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Keywords = tobacco mosaic virus (TMV)

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18 pages, 16515 KB  
Article
Construction and Characterization of an Attenuated Vaccine Vector Based on Cucumber Mosaic Virus RNA2
by Zhao Wang, Shanshan Liu, Mingjing Zhu, Jiagan Zhang, Xueyuan Wang, Zhifei Liu, Kaiqiang Hao, Shuyuan Tian, Xuefeng Yuan and Chengming Yu
Life 2026, 16(9), 1489; https://doi.org/10.3390/life16091489 - 5 Sep 2026
Viewed by 221
Abstract
Plant viruses are major plant pathogens and account for nearly half of emerging plant diseases worldwide. To date, few effective management measures are available for the efficient control of plant viral diseases. Cross-protection based on attenuated vaccine is an effective strategy to prevent [...] Read more.
Plant viruses are major plant pathogens and account for nearly half of emerging plant diseases worldwide. To date, few effective management measures are available for the efficient control of plant viral diseases. Cross-protection based on attenuated vaccine is an effective strategy to prevent plant viral diseases. The primary requirement for the development of attenuated vaccines is a vector with excellent characteristics, such as low pathogenicity, genetic stability, and the capacity for stable insertion of exogenous fragments. In this study, the cucumber mosaic virus (Fny strain) was genetically modified to serve as an attenuated vaccine vector. Based on pre-termination of the 2b protein-coding region and deletion of the 3′ UTR in CMV RNA2, six RNA2 mutants, designated R2-2bPTI, R2-2bPTII, R2-2bPTIII, R2-2bPTIV, R2-2bPTV, and R2-2bPTVI, were constructed. Experiments with different lengths tobacco phytoene desaturase (PDS) fragment insertion evaluated the capacity of each mutant to accommodate exogenous fragment. Based on the R2-2bPTIV, a viral fragment insertion mutant R2-2bPTIV-TMPYTVPX targeting cucumber mosaic virus (CMV), tobacco mosaic virus (TMV), potato virus Y (PVY), tobacco vein banding mosaic virus (TVBMV), and potato virus X (PVX) was constructed. This mutant provided effective cross-protection against these targeted virulent viruses. This study developed a series of CMV-based vaccine vector, providing materials and data for the development of plant viral diseases attenuated vaccines. Full article
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20 pages, 3385 KB  
Article
A One-Step RT-PCR-Coupled Cysteamine-Functionalized Gold Nanoparticle Assay for Colorimetric Detection of Tobacco Mosaic Virus
by Thuy-Duong Thi Tran, Quy Thi Vu, Hoa Thi Hoang, Phan Thi Ngoc Hoa, Nguyen Pham Thi Thao and Truong T. N. Lien
Methods Protoc. 2026, 9(4), 111; https://doi.org/10.3390/mps9040111 - 27 Jul 2026
Viewed by 539
Abstract
Viral diseases are one of the most destructive threats to global agriculture. Among plant viruses, tobacco mosaic virus (TMV) is a highly contagious pathogen infecting numerous economically vital crops. With no curable treatments, the only strategy to mitigate virus spread is early detection [...] Read more.
Viral diseases are one of the most destructive threats to global agriculture. Among plant viruses, tobacco mosaic virus (TMV) is a highly contagious pathogen infecting numerous economically vital crops. With no curable treatments, the only strategy to mitigate virus spread is early detection and plant removal. The gold standard for TMV detection is reverse transcriptase-polymerase chain reaction (RT-PCR), followed by agarose gel electrophoresis. To reduce TMV diagnosis time and eliminate the requirement for expensive equipment, this study developed and optimized a one-step RT-PCR-coupled cysteamine-functionalized gold nanoparticle assay for the colorimetric determination of the virus. By integrating cDNA synthesis and PCR amplification into a single tube and analyzing the results using cysteamine- functionalized gold nanoparticles (Au@Cys), the diagnosis turnaround time was significantly reduced. Furthermore, this AuNPs-based colorimetric assay enabled straightforward visual inspection with the naked eye, eliminating the need for costly optical devices. Additionally, our regression equation linking RT-PCR product color values, extracted as mean A value based on the CIELAB color space (green-red axis), and viral load allows for the accurate quantification of TMV infection levels in field samples. Our research lays the groundwork for the further development of more cost-effective, quantitative and rapid plant virus diagnosis methods. Full article
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38 pages, 3811 KB  
Review
Chalcones as a Versatile Antiviral Scaffold: Molecular Targets, ADMET Profiles, and Translational Challenges
by Alvaro Luiz Helena, Patrick Rômbola Ozanique, Kevin Henrique Souza Lima, Wellington Negri Tondato, Victor Yukio Ichikawa Baio, Otávio Henrique Locateli Soares and Luis Octávio Regasini
Viruses 2026, 18(7), 806; https://doi.org/10.3390/v18070806 - 22 Jul 2026
Viewed by 837
Abstract
Chalcones are naturally occurring open-chain flavonoids widely distributed in plants and recognized for their broad spectrum of pharmacological activities. Their versatile scaffold allows for extensive structural modifications, leading to a diverse range of natural and synthetic derivatives with notable biological potential. In the [...] Read more.
Chalcones are naturally occurring open-chain flavonoids widely distributed in plants and recognized for their broad spectrum of pharmacological activities. Their versatile scaffold allows for extensive structural modifications, leading to a diverse range of natural and synthetic derivatives with notable biological potential. In the context of viral infections, chalcones have demonstrated remarkable efficacy against a variety of human pathogens, including dengue virus, HIV, HCV, influenza A, SARS-CoV-2, and other emerging viruses. Beyond human health, several chalcones have shown potent activity against plant viruses such as tobacco mosaic virus (TMV) and cucumber mosaic virus (CMV), and animal viruses including porcine reproductive and respiratory syndrome virus (PRRSV) and mammalian reovirus (MRV), underscoring their broad antiviral spectrum. These compounds act through multiple mechanisms, including the inhibition of viral enzymes (e.g., proteases, polymerases, and integrases), interference with viral entry and replication, and the modulation of host-related pathways. Recent advances in molecular docking, structure–activity relationship (SAR) studies, and synthetic optimization have further highlighted chalcones as a promising scaffold for antiviral drug discovery. Accordingly, this review summarizes and categorizes antiviral chalcones reported over the last two decades, emphasizing and critically discussing their molecular targets, mechanisms of action, and pharmacological potential as lead compounds. It also provides a comparative perspective on their pharmacological relevance by correlating their activities against standard therapeutic agents and reference inhibitors. Furthermore, the most recurrent viral targets were critically discussed regarding their conservation, expected genetic barriers to resistance, and the global SAR trends identified for the corresponding antiviral chalcones. Finally, in silico ADMET profiling of the most promising naturally occurring chalcones was performed to evaluate their drug-likeness and pharmacokinetic properties, offering guidance for future structural optimization and translational development. Collectively, these findings highlight the chalcone scaffold as a versatile platform for the development of novel antiviral agents targeting diverse viral and host pathways. Full article
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20 pages, 11339 KB  
Review
Plant-Derived Anti-TMV Metabolites: Mechanisms, Limitations and Future Perspectives
by Muhammad Qasim Aslam, Ziran Gao, Amr Said Mohamed, Samah Mostafa El-Sayed, Wenjing Yang, Lin Cheng, Kuo Wu, Yu Li and Yongdui Chen
Viruses 2026, 18(7), 756; https://doi.org/10.3390/v18070756 - 9 Jul 2026
Viewed by 675
Abstract
Tobacco mosaic virus (TMV) poses a serious threat to global agricultural production. It is an exceptionally stable virus with a broad host range and is widespread across diverse agroecosystems. Concerning TMV management, plant-derived metabolites have emerged as promising and eco-friendly antiviral agents. To [...] Read more.
Tobacco mosaic virus (TMV) poses a serious threat to global agricultural production. It is an exceptionally stable virus with a broad host range and is widespread across diverse agroecosystems. Concerning TMV management, plant-derived metabolites have emerged as promising and eco-friendly antiviral agents. To date, numerous plant-derived metabolites with potent anti-TMV activity and their underlying mechanisms of action have been identified. However, a comprehensive understanding of their mechanisms of action is still lacking. This review summarizes the diversity of anti-TMV mechanisms triggered by natural and plant-sourced semisynthetic compounds. These metabolites mainly include alkaloids, flavonoids, terpenoids, phenylpropanoids, and glycosides, which act either directly targeting virus particles or indirectly by eliciting host immunity. Together, these mechanisms form an integrated defence network that restricts viral replication and movement within the host. This mechanistic understanding will be essential for the rational development of sustainable and effective plant-derived antiviral agents. Full article
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14 pages, 9464 KB  
Article
The Arabidopsis CYSTM α 5′ UTR Increases Protein Production from Transgenes in Plants and Bacteria
by Jasjyot Singh Khanduja, Xingyu Wu, Jun Li and Iain R. Searle
Genes 2026, 17(5), 520; https://doi.org/10.3390/genes17050520 - 28 Apr 2026
Viewed by 1206
Abstract
Background: Translational regulation constitutes a critical layer of gene expression control in plants, yet the contribution of endogenous 5′ untranslated regions (5′ UTRs) to translational efficiency remains incompletely defined. While viral and synthetic leader sequences have been widely used to enhance protein [...] Read more.
Background: Translational regulation constitutes a critical layer of gene expression control in plants, yet the contribution of endogenous 5′ untranslated regions (5′ UTRs) to translational efficiency remains incompletely defined. While viral and synthetic leader sequences have been widely used to enhance protein production, comparatively few native plant 5′ UTRs have been systematically characterised. The objective of this study was to identify and functionally evaluate endogenous plant 5′ UTR elements that promote translation through post-transcriptional mechanisms. Methods: A 79-nucleotide fragment (CYSTM α) derived from the 5′ UTR of Arabidopsis thaliana CYSTM1 (AT1G05340) was cloned upstream of reporter genes and assessed using dual-luciferase assays in transient expression systems (Nicotiana benthamiana and A. thaliana) and in stable transgenic Arabidopsis lines. Translational activity was further evaluated in monocot wheat germ extract and in Escherichia coli. Transcript abundance was quantified by qRT-PCR. Publicly available ribosome profiling and m6A datasets were analysed to assess translational efficiency and RNA modification status. Results: In N. benthamiana and A. thaliana, CYSTM α increases reporter protein production 3–7 fold relative to the control and 30–130% above the benchmark Tobacco Mosaic Virus (TMV) Ω leader, without altering mRNA abundance. The CYSTM α sequence also enhances luciferase translation in monocot wheat germ extract and elevates translation 5-fold in E. coli. CYSTM α contains three motifs that may promote translation, namely three CAA repeats that are associated with translation initiation, an AMAYAA motif that is associated with eIF3 binding, and two N6-adenosine DRACH sites that are associated with cap-independent translation. Additionally, ribosome profiling revealed high translational efficiency (TE = 3.25) of native CYSTM1. Conclusions: CYSTM α represents a compact endogenous 5′ UTR element that enhances translation across multiple experimental systems. These findings expand the repertoire of plant-derived translational enhancers and provide insight into sequence features associated with efficient mRNA translation in plants. Full article
(This article belongs to the Section Transgenic Technology)
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21 pages, 6717 KB  
Article
The FBXL Gene Family in Tobacco (Nicotiana tabacum L.): Identification and Expression Response to TMV and Abiotic Stresses
by Jiaxin Li, Jia Shen, Fang Wang, Wei Wang, Yifeng Yan, Xiaolu Pan, Chaoqiang Jiang, Huaying Yang and Qing Dong
Antioxidants 2026, 15(2), 246; https://doi.org/10.3390/antiox15020246 - 13 Feb 2026
Cited by 3 | Viewed by 900
Abstract
F-box-LRR (FBXL) proteins are crucial components of the SCF ubiquitin ligase complex, regulating diverse processes such as development and stress responses in plants. However, the FBXL family in tobacco (Nicotiana tabacum L.) remains poorly characterized. This study performed the first genome-wide analysis [...] Read more.
F-box-LRR (FBXL) proteins are crucial components of the SCF ubiquitin ligase complex, regulating diverse processes such as development and stress responses in plants. However, the FBXL family in tobacco (Nicotiana tabacum L.) remains poorly characterized. This study performed the first genome-wide analysis of the FBXL gene family in tobacco and identified 47 NtaFBXL genes. Phylogenetic analysis classified them into five clades, among which Clade III exhibited notable expansion. Promoter analysis revealed abundant stress- and hormone-related cis-elements. Expression profiling demonstrated tissue-specific patterns and strong responses to drought, ABA, IAA, and TMV infection. Importantly, six genes exhibited a significant negative correlation with TMV accumulation, suggesting their potential roles in antiviral defense. Moreover, both drought and TMV stress triggered a disturbance of redox homeostasis, a dynamic process that was closely associated with the expression of specific NtaFBXL genes, characterized by upregulated antioxidant enzymes (SOD, POD, CAT) and accumulated oxidative markers (H2O2, MDA). Collectively, this study provided a foundational resource for understanding the function of NtaFBXLs and identified key candidate genes for the genetic improvement of stress resistance in tobacco. Full article
(This article belongs to the Special Issue Advances in Plant Redox Biology Research)
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16 pages, 6392 KB  
Article
Simplified Sample Preparation and Lateral Flow Immunoassay for the Detection of Plant Viruses
by Robert Tannenberg, Georg Tscheuschner, Christopher Raab, Sabine Flemig, Sarah Döring, Marco Ponader, Melinda Thurmann, Martin Paul and Michael G. Weller
Biosensors 2026, 16(2), 100; https://doi.org/10.3390/bios16020100 - 4 Feb 2026
Cited by 1 | Viewed by 1778
Abstract
Lateral flow immunoassays (LFAs) are widely used for on-site testing; however, their use for the rapid detection of plant viruses in the field is often limited by inconvenient sample preparation. Here, we present a new sampling method and a simplified dipstick LFA format [...] Read more.
Lateral flow immunoassays (LFAs) are widely used for on-site testing; however, their use for the rapid detection of plant viruses in the field is often limited by inconvenient sample preparation. Here, we present a new sampling method and a simplified dipstick LFA format for the detection and monitoring of cowpea chlorotic mottle virus (CCMV) as a model plant pathogen. The assay employs a monoclonal mouse antibody for capture and a poly-clonal rabbit antibody conjugated to 80 nm gold nanoparticles for detection. Conventional sample and conjugate pads are omitted, allowing the test strips to be dipped directly into wells containing plant extract and antibody–gold conjugate. No plastic casing was required, which could lead to a reduction in waste. It was shown that CCMV concentrations as low as 3.5 µg/L or 350 pg per sample could be reliably detected in 15 min. Specificity tests confirmed that other plant viruses, cowpea mosaic virus (CPMV) and tobacco mosaic virus (TMV), did not produce false-positive results. In addition, we describe a new method for on-site sampling using a manual punch and a syringe equipped with a frit. This step combines grinding the sample, extraction, filtration, and reconstitution and mixing of the antibody-gold conjugate, enabling the analysis of punched leaf disks without laboratory equipment. When applied to CCMV-infected cowpea plants, the assay revealed systemic infection before visual symptoms became apparent. This work demonstrates that simplified LFAs combined with innovative sampling techniques can provide sensitive, specific, and rapid diagnostics for crop monitoring and support early intervention strategies in agriculture. Full article
(This article belongs to the Special Issue Feature Paper in Biosensor and Bioelectronic Devices 2025)
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19 pages, 2842 KB  
Article
Signaling Pathway Analysis and Downstream Genes Associated with Disease Resistance Mediated by GmSRC7
by Aoga Li, Chongyang Yao, Ting Yan, Xiaomin Hao, Dongying Geng, Qi Zhang, Hui Li, Wenquan Bao and Yue Bai
Plants 2026, 15(2), 318; https://doi.org/10.3390/plants15020318 - 21 Jan 2026
Viewed by 1515
Abstract
GmSRC7 is a broad-spectrum antiviral R gene from soybean, but its downstream and functionally related genes remain unclear. Virus-induced gene silencing (VIGS) assays in Nicotiana benthamiana (Nb) showed that suppression of several gene families—WRKY transcription factors, chaperones, ethylene pathway components, MAPK [...] Read more.
GmSRC7 is a broad-spectrum antiviral R gene from soybean, but its downstream and functionally related genes remain unclear. Virus-induced gene silencing (VIGS) assays in Nicotiana benthamiana (Nb) showed that suppression of several gene families—WRKY transcription factors, chaperones, ethylene pathway components, MAPK cascade elements, salicylic acid (SA) signaling genes, calcium-dependent protein kinases, nuclear migration proteins, RNA replication-related genes, and immune regulators—consistently weakened GmSRC7-mediated resistance to Soybean Mosaic Virus (SMV) and Tobacco Mosaic Virus (TMV). Targeted silencing of four regulatory genes—NbEDS1, NbARF1, NbSGT1, and NbCOI1—markedly enhanced GmSRC7-mediated resistance to SMV and TMV in our experiments. Silencing the serine/threonine kinase gene NbPBS1 increased GmSRC7-conferred resistance to SMV but did not significantly alter its resistance to TMV. Transient expression assays showed that NbARF1, NbSGT1, and NbCOI1 antagonize GmSRC7-mediated defense against SMV and TMV, whereas NbPBS1 specifically suppresses anti-SMV activity without affecting TMV resistance. Transient overexpression of SA-degrading enzymes (AtS3H, AtS5H, and NahG) significantly reduced GmSRC7-conferred resistance to SMV, indicating that SA is essential for this R protein-mediated defense. Genes were also grouped by immune pathways and function: co-expression of chaperone family genes inhibited GmSRC7 activity against SMV and TMV, while co-expression of WRKY family genes enhanced anti-SMV activity of GmSRC7. Finally, transient silencing of soybean genes GmEDS1, GmSGT1-1, GmSGT1-2, GmJAR1, and GmSGS3 compromised GmSRC7-mediated resistance to SMV. Full article
(This article belongs to the Special Issue Advances in Plant Molecular Biology and Gene Function)
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20 pages, 3202 KB  
Article
Discovery of a Marine Beauveria bassiana Polysaccharide with Antiviral Activity Against Tobacco Mosaic Virus
by Xu Qiu, Lihang Jiao, Jingjing Xue, Guangxin Xu and Xixiang Tang
Mar. Drugs 2026, 24(1), 39; https://doi.org/10.3390/md24010039 - 13 Jan 2026
Cited by 1 | Viewed by 1184
Abstract
Tobacco mosaic virus (TMV) threatens crop yield and quality, while chemical antivirals offer limited efficacy and potential environmental hazards. Marine fungal polysaccharides are promising eco-friendly alternatives due to their biocompatibility and biodegradability. Here, extracellular polysaccharides (EPSs) from the deep-sea fungus Beauveria bassiana T2-2 [...] Read more.
Tobacco mosaic virus (TMV) threatens crop yield and quality, while chemical antivirals offer limited efficacy and potential environmental hazards. Marine fungal polysaccharides are promising eco-friendly alternatives due to their biocompatibility and biodegradability. Here, extracellular polysaccharides (EPSs) from the deep-sea fungus Beauveria bassiana T2-2 was isolated, characterized, and produced under optimized conditions (28 °C, 200 rpm, 9 days, pH 8, inoculum 4%) using an L9 (34) orthogonal medium, yielding 3.42 g/L, which is a 48% increase over unoptimized culture. EPSs were glucose-rich, with a molecular weight of 3.56 × 104 Da, containing 90.05% total sugar, 0.28% protein, 1.15% uronic acid, and 1.18% sulfate. In a Nicotiana benthamiana–TMV model, EPSs alleviated viral symptoms, maintained chlorophyll content, enhanced antioxidant enzymes (SOD, POD, CAT), reduced malondialdehyde, and upregulated defense genes in SA, ET, ROS, and phenylpropanoid pathways. EPSs, alone or combined with Ribavirin, activated multi-pathway antiviral immunity, highlighting its potential as a sustainable plant-protective agent. Full article
(This article belongs to the Special Issue Polysaccharides from Marine Environment)
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19 pages, 2013 KB  
Article
Isobavachalcone Alleviates Plant Photosynthesis Inhibition Caused by Tobacco Mosaic Virus (TMV) Infection in Tobacco
by Lijie Guan, Yidan Wu, Wenli Sun, Mohamad Hesam Shahrajabian and Yuan Gao
Plants 2025, 14(23), 3638; https://doi.org/10.3390/plants14233638 - 28 Nov 2025
Cited by 1 | Viewed by 1047
Abstract
Viral infection affects photosynthesis in plants, significantly reducing crop yield and quality. This study investigated the effects of isobavachalcone (IBC), a natural compound extracted from the plant Psoralea corylifolia L., on photosynthesis in tobacco under tobacco mosaic virus (TMV; species Tobamovirus tabaci, family [...] Read more.
Viral infection affects photosynthesis in plants, significantly reducing crop yield and quality. This study investigated the effects of isobavachalcone (IBC), a natural compound extracted from the plant Psoralea corylifolia L., on photosynthesis in tobacco under tobacco mosaic virus (TMV; species Tobamovirus tabaci, family Virgaviridae) stress. TMV infection significantly reduced the chlorophyll content, Rubisco activity, net photosynthetic rate (Pn), stomatal conductance (Gs), intercellular CO2 concentration (Ci), and transpiration rate (Tr) in tobacco leaves. However, exogenous application of IBC (40 mg/L) effectively alleviated the negative impacts of TMV. Compared with the inoculated control, IBC treatment increased the chlorophyll content by 16.00–100.68%, enhanced Rubisco activity by 3.72–115.84%, and improved Pn, Gs, Ci, and Tr by 155.65–347.65%, 89.43–408.00%, 17.51–56.18%, and 106.76–336.80%, respectively, at 3–9 days post inoculation (dpi). Tandem massed tag-based quantitative proteomics analysis revealed that IBC upregulated the abundance of photosynthesis-related proteins, including those involved in photosystem II, cytochrome b6/f complex, photosystem I, and ATP synthase, under TMV infection. GO and KEGG enrichment analyses further confirmed that IBC enhanced the expression of proteins associated with photosynthesis and energy production pathways. These findings suggest that IBC can mitigate TMV-induced photosynthesis inhibition by increasing photosynthetic pigment content, promoting carbon assimilation, and regulating photosynthesis-related proteins, providing new insights into the molecular mechanism of IBC-mediated plant protection. Full article
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17 pages, 4321 KB  
Article
Xyloglucan Endotransglycosylase/Hydrolase Downregulation Increases Nicotiana benthamiana Tolerance to Tobacco Mosaic Virus Infection
by Natalia M. Ershova, Ekaterina V. Sheshukova, Kamila A. Kamarova, Alfiya R. Alimova, Yana Y. Savchenko, Alexandra A. Antimonova and Tatiana V. Komarova
Int. J. Mol. Sci. 2025, 26(22), 11183; https://doi.org/10.3390/ijms262211183 - 19 Nov 2025
Cited by 2 | Viewed by 1223
Abstract
The biological functions of the multiple members of the xyloglucan endotransglycosylase/hydrolase (XTH) protein family are rather diverse: XTHs are cell wall remodeling enzymes that participate in plant growth and development, are involved in responses to various environmental stresses and interactions with pathogenic and [...] Read more.
The biological functions of the multiple members of the xyloglucan endotransglycosylase/hydrolase (XTH) protein family are rather diverse: XTHs are cell wall remodeling enzymes that participate in plant growth and development, are involved in responses to various environmental stresses and interactions with pathogenic and symbiotic microorganisms. However, XTHs’ role upon viral infection remains poorly understood. Here we identified and characterized Nicotiana benthamiana XTH (NbXTH) which is involved in responses to viral infection. We demonstrated that NbXTH is a positive regulator of intercellular transport. NbXTH suppression leads to the inhibition of tobacco mosaic virus (TMV) local spread, resulting in the increased tolerance of N. benthamiana plants to TMV. Therefore, NbXTH could be regarded as a susceptibility factor. Full article
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19 pages, 3052 KB  
Article
Genome-Wide Variation Profile of the Genus Tobamovirus
by Amany E. Gomaa and Hernan Garcia-Ruiz
Viruses 2025, 17(9), 1284; https://doi.org/10.3390/v17091284 - 22 Sep 2025
Cited by 5 | Viewed by 2963
Abstract
The genus Tobamovirus belongs to the family Virgaviridae, and the genome consists of monopartite, positive, single-strand RNA. Most species contain four open reading frames encoding four essential proteins. Transmission occurs primarily through mechanical contact between plants, and in some cases, via seed [...] Read more.
The genus Tobamovirus belongs to the family Virgaviridae, and the genome consists of monopartite, positive, single-strand RNA. Most species contain four open reading frames encoding four essential proteins. Transmission occurs primarily through mechanical contact between plants, and in some cases, via seed dispersal. Tobamovirus fructirugosum (tomato brown rugose fruit virus, ToBRFV), the most recently described species in the genus, was first reported in 2015. It overcame genetic resistance that had been effective in tomato for sixty years, causing devastating losses in tomato production worldwide, and highlights the importance of understanding Tobamovirus genomic variation and evolution. In this study, we measured and characterized nucleotide variation for the entire genome and for all species in the genus Tobamovirus. Additionally, we measured the selection pressure acting on each open reading frame. Results showed that low nucleotide diversity and negative selection pressure are general features of tobamoviruses, with values that are approximately the same across open reading frames and without hypervariable areas. A comparison of nucleotide diversity between T. fructirugosum and its close relatives, T. tomatotessellati (tomato mosaic virus, ToMV) and T. tabaci (tobacco mosaic virus, TMV), showed low nucleotide diversity in the movement protein region harboring the resistance-breaking mutation. Furthermore, phylogenetic and diversity analyses showed that T. fructirugosum continues to evolve, and geographical distribution and host influence genomic diversity. Full article
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20 pages, 19460 KB  
Article
Suppressing Symptomless Nonhost Resistance of Barley to Tobacco mosaic virus by Short-Term Heat Stress—Role of Superoxide in Resistance
by Lóránt Király, Renáta Bacsó, Réka Albert, Ildikó Schwarczinger, Judit Kolozsváriné Nagy and András Künstler
Plants 2025, 14(17), 2736; https://doi.org/10.3390/plants14172736 - 2 Sep 2025
Cited by 1 | Viewed by 1623
Abstract
Our previous research has demonstrated the role of optimal temperatures and reactive oxygen species (ROS) in maintaining symptomless nonhost resistance (NHR) of barley to powdery mildews. However, the exact functions of temperature and ROS in NHR of plants, including barley, to viral infections [...] Read more.
Our previous research has demonstrated the role of optimal temperatures and reactive oxygen species (ROS) in maintaining symptomless nonhost resistance (NHR) of barley to powdery mildews. However, the exact functions of temperature and ROS in NHR of plants, including barley, to viral infections are not known. Although barley is a nonhost for Tobacco mosaic virus (TMV), this virus can replicate in barley leaves at temperatures of ca. 30 °C. Here we elucidated the influence of short-term heat stress pre-treatments (30 °C, 3 h; heat shock at 49 °C, 20 s) on the symptomless NHR of barley to TMV and the role of the ROS superoxide (O2.−) in maintaining NHR. Heat stress and antioxidant (superoxide dismutase and catalase, SOD + CAT) treatments resulted in 50–100% higher TMV levels, while combined heat shock and SOD + CAT application caused further increases in TMV and appearance of cell and tissue death resembling a hypersensitive response (HR). An early (from 2 h after inoculation) burst of O2.− was essentially absent in TMV-infected barley exposed to short-term heat stress pre-treatments. Expression of barley genes regulating ROS (O2.−) metabolism (HvRBOHF2, HvSOD1) and cell death (HvBI-1) displayed an inverse correlation with TMV levels even at later time points (1–4 days after inoculation), implying a role in symptomless NHR, while increased levels of the antioxidant glutathione marked heat stress-induced suppression of NHR. We demonstrated that short-term heat stress and antioxidant treatments result in compromised NHR of barley to TMV, pointing to the role of optimal temperatures and ROS (O2.−) in symptomless NHR to virus infections. Full article
(This article belongs to the Special Issue The Role of Signaling Molecules in Plant Stress Tolerance)
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11 pages, 2399 KB  
Article
Design, Synthesis, and Biological Activity Studies of Aldisine Derivatives Containing Acylhydrazone Moiety
by Wentao Xu, Kangkang Yang, Mingxing Li, Longqi Li, Fuqiao Xing, Jiayi Li, Yuxiu Liu, Jingjing Zhang, Qingmin Wang and Hongjian Song
Int. J. Mol. Sci. 2025, 26(17), 8308; https://doi.org/10.3390/ijms26178308 - 27 Aug 2025
Cited by 1 | Viewed by 1144
Abstract
Marine natural products have gained increasing interest in drug research and development because of their unique structures, diverse biological activities, and novel mechanisms of action. Using the antiviral alkaloid aldisine as the lead compound and utilizing the hydrogen bond effects common in drug [...] Read more.
Marine natural products have gained increasing interest in drug research and development because of their unique structures, diverse biological activities, and novel mechanisms of action. Using the antiviral alkaloid aldisine as the lead compound and utilizing the hydrogen bond effects common in drug design, novel derivatives containing an acylhydrazone moiety were designed and synthesized. The structures of these derivatives were systematically analyzed using variable-temperature 1H-NMR. Antiviral activity tests showed that most derivatives were active against tobacco mosaic virus (TMV), with some compounds outperforming the commercial antiviral drug ribavirin. Notably, 3-methylphenyl- and 3-pyridyl-substituted acylhydrazones 5-6 and 5-12 displayed activity comparable to ningnanmycin, one of the most effective commercial antiviral agents. Molecular docking results indicated that incorporating the acylhydrazone moiety enhances hydrogen bonding between the molecules and target proteins. Additionally, we evaluated the fungicidal and larvicidal activities of these derivatives. Most exhibited significant larvicidal effects against Mythimna separata and Plutella xylostella, along with broad-spectrum fungicidal activity. Four related compounds (5-11, 5-12, 5-13, and 5-17) exhibited high fungicidal activities, and another four compounds (2-4, 5-6, 5-13, and 5-17) exhibited high larvicidal activities. Full article
(This article belongs to the Section Molecular Pharmacology)
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25 pages, 7099 KB  
Article
Tracking of Tobacco Mosaic Virus in Taxonomically Different Plant Fungi
by Natascia Filomena Barnaba, Lorenza Vaccaro, Rita Milvia De Miccolis Angelini, Roberta Spanò, Franco Nigro and Tiziana Mascia
J. Fungi 2025, 11(9), 619; https://doi.org/10.3390/jof11090619 - 25 Aug 2025
Cited by 1 | Viewed by 2551
Abstract
Plant viruses have been traditionally considered pathogens restricted to plant hosts. However, recent studies have shown that some plant viruses can infect and replicate in filamentous fungi and oomycetes, suggesting that their host range is broader than previously thought, and that their ecological [...] Read more.
Plant viruses have been traditionally considered pathogens restricted to plant hosts. However, recent studies have shown that some plant viruses can infect and replicate in filamentous fungi and oomycetes, suggesting that their host range is broader than previously thought, and that their ecological interactions are more complex. In this study, we investigated the ability of the well-characterized positive-sense RNA plant virus Tobacco mosaic virus (TMV) to replicate in four major phytopathogenic fungi from different taxonomic groups: Botrytis cinerea, Fusarium oxysporum f. sp. lycopersici, Verticillium dahliae, and Monilinia fructicola. Using a recombinant TMV-based vector expressing a green fluorescent protein (TMV-GFP-1056) as reporter, we demonstrated that TMV can enter, replicate, and persist within the mycelia of B. cinerea and V. dahliae—at least through the first subculture. However, it cannot replicate in F. oxysporum f. sp. lycopersici and M. fructicola. RNA interference (RNAi) is a conserved eukaryotic epigenetic mechanism that provides an efficient defence against viruses. We explored the role of RNAi in the interaction between TMV and the mycelia of V. dahliae and B. cinerea. Our results revealed a strong induction of the Dicer-like 1 and Argonaute 1 genes, which are key compounds of the RNA silencing pathway. This RNAi-based response impaired TMV-GFP replication in both fungi. Notably, despite viral replication and RNAi activation, the virulence of V. dahliae and B. cinerea on their respective host plants remained unaffected. These findings reinforce the emerging recognition of cross-kingdom virus transmission and interactions, which likely play a crucial role in pathogen ecology and viral evolution. Understanding these virus–fungus interactions not only sheds light on RNAi interference silencing mechanisms but also suggests that plant viruses like TMV could serve as simple and effective tools for functional genomic studies in fungi, such as in V. dahliae and B. cinerea. Full article
(This article belongs to the Special Issue Plant Pathogenic Sclerotiniaceae)
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