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Search Results (517)

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Keywords = seed priming

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15 pages, 690 KB  
Review
From Waste to Growth: Utilizing Fruit and Vegetable By-Products in Seed Priming Treatments
by Monika Vidak, Dunja Blažević, Tomislav Javornik and Klaudija Carović-Stanko
Agriculture 2026, 16(9), 978; https://doi.org/10.3390/agriculture16090978 - 29 Apr 2026
Viewed by 13
Abstract
The increasing volume of plant waste generated by the agro-food industry presents significant environmental and economic challenges. This review synthesizes peer-reviewed literature on the valorization of fruit and vegetable by-products as seed priming agents, focusing on extraction approaches, bioactive compounds, physiological mechanisms, and [...] Read more.
The increasing volume of plant waste generated by the agro-food industry presents significant environmental and economic challenges. This review synthesizes peer-reviewed literature on the valorization of fruit and vegetable by-products as seed priming agents, focusing on extraction approaches, bioactive compounds, physiological mechanisms, and practical limitations. Seed priming with plant extracts derived from agro-food by-products has emerged as a sustainable approach to enhance seed germination, seedling vigour, and tolerance to abiotic stresses. Recent findings on the composition of bioactive compounds in plant waste, extraction techniques, and the physiological and biochemical effects of these extracts on seeds and seedlings are reviewed. Phenolics, flavonoids, and phytohormones present in these extracts activate antioxidant enzymes and promote secondary metabolite accumulation, mitigating oxidative damage and improving seedling performance. Critical analysis highlights the potential of plant-waste-based extracts for sustainable agriculture and identifies research gaps to optimize their practical application. Full article
52 pages, 2574 KB  
Review
Nanoparticle-Induced Cross-Tolerance: A Review of Mechanisms for Concurrent Biotic and Abiotic Stress Mitigation in Crops
by Mukhtar Iderawumi Abdulraheem, Iram Naz, Marissa Pérez-Alvarez, Jiandong Hu, Gregorio Cadenas-Pliego and Olaniyi Amos Fawole
Plants 2026, 15(9), 1334; https://doi.org/10.3390/plants15091334 - 27 Apr 2026
Viewed by 361
Abstract
Plants in agricultural systems rarely face single stressors; instead, they encounter concurrent biotic (pathogen, pests) and abiotic (drought, salinity, heavy metals) stresses that causes severely reduce crop yields and endanger food security. The traditional methods of breeding, genetic engineering, and agrochemicals tend to [...] Read more.
Plants in agricultural systems rarely face single stressors; instead, they encounter concurrent biotic (pathogen, pests) and abiotic (drought, salinity, heavy metals) stresses that causes severely reduce crop yields and endanger food security. The traditional methods of breeding, genetic engineering, and agrochemicals tend to target individual stresses and still do not suffice in the complex field conditions. Compared to these approaches, nanotechnology offers distinct advantages: nanoparticles (NPs) can be applied as foliar sprays or seed treatments without lengthy breeding cycles or regulatory hurdles associated with genetically modified organisms. However, nanotechnology is not inherently “better” but rather complementary to crop engineering; each approach has specific strengths. Breeding and genetic engineering provide heritable, long-term solutions, while nanotechnology offers immediate, season-specific, and reversible interventions. Cross-tolerance, the phenomenon whereby exposure to one stress enhances tolerance to another, offers a promising alternative. This review critically examines how NPs act as stress-priming agents that induce cross-tolerance by activating overlapping defense networks, including antioxidant systems (SOD, CAT, APX), phytohormonal crosstalk (ABA, SA, JA), osmolyte homeostasis, and stress-responsive gene expression. We synthesize current evidence on NP uptake, translocation, and cellular interactions, and evaluate their dual role in directly suppressing pathogens while simultaneously enhancing plant immune responses and physiological resilience. However, efficacy is highly dose-dependent: low, subtoxic doses prime defense through hermetic ROS signaling, whereas supraoptimal doses cause phytotoxicity. The current challenges in nano-mediated stress alleviation include: (i) a persistent laboratory-to-field translation gap, with field outcomes averaging only 60–70% of greenhouse efficacy; (ii) dose-dependent phytotoxicity; (iii) poor reproducibility across studies; (iv) scalability and formulation stability issues; and (v) insufficient understanding of long-term environmental fate, including soil accumulation, non-target organism effects, and food chain safety. Future research should consider field-validated formulations (e.g., SiNPs, ZnONPs, Fe3O4NPs) across major staple crops); integrating nanotechnology with precision agriculture through nanosensors, remote sensing, and artificial intelligence for site-specific, dose-optimized applications;developing smart, biodegradable nanoparticles with stimuli-responsive release; and establishing harmonized regulatory frameworks for nano-agrochemical approval. When deployed responsibly, nanoparticle-induced cross-tolerance represents a sustainable approach to improve crop resistance against multifactorial stress, with significant implications for climate-resilient agriculture and global food security. Full article
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23 pages, 1805 KB  
Article
Seed Priming Improves Rice Seed Tolerance to Salinity Stress: Unveiling Through Multivariate Analysis
by Md. Anwar Hosen Jony, Bejoy Chandra Sarkar, Sinthia Ahmed Upama, Sinthia Afsana Kheya, Md. Shafiqul Islam, Farhana Zaman and Ahmed Khairul Hasan
Seeds 2026, 5(3), 25; https://doi.org/10.3390/seeds5030025 - 27 Apr 2026
Viewed by 108
Abstract
Salinity stress is a major constraint affecting rice establishment and productivity in many coastal and salt-affected regions of the world, as well as in Bangladesh. Seed priming has emerged as an effective technique to enhance seed germination, seedling vigor and growth, and stress [...] Read more.
Salinity stress is a major constraint affecting rice establishment and productivity in many coastal and salt-affected regions of the world, as well as in Bangladesh. Seed priming has emerged as an effective technique to enhance seed germination, seedling vigor and growth, and stress tolerance. To address this challenge, the present study investigated the potential of four different seed-priming agents (non-, hydro-(H2O), osmo-(Polyethylene glycol, 30%), nano-(Zinc EDTA (12%), and 170 ppm) applied to two rice varieties (Binadhan-10 and BINA dhan25) under four levels of salinity stress (0, 5, 8, and 11 dS m−1), with the aim of enhancing germination, improving the seedling vigor index, and promoting early growth performance in a completely randomized design with four replications. Nano-priming with Zinc EDTA (12%, at 170 ppm) involves soaking seeds in a solution containing this concentration of zinc chelate, which can improve seedling vigor and stress resilience, especially under challenging conditions like salinity. The results indicated that salinity significantly reduced germination and seedling growth, whereas seed priming improved seed performance under stress conditions. Among the treatments, nano-priming showed the most pronounced improvement in germination and seedling vigor. Binadhan-10 exhibited a greater tolerance to salinity compared with BINA dhan25. Multivariate analyses, including principal component analysis, correlation analysis, and heatmap, revealed strong positive relationships among germination, vigor index, and seedling biomass traits. The findings demonstrate that seed priming, particularly nano-priming, can effectively enhance rice seed germination, the vigor index, and different seedling traits under saline conditions, providing a promising strategy for improving rice production in salt-affected areas in Bangladesh. Full article
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17 pages, 287 KB  
Article
Modified Drum-Priming and Biochemical Agents for Enhancing Germination and Seedling Growth of Hot Pepper Under Salinity Stress
by Han Jin Jeong, Do Jin Kim, Jong-Hwan Park, Jin Hwan Lee and Du Hyun Kim
Agronomy 2026, 16(9), 851; https://doi.org/10.3390/agronomy16090851 - 22 Apr 2026
Viewed by 316
Abstract
Salinity is a critical environmental stressor that inhibits seed germination and seedling growth globally. This study aimed to determine the optimal priming conditions for hot pepper (Capsicum annuum L.) seeds to alleviate salt stress-induced germination and growth reductions. Priming treatments included hydro-priming, [...] Read more.
Salinity is a critical environmental stressor that inhibits seed germination and seedling growth globally. This study aimed to determine the optimal priming conditions for hot pepper (Capsicum annuum L.) seeds to alleviate salt stress-induced germination and growth reductions. Priming treatments included hydro-priming, chemical-priming (24-epibrassinolide (EBL), sodium nitroprusside (SNP), and polyamines), halo-priming (KNO3), and modified drum-priming. Following treatment, germination characteristics, total polyphenol content (TPC), ABTS+ radical scavenging activity, and seedling growth traits were evaluated under 100 mM NaCl stress. Optimal conditions were identified as hydro-priming (50 h), chemical-priming (10−6 M EBL, 10−4 M SNP, 50 mM putrescine), halo-priming (300 mM KNO3), and drum-priming (20 h hydration and 60 h incubation). Although NaCl treatment significantly reduced all germination traits, priming effectively mitigated these declines. A modified drum-priming method resulted in the shortest mean germination time (MGT) of 4.0 days, the highest germination rate (GR) of 25.2%·day−1, and a 94% healthy seedling percentage (HSP), whereas the results for the untreated control were recorded as 6.6 days, 15.2%·day−1, and 66%, respectively, under stress conditions. EBL and drum-priming showed the highest TPC and ABTS+ radical scavenging activity. Furthermore, priming prevented salt-induced reductions in seedling growth. EBL and drum-priming treatments resulted in the highest vitality index (VI). These results indicate that drum-priming and EBL priming are highly effective strategies for enhancing salt tolerance and ensuring uniform stand establishment in pepper seeds. Full article
(This article belongs to the Section Horticultural and Floricultural Crops)
23 pages, 7818 KB  
Article
Enhanced Barley Growth in Petroleum-Contaminated Soil Mediated by Xanthan-like Exopolysaccharide of Xanthomonas translucens TRK8
by Ramza Berzhanova, Aisulu Zhuniszhan, Gulnur Tatykhanova, Sarkyt Kudaibergenov, Gulshara Abai, Alibek Kudabayev and Togzhan Mukasheva
Microorganisms 2026, 14(4), 937; https://doi.org/10.3390/microorganisms14040937 - 21 Apr 2026
Viewed by 304
Abstract
Exopolysaccharides (EPS) represent an important tool for application in bio- and phytoremediation technologies due to their ability to enhance water and nutrient retention, support microclimate stability, and protect plants from environmental stress. In the present study, xanthan-like EPS produced by Xanthomonas translucens TRK8 [...] Read more.
Exopolysaccharides (EPS) represent an important tool for application in bio- and phytoremediation technologies due to their ability to enhance water and nutrient retention, support microclimate stability, and protect plants from environmental stress. In the present study, xanthan-like EPS produced by Xanthomonas translucens TRK8 was precipitated by ethanol and isopropanol, with the former yielding 9.2 g L−1 compared with 6.7 g L−1 obtained with the latter. The monosaccharide profile of the TRK8-derived EPS indicated a branched structure composed of rhamnose, mannose, glucose, and galactose residues, containing both α- and β-type pyranose units. The rheological properties of the studied EPS were compared with those of commercial xanthan at concentrations of 1–3 wt.%. Fitting the obtained data to the Ostwald–de Waele power-law model revealed that the flow behaviour index (n) values were below 1 (−0.338, −0.499, and −0.647, respectively), indicating shear-thinning behaviour (i.e., pseudoplasticity). The potential of the TRK8-derived EPS as a plant protection agent was validated by coating barley seeds with 2 wt.% EPS, resulting in a 28.6% increase in shoot length and a 64.7% increase in root length relative to the oil-stressed control. Full article
(This article belongs to the Section Biofilm)
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19 pages, 1991 KB  
Article
Bioactivity of Ailanthus altissima (Mill.) Swingle Extracts on Wheat Germination and Rice Weevil Survival
by Radenka Kolarov, Velemir Ninkovic, Sonja Gvozdenac, Dan Cristian Vodnar, Floricuta Ranga and Dejan Prvulović
Plants 2026, 15(8), 1250; https://doi.org/10.3390/plants15081250 - 18 Apr 2026
Viewed by 324
Abstract
Invasive plant species are increasingly recognized not only as ecological threats but also as potential sources of bioactive compounds with agricultural applications. However, the combined allelopathic and insecticidal potential of Ailanthus altissima’s different plant parts remains insufficiently explored. This study evaluated the bioactivity [...] Read more.
Invasive plant species are increasingly recognized not only as ecological threats but also as potential sources of bioactive compounds with agricultural applications. However, the combined allelopathic and insecticidal potential of Ailanthus altissima’s different plant parts remains insufficiently explored. This study evaluated the bioactivity of different plant part (leaf, bark, and branch) extracts of A. altissima. Secondary metabolites were characterized by HPLC–DAD–MS, while ethanol extracts (0.5–5%) were tested on wheat (Triticum aestivum) seed germination, seedling growth, oxidative status, and on the survival and repellency of the rice weevil (Sitophilus oryzae). Biological responses were strongly plant part and concentration-dependent. Leaf extracts contained the highest phenolic levels, dominated by caffeoylquinic acids and quercetin derivatives, whereas bark and branch extracts showed lower but compositionally distinct profiles. Despite this, bark and branch extracts produced the strongest biological effects, inhibiting germination energy and root growth at higher concentrations, while leaf extracts stimulated seedling performance, including increased vigor index, while in insect bioassays, bark and branch extracts caused higher mortality and stronger suppression of rice weevil populations. This study provides new evidence that biomass extracts of the invasive species A. altissima represent a promising source of biologically active compounds with both allelopathic and insecticidal properties, highlighting its potential valorization as a plant-based biopesticide for sustainable pest management. Full article
(This article belongs to the Section Phytochemistry)
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20 pages, 4657 KB  
Article
Zinc Oxide Nanoparticles Enhance Vigor of Aged Naked Oat Seeds: Transcriptomic Insights into Antioxidant and Metabolic Reprogramming
by Futian Chen, Yuan Ma, Kuiju Niu, Fangyuan Zhao, Yajiao Zhao, Ruirui Yao, Tao Shao and Huan Liu
Agriculture 2026, 16(8), 842; https://doi.org/10.3390/agriculture16080842 - 10 Apr 2026
Viewed by 441
Abstract
Naked oat (Avena nuda L.) is an important dual-purpose crop for grain and forage in cold regions; however, its high fatty acid content renders seeds prone to deterioration during storage. This study aimed to investigate the protective effects of zinc oxide nanoparticles [...] Read more.
Naked oat (Avena nuda L.) is an important dual-purpose crop for grain and forage in cold regions; however, its high fatty acid content renders seeds prone to deterioration during storage. This study aimed to investigate the protective effects of zinc oxide nanoparticles (ZnO NPs) on artificially aged naked oat seeds and elucidate the underlying molecular mechanisms. Non-aged seeds (Naged) were subjected to artificial aging at 45 °C and 100% relative humidity for 24 h (Aged), followed by priming with 30 mg L−1 ZnO NPs for 6 h (Daged). Antioxidant enzyme activities were determined spectrophotometrically, and transcriptome sequencing was performed on an Illumina platform to identify differentially expressed genes (DEGs) and enriched pathways. We found that ZnO NPs increased catalase (CAT), peroxidase (POD) and superoxide dismutase (SOD) activities by 3–4-fold, restored germination rate from 75% to 98%, and enhanced seed vigor index. A total of 21,403 DEGs were detected, with 15,841 stably expressed in response to nano-priming. Reactive oxygen species (ROS) burst rapidly induced up-regulation of AP2/EREBP transcription factor family members, which subsequently activated antioxidant enzyme genes to maintain cellular redox homeostasis. Metabolic pathway analysis demonstrated that the phenylpropanoid pathway was reprogrammed, characterized by down-regulated lignin biosynthesis and up-regulated flavonoid production, thereby enhancing ROS scavenging capacity. Additionally, the pentose phosphate pathway was activated to provide additional NADPH for antioxidant defense, and up-regulated ADP-glucose pyrophosphorylase (AGPase) facilitated starch accumulation. Notably, the 40S ribosomal protein S13 exhibited the highest connectivity in protein–protein interaction networks, was up-regulated 2.1-fold, and was enriched in post-translational modification processes. These findings suggest that nano-priming with ZnO NPs represents a promising biotechnological strategy for enhancing seed vigor and storability in naked oat, with potential applications in sustainable agriculture and the seed industry. Full article
(This article belongs to the Topic Nano-Enabled Innovations in Agriculture)
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25 pages, 2363 KB  
Article
Salinity Stress Mitigation in Durum Wheat via Seed Hormonal Priming
by Manel Hmissi, Khawla Nsiri, Rihab Zagoub, Vicente Gimeno-Nieves, Abdelmajid Krouma, Mohamed Chaieb and Francisco García-Sánchez
Plants 2026, 15(7), 1103; https://doi.org/10.3390/plants15071103 - 3 Apr 2026
Viewed by 514
Abstract
Seed priming is a simple, economical, and sustainable technique capable of enhancing crop resilience to abiotic stresses. A plastic greenhouse experiment was conducted on the durum wheat cultivar, Karim, sown in a 375 L volume container under semi-controlled conditions. Plots were arranged in [...] Read more.
Seed priming is a simple, economical, and sustainable technique capable of enhancing crop resilience to abiotic stresses. A plastic greenhouse experiment was conducted on the durum wheat cultivar, Karim, sown in a 375 L volume container under semi-controlled conditions. Plots were arranged in a completely randomized design regarding treatments (control, salinity) and priming agents (indole-3-acetic acid, IAA; gibberellic acid, GA3; and salicylic acid, SA). Some physiological, biochemical, and morphometric traits were analyzed at vegetative and reproductive stages. The obtained results demonstrated that salinity stress reduced plant growth and the SPAD index, hampered photosynthetic efficiency through disrupted PSII integrity and energy management in the electron transfer chain, and significantly affected ear filling (EF) and grain caliber (marked by mean weight of 100 grains, MW100G). However, seed hormonal priming allowed the alleviation of salinity stress effects on durum wheat growth and yield. Although IAA and GA3 have shown significant potential in improving durum wheat tolerance to salinity, SA was found to be the most effective priming agent. It promotes the biosynthesis of chlorophyll pigments, restores the functional integrity of PSII, enhances photosynthetic efficiency, increases plant growth, and stimulates ear filling and wheat grain development. The principal component analysis demonstrated the interdependence of the vegetative and reproductive traits and presents SA as the most effective treatment that brings plants close to control conditions, despite the salinity. Full article
(This article belongs to the Special Issue Plant Hormones in Growth, Development, and Regeneration)
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19 pages, 2999 KB  
Article
Seed Priming with Carrot Extract Improves Early Physiological Responses to Salinity in Rice
by Sheila Bigolin Teixeira, Fernanda Reolon de Souza, Stefânia Nunes Pires, Gabriele Espinel Avila, Cristiane Deuner, Geri Eduardo Meneghello and Sidnei Deuner
Plants 2026, 15(7), 1082; https://doi.org/10.3390/plants15071082 - 1 Apr 2026
Viewed by 375
Abstract
Soil salinization is a major constraint on irrigated rice cultivation, mainly due to poor irrigation management and cropping in coastal areas. Seed priming is widely recognized as a cost-effective and practical approach to enhance early growth and improve tolerance to abiotic stresses, including [...] Read more.
Soil salinization is a major constraint on irrigated rice cultivation, mainly due to poor irrigation management and cropping in coastal areas. Seed priming is widely recognized as a cost-effective and practical approach to enhance early growth and improve tolerance to abiotic stresses, including salinity. This study evaluated the effects of seed priming of rice seeds from two cultivars, BRS Querência (Indica) and BRS 358 (Japonica), using aqueous carrot root extract at 0% (water), 25%, and 50% concentrations for 48 h. Seeds were sown in rhizotrons and exposed to 0, 75, or 150 mM NaCl. Morphological, physiological, and biochemical traits were evaluated at 21 days after sowing. Seed priming with carrot extract was associated with improved growth and physiological responses under salinity stress. Under 150 mM NaCl, primed seedlings showed approximately 40% higher chlorophyll index, 35% greater root volume, and 30% higher shoot dry mass compared to unprimed controls. The 25% extract concentration was particularly effective for BRS Querência, which showed enhanced root elongation and a higher nitrogen balance index. Activities of superoxide dismutase, ascorbate peroxidase, and catalase increased by 45–70%, while hydrogen peroxide and malondialdehyde levels decreased by approximately 50%, suggesting enhanced antioxidant responses and improved redox balance. Anthocyanin accumulation also increased in specific cultivar–treatment combinations, suggesting a potential effect on secondary metabolism and antioxidant pathways. Overall, carrot-based seed priming was associated with improved seedling performance, pigment stability, and regulation of oxidative stress under saline conditions. These results suggest that carrot-based seed priming may improve physiological performance under salinity stress. Full article
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20 pages, 5100 KB  
Article
Effect of Lecithin and SiO2 NPs Seed Treatment on Seed Germination, Seedling Growth, and Antioxidant Response of Fragrant Rice
by Chunping Chen, Yuan Zhou, Xuexue Liu, Jiayue Wang, Yunxuan Deng and Zhaowen Mo
Agriculture 2026, 16(7), 763; https://doi.org/10.3390/agriculture16070763 - 30 Mar 2026
Viewed by 362
Abstract
Low-temperature stress adversely impairs rice germination and seedling establishment. This study assessed a nano-bio-priming strategy using lecithin (L) and silicon dioxide nanoparticles (SiO2 NPs) to enhance chilling tolerance. Two fragrant rice cultivars (Xiangyaxiangzhan and Meixiangzhan 2) were primed with six combinations of [...] Read more.
Low-temperature stress adversely impairs rice germination and seedling establishment. This study assessed a nano-bio-priming strategy using lecithin (L) and silicon dioxide nanoparticles (SiO2 NPs) to enhance chilling tolerance. Two fragrant rice cultivars (Xiangyaxiangzhan and Meixiangzhan 2) were primed with six combinations of lecithin (0, 50, and 100 μmol·L−1, denoted as L0, L1, and L2) and SiO2 NPs (0 and 100 mg·L−1, denoted as S0 and S1) and exposed to optimal temperature (25 °C) or low-temperature stress (15 °C). Low-temperature stress delayed germination onset by two days. Combined priming treatments L1S1 and L2S1 significantly alleviated this inhibitory effect. Crucially, cultivar-specific responses were evident in Meixiangzhan 2, where L1S1 increased the germination vigor index by 50.97%. Meanwhile, the effect was less pronounced or inhibitory at normal temperature in Xiangyaxiangzhan. Priming substantially enhanced seedling growth, and L2S1 maximally increased root and shoot length in Meixiangzhan 2 by 55.30% and 15.82%, respectively. Furthermore, biomass accumulation was strongly promoted. L1S1 increased total dry weight and total fresh weight in Meixiangzhan 2 by 19.64% and 23.48%, respectively. Physiologically, priming elevated chlorophyll and carotenoid contents upregulated the activities of superoxide dismutase (SOD), peroxidase (POD), and catalase (CAT), and increased levels of soluble protein and ascorbate (AsA), while maintaining nitrate reductase (NR) activity and hydrogen peroxide (H2O2) homeostasis. These physiological improvements were positively correlated with enhanced growth. Our findings demonstrate that co-priming with lecithin and SiO2 NPs is a potent strategy for enhancing low-temperature tolerance, with efficacy depending on both the treatment combination and rice genotype. Full article
(This article belongs to the Section Crop Production)
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16 pages, 3052 KB  
Article
Electromagnetic Priming Modulates Gas Exchange During Pea Seed Germination Under Salt Stress
by Svetlana Yu. Khashirova, Albert S. Shabaev, Igor F. Turkanov, Elena V. Bondarchuk, Valery G. Gryaznov, Ekaterina A. Galkina, Polina N. Bolotskova, Irina M. Kaigorodova, Elena G. Kozar and Vladimir G. Zainullin
AgriEngineering 2026, 8(4), 120; https://doi.org/10.3390/agriengineering8040120 - 26 Mar 2026
Viewed by 753
Abstract
Electromagnetic treatment (EMF) can stimulate seed germination and plant development, including mitigating the negative effects of stressors. One non-invasive approach to detecting the early effects of EMF exposure is the study of gas exchange dynamics during the seed imbibition stage. Gas chromatography was [...] Read more.
Electromagnetic treatment (EMF) can stimulate seed germination and plant development, including mitigating the negative effects of stressors. One non-invasive approach to detecting the early effects of EMF exposure is the study of gas exchange dynamics during the seed imbibition stage. Gas chromatography was used to assess the effect of low-intensity non-thermal EMF on the concentration of H2, O2, CO2, and NH3 gases in the “soil–pea seed” system under optimal conditions and under salt stress. EMF treatment exhibited a variant-dependent effect. Under optimal conditions, it stimulated respiration (O2 concentration decreased by 12%, CO2 increased by 15%); under salinity, the concentration of both gases decreased by 8–10% relative to the control. H2 emission proved to be a sensitive biochemical marker of the response to external factors. Under optimal conditions, EMF treatment nearly tripled H2 emission and shifted its emission peak one day earlier, which may indicate accelerated mobilization of the seed’s defense systems under developing hypoxia. Salinity reduced H2 levels by an order of magnitude, while EMF treatment stabilized the H2 emission rate, reducing it by almost half. Thus, EMF should be regarded as a modifier of the seed’s metabolic response to imbibition conditions, rather than solely as a germination stimulant. Full article
(This article belongs to the Section Sustainable Bioresource and Bioprocess Engineering)
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17 pages, 3926 KB  
Article
Stable qw12-1 Locus Across Environments: High-Resolution QTL Mapping for Sustainable Southern Soybean Crinkle Leaf Disease Resistance Control
by Wenjie Chen, Chunting Zhang, Qian Shi, Xiaohong Guo, Xiayan Qin, Shufang Chen, Kai Sun, Qingyuan Wei, Fuyue Tang, Jiang Liang, Tuanjie Zhao and Yuan Chen
Plants 2026, 15(7), 1010; https://doi.org/10.3390/plants15071010 - 25 Mar 2026
Viewed by 443
Abstract
Severe southern soybean crinkle leaf disease (SSCLD) reduces soybean seed yield by approximately 40%. Identifying the genes that control SSCLD is crucial for breeding resistant varieties and elucidating the molecular mechanisms underlying SSCLD infection. In this study, recombinant inbred lines (RILs, n = [...] Read more.
Severe southern soybean crinkle leaf disease (SSCLD) reduces soybean seed yield by approximately 40%. Identifying the genes that control SSCLD is crucial for breeding resistant varieties and elucidating the molecular mechanisms underlying SSCLD infection. In this study, recombinant inbred lines (RILs, n = 236) derived from a cross between Nannong1138-2 (NN1138-2) and Zhengxiaodou (ZXD) were used as experimental materials. A field trial employing a randomized block design was conducted in four environments across two locations, Nanning (2019–2021) and Du’an (2020) in Guangxi, to identify the disease severity grades of SSCLD in the field. QTLs controlling SSCLD were detected via a genetic map constructed using 3255 SLAF (specific locus amplified fragment) markers from the recombinant inbred lines. RT–qPCR was used to analyze candidate gene expression at major effect loci. The results revealed that eight SSCLD-associated QTLs were identified on chromosomes 3, 6, 12, and 17. Notably, the qw12-1 locus on chromosome 12 was detected across three developmental stages in three of the four environments, explaining 10.18–58.20% of the phenotypic variation. RT–qPCR analysis of 12 disease resistance-related genes within the qw12-1 interval revealed that GLYMA_12G233000 and GLYMA_12G239200 presented significantly higher expression in crinkled leaf lines than in normal leaf lines during the V5 (fifth trifoliolate stage), R2 (full bloom stage), and R6 (full seed stage) stages. These genes were prioritized as potential prime candidates for SSCLD resistance genes. This research provides foundational data for the fine mapping of qw12-1 and cloning SSCLD-related genes, advancing our understanding of the molecular mechanisms underlying SSCLD. Full article
(This article belongs to the Section Plant Genetics, Genomics and Biotechnology)
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1 pages, 113 KB  
Correction
Correction: Yao et al. The Mechanism of Seed Priming with Abscisic Acid for Enhancing Cuticle Deposition Under Drought Stress: Phenotypic and Transcriptomic Insights. Agriculture 2025, 15, 1124
by Luhua Yao, Sennan Li and Nana Zhou
Agriculture 2026, 16(7), 721; https://doi.org/10.3390/agriculture16070721 - 25 Mar 2026
Viewed by 213
Abstract
Removal of an Author [...] Full article
(This article belongs to the Section Seed Science and Technology)
15 pages, 1933 KB  
Article
Magneto-Priming Seed Treatments as a Green Engineering Strategy to Enhance Triticale Tolerance to Nanoparticle Stress
by Mónica Montoya, José Álvarez, Marina De-Francisco and Patricia Almendros
Sustainability 2026, 18(6), 3100; https://doi.org/10.3390/su18063100 - 21 Mar 2026
Viewed by 425
Abstract
Nanoparticles have been extensively studied due to their rapid development and increasing application in agriculture; however, the potential of magnetic fields to mitigate the toxic effects of ZnO nanoparticles (ZnO-NPs) remains unexplored. Magneto-priming can enhance seed performance without chemical inputs, contributing to green [...] Read more.
Nanoparticles have been extensively studied due to their rapid development and increasing application in agriculture; however, the potential of magnetic fields to mitigate the toxic effects of ZnO nanoparticles (ZnO-NPs) remains unexplored. Magneto-priming can enhance seed performance without chemical inputs, contributing to green engineering, resource efficiency, and environmental sustainability. This study assesses the effectiveness of magneto-priming in enhancing triticale tolerance to ZnO-NP stress under both direct seed exposure and soil leachate treatments. Germination performance, seedling growth, root system development, and seedling vigor were assessed to characterize both phytotoxic effects and the mitigating role of magneto-priming. Direct seed exposure to ZnO-NPs reduced germination and slightly promoted root elongation at low doses, reflecting localized phytotoxicity. Magneto-priming increased shoot length by 28%, root length by 13–15%, roots per seed by 13%, and the Seedling Vigor Index (SVI) by 29% under direct exposure, promoting more balanced early seedling development. However, in soil-leachate assays, where nanoparticle mobility and bioavailability were limited, magneto-priming reduced germination, SVI, and shoot length while enhancing root traits, indicating a system-dependent trade-off. Overall, these results highlight that the benefits of magneto-priming in mitigating ZnO-NP stress are context-specific, with clear positive effects under direct exposure but mixed responses under leachate conditions, emphasizing the importance of the exposure pathway in early seedling establishment strategies. Full article
(This article belongs to the Section Sustainable Materials)
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18 pages, 1602 KB  
Article
From Lagoons to Biostimulants: Chaetomorpha linum Extracts Enhance Germination Dynamics and Early Seedling Development
by Alfonso Trezza, Luisa Frusciante, Priya Barua, Stefania Lamponi, Michela Geminiani and Annalisa Santucci
Appl. Sci. 2026, 16(6), 2931; https://doi.org/10.3390/app16062931 - 18 Mar 2026
Viewed by 497
Abstract
Macroalgal biomass accumulation in eutrophic coastal lagoons represents both an environmental challenge and an underexploited bioresource. This study evaluates the biostimulant potential of Chaetomorpha linum (C. linum) harvested in the Orbetello Lagoon (Italy) on tomato (Solanum lycopersicum) seed germination [...] Read more.
Macroalgal biomass accumulation in eutrophic coastal lagoons represents both an environmental challenge and an underexploited bioresource. This study evaluates the biostimulant potential of Chaetomorpha linum (C. linum) harvested in the Orbetello Lagoon (Italy) on tomato (Solanum lycopersicum) seed germination and early seedling development. Four extraction strategies were investigated: a phytohormone-enriched fraction (PO), a hydroethanolic reflux extract (CLE), a room-temperature aqueous maceration extract (CLWM), and a mild-water-bath aqueous extract (CLWB). Bioactivity was assessed through controlled laboratory germination assays, comparing germination performance, seedling growth traits, and vigor index against an untreated control and a commercial fertilizer. Across the tested conditions, aqueous formulations exhibited the strongest overall effects, with CLWB providing the most balanced response and increasing seedling vigor by approximately 20–30% relative to the control. Collectively, these results support the valorization of eutrophic C. linum biomass into natural, low-input biostimulants for seed priming applications within sustainable agriculture and circular economy frameworks. Full article
(This article belongs to the Special Issue Analysis of Antioxidant and Bioactive Compounds in Agriculture)
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