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Search Results (1,610)

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Keywords = soil–water-plant system

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26 pages, 13382 KB  
Review
Spectral Imaging and Autonomous Inspection Technologies for Nutrient Diagnosis of Protected Horticultural Crops: A Review
by Xiaodong Zhang, Shifang Song, Chuandong Guo, Xiangyu Han, Zonghua Leng and Yixue Zhang
Horticulturae 2026, 12(9), 1124; https://doi.org/10.3390/horticulturae12091124 (registering DOI) - 5 Sep 2026
Abstract
Protected horticultural crops are commonly produced at high planting densities and have short production cycles; imbalances in water and fertilizer supply can rapidly affect plant vigor, yield, and quality. Non-destructive diagnostic methods are therefore needed to characterize plant nutritional status under greenhouse conditions. [...] Read more.
Protected horticultural crops are commonly produced at high planting densities and have short production cycles; imbalances in water and fertilizer supply can rapidly affect plant vigor, yield, and quality. Non-destructive diagnostic methods are therefore needed to characterize plant nutritional status under greenhouse conditions. Spectral imaging can simultaneously capture spatial and spectral information associated with pigments, water status, tissue structure, and canopy phenotype. It does not directly detect nutrient ions; rather, it captures physiological and structural responses that may be associated with nutrient status and may also be influenced by water deficit, disease, temperature, salinity, phenology, and genotype. This review focuses on crops grown in soil, substrate, and hydroponic systems under greenhouse conditions. Studies conducted in vertical farms, growth chambers, and open fields are included only as supplementary references for sensor selection, model calibration, and inspection methods. This article synthesizes diagnostic indicators for nitrogen, phosphorus, and potassium, together with their associated physiological responses and spectral characteristics; compares the performance of hyperspectral, multispectral, and machine learning methods at the leaf, plant, and canopy scales; and examines fixed measurement, stop-and-go mobile inspection, continuous motion imaging, and autonomous plant revisitation. Existing studies have established a solid foundation for nutrient content retrieval, deficiency identification, and mobile monitoring. However, several challenges remain inadequately addressed under continuous inspection conditions, including radiometric–geometric joint calibration, plant identity preservation, acquisition of multi-element chemical truth values, model generalization across growth stages and greenhouse types, and long-term performance evaluation. Future work should refine standardized protocols for dynamic data collection and water–fertilizer environmental control, integrate mechanistic constraints with data driven approaches, and incorporate plant re-identification, spatiotemporal registration, uncertainty quantification, and online calibration. These efforts will contribute to constructing a long-term stable and comparable nutritional diagnostic system, thereby advancing the transition of facility vegetable nutritional monitoring from single-time static measurements toward continuous, traceable, and autonomously patrolled systems that may ultimately support precision irrigation and fertilization management after appropriate independent validation. Full article
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20 pages, 1728 KB  
Article
Phytoremediation of Antimony Contaminated Soils Using the Bioenergy Plant Cynara cardunculus
by Elpida Tseliou, Christiana Mystrioti, Nymphodora Papassiopi and Anthimos Xenidis
Environ. Remediat. 2026, 1(2), 8; https://doi.org/10.3390/environremediat1020008 - 4 Sep 2026
Abstract
Antimony (Sb) is an emerging environmental pollutant due to its toxicity, persistence, and extensive industrial applications. Despite the growing need for sustainable remediation strategies, research on the potential of phytoremediation for Sb-contaminated soils remains limited. This study investigates the suitability of Cynara cardunculus [...] Read more.
Antimony (Sb) is an emerging environmental pollutant due to its toxicity, persistence, and extensive industrial applications. Despite the growing need for sustainable remediation strategies, research on the potential of phytoremediation for Sb-contaminated soils remains limited. This study investigates the suitability of Cynara cardunculus (cardoon), a high-biomass bioenergy crop, for the remediation of Sb-polluted soils and evaluates the effect of Fe(II) supplementation on plant performance and Sb behavior. Pot experiments were conducted using soils amended with 10–40 mg Sb kg−1, under treatments with and without Fe(II). In the absence of iron, cardoon showed high tolerance to Sb exposure, with no significant growth inhibition even at 40 mg Sb kg−1 after 30 days of cultivation. Iron addition significantly enhanced plant growth, resulting in a 2.3-fold increase in aboveground biomass compared with non-amended soils under the 20 mg Sb kg−1 treatment after 45 days of cultivation. Sb accumulation was mainly restricted to the root system, indicating limited phytoextraction capacity. However, the species demonstrated strong phytostabilization potential, as the presence of plants reduced the water-soluble Sb fraction in soil by up to 50% compared with unplanted controls. These results suggest that C. cardunculus is a promising candidate for phytostabilization of Sb-contaminated soils. Its combined use with iron amendments may enhance biomass production and support integrated soil remediation and bioenergy production strategies. Full article
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18 pages, 3370 KB  
Article
Mixed Cropping Improves Soil Fertility via Enhancing Plant Facilitation in Alpine Artificial Grassland
by Shengjun Ji, Wei Wang, Mohamed S. Sheteiwy, Youcai Xiong, Fuying Niu, Huimin Li and Wenying Wang
Biology 2026, 15(17), 1502; https://doi.org/10.3390/biology15171502 - 2 Sep 2026
Viewed by 144
Abstract
By enhancing plant complementarity and facilitation, mixed cropping may accelerate soil fertility recovery and improve grassland ecosystem resilience. Nevertheless, the impacts of mixed cropping on soil fertility over a single growing season, and the underlying plant–soil interaction mechanisms, remain poorly understood. We hypothesized [...] Read more.
By enhancing plant complementarity and facilitation, mixed cropping may accelerate soil fertility recovery and improve grassland ecosystem resilience. Nevertheless, the impacts of mixed cropping on soil fertility over a single growing season, and the underlying plant–soil interaction mechanisms, remain poorly understood. We hypothesized that mixed grass–legume–moss sowing would increase above- and belowground biomass, aggregate stability (mean weight diameter), and soil organic carbon and total nitrogen relative to monocultures, partly through relief of the nitrogen limitation of the grass by the nitrogen-fixing legume. To test this hypothesis, seven monoculture and mixed-cropping treatments using Elymus breviaristatus, Medicago sativa, and Tortula subulata were established in May 2024 with three replicate plots per treatment (n = 3); plant and soil variables were measured at the end of the growing season (late September 2024), and differences among treatments were tested by one-way ANOVA followed by Tukey’s HSD post hoc test, with significance accepted at p < 0.05. Our results showed that compared with monocropping, mixed cropping significantly increased above- and belowground biomass, improved soil water content, and reduced bulk density, thereby creating a more favorable soil microenvironment. Compared with monocropping, mixed cropping enhanced microbial biomass C and N by 26% and 10%, respectively, and increased soil organic C by 30%. Fertility indices were positive in all mixed-cropping systems, contrasting with the negative values observed for two of the three monocultures and for the unseeded control. Across treatments, the facilitation index was positively correlated with the fertility index (R2 = 0.757), indicating that interspecific facilitation was closely associated with soil fertility gains. These findings suggest that mixed cropping can enhance soil fertility restoration in alpine artificial grassland and that this effect is consistent with interspecific facilitation promoting biomass accumulation, improving soil physicochemical conditions, and supporting soil microbial biomass. These results highlight species diversification as a promising strategy for accelerating soil fertility restoration, although multi-year and multi-site validation is still required. Full article
(This article belongs to the Special Issue Young Researchers in Ecology)
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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 189
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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15 pages, 1706 KB  
Article
Residue Dissipation, Transformation Products, and Dietary Risk Assessment of Flonicamid in a Rice Paddy Ecosystem
by Yan Fu, Quansheng Wang, Liang Zhang and Yinliang Wu
Foods 2026, 15(17), 3104; https://doi.org/10.3390/foods15173104 - 1 Sep 2026
Viewed by 166
Abstract
Flonicamid is a systemic pyridinecarboxamide insecticide used to control sap-sucking pests in agricultural crops. An ultra-high-performance liquid chromatography–tandem mass spectrometry (UHPLC–MS/MS) method was developed for the simultaneous determination of flonicamid and its metabolites, N-(4-trifluoromethylnicotinoyl)glycine (TFNG), 4-(trifluoromethyl)nicotinamide (TFNA-AM), and 4-(trifluoromethyl)nicotinic acid (TFNA) in rice [...] Read more.
Flonicamid is a systemic pyridinecarboxamide insecticide used to control sap-sucking pests in agricultural crops. An ultra-high-performance liquid chromatography–tandem mass spectrometry (UHPLC–MS/MS) method was developed for the simultaneous determination of flonicamid and its metabolites, N-(4-trifluoromethylnicotinoyl)glycine (TFNG), 4-(trifluoromethyl)nicotinamide (TFNA-AM), and 4-(trifluoromethyl)nicotinic acid (TFNA) in rice plants, brown rice, rice husks, paddy soil, and paddy water. Method validation showed average recoveries of 73–115% with relative standard deviations of 1.1–9.9% across different matrices at three fortification levels. Field and laboratory experiments were conducted to characterize the dissipation, degradation, and transformation of flonicamid in the paddy ecosystem, and the dietary risk was assessed. Field dissipation followed first-order kinetics, with half-lives of 5.8, 2.9, and 7.1 days in rice plants, paddy soil, and paddy water, respectively. Under laboratory conditions, degradation proceeded markedly faster under aerobic than anaerobic conditions, with half-lives of 0.8–7.1 and 4.7–17.8 days in five typical Chinese soils, respectively. Six transformation products were identified by UHPLC–Q-TOF/MS coupled with UNIFI software (v1.9.4.0), including a novel product (M210) reported for the first time. At pre-harvest intervals of 7–21 days, terminal residues of flonicamid in brown rice were all below the Chinese maximum residue limit (MRL) of 0.1 mg/kg. Dietary risk assessment revealed that the acceptable daily intake percentages (%ADI) for 12 population subgroups ranged from 0.128% to 1.031% based on the parent compound, and from 0.404% to 3.808% under the EU residue definition. All values were far below 100%. These results indicate that flonicamid, when applied according to Good Agricultural Practice (GAP), poses a negligible dietary risk to consumers. Full article
(This article belongs to the Special Issue Assessment and Control of Food Safety Risks)
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30 pages, 1917 KB  
Systematic Review
Hydrogel-Enabled Delivery Systems for Agricultural Resilience: Controlled Release, Soil Interactions and Performance Constraints: A Review
by Cristofer Chambi, Julio Alegre Orihuela, María Pachés, Patricia Pacheco Umpire and Javier Montalvo Andia
Gels 2026, 12(9), 785; https://doi.org/10.3390/gels12090785 - 1 Sep 2026
Viewed by 252
Abstract
Hydrogels (HGs) have emerged as promising multifunctional materials for sustainable agriculture due to their high water retention capacity and their ability to act as controlled-release platforms for agrochemicals, nutrients, microorganisms, and bioactive compounds. Their application has gained increasing attention in response to global [...] Read more.
Hydrogels (HGs) have emerged as promising multifunctional materials for sustainable agriculture due to their high water retention capacity and their ability to act as controlled-release platforms for agrochemicals, nutrients, microorganisms, and bioactive compounds. Their application has gained increasing attention in response to global challenges associated with climate change, water scarcity, soil salinization, and the low efficiency of conventional fertilizers, which contribute to environmental degradation and reduce crop productivity. This review provides a critical overview of hydrogel-based systems for agricultural applications, with particular emphasis on the encapsulation of bioactive components for soil remediation and crop protection under abiotic stress conditions. A systematic literature review following PRISMA guidelines was conducted using the Scopus database, resulting in the analysis of 548 studies published between 2003 and 2024. Bibliometric analysis revealed a marked increase in research activity since 2021, mainly driven by advances in water-retention technologies, nanocomposite hydrogels, controlled-release systems, and bioactive encapsulation strategies. The review discusses the main factors governing hydrogel functionality, including swelling behavior, crosslinking density, biodegradability, and interactions with soil–plant systems. Particular attention is given to recent developments involving the incorporation of microorganisms, nanoparticles, micronutrients, and agrochemicals into biodegradable hydrogel matrices to improve nutrient availability, mitigate salinity stress, and reduce agrochemical losses. Finally, the challenges associated with scalability, environmental stability, and field validation are discussed, highlighting the potential of hydrogel-based bioactive delivery systems for developing resilient and resource-efficient agricultural systems. Full article
(This article belongs to the Special Issue Hydrogels for Encapsulation Applications)
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26 pages, 1505 KB  
Review
Wheat Drought Management: A Broader Prospect
by Asfa Batool, Shi-Sheng Li, Wei Tu, Yun-Li Xiao, Ting Zhou and Hongyuan Du
Plants 2026, 15(17), 2653; https://doi.org/10.3390/plants15172653 - 29 Aug 2026
Viewed by 164
Abstract
Wheat (Triticum aestivum L.) is considered one of the most important cereals globally, contributing significantly to the human population’s caloric and protein requirements. Therefore, ensuring a sufficient yield of wheat for global consumption plays a significant role in maintaining food security in [...] Read more.
Wheat (Triticum aestivum L.) is considered one of the most important cereals globally, contributing significantly to the human population’s caloric and protein requirements. Therefore, ensuring a sufficient yield of wheat for global consumption plays a significant role in maintaining food security in different parts of the world. With increasing demand and dwindling production capacity, due to increasingly uncertain growing conditions, projections indicate that there should be an upswing of 60–70% in wheat productivity by 2050 to fulfill the requirement. However, drought represents the most significant and widespread abiotic limitation to global wheat production, currently resulting in approximately 10% yield losses worldwide. Furthermore, each additional 1 °C increase in temperature is anticipated to decrease staple calorie production by 4.4%. The factors contributing to drought in wheat, as well as its impact on the plant’s biochemical, physiological, and morphological structures, include altered rainfall patterns, elevated atmospheric CO2 levels, increased temperatures, hot and dry winds, and restricted soil water availability. These factors initiate a series of morphological, physiological, and biochemical disruptions that hinder wheat growth and productivity. Drought impact on wheat starts at biochemical levels through reactive oxygen species (ROS) generation and degradation of chlorophylls, and tolerance to stress is influenced by a polygenic system where numerous genes contribute minor effects and interact significantly with environmental factors transitioning to osmoprotectants. At the physiological level, drought alters the water content in the plant body, leading to reduced net photosynthetic rates, stomatal conductance, transpiration rates, and water utilization efficiency. At the morphological level, drought impacts all kinds of structures such as roots, shoots, leaves and reproductive parts. To counter these effects, wheat develops a set of tolerant mechanisms called drought escape, avoidance and tolerance. An increase in trichomes and leaf waxes, alteration of root–shoot ratios, the staying green phenomenon, production of stress proteins like proline, activity of enzymes including superoxide dismutase (SOD), ascorbate peroxidase, catalase, etc., osmotic adjustment, abscisic acid (ABA) accumulation, expression of dehydration proteins called dehydrin, etc., contribute towards drought tolerance. This comprehensive review investigates the intricate interactions between drought and various wheat genotypes, emphasizing their substantial impacts on plant physiology, biochemistry, growth dynamics, and grain yield. Additionally, this review assesses a variety of genetic and biotechnological strategies aimed at enhancing the resilience of wheat genotypes to drought stress. By integrating recent research findings with practical applications, this review provides a detailed framework for improving the adaptive capacity of wheat plants to withstand the escalating threats of drought stress, thereby supporting sustainable wheat production in a changing climate. Addressing drought stress through genetic and biotechnological management practices is crucial for maintaining wheat productivity. Full article
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28 pages, 14396 KB  
Review
From Mechanisms to Application: A Case-Based Review of Paulownia-Derived Biochar in Turfgrass Systems
by Marija Koprivica, Marija Simić, Jelena Dimitrijević, Marija Ercegović and Jelena Petrović
Plants 2026, 15(17), 2637; https://doi.org/10.3390/plants15172637 - 28 Aug 2026
Viewed by 144
Abstract
Biochar has emerged as a multifunctional soil amendment with the potential to mitigate soil degradation, nutrient loss, and water scarcity. However, its effectiveness depends strongly on feedstock type and production conditions, limiting consistent application across agroecosystems. This review focuses on Paulownia leaf-derived biochar [...] Read more.
Biochar has emerged as a multifunctional soil amendment with the potential to mitigate soil degradation, nutrient loss, and water scarcity. However, its effectiveness depends strongly on feedstock type and production conditions, limiting consistent application across agroecosystems. This review focuses on Paulownia leaf-derived biochar (PLB) as a promising feedstock for sustainable soil management. Current knowledge on its production, physicochemical properties, and mechanisms of interaction with the soil environment is synthesized, with emphasis on nutrient storage, water dynamics, and plant responses. To link process-based understanding with practical application, a case-based approach integrates literature evidence with a previously published experimental study evaluating PLB in turfgrass systems under different fertilization and irrigation regimes. The case study illustrates how feedstock-specific properties, including alkaline pH, high cation exchange capacity, mineral enrichment, and a developed pore structure, contribute to enhanced soil functions and turfgrass performance. The combined evidence indicates that PLB may enhance nutrient storage, water availability, and fertilizer-use efficiency, particularly in intensively managed systems. Overall, this review provides an integrated framework for understanding how the physicochemical properties of Paulownia leaf-derived biochar are translated into soil functions and agronomic responses, supporting the targeted selection and application of biochar for sustainable soil management. Full article
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17 pages, 30745 KB  
Article
Loss of AtPLC1 Impairs Salt–Alkali Tolerance via Disruption of Stomatal Regulation and Redox Homeostasis in Arabidopsis thaliana
by Xiang Li, Yu Wang, Linhan Si, Daqian Sun, Nan Wang, Weican Liu, Yuanyuan Dong, Xiaowei Li and Fawei Wang
Plants 2026, 15(17), 2633; https://doi.org/10.3390/plants15172633 - 28 Aug 2026
Viewed by 200
Abstract
Soil salinization poses a major environmental threat to global agriculture, affecting approximately 20% of cultivated land and 50% of irrigated land worldwide. Developing salt–alkali tolerant plant varieties represents a sustainable strategy for utilizing these marginal lands. Phosphatidylinositol-specific phospholipase C (PI-PLC) is a key [...] Read more.
Soil salinization poses a major environmental threat to global agriculture, affecting approximately 20% of cultivated land and 50% of irrigated land worldwide. Developing salt–alkali tolerant plant varieties represents a sustainable strategy for utilizing these marginal lands. Phosphatidylinositol-specific phospholipase C (PI-PLC) is a key enzyme in the phosphoinositide signaling system and has been implicated in plant stress responses; however, its function under salt–alkali stress remains poorly understood. In this study, the function of AtPLC1 in salt–alkali tolerance was investigated, and only the atplc1 mutant exhibited a pronounced stress-sensitive phenotype, with AtPLC1 being predominantly expressed in roots and leaves, with peak expression at 6 h of treatment. Compared with wild-type, atplc1 mutants displayed significantly reduced seedling survival, retarded root growth, decreased biomass, water content, chlorophyll, and soluble sugar contents, yet accumulated higher levels of Na+, malondialdehyde, H2O2, and superoxide anions under salt–alkali stress. Notably, atplc1 mutants showed increased stomatal conductance and decreased leaf surface temperature, as detected by thermal imaging, indicating impaired water regulation. Collectively, our findings demonstrate that AtPLC1 positively regulates salt–alkali tolerance and provides a candidate gene for molecular breeding of stress-resistant crops. Full article
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29 pages, 4829 KB  
Review
Interaction of Microplastics, Plants, and Rhizosphere: A Critical Review
by Ying Guo, Duo Zhang, Wenxin Li, Yuntao Zhao, Wei Su, Yi Xing, Chen Hong, Jianchao Wang, Yong Cui, Han Zhang, Jiayu Chen and Bo Jiang
Molecules 2026, 31(17), 3028; https://doi.org/10.3390/molecules31173028 - 28 Aug 2026
Viewed by 264
Abstract
Over the past decade, microplastic pollution has emerged as a subject of considerable interest and extensive research, with implications for human health and ecosystems. This paper briefly summarized the sources of microplastics and their distribution in the soil. It comprehensively addressed the effects [...] Read more.
Over the past decade, microplastic pollution has emerged as a subject of considerable interest and extensive research, with implications for human health and ecosystems. This paper briefly summarized the sources of microplastics and their distribution in the soil. It comprehensively addressed the effects of microplastics on the soil–plant system, including the impacts on soil physicochemical properties and plant rhizosphere microbial communities. The effects of microplastics on plant growth, along with their transformation and accumulation within plants, were evaluated. Microplastics can adhere to soil particles and root surfaces and, under certain conditions, may associate with outer root tissues or enter plants through damaged or vulnerable sites. Their presence in the soil–plant system may interfere with water and nutrient uptake, affect photosynthesis, and induce cytotoxic or genotoxic responses. Furthermore, the co-occurrence of microplastics with toxic substances or soil remediation materials may exacerbate the adverse effects on plants and ecosystems. Future research should focus on the development of methods for detecting microplastics in soils and plants and investigate the interactions between microplastics and other environmental factors within the soil–plant system. Further investigation is required regarding the role of microplastics in hyperaccumulating plants, particularly concerning plant-based methods for removing heavy metal pollutants. This study establishes a scientific basis for understanding the effects of microplastics on soil–plant systems. Full article
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17 pages, 6057 KB  
Article
Allelopathic Effects of Extracts from Different Sorghum Parts on Giant Foxtail
by Mengyao Liu, Haonan Wang, Haoyan Shen, Jiaxin Xie, Peiyao Li, Xi’e Song, Yinyuan Wen, Chunyan Hu, Yongqing Ma and Shuqi Dong
Plants 2026, 15(17), 2628; https://doi.org/10.3390/plants15172628 - 28 Aug 2026
Viewed by 194
Abstract
Giant foxtail is a common weed in foxtail millet fields, and continuous cropping of foxtail millet increases its occurrence. Rotating foxtail millet with sorghum is a major practice in the dry farming regions of northern China. Given this situation, this study combined Petri [...] Read more.
Giant foxtail is a common weed in foxtail millet fields, and continuous cropping of foxtail millet increases its occurrence. Rotating foxtail millet with sorghum is a major practice in the dry farming regions of northern China. Given this situation, this study combined Petri dish germination tests with pot experiments to clarify the allelopathic effects of water extracts from different sorghum parts on giant foxtail. Distilled water (SCK) was used as the control, and treatments included stock solution (S1), as well as 10× dilution (S2), 50× dilution (S3), and 100× dilution (S4) of water extracts prepared from sorghum roots, stems, leaves, and rhizosphere soil. The results showed that water extracts from all sorghum parts exhibited promotion of giant foxtail seed germination at higher dilutions and inhibition at lower dilutions. The S3 treatment of rhizosphere soil extract achieved a germination rate of 62.22%, which was significantly higher than that of the SCK by 40.00%. The germination energy of root extract S1 was only 4.00%, which was significantly lower than that of the SCK by 86.67%. The S3 treatment showed the strongest allelopathic promotion effect. All dilution treatments promoted the plant height, stem diameter, and above ground fresh and dry weight of giant Foxtail, and these effects increased initially and then stabilized over time. The root extract exhibited higher allelopathic activity than the other extracts. The activities of superoxide dismutase (SOD), peroxidase (POD), and catalase (CAT) first increased and then decreased as the dilution factor increased, while the S1 treatment inhibited enzyme activities and caused an imbalance in the antioxidant system. Sorghum root water extract had a significant effect on CAT activity in giant foxtail, with an increase of 98.82% under the S3 treatment compared with the SCK at 40 d. Malondialdehyde (MDA) content increased with decreasing dilution factor, and the undiluted extract induced membrane lipid peroxidation damage. In conclusion, the allelopathic effects of sorghum extracts on giant foxtail were closely related to the dilution level. Higher dilutions activated the antioxidant defense system and promoted growth, while lower dilutions disrupted enzyme system balance and exacerbated membrane damage. These findings provide basic data and theoretical support for the development and utilization of sorghum allelochemicals and for the green control of giant foxtail. Full article
(This article belongs to the Section Plant Protection and Biotic Interactions)
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16 pages, 3571 KB  
Article
Agronomic and Physiological Responses of Field-Grown Gladiolus (Gladiolus × hybridus L.) to Subsurface Drip and Pressurized Pulse Injection Irrigation
by Magdalena Rowińska, Kacper Parypa and Jan Krężel
Agronomy 2026, 16(17), 1648; https://doi.org/10.3390/agronomy16171648 - 27 Aug 2026
Viewed by 264
Abstract
Moisture deficit is a primary limiting factor in field floriculture, necessitating the adoption of highly efficient irrigation strategies. This three-year field study (2019–2021) evaluated the impact of surface drip, subsurface drip (SDI), and a prototype pulse injection irrigation system against a non-irrigated control [...] Read more.
Moisture deficit is a primary limiting factor in field floriculture, necessitating the adoption of highly efficient irrigation strategies. This three-year field study (2019–2021) evaluated the impact of surface drip, subsurface drip (SDI), and a prototype pulse injection irrigation system against a non-irrigated control on the biometry, corm yield, and mineral profile of Gladiolus × hybridus. Subsurface drip (SDI) and surface drip irrigation provided the most favorable and stable agronomic outcomes, particularly for daughter corm yield and quality. Conversely, pulse injection irrigation showed a highly nuanced response; while it significantly increased generative spike length by 68.5% under severe late-season drought in 2021, it failed to improve overall daughter corm mass and significantly increased plant lodging (15–20%). This performance is hypothesized to stem from localized soil structural disturbance and mechanical stress on the shallow, fibrous root system under high-pressure water delivery (4 bar). Furthermore, chemical analyses revealed that irrigation increased leaf calcium accumulation while simultaneously causing a dilution of nitrogen, phosphorus, and potassium due to increased biomass. In conclusion, SDI is highly recommended for professional gladiolus production to stabilize root-zone moisture and ensure superior commercial quality of both aerial and underground organs, while pressurized pulse injection requires further pressure-nozzle optimization to mitigate physical crop disturbance. Full article
(This article belongs to the Section Water Use and Irrigation)
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28 pages, 12667 KB  
Article
Calcium Sources Mitigate Salt Stress and Improve the Physiological and Productive Performance of Bell Peppers
by Daise Feitoza da Rocha, Enoch de Souza Ferreira, Antonia Gilvanira da Silva, Antonio Genilson Rodrigues Araújo, Gthielly Maíra Fernandes, Emanuel Araújo Alves, Francisco Felipe Barroso Pinto, Pedro Henrique de Araújo Gurgel, Francimar Maik da Silva Morais, Francisco de Assis de Oliveira, Nildo da Silva Dias, Miguel Ferreira Neto, Rafael Oliveira Batista, Hans Raj Gheyi, Alberto Soares de Melo and Antônio Gustavo de Luna Souto
Plants 2026, 15(17), 2620; https://doi.org/10.3390/plants15172620 - 27 Aug 2026
Viewed by 245
Abstract
Bell peppers (Capsicum annuum L.) are of great importance and have high productive potential in Brazil, especially in the Northeast region; however, their production is limited due to salinity problems in water and soil. The objective of this study was to evaluate [...] Read more.
Bell peppers (Capsicum annuum L.) are of great importance and have high productive potential in Brazil, especially in the Northeast region; however, their production is limited due to salinity problems in water and soil. The objective of this study was to evaluate sources and methods of calcium application for mitigating salt stress in bell pepper plants grown in a substrate-based hydroponic system. The experiment was conducted using a split-plot design in a 2 × 2 × 3 layout with four replicates, consisting of two application methods (substrate and spray), two ECiw levels (0.5 and 5.0 dS m−1), and three calcium sources (no calcium—NCa; calcium nitrate—Ca(NO3)2; calcium complexed with amino acids—Ca-AA). Forty-two days after transplanting, gas exchange analysis, chlorophyll a, b, and total chlorophyll indices, chlorophyll fluorescence, fruit number and weight, and yield per plant were measured. Ca-AA showed higher photosystem II efficiency when applied via the substrate and higher stomatal conductance (28.10%), resulted in higher fruit yield compared to the other treatments, and contributed to a reduction in apical rot. Meanwhile, the application of Ca(NO3)2 improved electron transport in photosystem II by 5.46%, gas exchange, and increased chlorophyll b and total chlorophyll indices by 29.62% and 10.93%, respectively. It is concluded that the application of Ca sources, especially Ca-AA, has the potential to mitigate the effects of salt stress on bell pepper plants in a substrate-based hydroponic system, improving their photosynthetic and productive performance. Full article
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23 pages, 10243 KB  
Article
Wheat Dust as a Sustainable Soil Amendment Improves Durum Wheat Performance and Drought Resilience
by Thouraya Ben Hammouda, Wissal M’sehli, Imran Hammami and Darine Trabelsi
Nitrogen 2026, 7(3), 90; https://doi.org/10.3390/nitrogen7030090 - 27 Aug 2026
Viewed by 228
Abstract
Wheat dust, an underutilized agro-industrial by-product, is rich in nutrients and may serve as a sustainable soil amendment. This study evaluated its effects on wheat (Triticum durum L.) growth, nitrogen metabolism, and drought tolerance. Two greenhouse experiments were conducted. First, a dose–response [...] Read more.
Wheat dust, an underutilized agro-industrial by-product, is rich in nutrients and may serve as a sustainable soil amendment. This study evaluated its effects on wheat (Triticum durum L.) growth, nitrogen metabolism, and drought tolerance. Two greenhouse experiments were conducted. First, a dose–response trial (0, 2, 5, 10, 20% w/w) assessed biomass, chlorophyll content (SPAD), and expression of nitrogen-related genes (NR, NRT1, NRT2, GS2). Second, a factorial experiment (0, 10, 20% × well-watered or 50% water capacity) examined growth, yield components, oxidative stress markers (MDA), antioxidant enzymes, soil enzymatic activities, and multivariate responses. Wheat dust elicited concentration-dependent, context-specific effects. Under well-watered conditions, 10% was optimal, increasing shoot biomass (+39%) and chlorophyll (+10–15%), accompanied by upregulation of NR, NRT1, and NRT2, indicating enhanced nitrogen acquisition. Under drought, 20% produced the strongest effects: biomass increased by +313%, seed number per spike by +3900%, and seed weight per spike by +1650% relative to the stressed control. Lipid peroxidation declined by 83%, while chlorophyll increased by +215%, reflecting strong protection of membrane integrity and photosynthetic capacity. Soil biological activity was markedly stimulated at 20% under drought, with FDA hydrolysis (+1320%) and protease activity (+8250%) indicating enhanced microbial functioning and nitrogen cycling. Principal component analysis confirmed a systemic shift from stress-dominated profiles in controls to growth- and metabolism-oriented profiles at 20%, with convergence of stressed and non-stressed plants. Thus, wheat dust improves productivity at moderate doses and confers pronounced drought resilience at higher rates, supporting its valorization within climate-resilient, circular agricultural systems. Full article
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44 pages, 10577 KB  
Review
Multifunctional Hydrogels in Sustainable Agriculture: Structure Design, Application and Future Challenges
by Hanyu Huang, Luohui Wang, Xiaobo Xue, Man Yin, Liyun Wang, Youming Dong, Fei Xiao, Xiangmeng Chen, Cheng Li, Xin Guo, Xian Wang and Lin Zhang
Gels 2026, 12(9), 763; https://doi.org/10.3390/gels12090763 - 26 Aug 2026
Viewed by 284
Abstract
Confronted with severe global challenges, including water scarcity, excessive use of chemical fertilizers and pesticides, and heavy metal contamination in soils, conventional agricultural technologies exhibit marked limitations in integrated water–fertilizer management and non-point source pollution control. Leveraging their excellent water retention capacity, intelligent [...] Read more.
Confronted with severe global challenges, including water scarcity, excessive use of chemical fertilizers and pesticides, and heavy metal contamination in soils, conventional agricultural technologies exhibit marked limitations in integrated water–fertilizer management and non-point source pollution control. Leveraging their excellent water retention capacity, intelligent sustained-release properties, and environmental responsiveness, hydrogels offer innovative solutions to advance sustainable agricultural development. This review comprehensively outlines the fundamental types, crosslinking mechanisms, and key functional properties of hydrogels, with a focused discussion on their agricultural deployment as high-efficiency soil conditioners, fertilizer vectors, and pesticide carriers; it deciphers the microscopic water-holding mechanisms under the tristate water model, delineates the divergent water-uptake and retention behaviors between ionic and non-ionic hydrogels, and clarifies the cyclic water-holding and release mechanisms of hydrogels during soil amelioration. Thise paper further synthesizes hydrogel-enabled environmental remediation applications, in which heavy metals and pesticide residues in soils and aquatic systems are removed via functional-group coordination adsorption or photocatalytic degradation; concurrently, hydrogels have been shown to activate plant systemic immunity through calcium-signaling pathways, thereby inducing broad-spectrum antiviral defense responses. Moreover, hydrogels can be integrated into precision agriculture frameworks to enable real-time monitoring of crop physiological status and to support targeted irrigation and fertilization management. This work also evaluates the role of hydrogels in promoting seed germination, root system development, crop metabolic regulation, and stress resilience, while introducing tailored application strategies across distinct plant growth stages. Their documented economic advantages include water conservation, enhanced crop yields, reduced dependence on synthetic fertilizers, and lower labor costs. Nevertheless, the large-scale implementation of hydrogels continues to face multifaceted challenges—particularly poor degradability and latent ecological risks, as conventional polyacrylamide (PAM)-based gels resist soil mineralization and retain potentially neurotoxic monomers, leaving a critical gap in multi-annual field data concerning their non-target interference with native soil aggregate evolution, pore distribution, and rhizospheric carbon–nitrogen footprints. Mechanistically, many hydrogels with tensile strengths below 1 MPa are highly susceptible to three-dimensional network collapse under high-salinity osmotic shock and tillage mechanical stress, exhibiting a precipitous drop in water retention after more than three wet–dry cycles due to deficient long-term structural stability. Compounding these technical gaps are elevated production costs and low farmer adoption, driven by the absence of texture-specific performance thresholds—such as an available water increment ≥ 40% for sandy soils—and the lack of established life-cycle cost models and farmer incentive mechanisms for bio-based hydrogels. Moving forward, hydrogel technology should pivot toward materials innovation and cost-reduction engineering to broaden its applicability, employ ≥3-year, multi-habitat regional trials to delineate ecological benefit–risk boundaries, and ultimately position hydrogels as pivotal enablers of sustainable, green agricultural paradigms. Full article
(This article belongs to the Special Issue Gel-Related Materials: Challenges and Opportunities (3rd Edition))
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