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1.
Int J Mol Sci ; 25(15)2024 Jul 30.
Article in English | MEDLINE | ID: mdl-39125919

ABSTRACT

Modern diagnostic techniques based on DNA sequence similarity are currently the gold standard for the detection of existing and emerging pathogens. Whilst individual assays are inexpensive to use, assay development is costly and carries risks of not being sensitive or specific enough to capture an increasingly diverse range of targets. Sequencing can provide the entire nucleic acid content of a sample and may be used to identify all pathogens present in the sample when the depth of coverage is sufficient. Targeted enrichment techniques have been used to increase sequence coverage and improve the sensitivity of detection within virus samples, specifically, to capture sequences for a range of different viruses or increase the number of reads from low-titre virus infections. Vertebrate viruses have been well characterised using in-solution hybridisation capture to target diverse virus families. The use of probes for genotyping and strain identification has been limited in plants, and uncertainty around sensitivity is an impediment to the development of a large-scale virus panel to use within regulatory settings and diagnostic pipelines. This review aims to compare significant studies that have used targeted enrichment of viruses to identify approaches to probe design and potential for use in plant virus detection and characterisation.


Subject(s)
Plant Diseases , Plant Viruses , Plant Viruses/isolation & purification , Plant Viruses/genetics , Plant Diseases/virology , Plants/virology , Molecular Diagnostic Techniques/methods
2.
Nat Commun ; 15(1): 6918, 2024 Aug 12.
Article in English | MEDLINE | ID: mdl-39134555

ABSTRACT

Salivary proteins of insect herbivores can suppress plant defenses, but the roles of many remain elusive. One such protein is glyceraldehyde-3-phosphate dehydrogenase (GAPDH) from the saliva of the Recilia dorsalis (RdGAPDH) leafhopper, which is known to transmit rice gall dwarf virus (RGDV). Here we show that RdGAPDH was loaded into exosomes and released from salivary glands into the rice phloem through an exosomal pathway as R. dorsalis fed. In infected salivary glands of R. dorsalis, the virus upregulated the accumulation and subsequent release of exosomal RdGAPDH into the phloem. Once released, RdGAPDH consumed H2O2 in rice plants owing to its -SH groups reacting with H2O2. This reduction in H2O2 of rice plant facilitated R. dorsalis feeding and consequently promoted RGDV transmission. However, overoxidation of RdGAPDH could cause potential irreversible cytotoxicity to rice plants. In response, rice launched emergency defense by utilizing glutathione to S-glutathionylate the oxidization products of RdGAPDH. This process counteracts the potential cellular damage from RdGAPDH overoxidation, helping plant to maintain a normal phenotype. Additionally, salivary GAPDHs from other hemipterans vectors similarly suppressed H2O2 burst in plants. We propose a strategy by which plant viruses exploit insect salivary proteins to modulate plant defenses, thus enabling sustainable insect feeding and facilitating viral transmission.


Subject(s)
Hemiptera , Hydrogen Peroxide , Oryza , Plant Diseases , Saliva , Animals , Hemiptera/virology , Hydrogen Peroxide/metabolism , Oryza/virology , Oryza/metabolism , Plant Diseases/virology , Saliva/metabolism , Saliva/virology , Glyceraldehyde-3-Phosphate Dehydrogenases/metabolism , Salivary Glands/virology , Salivary Glands/metabolism , Insect Proteins/metabolism , Insect Proteins/genetics , Insect Vectors/virology , Phloem/virology , Phloem/metabolism , Reoviridae/physiology , Glutathione/metabolism , Salivary Proteins and Peptides/metabolism , Plant Viruses/physiology , Plant Defense Against Herbivory
3.
Arch Insect Biochem Physiol ; 116(3): e22133, 2024 Jul.
Article in English | MEDLINE | ID: mdl-39054788

ABSTRACT

Multiple species within the order Hemiptera cause severe agricultural losses on a global scale. Aphids and whiteflies are of particular importance due to their role as vectors for hundreds of plant viruses, many of which enter the insect via the gut. To facilitate the identification of novel targets for disruption of plant virus transmission, we compared the relative abundance and composition of the gut plasma membrane proteomes of adult Bemisia tabaci (Hemiptera: Aleyrodidae) and Myzus persicae (Hemiptera: Aphididae), representing the first study comparing the gut plasma membrane proteomes of two different insect species. Brush border membrane vesicles were prepared from dissected guts, and proteins extracted, identified and quantified from triplicate samples via timsTOF mass spectrometry. A total of 1699 B. tabaci and 1175 M. persicae proteins were identified. Following bioinformatics analysis and manual curation, 151 B. tabaci and 115 M. persicae proteins were predicted to localize to the plasma membrane of the gut microvilli. These proteins were further categorized based on molecular function and biological process according to Gene Ontology terms. The most abundant gut plasma membrane proteins were identified. The ten plasma membrane proteins that differed in abundance between the two insect species were associated with the terms "protein binding" and "viral processes." In addition to providing insight into the gut physiology of hemipteran insects, these gut plasma membrane proteomes provide context for appropriate identification of plant virus receptors based on a combination of bioinformatic prediction and protein localization on the surface of the insect gut.


Subject(s)
Aphids , Gastrointestinal Tract , Insect Proteins , Insect Vectors , Plant Viruses , Animals , Insect Proteins/metabolism , Insect Vectors/virology , Insect Vectors/metabolism , Aphids/virology , Aphids/metabolism , Gastrointestinal Tract/virology , Gastrointestinal Tract/metabolism , Membrane Proteins/metabolism , Hemiptera/virology , Hemiptera/metabolism , Proteome , Cell Membrane/metabolism
4.
Sci Rep ; 14(1): 15833, 2024 07 09.
Article in English | MEDLINE | ID: mdl-38982112

ABSTRACT

Drought affects crops directly, and indirectly by affecting the activity of insect pests and the transmitted pathogens. Here, we established an experiment with well-watered or water-stressed melon plants, later single infected with either cucumber mosaic virus (CMV: non-persistent), or cucurbit aphid-borne yellow virus (CABYV: persistent), or both CMV and CABYV, and mock-inoculated control. We tested whether i) the relation between CMV and CABYV is additive, and ii) the relationship between water stress and virus infection is antagonistic, i.e., water stress primes plants for enhanced tolerance to virus infection. Water stress increased leaf greenness and temperature, and reduced leaf water potential, shoot biomass, stem dimensions, rate of flowering, CABYV symptom severity, and marketable fruit yield. Virus infection reduced leaf water potential transiently in single infected plants and persistently until harvest in double-infected plants. Double-virus infection caused the largest and synergistic reduction of marketable fruit yield. The relationship between water regime and virus treatment was additive in 12 out of 15 traits at harvest, with interactions for leaf water content, leaf:stem ratio, and fruit set. We conclude that both virus-virus relations in double infection and virus-drought relations cannot be generalized because they vary with virus, trait, and plant ontogeny.


Subject(s)
Cucurbitaceae , Droughts , Plant Diseases , Plant Diseases/virology , Cucurbitaceae/virology , Cucumovirus/physiology , Cucumovirus/pathogenicity , Plant Leaves/virology , Plant Viruses/physiology , Water/metabolism
5.
Methods Mol Biol ; 2812: 307-315, 2024.
Article in English | MEDLINE | ID: mdl-39068370

ABSTRACT

Plants have developed sophisticated defense mechanisms to combat viral infections, prominently utilizing Dicer-like enzymes (DCL) for generating virus-derived small interfering RNAs (vsiRNAs) through RNA interference (RNAi). This intrinsic mechanism effectively impedes virus replication. Exploiting their potential, vsiRNAs have become a major focus area for comprehensive viral investigations in plants, integrating both bioinformatics and experimental strategies. This chapter introduces an up-to-date computational workflow optimized for identifying and comprehensively annotating vsiRNAs with the utilization of small RNA sequencing (sRNA-seq) data collected from virus-infected plants. The workflow detailed in this chapter centers on known plant-targeting viruses, providing step-by-step guidance to enhance vsiRNA analysis, ultimately advancing the comprehension of plant-virus interactions.


Subject(s)
Computational Biology , RNA, Small Interfering , RNA, Viral , RNA, Small Interfering/genetics , RNA, Viral/genetics , Computational Biology/methods , Plant Viruses/genetics , Plant Diseases/virology , Plant Diseases/genetics , RNA Interference , Plants/virology , Plants/genetics , Sequence Analysis, RNA/methods , Host-Pathogen Interactions/genetics , High-Throughput Nucleotide Sequencing/methods , Workflow
6.
Annu Rev Plant Biol ; 75(1): 655-677, 2024 Jul.
Article in English | MEDLINE | ID: mdl-39038248

ABSTRACT

Viruses, causal agents of devastating diseases in plants, are obligate intracellular pathogens composed of a nucleic acid genome and a limited number of viral proteins. The diversity of plant viruses, their diminutive molecular nature, and their symplastic localization pose challenges to understanding the interplay between these pathogens and their hosts in the currently accepted framework of plant innate immunity. It is clear, nevertheless, that plants can recognize the presence of a virus and activate antiviral immune responses, although our knowledge of the breadth of invasion signals and the underpinning sensing events is far from complete. Below, I discuss some of the demonstrated or hypothesized mechanisms enabling viral recognition in plants, the step preceding the onset of antiviral immunity, as well as the strategies viruses have evolved to evade or suppress their detection.


Subject(s)
Plant Diseases , Plant Immunity , Plant Viruses , Plants , Plant Viruses/physiology , Plant Viruses/pathogenicity , Plant Viruses/immunology , Plant Viruses/genetics , Plant Diseases/virology , Plant Diseases/immunology , Plants/virology , Plants/immunology , Host-Pathogen Interactions/immunology , Immune Evasion
7.
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
8.
Virology ; 597: 110160, 2024 Sep.
Article in English | MEDLINE | ID: mdl-38955083

ABSTRACT

Plant viruses threaten global food security by infecting commercial crops, highlighting the critical need for efficient virus detection to enable timely preventive measures. Current techniques rely on polymerase chain reaction (PCR) for viral genome amplification and require laboratory conditions. This review explores the applications of CRISPR-Cas assisted diagnostic tools, specifically CRISPR-Cas12a and CRISPR-Cas13a/d systems for plant virus detection and analysis. The CRISPR-Cas12a system can detect viral DNA/RNA amplicons and can be coupled with PCR or isothermal amplification, allowing multiplexed detection in plants with mixed infections. Recent studies have eliminated the need for expensive RNA purification, streamlining the process by providing a visible readout through lateral flow strips. The CRISPR-Cas13a/d system can directly detect viral RNA with minimal preamplification, offering a proportional readout to the viral load. These approaches enable rapid viral diagnostics within 30 min of leaf harvest, making them valuable for onsite field applications. Timely identification of diseases associated with pathogens is crucial for effective treatment; yet developing rapid, specific, sensitive, and cost-effective diagnostic technologies remains challenging. The current gold standard, PCR technology, has drawbacks such as lengthy operational cycles, high costs, and demanding requirements. Here we update the technical advancements of CRISPR-Cas in viral detection, providing insights into future developments, versatile applications, and potential clinical translation. There is a need for approaches enabling field plant viral nucleic acid detection with high sensitivity, specificity, affordability, and portability. Despite challenges, CRISPR-Cas-mediated pathogen diagnostic solutions hold robust capabilities, paving the way for ideal diagnostic tools. Alternative applications in virus research are also explored, acknowledging the technology's limitations and challenges.


Subject(s)
CRISPR-Cas Systems , Plant Diseases , Plant Viruses , Plant Viruses/genetics , Plant Viruses/isolation & purification , Plant Diseases/virology , Nucleic Acid Amplification Techniques/methods , Molecular Diagnostic Techniques/methods , RNA, Viral/genetics , DNA, Viral/genetics
9.
BMC Genomics ; 25(1): 736, 2024 Jul 30.
Article in English | MEDLINE | ID: mdl-39080552

ABSTRACT

Rice black-streaked dwarf virus (RBSDV) is an etiological agent of a destructive disease infecting some economically important crops from the Gramineae family in Asia. While RBSDV causes high yield losses, genetic characteristics of replicative viral populations have not been investigated within different host plants and insect vectors. Herein, eleven publicly available RNA-Seq datasets from Chinese RBSDV-infected rice, maize, and viruliferous planthopper (Laodelphax striatellus) were obtained from the NCBI database. The patterns of SNP and RNA expression profiles of expected RBSDV populations were analyzed by CLC Workbench 20 and Geneious Prime software. These analyses discovered 2,646 mutations with codon changes in RBSDV whole transcriptome and forty-seven co-mutated hotspots with high variant frequency within the crucial regions of S5-1, S5-2, S6, S7-1, S7-2, S9, and S10 open reading frames (ORFs) which are responsible for some virulence and host range functions. Moreover, three joint mutations are located on the three-dimensional protein of P9-1. The infected RBSDV-susceptible rice cultivar KTWYJ3 and indigenous planthopper datasets showed more co-mutated hotspot numbers than others. Our analyses showed the expression patterns of viral genomic fragments varied depending on the host type. Unlike planthopper, S5-1, S2, S6, and S9-1 ORFs, respectively had the greatest read numbers in host plants; and S5-2, S9-2, and S7-2 were expressed in the lowest level. These findings underscore virus/host complexes are effective in the genetic variations and gene expression profiles of plant viruses. Our analysis revealed no evidence of recombination events. Interestingly, the negative selection was observed at 12 RBSDV ORFs, except for position 1015 in the P1 protein, where a positive selection was detected. The research highlights the potential of SRA datasets for analysis of the virus cycle and enhances our understanding of RBSDV's genetic diversity and host specificity.


Subject(s)
Insect Vectors , Oryza , Plant Diseases , Plant Viruses , Animals , Oryza/virology , Oryza/genetics , Insect Vectors/virology , Insect Vectors/genetics , Plant Viruses/genetics , Plant Diseases/virology , Plant Diseases/genetics , Hemiptera/virology , Hemiptera/genetics , Genetic Variation , RNA-Seq , Transcriptome , Reoviridae/genetics , Zea mays/virology , Zea mays/genetics , Polymorphism, Single Nucleotide , Mutation , Gene Expression Profiling , Open Reading Frames/genetics
10.
Plant Cell Rep ; 43(8): 197, 2024 Jul 16.
Article in English | MEDLINE | ID: mdl-39014054

ABSTRACT

Reactive oxygen species (ROS) play a complex role in interactions between plant viruses and their host plants. They can both help the plant defend against viral infection and support viral infection and spread. This review explores the various roles of ROS in plant-virus interactions, focusing on their involvement in symptom development and the activation of plant defense mechanisms. The article discusses how ROS can directly inhibit viral infection, as well as how they can regulate antiviral mechanisms through various pathways involving miRNAs, virus-derived small interfering RNAs, viral proteins, and host proteins. Additionally, it examines how ROS can enhance plant resistance by interacting with hormonal pathways and external substances. The review also considers how ROS might promote viral infection and transmission, emphasizing their intricate role in plant-virus dynamics. These insights offer valuable guidance for future research, such as exploring the manipulation of ROS-related gene expression through genetic engineering, developing biopesticides, and adjusting environmental conditions to improve plant resistance to viruses. This framework can advance research in plant disease resistance, agricultural practices, and disease control.


Subject(s)
Disease Resistance , Plant Diseases , Plant Viruses , Plants , Reactive Oxygen Species , Reactive Oxygen Species/metabolism , Plant Viruses/physiology , Plant Viruses/pathogenicity , Plant Diseases/virology , Disease Resistance/genetics , Plants/virology , Plants/metabolism , Host-Pathogen Interactions , MicroRNAs/genetics , MicroRNAs/metabolism , Gene Expression Regulation, Plant
11.
New Phytol ; 243(6): 2351-2367, 2024 Sep.
Article in English | MEDLINE | ID: mdl-39030826

ABSTRACT

Viroids are pathogenic noncoding RNAs that completely rely on their host molecular machinery to accomplish their life cycle. Several interactions between viroids and their host molecular machinery have been identified, including interference with epigenetic mechanisms such as DNA methylation. Despite this, whether viroids influence changes in other epigenetic marks such as histone modifications remained unknown. Epigenetic regulation is particularly important during pathogenesis processes because it might be a key regulator of the dynamism of the defense response. Here we have analyzed the changes taking place in Cucumis sativus (cucumber) facultative and constitutive heterochromatin during hop stunt viroid (HSVd) infection using chromatin immunoprecipitation (ChIP) of the two main heterochromatic marks: H3K9me2 and H3K27me3. We find that HSVd infection is associated with changes in both H3K27me3 and H3K9me2, with a tendency to decrease the levels of repressive epigenetic marks through infection progression. These epigenetic changes are connected to the transcriptional regulation of their expected targets, genes, and transposable elements. Indeed, several genes related to the defense response are targets of both epigenetic marks. Our results highlight another host regulatory mechanism affected by viroid infection, providing further information about the complexity of the multiple layers of interactions between pathogens/viroids and hosts/plants.


Subject(s)
Epigenesis, Genetic , Gene Expression Regulation, Plant , Heterochromatin , Histones , Plant Diseases , Viroids , Heterochromatin/metabolism , Heterochromatin/genetics , Viroids/genetics , Viroids/physiology , Viroids/pathogenicity , Histones/metabolism , Plant Diseases/virology , Plant Diseases/genetics , Cucumis sativus/virology , Cucumis sativus/genetics , Plant Viruses/physiology , Plant Viruses/pathogenicity , DNA Transposable Elements/genetics , Host-Pathogen Interactions/genetics
12.
Virology ; 597: 110144, 2024 Sep.
Article in English | MEDLINE | ID: mdl-38943782

ABSTRACT

Sarracenia purpurea is a carnivorous plant historically used to treat smallpox infections. Our previous data found S. purpurea had broad spectrum antiviral activity in vitro. S. purpurea is one of several hundred identified carnivorous species of plants. Carnivorous plants have evolved through convergent evolution in at least ten independent events, usually in response to harsh environments where nutrition from prey is required for growth. These prey are known vectors of plant viruses that might introduce novel biotic stressors and defense pathways in carnivorous plants. This study evaluated the antiviral activity of several non-carnivorous and carnivorous plants from four evolutionarily distinct clades. Results demonstrated that carnivorous plants have evolved antiviral activity, a trait that is not present in related species of non-carnivorous plants. The antiviral trait may be due to the plant-prey relationship with insect vectors and an evolutionary need for carnivorous plants to have more robust antiviral defense systems.


Subject(s)
Sarraceniaceae , Sarraceniaceae/virology , Carnivorous Plant/virology , Carnivorous Plant/physiology , Plant Viruses/physiology , Antiviral Agents/pharmacology , Animals
13.
Plant Cell Rep ; 43(7): 177, 2024 Jun 19.
Article in English | MEDLINE | ID: mdl-38898307

ABSTRACT

KEY MESSAGE: Recently published high-quality reference genome assemblies indicate that, in addition to RDR1-deficiency, the loss of several key RNA silencing-associated genes may contribute to the hypersusceptibility of Nicotiana benthamiana to viruses.


Subject(s)
Nicotiana , Plant Diseases , RNA Interference , Nicotiana/genetics , Nicotiana/virology , Plant Diseases/virology , Plant Diseases/genetics , Plant Viruses/physiology , Plant Viruses/genetics , Plant Proteins/genetics , Plant Proteins/metabolism , Genes, Plant/genetics , Gene Expression Regulation, Plant
14.
Plant Sci ; 346: 112165, 2024 Sep.
Article in English | MEDLINE | ID: mdl-38925477

ABSTRACT

Agriculture and global food security encounter significant challenges due to viral threats. In the following decades, several molecular studies have focused on discovering biosynthetic pathways of numerous defensive and signaling compounds, as key regulators of plant interactions, either with viruses or their associated vectors. Nevertheless, the complexities of specialized metabolites mediated plant-virus-vector tripartite viewpoint and the identification of their co-evolutionary crossroads toward antiviral defense system, remain elusive. The current study reviews the various roles of plant-specialized metabolites (PSMs) and how plants use these metabolites to defend against viruses. It discusses recent examples of specialized metabolites that have broad-spectrum antiviral properties. Additionally, the study presents the co-evolutionary basis of metabolite-mediated plant-virus-insect interactions as a potential bioinspired approach to combat viral threats. The prospects also show promising metabolic engineering strategies aimed at discovering a wide range of PSMs that are effective in fending off viruses and their related vectors. These advances in understanding the potential role of PSMs in plant-virus interactions not only serve as a cornerstone for developing plant antiviral systems, but also highlight essential principles of biological control.


Subject(s)
Plant Diseases , Plant Viruses , Plants , Plant Viruses/physiology , Plants/virology , Plants/metabolism , Plant Diseases/virology , Animals , Host-Pathogen Interactions , Biological Evolution
15.
Methods Mol Biol ; 2822: 387-410, 2024.
Article in English | MEDLINE | ID: mdl-38907930

ABSTRACT

Plant viruses such as brome mosaic virus and cowpea chlorotic mottle virus are effectively purified through PEG precipitation and sucrose cushion ultracentrifugation. Increasing ionic strength and an alkaline pH cause the viruses to swell and disassemble into coat protein subunits. The coat proteins can be reassembled into stable virus-like particles (VLPs) that carry anionic molecules at low ionic strength and through two-step dialysis from neutral pH to acidic buffer. VLPs have been extensively studied due to their ability to protect and deliver cargo, particularly RNA, while avoiding degradation under physiological conditions. Furthermore, chemical functionalization of the surface of VLPs allows for the targeted drug delivery. VLPs derived from plants have demonstrated great potential in nanomedicine by offering a versatile platform for drug delivery, imaging, and therapeutic applications.


Subject(s)
Plant Viruses , Plant Viruses/genetics , Capsid Proteins/chemistry , Capsid Proteins/genetics , Capsid Proteins/metabolism , Virion/chemistry , Virion/genetics , Bromovirus/chemistry , Bromovirus/genetics , RNA/chemistry , Hydrogen-Ion Concentration , RNA, Viral/genetics
16.
PLoS Pathog ; 20(6): e1012311, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38885273

ABSTRACT

The majority of rod-shaped and some filamentous plant viruses encode a cysteine-rich protein (CRP) that functions in viral virulence; however, the roles of these CRPs in viral infection remain largely unknown. Here, we used barley stripe mosaic virus (BSMV) as a model to investigate the essential role of its CRP in virus morphogenesis. The CRP protein γb directly interacts with BSMV coat protein (CP), the mutations either on the His-85 site in γb predicted to generate a potential CCCH motif or on the His-13 site in CP exposed to the surface of the virions abolish the zinc-binding activity and their interaction. Immunogold-labeling assays show that γb binds to the surface of rod-shaped BSMV virions in a Zn2+-dependent manner, which enhances the RNA binding activity of CP and facilitates virion assembly and stability, suggesting that the Zn2+-dependent physical association of γb with the virion is crucial for BSMV morphogenesis. Intriguingly, the tightly binding of diverse CRPs to their rod-shaped virions is a general feature employed by the members in the families Virgaviridae (excluding the genus Tobamovirus) and Benyviridae. Together, these results reveal a hitherto unknown role of CRPs in the assembly and stability of virus particles, and expand our understanding of the molecular mechanism underlying virus morphogenesis.


Subject(s)
Virion , Zinc , Zinc/metabolism , Virion/metabolism , Capsid Proteins/metabolism , Virus Assembly/physiology , Plant Viruses/metabolism , Plant Viruses/physiology , Plant Diseases/virology , Cysteine/metabolism , Viral Proteins/metabolism , Morphogenesis
17.
Sci Rep ; 14(1): 12948, 2024 06 05.
Article in English | MEDLINE | ID: mdl-38839925

ABSTRACT

Viral diseases are becoming an important problem in Amorphophallus production due to the propagation of seed corms and their trade across regions. In this study, combined-High-Throughput Sequencing, RT-PCR, electron microscopy, and mechanical inoculation were used to analyze virus-like infected Amorphophallus samples in Yunnan province to investigate the distribution, molecular characterization, and diversity and evolution of Amorphophallus-infecting viruses including three isolates of dasheen mosaic virus and three orthotospoviruses: mulberry vein banding associated virus (MVBaV), tomato zonate spot virus (TZSV) and impatiens necrotic spot virus (INSV). The results showed that DsMV is the dominant virus infecting Amorphophallus, mixed infections with DsMV and MVBaV to Amorphophallus were quite common in Yunnan province, China. This is the first report on infection of Amorphophallus with MVBaV, TZSV, and impatiens necrotic spot virus (INSV) in China. This work will help to develop an effective integrated management strategy to control the spread of Amorphophallus viral diseases.


Subject(s)
Phylogeny , Plant Diseases , China , Plant Diseases/virology , Plant Viruses/isolation & purification , Plant Viruses/genetics , High-Throughput Nucleotide Sequencing , RNA, Viral/genetics
18.
Anal Methods ; 16(27): 4485-4495, 2024 Jul 11.
Article in English | MEDLINE | ID: mdl-38940060

ABSTRACT

Worldwide, plant pathogens have been a considerably important cause of economic loss in agriculture especially in the decades of agricultural intensification. The increasing losses in agriculture due to biotic plant diseases have drawn attention towards the development of plant disease analyzing methods. In this context, biosensors have emerged as significantly important tools which help farmers in on-field diagnosis of plant diseases. Compared to traditional methods, biosensors have outstanding features such as being highly sensitive and selective, cost-effective, portable, fast and user-friendly operation, and so on. There are three common types of biosensors including electrochemical, fluorescent, and colorimetric biosensors. In this review, some common biotic plant diseases caused by fungi, bacteria, and viruses are first summarized. Then, current advances in developing biosensors are discussed.


Subject(s)
Biosensing Techniques , Plant Diseases , Biosensing Techniques/methods , Biosensing Techniques/instrumentation , Plant Diseases/microbiology , Fungi/isolation & purification , Plants/microbiology , Bacteria/isolation & purification , Colorimetry/methods , Electrochemical Techniques/methods , Electrochemical Techniques/instrumentation , Plant Viruses/isolation & purification
19.
Viruses ; 16(6)2024 May 31.
Article in English | MEDLINE | ID: mdl-38932180

ABSTRACT

Viral diseases pose a significant threat to tomato crops (Solanum lycopersicum L.), one of the world's most economically important vegetable crops. The limited genetic diversity of cultivated tomatoes contributes to their high susceptibility to viral infections. To address this challenge, tomato breeding programs must harness the genetic resources found in native populations and wild relatives. Breeding efforts may aim to develop broad-spectrum resistance against the virome. To identify the viruses naturally infecting 19 advanced lines, derived from native tomatoes, high-throughput sequencing (HTS) of small RNAs and confirmation with PCR and RT-PCR were used. Single and mixed infections with tomato mosaic virus (ToMV), tomato golden mosaic virus (ToGMoV), and pepper huasteco yellow vein virus (PHYVV) were detected. The complete consensus genomes of three variants of Mexican ToMV isolates were reconstructed, potentially forming a new ToMV clade with a distinct 3' UTR. The absence of reported mutations associated with resistance-breaking to ToMV suggests that the Tm-1, Tm-2, and Tm-22 genes could theoretically be used to confer resistance. However, the high mutation rates and a 63 nucleotide insertion in the 3' UTR, as well as amino acid mutations in the ORFs encoding 126 KDa, 183 KDa, and MP of Mexican ToMV isolates, suggest that it is necessary to evaluate the capacity of these variants to overcome Tm-1, Tm-2, and Tm-22 resistance genes. This evaluation, along with the characterization of advanced lines using molecular markers linked to these resistant genes, will be addressed in future studies as part of the breeding strategy. This study emphasizes the importance of using HTS for accurate identification and characterization of plant viruses that naturally infect tomato germplasm based on the consensus genome sequences. This study provides crucial insights to select appropriate disease management strategies and resistance genes and guide breeding efforts toward the development of virus-resistant tomato varieties.


Subject(s)
High-Throughput Nucleotide Sequencing , Plant Breeding , Plant Diseases , Plant Viruses , Solanum lycopersicum , Plant Diseases/virology , Solanum lycopersicum/virology , Plant Viruses/genetics , Plant Viruses/isolation & purification , Plant Viruses/classification , Genome, Viral/genetics , Phylogeny , Disease Resistance/genetics , RNA, Viral/genetics
20.
Viruses ; 16(6)2024 May 31.
Article in English | MEDLINE | ID: mdl-38932185

ABSTRACT

Increasing reports of tobacco rattle virus (TRV) and cycas necrotic stunt virus (CNSV) in herbaceous Paeonia worldwide highlight the importance of conserving the genetic resources of this economically important ornamental and medicinal crop. The unknown origin(s) of infection, differential susceptibility of peony cultivars to these viruses, and elusive disease phenotypes for CNSV in peonies make early detection and management challenging. Here, we report the presence of TRV and CNSV in plants of the University of Michigan living peony collection in the United States and a molecular characterization of their strains. Using sequences of the TRV 194 K RNA polymerase gene, we confirmed TRV infections in seven symptomatic plants (1.07% of all plants in the collection). Using newly developed primers, we recovered sequences of the CNSV RdRp gene and the polyprotein 1 gene region from nine out of twelve samples analyzed, including three from symptomless plants. Four of the nine plants had TRV and CNSV co-infections and showed more severe disease symptoms than plants only infected with TRV. Phylogenetic analyses of isolates from the University of Michigan living peony collection and publicly available isolates point to multiple origins of TRV and CNSV infections in this collection. This is the first report of TRV/CNSV co-infection and of a symptomatic detection of CNSV on cultivated P. lactiflora.


Subject(s)
Coinfection , Paeonia , Phylogeny , Plant Diseases , Plant Viruses , Paeonia/virology , Paeonia/genetics , Plant Diseases/virology , Coinfection/virology , Plant Viruses/genetics , Plant Viruses/isolation & purification , Plant Viruses/classification , RNA, Viral/genetics , United States , Conservation of Natural Resources
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