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Keywords = plant-defense molecular mechanisms

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57 pages, 1168 KB  
Review
Antioxidants in Oxidative Stress and Obesity-Associated Diseases: Molecular Mechanisms and Potential Health Implications
by Bee Ling Tan
Biomedicines 2026, 14(9), 2049; https://doi.org/10.3390/biomedicines14092049 - 11 Sep 2026
Abstract
Obesity has become a major global public health concern, with prevalence rates rising dramatically over the past several decades and affecting more than one billion people worldwide. The increasing burden of obesity has been largely driven by sedentary lifestyles and the consumption of [...] Read more.
Obesity has become a major global public health concern, with prevalence rates rising dramatically over the past several decades and affecting more than one billion people worldwide. The increasing burden of obesity has been largely driven by sedentary lifestyles and the consumption of energy-dense, nutrient-poor diets, although its etiology is multifactorial, involving complex interactions among genetic, metabolic, endocrine, and environmental factors. Beyond excess adiposity, obesity is closely associated with numerous chronic diseases, including cardiovascular disease (CVD), type 2 diabetes mellitus (T2DM), hypertension, cancer, and chronic inflammatory disorders. Emerging evidence indicates that oxidative stress plays a pivotal role in the pathogenesis of obesity and its related metabolic complications. Reactive oxygen species (ROS) and reactive nitrogen species (RNS), which are generated during normal cellular metabolism, serve important physiological functions in cell signaling and redox regulation. However, excessive production of these reactive species or impairment of endogenous antioxidant defense systems disrupts redox homeostasis, leading to oxidative damage to lipids, proteins, and nucleic acids. Such alterations contribute to cellular dysfunction, chronic inflammation, and disease progression. In this context, dietary antioxidants have attracted considerable attention due to their ability to neutralize free radicals, inhibit lipid peroxidation, and restore redox balance. Natural antioxidants derived from fruits, vegetables, and other plant-based foods may act individually or synergistically to enhance cellular defense mechanisms against oxidative stress. Furthermore, growing evidence suggests that antioxidant-rich dietary patterns may offer protective effects against obesity-associated metabolic disturbances and chronic diseases. However, clinical benefits of isolated antioxidant supplementation remain inconsistent and appear to depend on dose, bioavailability, baseline redox status, disease stage, and the preservation of physiological redox signaling. Understanding the molecular mechanisms underlying antioxidant-mediated regulation of redox homeostasis may facilitate the development of nutritional strategies for obesity prevention and management, while contributing to the reduction in oxidative stress and obesity-related disease burden and the promotion of long-term health. Full article
(This article belongs to the Special Issue Antioxidants in Treating Obesity and Metabolic Diseases)
24 pages, 15883 KB  
Article
Transcriptomic and Metabolomic Analyses Reveal the Phenylpropanoid Metabolism Regulatory Network in Arabidopsis Response to Colletotrichum higginsianum Infection
by Hong Ye, Qiwen Gao, Yongjian Zou, Chengnv Liao, Bi-Er Lai, Yingying Li, Mingyang Din, Chang Liu, Xiuhua Gu, Jiayi Jiang, Zhuoyun You and Yukun Wang
Life 2026, 16(9), 1505; https://doi.org/10.3390/life16091505 - 9 Sep 2026
Viewed by 159
Abstract
Colletotrichum higginsianum (Ch) is a typical hemibiotrophic ascomycetous fungus. The diseases it causes often lead to considerable economic losses in global cruciferous crop production. However, current knowledge is still insufficient for us to gain a deeper understanding of how host plants [...] Read more.
Colletotrichum higginsianum (Ch) is a typical hemibiotrophic ascomycetous fungus. The diseases it causes often lead to considerable economic losses in global cruciferous crop production. However, current knowledge is still insufficient for us to gain a deeper understanding of how host plants respond at the transcriptional level during Ch infection. Herein, we performed transcriptomic and metabolic assays between Mock and Ch- infected samples. The results showed that Ch infection significantly inhibited the shoot fresh weight and primary root length of host plants. Furthermore, gene ontology (GO) terms and Kyoto Encyclopedia of Genes and Genomes (KEGG) pathways related to phenylpropanoid metabolism were highly enriched. Defense hormone salicylic acid (SA) and three metabolites belonging to the phenylpropanoid metabolism pathway were identified. Meanwhile, we screened 5 related enzyme-encoding genes and 78 transcription factors (TFs). Five WRKY, three MYB, and two NAC TFs showed significant expression changes and high correlation with enzyme genes. Our results enrich regulatory networks in crucifier pathogen responses. This work provides potential molecular candidates to support subsequent studies on the mechanisms underlying Ch resistance. Full article
(This article belongs to the Special Issue Advanced Research in Plant–Pathogen Interactions)
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23 pages, 3203 KB  
Systematic Review
Harnessing Silicon-Based Growing Media for Sustainable Heavy Metal Remediation in Agricultural and Urban Green Systems: A Systematic Review
by Mehak Shehzad, Adnan Younis, Samreen Nazeer and Muhammad Zubair Akram
Environments 2026, 13(9), 493; https://doi.org/10.3390/environments13090493 - 2 Sep 2026
Viewed by 409
Abstract
Heavy metal contamination of agricultural soils and urban green spaces has become a major environmental concern, threatening ecosystem functioning, food safety, and sustainable land management. Silicon-based growing media have emerged as an environmentally friendly approach for reducing metal mobility while enhancing plant establishment [...] Read more.
Heavy metal contamination of agricultural soils and urban green spaces has become a major environmental concern, threatening ecosystem functioning, food safety, and sustainable land management. Silicon-based growing media have emerged as an environmentally friendly approach for reducing metal mobility while enhancing plant establishment in contaminated environments. Despite growing research interest, a comprehensive evaluation of the mechanisms, effectiveness, and practical applications of silicon-amended growing media across diverse plant systems remains lacking. This systematic review addresses this gap by synthesizing current evidence following the PRISMA 2020 framework. A systematic search of Web of Science, Scopus, PubMed, ResearchGate and Google Scholar identified 247 publications published between 2010 and 2025, of which 32 peer-reviewed studies met the predefined inclusion criteria for qualitative analysis. The reviewed literature demonstrates that silicon incorporation into growing media improves substrate functionality by modifying physicochemical properties, immobilizing heavy metals, regulating metal transport within plants, strengthening antioxidant and osmo-protective defense systems, preserving photosynthetic activity, and improving nutrient acquisition and water-use efficiency. Furthermore, silicon influences molecular signaling pathways and promotes beneficial rhizosphere interactions that collectively enhance plant resilience under metal stress. Among the evaluated materials, silicon nanoparticles consistently exhibited greater remediation efficiency than conventional silicon sources because of their higher surface reactivity and improved bioavailability. Overall, silicon-based substrate engineering represents a multifunctional and sustainable strategy for mitigating heavy metal contamination while improving the performance of agricultural crops and urban vegetation. Future research should focus on validating these findings under long-term field conditions, optimizing silicon formulations for different substrate types and contamination scenarios, evaluating environmental safety, and integrating silicon-based technologies into climate-resilient agricultural practices and urban green infrastructure. Full article
(This article belongs to the Special Issue Advances in Heavy Metal Remediation Technologies)
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22 pages, 20612 KB  
Article
Foliar and Root Dynamic Analyses Reveal a Coordinated Defense Regulatory Network Against Aeolesthes induta Infestation in Tea Plants
by Chengcong Lu, Jialin Zhang, Ke Chen, Xuanyi Zhang, Xi Du, Fajie Feng, Pumo Cai and Yongcong Hong
Insects 2026, 17(9), 911; https://doi.org/10.3390/insects17090911 - 1 Sep 2026
Viewed by 242
Abstract
The stem-boring herbivore Aeolesthes induta severely threatens tea (Camellia sinensis) production, yet the systemic defense mechanisms of tea plants remain largely elusive. The unique age-dependent infestation pattern of A. induta—with minimal damage to young tea plants but infestation rates reaching [...] Read more.
The stem-boring herbivore Aeolesthes induta severely threatens tea (Camellia sinensis) production, yet the systemic defense mechanisms of tea plants remain largely elusive. The unique age-dependent infestation pattern of A. induta—with minimal damage to young tea plants but infestation rates reaching 20% in 30-year-old trees and nearly 100% in ancient tea trees—necessitated field sampling from naturally infested old tea plantations rather than controlled laboratory conditions. By integrating rhizosphere microbiomics, transcriptomics, and multi-omics modeling, this study characterized the defensive regulatory networks of 30-year-old Shuixian tea cultivars under A. induta infestation. Rhizosphere microbiome analysis revealed that herbivore attack significantly reshaped the microbial community structure, reducing bacterial diversity and simplifying co-occurrence network complexity. Transcriptomic and metabolomic profiling demonstrated a precise source–sink defense allocation between host tissues. In leaves acting as the photosynthetic source, metabolic reprogramming was dominated by the systematic accumulation of soluble sugars and sugar acids for systemic energy reallocation. Concurrently, the roots acting as the metabolic sink vigorously activated the jasmonic acid (JA) signaling cascade and upregulated genes enriched in phenylpropanoid biosynthesis and alpha-linolenic acid metabolism. This molecular activation drove the substantial de novo synthesis of defensive phenolic acids, while downregulating growth-related flavonoids. Integrated network modeling further highlighted the phenylpropanoid pathway as the central regulatory node coupling transcript–metabolite fluctuations. This study constructs an integrated soil microbiome–root–leaf defense network, providing novel mechanistic insights into plant–borer interactions and a valuable foundation for future insect-resistant breeding programs in the tea industry. Full article
(This article belongs to the Special Issue Tea Pest Research and Control)
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32 pages, 1417 KB  
Review
Cucurbitacins in Plant–Insect Interactions: Biosynthesis, Regulation, Ecological Functions, and Prospects for Crop Protection
by Qi Zhang, Yu-e Bai and Aoga Li
Plants 2026, 15(17), 2660; https://doi.org/10.3390/plants15172660 - 30 Aug 2026
Viewed by 303
Abstract
Cucurbitacins are highly oxygenated tetracyclic triterpenoids characterized by intense bitterness, substantial structural diversity, and important consequences for plant–herbivore interactions. Although best known from Cucurbitaceae, cucurbitacins and related cucurbitane-type metabolites also occur in phylogenetically distant herbaceous and woody plants. Genetic and biochemical studies have [...] Read more.
Cucurbitacins are highly oxygenated tetracyclic triterpenoids characterized by intense bitterness, substantial structural diversity, and important consequences for plant–herbivore interactions. Although best known from Cucurbitaceae, cucurbitacins and related cucurbitane-type metabolites also occur in phylogenetically distant herbaceous and woody plants. Genetic and biochemical studies have validated several core biosynthetic steps, including cucurbitadienol formation by oxidosqualene cyclases and subsequent modification by cytochrome P450 monooxygenases, acyltransferases, and glycosyltransferases. Tissue-preferential basic helix–loop–helix transcription factors constitute the best-characterized regulatory layer, whereas the evidence supporting accessory regulators, transporters, and environmental responses varies from functional validation to transcriptomic or genomic prediction. From the plant perspective, cucurbitacins deter feeding or impair performance in many generalist and non-adapted herbivores. By contrast, their use as host-recognition cues and feeding stimulants by specialist diabroticite beetles reflects evolved herbivore adaptations involving perception, tolerance, metabolism, or sequestration rather than a second defensive function of the plant trait. Herbivore-induced cucurbitacin accumulation has been demonstrated in particular systems, although its regulatory mechanisms and ecological generality remain unresolved. Unlike previous reviews centered primarily on cucurbitacin chemistry, pharmacological activity, or individual biosynthetic pathways, this review integrates evidence-graded pathway reconstruction and molecular regulation with taxonomic distribution, insect adaptation, domestication, and agroecological consequences. Mechanistically, this review traces how scaffold formation, oxidative tailoring, conjugation, tissue-specific regulation, and transport give rise to contrasting ecological outcomes through herbivore-specific perception, tolerance, metabolism, and sequestration. We conclude that uniformly increasing or eliminating cucurbitacins is unlikely to provide broadly effective crop resistance because either direction may favor a different herbivore group. Future priorities include functional validation of candidate genes, spatially resolved metabolite analysis, comparative investigation of non-cucurbit lineages, and field evaluation involving generalist and specialist herbivores, crop quality, and non-target organisms. These advances will support context-specific fruit-quality improvement, behavioral pest control, and integrated pest management strategies rather than cucurbitacin manipulation as a stand-alone resistance approach. Full article
(This article belongs to the Section Plant Physiology and Metabolism)
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19 pages, 12124 KB  
Article
Genome-Wide Identification and Bioinformatics Analysis of Thaumatin-like Proteins in Aegiceras corniculatum
by Jinchang Xie, Jingwei Pang, Huishao Shi, Xuechao Chen, Junjian Wang, Li Xu and Wei Zhang
Genes 2026, 17(9), 1023; https://doi.org/10.3390/genes17091023 - 27 Aug 2026
Viewed by 262
Abstract
Background: The mangrove ecosystem serves as a vital coastal ecotone, providing essential ecological services, such as water purification, shoreline protection, and biodiversity maintenance. Fungal pathogens threaten mangrove health and contribute to ecosystem degradation, but the molecular mechanisms underlying disease resistance in mangroves remain [...] Read more.
Background: The mangrove ecosystem serves as a vital coastal ecotone, providing essential ecological services, such as water purification, shoreline protection, and biodiversity maintenance. Fungal pathogens threaten mangrove health and contribute to ecosystem degradation, but the molecular mechanisms underlying disease resistance in mangroves remain poorly explored. Introdustion: Thaumatin-like proteins (TLPs), belonging to the pathogenesis-related-5 (PR-5) family, play a crucial role in antifungal defense in plants. Method and results: In this study, we identified 23 TLP family members in the mangrove Aegiceras corniculatum. The genes encoding TLP family members were unevenly distributed on chromosomes. Collinearity analyses showed that TLP family members in A. corniculatum underwent multiple gene duplication events, and Ka/Ks calculations revealed that these duplicated genes were predominantly under purifying selection. Among the 23 TLPs, AcTLP19 was significantly upregulated after Botrytis cinerea infection. Subcellular localization prediction and experiments revealed the extracellular localization of AcTLP19. Conclusions: Heterologous expression and antibacterial tests showed that recombinant AcTLP19 had no direct antifungal activity against B. cinerea or Fusarium oxysporum under the tested conditions, leaving open the possibility that it contributes to mangrove defense through indirect mechanisms, or that its antifungal activity was not captured under the specific assay conditions. This study advances our knowledge of mangrove stress responses and may contribute to future conservation strategies. Full article
(This article belongs to the Section Plant Genetics and Genomics)
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27 pages, 4848 KB  
Review
Non-Thermal Plasma-Mediated Redox Signaling and Microbiome Interactions for Abiotic Stress Adaptation: Molecular Insights and Future Prospects for Sustainable Agriculture
by Rida Javed, Guangyao Ji, Qi Sun and Feng Huang
Int. J. Mol. Sci. 2026, 27(17), 7656; https://doi.org/10.3390/ijms27177656 - 26 Aug 2026
Viewed by 229
Abstract
Crop production is continually exposed to a wide range of abiotic stresses that negatively affect growth and yield, posing a severe threat to global food security. Plant growth-promoting bacteria (PGPB) promote nutrient assimilation, activate antioxidant enzymes, and stimulate phytohormone production to mitigate abiotic [...] Read more.
Crop production is continually exposed to a wide range of abiotic stresses that negatively affect growth and yield, posing a severe threat to global food security. Plant growth-promoting bacteria (PGPB) promote nutrient assimilation, activate antioxidant enzymes, and stimulate phytohormone production to mitigate abiotic stress. However, the effective application of PGPB in the field depends on host colonization, soil specificity, and susceptibility to competitive microbial communities. Recently, non-thermal plasma (NTP) has emerged as a revolutionary tool for sustainable agriculture, making it a priority to develop efficient, low-cost, and eco-friendly strategies to enhance seed vitality and manage abiotic stress. Plasma-generated reactive oxygen and nitrogen species (RONS) have been shown to mediate intracellular redox homeostasis and the antioxidant defense signaling network. Furthermore, plasma stimulates MAPK cascades and stress-responsive genes such as LEA1, SnRK2, P5C, and the SOS pathway, ionic balance, and membrane stability, ultimately supporting plant stress adaptation to drought, salinity, and heavy metals. Plasma-induced RONS signaling activates PGPB functional traits such as root colonization, biofilm formation, nutrient mobilization, and plant growth-promoting activities. However, the molecular mechanisms underlying NTP-PGPB microbial multiple stress adaptation and the long-term ecological stability and biosafety of microbial communities remain inadequately resolved. Consequently, future integration of multi-omics approaches, synthetic microbial communities, and field-scale validation is required to explore the mechanistic advances of plasma-modulated microbiome interactions to enable agricultural applications. Full article
(This article belongs to the Special Issue Abiotic Stress in Plants: Physiological and Molecular Responses)
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19 pages, 12335 KB  
Article
Combined Analysis of Metabolome and Transcriptome Reveals Bauhinia variegata-Specific Floral Scent Profile and Key Aroma Components
by Zhijiao Song, Guixiang Li, Wenhua Chen, Qing Liu and Yantong Teng
Metabolites 2026, 16(9), 611; https://doi.org/10.3390/metabo16090611 - 26 Aug 2026
Viewed by 325
Abstract
Background: Bauhiniavariegata is a plant with considerable application potential owing to its combined ornamental, edible, aromatic, and medicinal values. However, research on this species remains limited and superficial both domestically and internationally, and systematic investigation of floral volatile organic compounds (VOCs) is [...] Read more.
Background: Bauhiniavariegata is a plant with considerable application potential owing to its combined ornamental, edible, aromatic, and medicinal values. However, research on this species remains limited and superficial both domestically and internationally, and systematic investigation of floral volatile organic compounds (VOCs) is still lacking. Methods: Through integrated metabolome and transcriptome analyses. Results: This study first comprehensively characterizes the VOC composition, floral scent profile, key aroma components, and the molecular mechanisms underlying VOC variation during anthesis in floral buds and flowers of B. variegata. A total of 1214 volatile compounds were identified across buds and flowers, including 239 odor-active compounds and 35 differential odor-active compounds. Flavor statistics revealed that the floral scent profile of B. variegata is dominated by fruity, sweet, floral, green, woody, herbal, citrus, phenol, fresh, and spicy notes. Compared to floral buds, most differential odor-active compounds were markedly upregulated in flowers, including key floral aroma constituents such as phenylacetaldehyde, rose oxide, (Z)-β-ocimene, 2-methylbenzaldehyde, and melon heptenal. Conversely, (R)-(+)-citronellal, which possesses defensive functions, and the bitter-tasting compound 1-methyl-4-nitro-benzene were significantly downregulated in flowers, reflecting a shift from a defense-oriented mode at the bud stage to an attraction-oriented mode at anthesis. Upregulation of phenylalanine/histidine ammonia-lyase, acyl-CoA synthetase, and squalene synthetase genes and downregulation of copper amine oxidase, O-methyltransferase, and aldo–keto reductase genes synergistically promoted accumulation of floral aroma compounds such as phenylacetaldehyde and facilitated the floral transition. Conclusions: This study provides important data support for understanding the ecological interactions between B. variegata floral scent and its pollinators, as well as the molecular mechanisms governing floral scent formation. Furthermore, it contributes to the application of B. variegata in landscaping, edible flower utilization, and fragrance development. Full article
(This article belongs to the Special Issue LC-MS/MS Analysis for Plant Secondary Metabolites, 2nd Edition)
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22 pages, 8976 KB  
Article
Habitat-Adapted Fungal Symbionts Promote Salt Stress Tolerance Through Distinct Root Mechanisms and Shared Shoot Regulatory Networks in Arabidopsis thaliana
by Silvia Martínez-Fenoll, Adrián González Ortega-Villaizán, Estefanía Rodríguez-Dobreva, Luis Morales-Quintana, Patricio Ramos, Jesús Vicente-Carbajosa, Rosario Haro, Begoña Benito and Stephan Pollmann
Int. J. Mol. Sci. 2026, 27(17), 7590; https://doi.org/10.3390/ijms27177590 - 25 Aug 2026
Viewed by 293
Abstract
Salinity is a major constraint to crop productivity. Beneficial plant–fungus interactions represent a promising strategy to enhance stress resilience. Here, we investigated fungal endophytes isolated from the roots of Oryza sativa cultivated in saline-prone marshlands of the Guadalquivir River, Spain. From a collection [...] Read more.
Salinity is a major constraint to crop productivity. Beneficial plant–fungus interactions represent a promising strategy to enhance stress resilience. Here, we investigated fungal endophytes isolated from the roots of Oryza sativa cultivated in saline-prone marshlands of the Guadalquivir River, Spain. From a collection of 38 isolates, five salt-tolerant strains exhibiting plant growth-promoting activity were identified, including a previously uncharacterized Reticulascus sp. strain S5. Co-cultivation assays with the non-native host plant Arabidopsis thaliana demonstrated that S5 increased the root and shoot biomass under salt stress. To elucidate the underlying molecular mechanisms, a comprehensive RNA-Seq analysis of the roots and shoots under control and saline conditions was performed. Fungal colonization induced pronounced transcriptomic changes, particularly in the shoots, including rewiring of the auxin- and abscisic acid-related pathways and the induction of genes associated with cell wall remodeling. Concurrently, defense-related processes, including glucosinolate biosynthesis and ethylene signaling, were broadly repressed, suggesting attenuated stress perception in colonized plants. In the roots, S5 inoculation suppressed the expression of genes involved in root hair development and cell wall organization, indicating a fungus-driven reconfiguration of root development. Moreover, comparative analysis with Fusarium sp. K-23, a fungus that has previously been demonstrated to promote plant growth under salinity stress, revealed distinct root-associated mechanisms but convergence on a shared regulatory module in shoots involving ABA-responsive transcription factors and osmotic stress regulators. Collectively, our findings demonstrate that Reticulascus sp. S5 enhances plant salt stress tolerance through the coordinated transcriptional reprogramming of growth, hormone signaling, and stress responses, highlighting a possible potential of habitat-adapted endophytes for sustainable crop improvement. Full article
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29 pages, 1826 KB  
Review
Brassinosteroids as Central Regulators of Plant Growth, Stress Tolerance, and Agricultural Resilience
by Rahmatullah Jan, Shahzad Iqbal, Sajad Ali and Kyung-Min Kim
Plants 2026, 15(17), 2582; https://doi.org/10.3390/plants15172582 - 25 Aug 2026
Viewed by 417
Abstract
Brassinosteroids (BRs) are essential steroidal phytohormones that regulate plant growth, development, and responses to environmental stresses. Recent studies have demonstrated the important roles of BRs in enhancing plant tolerance to abiotic stresses, including drought, salinity, temperature extremes, heavy metal toxicity, and oxidative stress, [...] Read more.
Brassinosteroids (BRs) are essential steroidal phytohormones that regulate plant growth, development, and responses to environmental stresses. Recent studies have demonstrated the important roles of BRs in enhancing plant tolerance to abiotic stresses, including drought, salinity, temperature extremes, heavy metal toxicity, and oxidative stress, as well as biotic stresses caused by pathogens and herbivores. This review summarizes current advances in BR biosynthesis, metabolism, transport, and signaling pathways, focusing on key components that mediate stress adaptation. We discuss the physiological and molecular mechanisms through which BRs improve stress tolerance, including regulation of antioxidant defense, ion homeostasis, osmotic adjustment, and stress-responsive gene expression. Particular attention is given to the extensive cross talk between BRs and other phytohormones, such as abscisic acid, jasmonic acid, salicylic acid, ethylene, auxin, and gibberellins, which enables plants to balance growth and defense under adverse conditions. Furthermore, we highlighted the potential applications of BRs in crop improvement through exogenous treatments, genetic engineering, and genome-editing approaches. However, the effectiveness of BR-based strategies is highly dependent on crop species, developmental stage, stress type, BR concentration, application method, and environmental conditions. In addition, excessive BR accumulation or application may result in undesirable growth responses, and further multi-location field validation is required before widespread agricultural implementation. Finally, we discuss emerging research trends, current knowledge gaps, and future perspectives for exploring BR signaling to develop climate-resilient crops. Overall, BRs represent promising targets for improving crop stress resilience; however, optimizing BR-mediated strategies and validating their long-term performance under diverse field conditions will be essential for their successful application in sustainable agriculture. Full article
(This article belongs to the Section Plant Response to Abiotic Stress and Climate Change)
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16 pages, 3191 KB  
Article
BBTV Nuclear Shuttle Protein Mediates Banana Ubiquitination Pathway Dysregulation
by Xiaoyan Feng, Muhammad Zeeshan Hyder, Rui Meng, Huixiang Yin, Shuli Xian, Jianhua Wang, Yinxue Li, Xuejun Li, Zhixin Liu and Naitong Yu
Plants 2026, 15(17), 2571; https://doi.org/10.3390/plants15172571 - 24 Aug 2026
Viewed by 249
Abstract
Banana bunchy top virus (BBTV) is a devastating pathogen threatening global banana production. The plant ubiquitin–proteasome system (UPS) governs immune signaling and is frequently subverted by invading viruses, yet the molecular mechanism through which BBTV interferes with host UPS remains unclear. Here, we [...] Read more.
Banana bunchy top virus (BBTV) is a devastating pathogen threatening global banana production. The plant ubiquitin–proteasome system (UPS) governs immune signaling and is frequently subverted by invading viruses, yet the molecular mechanism through which BBTV interferes with host UPS remains unclear. Here, we show that BBTV nuclear shuttle protein (NSP) serves as the core viral effector to disrupt banana ubiquitination homeostasis. RT-qPCR time-series assays confirmed that BBTV infection dynamically remodels the transcription of eight phylogenetically divergent RING-type E3 ubiquitin ligases: four subfamily I E3-SIS3 paralogs and E3-HIP1 are significantly upregulated at 14 dpi and 21 dpi, while E3-BOI and E3-RHA1B are suppressed at 21 dpi. Transient expression screening of all six BBTV-encoded proteins verified that only NSP reproduces the UPS perturbation signature triggered by viral infection. Cross-species sequence alignment identified an evolutionarily conserved FNGSF motif within NSP orthologs of all Nanoviridae members. Alanine substitution mutagenesis (NSPAAAAA) completely abolished NSP’s capacity to alter E3 ligase transcription. Western blot assays further validated that wild-type NSP induces massive accumulation of ubiquitinated host proteins, whereas the FNGSF-deficient mutant does not disrupt cellular ubiquitination. Phylogenetic analysis revealed that NSP-targeted E3 ligases share low overall sequence similarity but retain conserved catalytic RING domains, indicating that NSP exerts broad-spectrum regulatory effects on host UPS via the FNGSF motif. Collectively, this study reveals a novel pathogenic strategy whereby BBTV NSP recruits diverse host RING E3 ligases via its conserved FNGSF motif to dysregulate plant ubiquitination and elicit plant pathogenicity. Our findings provide two promising targets—the NSP FNGSF motif and defense-associated E3-SIS3 ligases—for developing antiviral agents and breeding BBTV-resistant banana germplasm. Full article
(This article belongs to the Special Issue Virus-Induced Diseases in Horticultural Plants)
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15 pages, 2661 KB  
Article
Transcriptome Analysis Reveals the Role of OlMYB35 in Drought Response of Opisthopappus longilobus
by Ruyue Jing, Yaru Zhang, Xiaojin Su, Weimin Fang, Wei Chen, Jiangshuo Su and Jiafu Jiang
Horticulturae 2026, 12(9), 1051; https://doi.org/10.3390/horticulturae12091051 - 23 Aug 2026
Viewed by 321
Abstract
Cliff habitats are characterized by limited and heterogeneous water availability, requiring plants to develop adaptive strategies to cope with drought stress. Opisthopappus longilobus, a cliff-endemic Asteraceae species restricted to the Taihang Mountains of northern China, has evolved under persistent water-limited conditions and [...] Read more.
Cliff habitats are characterized by limited and heterogeneous water availability, requiring plants to develop adaptive strategies to cope with drought stress. Opisthopappus longilobus, a cliff-endemic Asteraceae species restricted to the Taihang Mountains of northern China, has evolved under persistent water-limited conditions and represents a valuable model for investigating the molecular mechanisms underlying drought adaptation. However, the transcriptional regulatory networks involved in its drought response remain largely unexplored. In this study, we performed RNA sequencing of O. longilobus leaves under control and drought conditions to investigate drought-responsive regulatory networks. Six RNA-seq libraries were generated, and a total of 5260 differentially expressed genes (DEGs) were identified in response to drought stress. Gene Ontology (GO) and Kyoto Encyclopedia of Genes and Genomes (KEGG) enrichment analyses revealed that these DEGs were mainly associated with phytohormone signal transduction, stress-responsive regulation, defense responses, metabolic reprogramming, and transcriptional regulation. Notably, multiple transcription factor families, including MYB, ERF, and ABF, were enriched among drought-responsive genes, suggesting their involvement in drought adaptation. Furthermore, quantitative RT-PCR was used to validate the RNA-seq results. Among the drought-responsive transcription factors, an R2R3-MYB transcription factor, OlMYB35, was identified as a candidate regulator and was further demonstrated to play a positive role in drought response through transient transformation assays. Taken together, this study provides new insights into drought-responsive regulatory mechanisms in O. longilobus and identifies OlMYB35 as a promising candidate gene for further functional validation and potential application in stress-resilient chrysanthemum breeding. Full article
(This article belongs to the Special Issue Abiotic Stress Tolerance and Responsiveness in Horticultural Crops)
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23 pages, 9791 KB  
Article
Combined Transcriptional and Metabolic Analysis of the Differences in Salt Tolerance Responses of Tillers in Different Rice Varieties
by Jinji Tu, Yixi Dai, Xiao Wang, Wenkang Huang, Rui Deng, Ying Liu, Dianfeng Zheng and Yingbin Xue
Stresses 2026, 6(3), 57; https://doi.org/10.3390/stresses6030057 - 18 Aug 2026
Viewed by 210
Abstract
Soil salinization stands out as a major factor contributing to the shrinkage of arable land. This study explored the salt tolerance mechanism of tillers in CMG and 9311 by evaluating morphophysiological, transcriptomic, and metabolomic characteristics under 0.3% NaCl stress. The activities of SOD, [...] Read more.
Soil salinization stands out as a major factor contributing to the shrinkage of arable land. This study explored the salt tolerance mechanism of tillers in CMG and 9311 by evaluating morphophysiological, transcriptomic, and metabolomic characteristics under 0.3% NaCl stress. The activities of SOD, POD, and APX in the tiller nodes of the salt-tolerant variety CMG were higher than those of 9311, while the levels of MDA and hydrogen peroxide in the tiller nodes of CMG were relatively low. Both varieties responded to salt stress mainly by activating pathways such as amino acid metabolism (alanine, aspartic acid, glutamic acid metabolism, and arginine biosynthesis), amino acid acyl-trNA biosynthesis, oxidative phosphorylation, and phenylpropanin biosynthesis. The varieties differed in that CMG tillering nodes also have unique pathways of “glycerophospholipid metabolism” (related to membrane lipid remodeling) and “biosynthesis of the cuticle, suppositories and waxes”, which can effectively reduce water loss and prevent sodium ions from entering. In addition, CMG can regulate more plant hormone signaling pathways to coordinate the expression and metabolic activities of downstream defense genes, such as abscisic acid (ABA) and jasmonic acid (JA), and other hormone signals. After salt stress, the CMG tiller nodes tend to strengthen themselves, enabling them to resist stress and reduce Na+ toxicity, while the 9311 tiller nodes, under the condition of activating basal metabolism, transfer to the leaves to enhance photosynthetic efficiency and resist stress. Through comprehensive screening and analysis of the genes and metabolites of CMG and 9311 tillers under salt stress, the molecular mechanisms and metabolic pathway dynamics involved in their salt stress response were identified, thus providing a new perspective for in-depth research on rice salt tolerance mechanisms. Full article
(This article belongs to the Section Plant and Photoautotrophic Stresses)
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22 pages, 11770 KB  
Article
Welan Gum, a Bacterial Polysaccharide, Promotes Maize Seedling Growth Through TOR and MAPK Signaling Pathways
by Yulin Fu, Haoran Chen, Shuwen Wang, Wenhui Han, Lin Shen, Wenhui Ma, Xiaoxiao Gao, Wudeng Wang and Fang Yu
Gels 2026, 12(8), 724; https://doi.org/10.3390/gels12080724 - 14 Aug 2026
Viewed by 277
Abstract
Welan gum, a high-molecular-weight exopolysaccharide from Sphingomonas sp., exhibits exceptional rheological stability and robust hydrogel properties, emerging as a highly promising agricultural biomaterial. In this study, we show that the application of welan gum promotes maize seedling growth by enhancing nitrogen use efficiency [...] Read more.
Welan gum, a high-molecular-weight exopolysaccharide from Sphingomonas sp., exhibits exceptional rheological stability and robust hydrogel properties, emerging as a highly promising agricultural biomaterial. In this study, we show that the application of welan gum promotes maize seedling growth by enhancing nitrogen use efficiency via the coordinated transcriptional reprogramming of nitrogen regulators and transporters. Mechanistically, welan gum activates the TOR pathway and the MAPK cascade, leading to the phosphorylation of ZmS6K and the terminal MAPK ZmMPK3-1. Notably, TOR inhibition reduces ZmMPK3-1 phosphorylation, demonstrating that TOR activity is indispensable for MAPK activation. Furthermore, the TOR components ZmTOR and ZmLST8 physically interact with ZmMPK3-1, and ZmLST8 independently enhances ZmMPK3-1 kinase activity, revealing a multilayered regulatory mechanism triggered by welan gum. In addition, welan gum upregulates MPK3-targeted defense genes, effectively reconciling the plant growth–defense trade-off. Elucidating this TOR–MAPK crosstalk provides the mechanistic basis for translating welan gum into sustainable gel-based biofertilizers. Collectively, this study uncovers a cooperative signaling network that underpins welan gum-mediated growth promotion, establishing the strong potential of PGPR-derived polysaccharide hydrogels as sustainable, functional biofertilizers for modern agriculture. Full article
(This article belongs to the Special Issue Gels in Agriculture and Environment: Prospects and Challenges)
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Article
Exogenous N-Acetyl-L-cysteine Improves Soybean Saline–Alkali Tolerance by Enhancing the hGSH Pathway to Alleviate Oxidative Damage
by Suyu Chen, Wei Chen, Xin Li, Wenshuo Zhou, Ran Sun, Lingyu Zhou, Yuxian Zhang and Qiang Zhao
Plants 2026, 15(16), 2445; https://doi.org/10.3390/plants15162445 - 11 Aug 2026
Viewed by 503
Abstract
Soil salinization and alkalization severely threaten global agricultural sustainability. Although N-acetylcysteine (NAC) is well known as an antioxidant in animal research, its effects on plant salt–alkali tolerance and the underlying mechanisms remain unclear. This study investigated the regulatory effects of foliar-sprayed NAC on [...] Read more.
Soil salinization and alkalization severely threaten global agricultural sustainability. Although N-acetylcysteine (NAC) is well known as an antioxidant in animal research, its effects on plant salt–alkali tolerance and the underlying mechanisms remain unclear. This study investigated the regulatory effects of foliar-sprayed NAC on two soybean (Glycine max) cultivars—salt-tolerant HF50 and salt-sensitive HN95—under saline–alkali stress. Exogenous NAC alleviated seedling growth inhibition by supplying cysteine, which elevated glutamate–cysteine ligase (GCL) activity and promoted homoglutathione (hGSH) accumulation. It further strengthened the ascorbic acid (AsA)–glutathione/homoglutathione ((h)GSH) cycle and elevated antioxidant enzyme activities, thereby relieving oxidative injury, while also activating DNA repair pathways to preserve genomic stability and protecting chloroplast and mitochondrial integrity. Notably, distinct genotype- and tissue-specific responses to NAC were detected. HN95 relied primarily on root antioxidant defenses in a strongly concentration-dependent manner, whereas HF50 coordinated antioxidant metabolism and DNA repair more effectively, showing consistent responses to NAC concentrations. These findings elucidate the coordinated physiological and molecular mechanisms by which exogenous NAC mitigates saline–alkali damage in soybean, providing a theoretical foundation for using NAC to enhance crop stress resilience and develop sustainable cultivation techniques for saline–alkali soils. Full article
(This article belongs to the Section Plant Response to Abiotic Stress and Climate Change)
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