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Search Results (297)

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Keywords = soil-soluble salt

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23 pages, 6032 KB  
Article
Formation of Soil Regimes in Haplic Chernozems (Loamic, Endocalcaric) Under Conditions of Subsurface Heating and Irrigation
by Vasyl Turcheniuk and Lyudmyla Kuzmych
Sustainability 2026, 18(15), 7618; https://doi.org/10.3390/su18157618 - 27 Jul 2026
Viewed by 114
Abstract
This study presents the results of long-term field experiments investigating the effects of subsurface heating and irrigation with discharged warm water (28–35 °C) on the hydrothermal, redox, biological, and salt regimes of Haplic Chernozem (Loamic, Endocalcaric) in the central Forest-Steppe zone of Ukraine. [...] Read more.
This study presents the results of long-term field experiments investigating the effects of subsurface heating and irrigation with discharged warm water (28–35 °C) on the hydrothermal, redox, biological, and salt regimes of Haplic Chernozem (Loamic, Endocalcaric) in the central Forest-Steppe zone of Ukraine. The experiments were conducted under contrasting hydro-meteorological conditions, allowing assessment of thermo-reclamation practices across a wide range of temperature and soil moisture regimes. Subsurface heating increased soil temperature by 7.3–11.1 °C at the depth of heating pipe installation, while the thermal effect gradually decreased with increasing distance from the heat source. Combined heating and irrigation created a more uniform temperature distribution within the root zone, reduced the depth and duration of soil freezing, and improved hydrothermal conditions throughout the growing season. The studied soils maintained predominantly oxidative conditions under all treatments. However, the combined application of heating and irrigation promoted a more homogeneous distribution and seasonal stabilization of soil redox potential throughout the profile. Soil heating also enhanced microbiological activity, thereby increasing cellulolytic activity, particularly during cold and dry periods when soil temperature and moisture limited microbial processes. Irrigation with slightly mineralized warm wastewater did not cause significant overall soil salinization but resulted in the redistribution of calcium and sodium within the soil profile. Subsurface heating intensified the seasonal dynamics of readily soluble salts, promoting their temporary accumulation near the heating pipes, whereas combined heating and irrigation facilitated subsequent leaching of excess salts into deeper horizons. The integrated application of subsurface heating and irrigation produced the highest and most stable perennial grass productivity, increasing biomass yield by 87–163% compared with the control, irrespective of meteorological conditions. These findings demonstrate that the integrated use of industrial waste heat for subsurface heating combined with irrigation represents a promising and environmentally sustainable thermo-reclamation technology capable of improving soil functioning and agricultural productivity, provided that long-term monitoring of soil water–salt regimes is maintained. Full article
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28 pages, 12735 KB  
Article
Transcriptomic and Physiological Profiling Elucidates Differential Salt Stress Responses in Tolerant ‘SO4’ and Sensitive ‘Beida’ Grapevine Rootstocks
by Abdul Hakeem, Essam Elatafi, Wen Liu, Basma Elhendawy, Abdullah Alebidi, Rashid S. Al-Obeed, Mostafa Saeed, Jinggui Fang and Mahmoud Abdel-Sattar
Int. J. Mol. Sci. 2026, 27(14), 6479; https://doi.org/10.3390/ijms27146479 - 21 Jul 2026
Viewed by 356
Abstract
Soil salinity severely limits grapevine (Vitis spp.) growth and productivity, yet the mechanisms distinguishing tolerant and sensitive rootstocks remain incompletely understood. We compared the salt-tolerant rootstock ‘SO4’ with the salt-sensitive ‘Beida’ under 100 mmol L−1 NaCl for 0, 6, and 12 [...] Read more.
Soil salinity severely limits grapevine (Vitis spp.) growth and productivity, yet the mechanisms distinguishing tolerant and sensitive rootstocks remain incompletely understood. We compared the salt-tolerant rootstock ‘SO4’ with the salt-sensitive ‘Beida’ under 100 mmol L−1 NaCl for 0, 6, and 12 days. Salinity progressively reduced photosynthetic pigments in both genotypes, although ‘SO4’ retained higher levels. Salt treatment also increased hydrogen peroxide, malondialdehyde, soluble sugars, soluble proteins, proline, and antioxidant enzyme activities. Compared with ‘Beida’, ‘SO4’ showed stronger osmotic adjustment and greater activation of superoxide dismutase, peroxidase, catalase, and ascorbate peroxidase. RNA-seq analysis revealed extensive genotype- and time-dependent transcriptional reprogramming, with differentially expressed genes mainly associated with hormone signalling, secondary metabolism, carbon fixation, protein processing, and lipid metabolism. Weighted gene co-expression network analysis identified the MEblack module as positively associated with salt tolerance in ‘SO4’ but negatively associated with ‘Beida’. Within this module, Vitvi01g00735/VvBCA2 and Vitvi07g02043/VvLCB1 were prioritized as candidate hubs based on high module membership, gene significance, and intramodular connectivity. Hub-centred networks linked VvBCA2 to redox regulation, protein homeostasis, defense, and osmotic signalling, whereas VvLCB1 was associated with cell-wall remodelling, methyl metabolism, membrane signalling, and lipid turnover. Transcription-factor families, including MYB, WRKY, AP2/ERF, bHLH, and HSF, were more strongly represented in ‘SO4’. Collectively, these findings identify coordinated physiological and transcriptional mechanisms underlying salt tolerance and provide candidate genes for grapevine improvement. Full article
(This article belongs to the Special Issue Advance in Plant Abiotic Stress: 4th Edition)
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16 pages, 7874 KB  
Article
Biochar and Fertilizer Type Effects on Soil Health Indicators in a Sandy Loam Ultisol of the Georgia Coastal Plain: A Two-Year Field Study
by Emilio Suarez, Hayley Milner, Juan Carlos Diaz Perez, Kate Cassity-Duffey, Henry Y. Sintim and Theodore McAvoy
AgriEngineering 2026, 8(7), 293; https://doi.org/10.3390/agriengineering8070293 - 16 Jul 2026
Viewed by 357
Abstract
Biochar and poultry litter have been proposed as soil amendments to improve soil health in coarse-textured agricultural soils, yet their field performance under southeastern U.S. conditions remains inconclusive. This two-year field study evaluated five biochar application rates (0–44.8 Mg ha−1) combined [...] Read more.
Biochar and poultry litter have been proposed as soil amendments to improve soil health in coarse-textured agricultural soils, yet their field performance under southeastern U.S. conditions remains inconclusive. This two-year field study evaluated five biochar application rates (0–44.8 Mg ha−1) combined with inorganic fertilizer or poultry litter on selected soil health indicators in a sandy loam Ultisol under sweet corn production in the Georgia Coastal Plain. Treatments were arranged in a randomized complete block design with four replications and analyzed using linear mixed-effects models. Biochar application did not significantly affect aggregate stability, pH, cation exchange capacity, soluble salts, organic matter, active carbon, or estimated nitrogen mineralization, with only a marginal three-way interaction observed for microbial respiration. Poultry litter significantly increased microbial respiration relative to inorganic fertilizer, whereas responses for the remaining soil health indicators were broadly similar between fertilizer sources. Year was the dominant source of variation, with extreme rainfall in 2024 reducing aggregate stability, soluble salts, microbial respiration, and nitrogen mineralization while increasing organic matter and active carbon. These findings indicate that short-term soil health responses were driven primarily by environmental conditions rather than management practices. Under the conditions of this study, either fertilizer source can be used successfully, whereas longer-term studies are needed to determine whether biochar aging enhances soil function in sandy loam Ultisols. Full article
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32 pages, 30174 KB  
Article
Soil-Profile Constraints Shape Spectral–Thermal Degradation Patterns in Arid Solonetz Rangelands of Central Kazakhstan: Implications for Sustainable Rangeland Management
by Kenzhe Erzhanova, Sagynbay Kaldybaev, Raushan Ramazanova, Beybit Nasiyev, Iliyas Bekmukhamedov, Konstantin Pachikin, Askhat Naushabayev, Kanat Kulymbet, Ayan Abay, Niyet Abdirakhymov, Ilyas Abdrakhmanov and Galymzhan Saparov
Sustainability 2026, 18(14), 7255; https://doi.org/10.3390/su18147255 - 16 Jul 2026
Viewed by 281
Abstract
Solonetz and Solonetzic rangelands are widespread in arid regions of Central Kazakhstan, where pasture degradation is often difficult to assess because surface vegetation patterns do not always reflect subsurface soil constraints. This study aimed to evaluate degradation patterns in Solonetz pasture ecosystems of [...] Read more.
Solonetz and Solonetzic rangelands are widespread in arid regions of Central Kazakhstan, where pasture degradation is often difficult to assess because surface vegetation patterns do not always reflect subsurface soil constraints. This study aimed to evaluate degradation patterns in Solonetz pasture ecosystems of the Ulytau region by integrating field soil-profile descriptions, laboratory analyses, vegetation observations, forage productivity data and Sentinel-2A-derived MSAVI. Ten monitoring soil profiles were examined for particle-size distribution, soluble salts, ionic composition, exchangeable cations, available N, P and K, vegetation cover and forage yield. USDA textural classification, salt-distribution analysis, Pearson correlation, PCA, RDA and MSAVI-based mapping were used to link soil-profile properties with vegetation and spectral response. The first two PCA axes explained 65.5% of the total variance, while selected soil profile constrains accounted for 58% of the variation in vegetation cover, forage yield and MSAVI in the RDA analyses. The results showed strong profile heterogeneity, with clay enrichment, subsurface salt accumulation, alkalinity and Na- or Mg-related exchange–complex imbalance associated with several degradation pathways. Surface horizons were often weakly saline, whereas deeper layers contained stronger chemical and physical limitations. MSAVI values were low across the monitoring sites and reflected vegetation–soil surface conditions rather than salinity or sodicity directly. MSAVI ranged from 0.0888 to 0.2148, with a mean value of 0.1248. Combining soil-profile diagnostics with Sentinel-2A MSAVI improved the reliability of interpreting spatial degradation patterns and provides a practical framework for monitoring spatially heterogeneous Solonetz rangelands, supporting sustainable rangeland management under arid conditions. Full article
(This article belongs to the Section Soil Conservation and Sustainability)
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18 pages, 3016 KB  
Article
Growth-Promoting Effects of Pseudomonas glycinae Strain XJ-33 on Maize Seedlings Under Salt Stress and Its Physiological Responses
by Mengyuan Wen, Xiu Zhang, Guoping Yang, Xuexian Zhang, Haorong Li, Junyan Ma, Ruixin Zhang, Xiquan Li, Liming Lu and Lankun Long
Plants 2026, 15(14), 2166; https://doi.org/10.3390/plants15142166 - 14 Jul 2026
Viewed by 378
Abstract
To investigate the regulatory effects of salt-tolerant plant growth-promoting rhizobacteria (PGPR) on crop growth under salt stress and to identify superior bacterial resources for saline–alkaline soil improvement, the maize variety Ningdan 33 was used as the experimental material. Strain XJ-33, a salt-tolerant PGPR [...] Read more.
To investigate the regulatory effects of salt-tolerant plant growth-promoting rhizobacteria (PGPR) on crop growth under salt stress and to identify superior bacterial resources for saline–alkaline soil improvement, the maize variety Ningdan 33 was used as the experimental material. Strain XJ-33, a salt-tolerant PGPR isolated from saline–alkaline soil in Ningxia, was selected for inoculation. Based on morphological observation, physiological and biochemical tests, and 16S rRNA gene sequencing, the strain was identified as Pseudomonas glycinae. This strain can tolerate extreme conditions of up to 10% NaCl and a pH of 11.0, and exhibits multiple plant growth-promoting traits, including the production of siderophores and indole-3-acetic acid (IAA), as well as ACC deaminase activity. The results showed that inoculation with XJ-33 significantly promoted the growth of maize seedlings under salt stress. Compared with the control, inoculated plants exhibited significant increases in plant height, root length, and biomass (both fresh and dry weights), with the most pronounced increments observed in shoot and root dry weights, which increased by 82.61% and 81.63%, respectively. Physiological and biochemical analyses revealed that leaf SPAD values, chlorophyll content, and nitrogen content increased by 15.00%, 13.18%, and 18.47%, respectively, following inoculation. Additionally, root activity (indicated by dehydrogenase activity) was significantly enhanced. In terms of stress physiology, inoculation improved the osmotic adjustment capacity of the plants; the levels of soluble sugars, soluble proteins, and proline in both leaves and roots increased significantly, whereas the malondialdehyde (MDA) content, an indicator of membrane lipid peroxidation, decreased significantly. Furthermore, the antioxidant enzyme system was positively modulated: superoxide dismutase (SOD) and catalase (CAT) activities were significantly elevated in both leaves and roots, while peroxidase (POD) activity decreased. In conclusion, strain XJ-33 exhibits robust salt tolerance and strong plant growth-promoting capabilities. It can alleviate salt-induced damage in maize by regulating osmotic balance, enhancing antioxidant defenses, and promoting nutrient uptake, thereby demonstrating significant application potential for saline–alkaline soil improvement and the development of microbial agents. Full article
(This article belongs to the Section Plant Response to Abiotic Stress and Climate Change)
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19 pages, 9927 KB  
Article
Ethylene-Responsive Transcription Factor 013 Regulates Physiological and Molecular Responses to Salt Stress in Arabidopsis thaliana
by Rahmatullah Jan, Shahzad Iqbal, Sajad Ali, Muhammad A. Almalki, Mohammad Alfredan, Sajjad Asaf and Kyung-Min Kim
Antioxidants 2026, 15(7), 834; https://doi.org/10.3390/antiox15070834 - 1 Jul 2026
Viewed by 349
Abstract
Soil salinity severely limits plant growth by disrupting cellular homeostasis and inducing oxidative damage. Although ethylene-responsive transcription factors (ERFs) are central regulators of stress responses, the function of ERF013 in salt stress responses remains poorly understood. In this study, we investigated the role [...] Read more.
Soil salinity severely limits plant growth by disrupting cellular homeostasis and inducing oxidative damage. Although ethylene-responsive transcription factors (ERFs) are central regulators of stress responses, the function of ERF013 in salt stress responses remains poorly understood. In this study, we investigated the role of ERF013 in Arabidopsis thaliana using ERF013 overexpression lines (OE-ERF013) and genome-edited (ge-erf013) under 250 mM NaCl stress, in comparison with wild-type control (CK) and salt-treated wild-type (WT) plants. Under salinity stress, OE-ERF013 plants maintained vigorous shoot and root growth, exhibiting a 17% increase in shoot fresh weight and a 100% in root fresh weight relative to WT-T plants, whereas ge-erf013 mutants displayed severe growth inhibition. Salt stress markedly elevated superoxide (O2) and hydrogen peroxide (H2O2) levels in WT-T (62% and 134%) and ge-erf013 plants (122% and 193%) compared with CK, while OE-ERF013 plants showed a significant reduction in O2·and H2O2 levels, which decreased by 34% and 64%, respectively, relative to WT-T. Improved redox homeostasis in OE-ERF013 plants was associated with enhanced catalase (CAT) and superoxide dismutase (SOD) activities (55% and 44%), increased DPPH radical-scavenging activity (62%), maintained total antioxidant capacity (ABTS), and reduced lipid peroxidation, whereas ge-erf013 plants exhibited a 47% increase in malondialdehyde (MDA) content relative to WT-T. Furthermore, OE-ERF013 plants displayed reduced electrolyte leakage and sustained higher relative water content (RWC), with only a 15% decline under salt stress. Transcript analysis revealed strong upregulation of key ion homeostasis genes (SOS1, SOS2, NHX1, and HKT1) in OE-ERF013 plants, while their expression was suppressed in ge-erf013 mutants relative to WT-T. Additionally, OE-ERF013 plants accumulated higher abscisic acid (ABA) levels and showed increased expression of ABA biosynthesis-related genes (ATAO3 and ATABA3), accompanied by enhanced osmotic adjustment through elevated proline, soluble sugars, and sucrose accumulation, as well as improved chlorophyll stability. Collectively, these results demonstrate that ERF013 acts as a positive regulator of responses to salinity by coordinating ABA signaling, antioxidant defense, ion homeostasis, and osmotic regulation in Arabidopsis thaliana. Full article
(This article belongs to the Section ROS, RNS and RSS)
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14 pages, 15770 KB  
Article
Functional Characterization of DsRD22a and DsRD22b Genes in Dianthus spiculifolius and Their Roles in NaCl and Drought Stress Responses
by Bingjia An, Xingliang Liu, Yikai Wang, Meiqi Wang, Guixian Nan and Aimin Zhou
Horticulturae 2026, 12(7), 761; https://doi.org/10.3390/horticulturae12070761 - 23 Jun 2026
Viewed by 620
Abstract
Drought stress is one of the most prevalent abiotic stressors and severely impairs plant growth and productivity. Therefore, identifying functional genes associated with drought tolerance is essential for the molecular breeding of drought-resistant crops. The RD22 (Responsive to Desiccation 22) gene family encodes [...] Read more.
Drought stress is one of the most prevalent abiotic stressors and severely impairs plant growth and productivity. Therefore, identifying functional genes associated with drought tolerance is essential for the molecular breeding of drought-resistant crops. The RD22 (Responsive to Desiccation 22) gene family encodes conserved BURP domain-containing proteins that participate in plant responses to drought stress. In this study, two RD22 homologs, DsRD22a and DsRD22b, were isolated and characterized from the drought-tolerant ornamental species Dianthus spiculifolius. Sequence analysis showed that both proteins contain a conserved BURP domain and are typical members of the RD22 family. Tissue-specific expression analysis revealed that both genes were predominantly expressed in leaves and stems. Abiotic stress assays demonstrated that the expression levels of DsRD22a and DsRD22b were significantly induced by abscisic acid (ABA), osmotic stress, and salt stress, whereas their transcriptional responses to relatively low-temperature and oxidative stress were relatively weak. Subcellular localization analysis indicated that DsRD22a and DsRD22b proteins are localized in the cytoplasm. Heterologous overexpression assays showed that transgenic Arabidopsis thaliana lines overexpressing DsRD22a or DsRD22b exhibited significantly enhanced tolerance to salt and osmotic stresses compared with wild-type (WT) plants. Soil drought assays further confirmed that the transgenic lines had higher soluble protein contents and improved drought tolerance than WT plants. These findings suggest that DsRD22a and DsRD22b positively regulate plant responses to drought stress, potentially by promoting soluble protein accumulation. Collectively, DsRD22a and DsRD22b represent valuable candidate genes for the genetic improvement of drought tolerance in plants. Full article
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16 pages, 2634 KB  
Article
Chemical Composition and Quantitative Source Apportionment of Aerosols over the Yellow Sea from 2020 to 2024
by Hyomin Kim, Hee Jung Ko, Jiyoung Jeong, Hee-Jung Yoo and Sangmin Oh
Atmosphere 2026, 17(6), 605; https://doi.org/10.3390/atmos17060605 - 12 Jun 2026
Viewed by 441
Abstract
This study examined the chemical composition and quantitative source contributions of coarse (PM10–2.5) and fine (PM2.5) particles in ship-based PM10 and PM2.5 filter samples from 2020 to 2024 across the Yellow Sea. The observations were primarily conducted [...] Read more.
This study examined the chemical composition and quantitative source contributions of coarse (PM10–2.5) and fine (PM2.5) particles in ship-based PM10 and PM2.5 filter samples from 2020 to 2024 across the Yellow Sea. The observations were primarily conducted during the spring season, when the influence of continental air masses from East Asia is pronounced, and detailed analyses of water-soluble ions and elemental species were performed. In coarse particles, sea salt components (e.g., Na+ and Cl) and soil-derived species (e.g., nss-Ca2+ and CO32−) were predominant, whereas fine particles were dominated by secondary inorganic species such as nss-SO42−, NO3−, and NH4+. Source contributions were estimated using Dispersion Normalized Positive Matrix Factorization (DN-PMF), and eight common factors were identified, including sea salt, soil, secondary nitrate, secondary sulfate, oil combustion, biomass burning, marine biogenic emissions, and plant growth. Additionally, an industry factor was uniquely resolved in coarse particles, whereas a mobile source factor was identified in fine particles. In coarse particles, sea salt (30.9%) and soil (15.1%) were the major contributing sources, whereas fine particles were dominated by secondary nitrate (48.6%) and secondary sulfate (15.6%). Potential Source Contribution Function (PSCF) analysis indicated that the sea salt and oil combustion factors in coarse particles were associated with coastal regions of the Yellow Sea and the East China Sea, while the soil factor corresponded spatially with inland regions of northern China. In contrast, the secondary nitrate, secondary sulfate, and biomass burning factors in fine particles showed strong associations with inland regions of eastern China. Using size-resolved DN-PMF and five years of repeated observations over the same marine region, this study provides the first quantitative source apportionment analysis of interannual atmospheric composition variability and long-range transport affecting air quality over the Yellow Sea. Full article
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22 pages, 11519 KB  
Article
Evolution of Physicochemical and Microbial Characteristics During Natural Precipitation Leaching in Dongying’s Moderate–Severe Saline–Alkaline Soil and Its Ecological Significance
by Yu Bai, Xueli Lu, Xiaobin Li, Feng Jiang, Rong Ma, Yue Liu, Zongchang Xu and Meng Wang
Agriculture 2026, 16(12), 1276; https://doi.org/10.3390/agriculture16121276 - 9 Jun 2026
Viewed by 362
Abstract
Soil salinization threatens agricultural production, and increasing extreme rainfall may alter natural leaching processes in coastal saline–alkaline soils. However, the relationships among salt ion migration, alkalinity changes, nutrients, and bacterial communities under natural rainfall leaching remain unclear. Therefore, a phased natural rainfall leaching [...] Read more.
Soil salinization threatens agricultural production, and increasing extreme rainfall may alter natural leaching processes in coastal saline–alkaline soils. However, the relationships among salt ion migration, alkalinity changes, nutrients, and bacterial communities under natural rainfall leaching remain unclear. Therefore, a phased natural rainfall leaching experiment was conducted from June to September 2025 using moderate to severe NaCl-type saline–alkaline soil from Dongying in the Yellow River Delta. The results showed that natural rainfall leaching significantly reduced soluble salt ions, especially Na+, Cl, and SO42−, and rapidly alleviated early salt stress. However, soil pH did not decline continuously with salt reduction, but fluctuated under the buffering effect of the carbonate system, indicating that desalination was not necessarily accompanied by alkalinity alleviation. Available nutrients showed stage-dependent changes, with HN and AK increasing around the middle leaching stage. Bacterial community composition and co-occurrence networks also changed during leaching, and these changes were more closely associated with salt ions and HCO3/pH than with available nutrients. These results suggest that post-rain management of saline–alkaline soils should not rely only on total salinity, but should also consider major salt ions, pH/HCO3, and nutrient availability. Full article
(This article belongs to the Section Agricultural Soils)
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23 pages, 14775 KB  
Article
Experimental Study on Wind Erosion Resistance and Plant Growth Performance of Coastal Sand Stabilized by Soybean Hull-Enzyme-Induced Carbonate Precipitation and Seawater
by Xin Hu, Tao Zhuang, Haoxiang Dong and Huiming Tan
Sustainability 2026, 18(11), 5604; https://doi.org/10.3390/su18115604 - 2 Jun 2026
Viewed by 364
Abstract
To combat coastal wind erosion and develop sustainable stabilization technologies, a resource-efficient technique was developed based on the Enzyme-Induced Carbonate Precipitation (EICP) principle in the coastal regions of China. Utilizing seawater as a multi-ion source and discarded soybean hulls (Glycine max (L.) [...] Read more.
To combat coastal wind erosion and develop sustainable stabilization technologies, a resource-efficient technique was developed based on the Enzyme-Induced Carbonate Precipitation (EICP) principle in the coastal regions of China. Utilizing seawater as a multi-ion source and discarded soybean hulls (Glycine max (L.) Merr.) as a crude urease source, this method is synergized with vegetation to form an environmentally friendly anti-erosion strategy. This study first explored the feasibility of soybean hull-derived urease, then analyzed the impacts of urease activity, reaction liquid volume, and seawater concentration on the germination and growth of Kalimeris indica. The results show that the biochemical mineralization process effectively sequesters soluble Ca2+ and Mg2+ from seawater into stable mineral phases, thereby mitigating salt-induced osmotic stress. Optimal plant growth was achieved at a seawater concentration of 0.2 mol·L−1 and a liquid volume of 200 mL. Furthermore, the biocementation provided robust protection for initial plant growth, achieving an approximately 92.3% reduction in soil loss. Despite the presence of nitrogenous byproducts, the synergistic effect of EICP crusts and developing root systems ensures long-term wind erosion resistance and ecological integrity. This study highlights a functional transition from artificial mineralization to biological anchoring for sustainable coastal restoration. Full article
(This article belongs to the Section Soil Conservation and Sustainability)
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13 pages, 1987 KB  
Article
Effects of Parametarhizium changbaiense on the Growth and Physiological Characteristics of Sugar Beet Seedlings Under Salt–Alkali Stress
by Lin Wang, Hao Wang, Lijian Xu and Wenbo Tan
Agriculture 2026, 16(11), 1224; https://doi.org/10.3390/agriculture16111224 - 1 Jun 2026
Viewed by 440
Abstract
Global crop production faces serious threats from soil salinization. Microbial resources are often exploited to be used as fertilizers or seed coatings to address this issue. Parametarhizium changbaiense, as a novel beneficial microorganism, has been discovered to be capable of assisting limited [...] Read more.
Global crop production faces serious threats from soil salinization. Microbial resources are often exploited to be used as fertilizers or seed coatings to address this issue. Parametarhizium changbaiense, as a novel beneficial microorganism, has been discovered to be capable of assisting limited crops such as mung bean in resisting salt–alkali stress. To investigate the effects of P. changbaiense on sugar beet under salt–alkali stress, the salt (NaCl:Na2SO4, molar ratio 9:1) and alkali (NaHCO3:Na2CO3, molar ratio 9:1) stress were set on sugar beet germplasm 780016B. Results demonstrated that P. changbaiense improved the phenotypic characteristics of sugar beet seedlings under salt–alkali stress. The biomass parameters such as plant height and fresh weight significantly increased by growth-promoting effect. The elevated antioxidant enzyme activity could help protect plants from ROS damage induced by stress. Relative electrical conductivity and MDA content decreased with inoculation, thereby mitigating membrane lipid peroxidation and improving membrane system stability. The higher content of soluble sugar could maintain cell turgor pressure and alleviate osmotic stress. Inoculation with P. changbaiense enhanced chlorophyll content, fluorescence, and photosynthetic capacity. The more superior root vitality and architecture were suitable for the functions of metabolism and absorption. P. changbaiense could promote the growth and physiological characteristics under salt–alkali stress, so it has practical application value in agricultural production. Full article
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20 pages, 2555 KB  
Article
Laboratory Modeling of Soil Responses and Water Quality Changes Induced by Shallow Periodic Water Coverage
by Benjámin Pálffy, Karolina Solymos, István Fekete, László Makó, Gábor Gubucz, Balázs Turuczki and Károly Barta
Water 2026, 18(11), 1302; https://doi.org/10.3390/w18111302 - 27 May 2026
Viewed by 646
Abstract
Inland water management is increasingly important under climate change due to the need for landscape-scale water retention, but in situ studies are limited by fluctuating, shallow, and intermittent water cover. This study simulated prolonged waterlogging under controlled laboratory conditions. Four agricultural soils (Calcisol, [...] Read more.
Inland water management is increasingly important under climate change due to the need for landscape-scale water retention, but in situ studies are limited by fluctuating, shallow, and intermittent water cover. This study simulated prolonged waterlogging under controlled laboratory conditions. Four agricultural soils (Calcisol, Arenosol, Chernozem, and Solonetz) were flooded for 40 days using identical 1:5 soil-to-water ratios at two temperature regimes, at 4 and 22 °C. Given that periodic water cover may conflict with agricultural production, particular attention was paid to crop-relevant indicators, including pH, water-soluble salts, and N, P, K. The laboratory simulation revealed significant differences among soil types and between temperature treatments. Elevated Mg concentrations limited the irrigation suitability of leachate derived from Calcisol, with Mg% values ranging from 57 to 64%, exceeding the 50% guideline threshold. Soil buffering capacity controlled phosphorus and potassium dynamics, resulting in stable or slightly increasing AL-soluble nutrient levels, except in low-buffering sandy soils where up to 3–4-fold variability was observed. Reductive conditions developed early in the Calcisol samples, supported by dissolved oxygen saturation values below 20% during the first days of the experiment. Oxygen saturation increased later, only exceeding 60% twice in the cooled Calcisol treatment, while nitrate–ammonium dynamics reflected changing redox conditions. Temperature significantly affected solubility and nutrient mobility, partly through its influence on microbial activity. These findings improve our understanding of inland water–soil interactions and support the development of sustainable, water-retentive land management strategies. Full article
(This article belongs to the Section Soil and Water)
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18 pages, 2473 KB  
Article
Bacillus pumilus AD14: A Saline-Alkali-Tolerant Plant Growth-Promoting Bacterium for Enhancing Soybean Tolerance and Ameliorating Saline-Alkali Soil
by Changjun Zhou, Yiqing Chen, Ying Yu, Bing Liu, Jidong Yu, Yaokun Wu, Jianying Li, Lan Ma, Gang Chen and Xu Feng
Microorganisms 2026, 14(6), 1168; https://doi.org/10.3390/microorganisms14061168 - 22 May 2026
Viewed by 412
Abstract
According to an FAO report, the total area of saline-alkali land worldwide is approximately 954 million hectares, accounting for about 20% of global cultivated land. Saline-alkali stress significantly reduces soybean (Glycine max L.) yield and quality, and saline-alkali-tolerant plant growth-promoting bacteria (PGPB) [...] Read more.
According to an FAO report, the total area of saline-alkali land worldwide is approximately 954 million hectares, accounting for about 20% of global cultivated land. Saline-alkali stress significantly reduces soybean (Glycine max L.) yield and quality, and saline-alkali-tolerant plant growth-promoting bacteria (PGPB) have shown important application value for soybean planting in such farmlands. In this study, 15 strains of saline-alkali-tolerant bacteria were isolated from saline-alkali soil in Anda City, Heilongjiang Province, China, and identified morphologically, belonging to the genera Enterobacter, Bacillus, Chryseobacterium, Acinetobacter, Enterococcus, and Pseudomonas. Through tests for nitrogen fixation, phosphorus solubilization, potassium solubilization, hydrolase production (including pectinase, amylase, and protease), and germination promotion assays, Bacillus pumilus AD14 was identified as having the best growth-promoting effect on soybean seedlings. Pot experiments in saline-alkali soil showed that AD14 significantly promoted soybean seedling growth, increasing plant height by 5.63–6.37 cm and root length by 3.58–3.99 cm compared to the control. AD14 also enhanced saline-alkali tolerance by improving the activity of antioxidant enzymes including superoxide dismutase (SOD), peroxidase (POD), and catalase (CAT) and increasing soluble sugar and protein contents. Meanwhile, soil pH decreased by 10.94–12.15% and soluble salt content decreased by 9.59–13.39% after planting, and soil enzyme activities (including urease, sucrase, and catalase) increased markedly. These results demonstrate the great potential of AD14 for soybean planting in saline-alkali soil. This study provides a relevant reference for enriching the resources of saline-alkali-tolerant PGPB and developing new biological agents suitable for soybean planting in saline-alkali soils. Full article
(This article belongs to the Section Environmental Microbiology)
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33 pages, 19822 KB  
Article
Responses of Processing Tomato Genotypes Under Varying NaCl Stress Levels and Durations
by Mingya Zhang, Qi Wang, Yudong Liu, Huiying Liu, Wei Xu, Xinting Yang and Shengqun Pang
Plants 2026, 15(10), 1450; https://doi.org/10.3390/plants15101450 - 9 May 2026
Viewed by 868
Abstract
Currently, the escalating global problem of soil salinization severely limits the yield and quality of processing tomatoes. However, the differential responses and salt-tolerance strategies among processing tomato genotypes with different salt tolerances under salt stress remain largely elusive. Therefore, this study used salt-tolerant [...] Read more.
Currently, the escalating global problem of soil salinization severely limits the yield and quality of processing tomatoes. However, the differential responses and salt-tolerance strategies among processing tomato genotypes with different salt tolerances under salt stress remain largely elusive. Therefore, this study used salt-tolerant genotype ‘S39’ and salt-sensitive genotype ‘S37’ as materials. Seeds were sown in plug trays, and seedlings at the two-leaf-one-heart stage were transplanted into hydroponic containers filled with Hoagland nutrient solution. When seedlings reached the four-leaf-one-heart stage, they were exposed to NaCl treatments of 0 mM (control), 120 mM (Na120), and 180 mM (Na180). Plant samples were collected at 3, 6, and 9 days after treatment to determine growth parameters, physiological indices, and gene expression levels, aiming to reveal the dynamic differential responses to salt stress between the two processing tomato genotypes. The results demonstrated that the inhibitory effect of NaCl on the growth of processing tomatoes was aggravated with increasing NaCl concentration and treatment duration. The most significant difference in salt tolerance between the two genotypes was observed at 9 days under 180 mM NaCl treatment. At this sampling point, the relative salt-stress indices of superoxide dismutase (SOD) activity, peroxidase (POD) activity, soluble sugar content, proline content, chlorophyll a, chlorophyll b, and total chlorophyll (a + b) in ‘S39’ were significantly higher than those in ‘S37’ by 31.55%, 53.40%, 66.70%, 65.07%, 20.80%, 15.74%, and 19.44%, respectively. In addition, Na contents in roots and stems, as well as K contents in stems and leaves, were significantly higher in ‘S39’ than in ‘S37’ by 43.40%, 8.67%, 22.08%, and 21.99%, respectively. In contrast, relative electrolyte leakage and malondialdehyde (MDA) content in ‘S37’ were 15.54% and 12.44% higher than those in ‘S39’. In addition, photosynthetic parameters, including net photosynthetic rate (Anet), stomatal conductance (gs), intercellular CO2 concentration (Ci), transpiration rate (E), and chlorophyll fluorescence parameters, were more stable in ‘S39’ than in ‘S37’. In conclusion, ‘S39’ possesses stronger salt tolerance via a multi-level regulatory strategy involving an enhanced antioxidant enzyme system, elevated accumulation of osmoregulatory substances, improved mineral ion balance, and increased stability of the photosynthetic apparatus. This study provides a comprehensive multi-level analysis of the differential salt tolerance mechanisms in processing tomato genotypes with contrasting salt tolerances and lays a theoretical basis for the screening and identification of salt-tolerant germplasm in processing tomatoes. Full article
(This article belongs to the Section Plant Response to Abiotic Stress and Climate Change)
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Article
Comparative Study of Mycorrhizal Rice Seedlings Cultivated Under Suitable and High-Phosphorus Environment in Resisting Saline–Alkali Stress
by Shaoqi Huangfu, Yuanhao Li, Ye Zhao, Lei Tian and Jianfeng Zhang
Appl. Sci. 2026, 16(10), 4620; https://doi.org/10.3390/app16104620 - 8 May 2026
Viewed by 346
Abstract
Rice seedlings are typically grown in high-phosphorus nursery soils in practice, which reduces rice root growth and the plant’s ability to adapt to adverse conditions after transplantation to the paddy field. Thus, it is important to improve rice root development in high-phosphorus nursery [...] Read more.
Rice seedlings are typically grown in high-phosphorus nursery soils in practice, which reduces rice root growth and the plant’s ability to adapt to adverse conditions after transplantation to the paddy field. Thus, it is important to improve rice root development in high-phosphorus nursery soils. Rice root developments are closely connected with soil microorganisms. Arbuscular mycorrhizal fungi (AMF) can promote rice root growth and help improve rice performance in resisting adverse conditions. To illustrate the mechanisms of rice seedlings with AMF inoculation under suitable and high-phosphorus nursery soils in resisting adverse conditions, rice seedlings were cultivated in suitable and high-phosphorus nursery soils inoculated with AMF JD5 (Paraglomus sp.) and transplanted into soda saline–alkaline soils following successful AMF inoculation. Results showed that under high-phosphorus conditions, AMF JD5 inoculation significantly promoted plant height and root elongation, likely through increased total chlorophyll content. Concurrently, proline content was reduced, whereas soluble sugar and soluble protein contents were elevated, indicating alleviation of osmotic stress induced by saline–alkaline conditions. Moreover, AMF JD5-inoculated seedlings exhibited increased CAT activity, which efficiently scavenged reactive oxygen species (ROS) generated under salt–alkaline stress and reduced lipid peroxidation. However, thiobarbituric acid reactive substances (TBARS) content was significantly decreased with AMF inoculation in high-phosphorus conditions. Collectively, these findings suggest that AMF JD5 inoculation in high-phosphorus nursery soils establishes a physiological and biochemical foundation that maintains rice resilience against saline–alkaline stress throughout early growth. Full article
(This article belongs to the Section Applied Microbiology)
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