Solanum tuberosum/chemistry , Solanum tuberosum/virology , Capsid Proteins/genetics , Capsid Proteins/metabolism , Capsid Proteins/chemistry , Structure-Activity Relationship
19.
Genes (Basel) ; 15(5)2024 04 27.
Article in English | MEDLINE | ID: mdl-38790195

ABSTRACT

Soybean mosaic virus (SMV) is one of the main pathogens that can negatively affect soybean production and quality. To study the gene regulatory network of soybeans in response to SMV SC15, the resistant line X149 and susceptible line X97 were subjected to transcriptome analysis at 0, 2, 8, 12, 24, and 48 h post-inoculation (hpi). Differential expression analysis revealed that 10,190 differentially expressed genes (DEGs) responded to SC15 infection. Weighted gene co-expression network analysis (WGCNA) was performed to identify highly related resistance gene modules; in total, eight modules, including 2256 DEGs, were identified. Kyoto Encyclopedia of Genes and Genomes (KEGG) pathway enrichment analysis of 2256 DEGs revealed that the genes significantly clustered into resistance-related pathways, such as the plant-pathogen interaction pathway, mitogen-activated protein kinases (MAPK) signaling pathway, and plant hormone signal transduction pathway. Among these pathways, we found that the flg22, Ca2+, hydrogen peroxide (H2O2), and abscisic acid (ABA) regulatory pathways were fully covered by 36 DEGs. Among the 36 DEGs, the gene Glyma.01G225100 (protein phosphatase 2C, PP2C) in the ABA regulatory pathway, the gene Glyma.16G031900 (WRKY transcription factor 22, WRKY22) in Ca2+ and H2O2 regulatory pathways, and the gene Glyma.04G175300 (calcium-dependent protein kinase, CDPK) in Ca2+ regulatory pathways were highly connected hub genes. These results indicate that the resistance of X149 to SC15 may depend on the positive regulation of flg22, Ca2+, H2O2, and ABA regulatory pathways. Our study further showed that superoxide dismutase (SOD) activity, H2O2 content, and catalase (CAT) and peroxidase (POD) activities were significantly up-regulated in the resistant line X149 compared with those in 0 hpi. This finding indicates that the H2O2 regulatory pathway might be dependent on flg22- and Ca2+-pathway-induced ROS generation. In addition, two hub genes, Glyma.07G190100 (encoding F-box protein) and Glyma.12G185400 (encoding calmodulin-like proteins, CMLs), were also identified and they could positively regulate X149 resistance. This study provides pathways for further investigation of SMV resistance mechanisms in soybean.


Subject(s)
Gene Expression Regulation, Plant , Gene Regulatory Networks , Glycine max , Plant Diseases , Potyvirus , Glycine max/genetics , Glycine max/virology , Potyvirus/pathogenicity , Plant Diseases/virology , Plant Diseases/genetics , Disease Resistance/genetics , Plant Proteins/genetics , Plant Proteins/metabolism , Gene Expression Profiling/methods , Transcriptome , Signal Transduction/genetics
20.
Plant Dis ; 108(5): 1146-1151, 2024 May.
Article in English | MEDLINE | ID: mdl-38736172

ABSTRACT

The San Luis Valley (SLV), Colorado, is the second-largest fresh-potato-growing region in the United States, which accounts for about 95% of the total production in Colorado. Potato virus Y (PVY) is the leading cause of seed potato rejection in the SLV, which has caused a constant decline in seed potato production over the past two decades. To help potato growers control PVY, we monitored the dynamics of PVY infection pressure over the growing seasons of 2022 and 2023 (May through August) using tobacco bait plants exposed to field infection weekly. PVY infection dynamics were slightly different between the two seasons, but July and August had the highest infection in both years. The first PVY infection was detected in the second half of June, which coincides with the emergence of potato crops in the valley. PVY infection increased toward the beginning of August and declined toward the end of the season. Three PVY strains were identified in tobacco bait plants and potato fields, namely PVYO, PVYN-Wi, and PVYNTN. Unlike other producing areas of the United States, PVYO is still the major strain infecting potato crops in Colorado, comprising ∼40% of total PVY strain composition. This could be explained by the prevalence of the potato cultivar Russet Norkotah that lacks any identified N genes, including the Nytbr that controls PVYO, which imposes no negative selection against this strain. The current study demonstrated the usefulness of bait plants to understand PVY epidemiology and develop more targeted control practices of PVY.


Subject(s)
Plant Diseases , Potyvirus , Solanum tuberosum , Colorado , Plant Diseases/virology , Potyvirus/physiology , Potyvirus/genetics , Solanum tuberosum/virology , Seasons , Nicotiana/virology
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