Multivariate Linkages Between Soil Health, Salinity Stress, and Wheat Yield Under Bio-Organic Management
Abstract
1. Introduction
2. Materials and Methods
2.1. Experimental Location and Design
- Control (CK) without amendments.
- Biofertilizer application with Azospirillum brasilense (Bio1).
- Biofertilizer application with Azotobacter chroococcum (Bio2).
- Compost (C).
- C+Bio1.
- C+Bio2.
2.2. Soil Analysis
2.3. Plant Sampling and Analysis
2.4. Statistical Analysis
3. Results
3.1. Soil Properties
3.2. Plant Productivity
4. Discussion
4.1. Soil Properties
4.2. Plant Productivity
4.3. The Soil–Plant Interactions
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Daba, A.W. Rehabilitation of Soil Salinity and Sodicity Using Diverse Amendments and Plants: A Critical Review. Discov. Environ. 2025, 3, 53. [Google Scholar] [CrossRef]
- Abdelrady, W.A.; Ma, Z.; Elshawy, E.E.; Wang, L.; Askri, S.M.H.; Ibrahim, Z.; Dennis, E.; Kanwal, F.; Zeng, F.; Shamsi, I.H. Physiological and Biochemical Mechanisms of Salt Tolerance in Barley under Salinity Stress. Plant Stress 2024, 11, 100403. [Google Scholar] [CrossRef]
- Minhas, P.S.; Qadir, M. Effects of Irrigation with Saline, Saline-Sodic and Alkali Waters on Soils. In Irrigation Sustainability with Saline and Alkali Waters: Extent, Impacts and Management Guidelines; Minhas, P.S., Qadir, M., Eds.; Springer Nature: Singapore, 2024; pp. 69–110. ISBN 978-981-97-4102-1. [Google Scholar]
- Abuzaid, A.S.; El-Komy, M.S.; Shokr, M.S.; El Baroudy, A.A.; Mohamed, E.S.; Rebouh, N.Y.; Abdel-Hai, M.S. Predicting Dynamics of Soil Salinity and Sodicity Using Remote Sensing Techniques: A Landscape-Scale Assessment in the Northeastern Egypt. Sustainability 2023, 15, 9440. [Google Scholar] [CrossRef]
- Hussain, M.I.; Farooq, M.; Muscolo, A.; Rehman, A. Crop Diversification and Saline Water Irrigation as Potential Strategies to Save Freshwater Resources and Reclamation of Marginal Soils—A Review. Environ. Sci. Pollut. Res. 2020, 27, 28695–28729. [Google Scholar] [CrossRef]
- Su, Y.; Cui, Y.-J.; Dupla, J.-C.; Canou, J. Soil-Water Retention Behaviour of Fine/Coarse Soil Mixture with Varying Coarse Grain Contents and Fine Soil Dry Densities. Can. Geotech. J. 2021, 59, 291–299. [Google Scholar] [CrossRef]
- Meng, G.; Zhu, G.; Jiao, Y.; Qiu, D.; Wang, Y.; Lu, S.; Li, R.; Liu, J.; Chen, L.; Wang, Q.; et al. Soil Salinity Patterns Reveal Changes in the Water Cycle of Inland River Basins in Arid Zones. Hydrol. Earth Syst. Sci. 2025, 29, 5049–5063. [Google Scholar] [CrossRef]
- Chele, K.H.; Tinte, M.M.; Piater, L.A.; Dubery, I.A.; Tugizimana, F. Soil Salinity, a Serious Environmental Issue and Plant Responses: A Metabolomics Perspective. Metabolites 2021, 11, 724. [Google Scholar] [CrossRef]
- EL Sabagh, A.; Islam, M.S.; Skalicky, M.; Ali Raza, M.; Singh, K.; Anwar Hossain, M.; Hossain, A.; Mahboob, W.; Iqbal, M.A.; Ratnasekera, D.; et al. Salinity Stress in Wheat (Triticum aestivum L.) in the Changing Climate: Adaptation and Management Strategies. Front. Agron. 2021, 3, 661932. [Google Scholar] [CrossRef]
- Farooq, M.; Zahra, N.; Ullah, A.; Nadeem, F.; Rehman, A.; Kapoor, R.; Al-Hinani, M.S.; Siddique, K.H.M. Salt Stress in Wheat: Effects, Tolerance Mechanisms, and Management. J. Soil Sci. Plant Nutr. 2024, 24, 8151–8173. [Google Scholar] [CrossRef]
- ur Rehman, S.; Yang, J.; Zhang, J.; Zhang, L.; Hao, X.; Song, R.; Chen, S.; Wang, G.; Hua, L. Salt Stress in Wheat: A Physiological and Genetic Perspective. Plant Stress 2025, 16, 100832. [Google Scholar] [CrossRef]
- Munns, R.; Tester, M. Mechanisms of Salinity Tolerance. Annu. Rev. Plant Biol. 2008, 59, 651–681. [Google Scholar] [CrossRef] [PubMed]
- Hasanuzzaman, M.; Raihan, M.R.; Masud, A.A.; Rahman, K.; Nowroz, F.; Rahman, M.; Nahar, K.; Fujita, M. Regulation of Reactive Oxygen Species and Antioxidant Defense in Plants under Salinity. Int. J. Mol. Sci. 2021, 22, 9326. [Google Scholar] [CrossRef] [PubMed]
- Luo, P.; Feng, X.; Liu, S.; Jiang, Y. Traditional Uses, Phytochemistry, Pharmacology and Toxicology of Ruta graveolens L.: A Critical Review and Future Perspectives. Drug Des. Devel. Ther. 2024, 18, 6459–6485. [Google Scholar] [CrossRef]
- Wang, F.; Zhang, J.; Hu, J.; Wang, H.; Zeng, Y.; Wang, Y.; Huang, P.; Deng, H.; Dahlgren, R.A.; Gao, H.; et al. Simultaneous Suppression of As Mobilization and N2O Emission from NH4+/As-Rich Paddy Soils by Combined Nitrate and Birnessite Amendment. J. Hazard. Mater. 2024, 465, 133451. [Google Scholar] [CrossRef]
- Bello, S.K.; Alayafi, A.H.; AL-Solaimani, S.G.; Abo-Elyousr, K.A.M. Mitigating Soil Salinity Stress with Gypsum and Bio-Organic Amendments: A Review. Agronomy 2021, 11, 1735. [Google Scholar] [CrossRef]
- Hoque, M.N.; Imran, S.; Hannan, A.; Paul, N.C.; Mahamud, M.A.; Chakrobortty, J.; Sarker, P.; Irin, I.J.; Brestic, M.; Rhaman, M.S. Organic Amendments for Mitigation of Salinity Stress in Plants: A Review. Life 2022, 12, 1632. [Google Scholar] [CrossRef] [PubMed]
- Cogger, C.G. Potential Compost Benefits for Restoration Of Soils Disturbed by Urban Development. Compost Sci. Util. 2005, 13, 243–251. [Google Scholar] [CrossRef]
- Carter, M.R.; Sanderson, J.B.; MacLeod, J.A. Influence of Compost on the Physical Properties and Organic Matter Fractions of a Fine Sandy Loam throughout the Cycle of a Potato Rotation. Can. J. Soil Sci. 2004, 84, 211–218. [Google Scholar] [CrossRef]
- Khoso, M.A.; Wagan, S.; Alam, I.; Hussain, A.; Ali, Q.; Saha, S.; Poudel, T.R.; Manghwar, H.; Liu, F. Impact of Plant Growth-Promoting Rhizobacteria (PGPR) on Plant Nutrition and Root Characteristics: Current Perspective. Plant Stress 2024, 11, 100341. [Google Scholar] [CrossRef]
- Al-Turki, A.; Murali, M.; Omar, A.F.; Rehan, M.; Sayyed, R.Z. Recent Advances in PGPR-Mediated Resilience toward Interactive Effects of Drought and Salt Stress in Plants. Front. Microbiol. 2023, 14, 1214845. [Google Scholar] [CrossRef]
- Zeng, Y.; Wang, H.; Hu, J.; Zhang, J.; Wang, F.; Wang, T.; Zhou, Q.; Dahlgren, R.A.; Gao, M.; Gao, H.; et al. Illuminated Fulvic Acid Stimulates Denitrification and As(III) Immobilization in Flooded Paddy Soils via an Enhanced Biophotoelectrochemical Pathway. Sci. Total Environ. 2024, 912, 169670. [Google Scholar] [CrossRef]
- Addisu, A.; Molla, E.; Dereje, G. Responses of Soil Properties and Yield of Bread Wheat to Compost and Lime Application on Acidic Soils of Banja District Northwestern Ethiopia. Discov. Agric. 2025, 3, 32. [Google Scholar] [CrossRef]
- Difco, L. Difco Manual of Dehydrated Culture Media and Reagents for Microbiological and Clinical Laboratory Procedures, 9th ed.; Digestive Ferments Company; Difco Laboratories: Detroit, MI, USA, 1953. [Google Scholar]
- Scheldrick, B.H. Particle Size Distribution. In Soil Sampling and Methods of Analysis; Lewis Publishers: Boca Raton, FL, USA, 1993; pp. 499–512. [Google Scholar]
- Briggs, D.J. Soils: Sources and Methods in Geography; Butterworths: Washington, DC, USA, 1977; ISBN 0408709111. [Google Scholar]
- Herrick, J.E.; Jones, T.L. A Dynamic Cone Penetrometer for Measuring Soil Penetration Resistance. Soil Sci. Soc. Am. J. 2002, 66, 1320–1324. [Google Scholar] [CrossRef]
- Nelson, D.W.; Sommers, L.E. Total Carbon, Organic Carbon, and Organic Matter. In Methods of Soil Analysis: Part 3 Chemical Methods; Soil Science Society of America, Inc.: Madison, WI, USA, 1996; Volume 5, pp. 961–1010. [Google Scholar]
- Soil, S.S. Keys to Soil Taxonomy; Government Printing Office: Washington, DC, USA, 2014.
- Olsen, S.R. Estimation of Available Phosphorus in Soils by Extraction with Sodium Bicarbonate; US Department of Agriculture: Washington, DC, USA, 1954.
- Page, A.L.; Miller, R.H.; Keeney, D.R. Methods of Soil Analysis: Part 2 Chemical and Microbiological Properties; Agronomy Monographs; American Society of Agronomy: Madison, WI, USA, 1983. [Google Scholar]
- El-Sharkawy, M.; EL-Aziz, M.A.; Khalifa, T. Effect of Nano-Zinc Application Combined with Sulfur and Compost on Saline-Sodic Soil Characteristics and Faba Bean Productivity. Arab. J. Geosci. 2021, 14, 1178. [Google Scholar] [CrossRef]
- Metho, L.A.; Hammes, P.S. The Harvest Index of Individual Ears of Four South African Wheat (Triticum aestivum L.) Cultivars. S. Afr. J. Plant Soil 2000, 17, 144–146. [Google Scholar] [CrossRef]
- Chapman, H.D.; Pratt, P.F. Method of Analysis for Soils, Plants and Waters, University of California (Riverside) Division of Agriculture Sciences; University of California: Berkeley, CA, USA, 1961. [Google Scholar]
- Cottenie, A.; Verloo, M.; Kiekens, L. Chemical Analysis of Plants and Soils; Laboratory of Analytical and Agrochemistry: Gent, Belgium, 1982; Volume 42. [Google Scholar]
- Bates, L.S.; Waldren, R.P.; Teare, I.D. Rapid Determination of Free Proline for Water-Stress Studies. Plant Soil 1973, 39, 205–207. [Google Scholar] [CrossRef]
- Kar, M.; Mishra, D. Catalase, Peroxidase, and Polyphenoloxidase Activities during Rice Leaf Senescence 1. Plant Physiol. 1976, 57, 315–319. [Google Scholar] [CrossRef]
- Leogrande, R.; Vitti, C. Use of Organic Amendments to Reclaim Saline and Sodic Soils: A Review. Arid L. Res. Manag. 2019, 33, 1–21. [Google Scholar] [CrossRef]
- Peng, Y.; Zhang, H.; Lian, J.; Zhang, W.; Li, G.; Zhang, J. Combined Application of Organic Fertilizer with Microbial Inoculum Improved Aggregate Formation and Salt Leaching in a Secondary Salinized Soil. Plants 2023, 12, 2945. [Google Scholar] [CrossRef]
- Peng, Y.; Zhang, H.; Li, G.; Zhang, J. Microbial Inoculum Improved Soil Aggregate Formation and Increased Cucumber Yield in a Greenhouse under Secondary Salinization Conditions. J. Environ. Manag. 2025, 376, 124576. [Google Scholar] [CrossRef] [PubMed]
- Li, R.; Tao, R.; Ling, N.; Chu, G. Chemical, Organic and Bio-Fertilizer Management Practices Effect on Soil Physicochemical Property and Antagonistic Bacteria Abundance of a Cotton Field: Implications for Soil Biological Quality. Soil Tillage Res. 2017, 167, 30–38. [Google Scholar] [CrossRef]
- Celik, I.; Gunal, H.; Budak, M.; Akpinar, C. Effects of Long-Term Organic and Mineral Fertilizers on Bulk Density and Penetration Resistance in Semi-Arid Mediterranean Soil Conditions. Geoderma 2010, 160, 236–243. [Google Scholar] [CrossRef]
- Ma, S.; Cao, Y.; Lu, J.; Ren, T.; Cong, R.; Lu, Z.; Zhu, J.; Li, X. Response of Soil Aggregation and Associated Organic Carbon to Organic Amendment and Its Controls: A Global Meta-Analysis. Catena 2024, 237, 107774. [Google Scholar] [CrossRef]
- Yu, Z.; Zhang, J.; Zhang, C.; Xin, X.; Li, H. The Coupling Effects of Soil Organic Matter and Particle Interaction Forces on Soil Aggregate Stability. Soil Tillage Res. 2017, 174, 251–260. [Google Scholar] [CrossRef]
- Zhao, H.; Li, J.; Li, X.; Hu, Q.; Guo, X.; Wang, Y.; Zhao, Y.; Gan, G.Y. Response of Soil Organic Carbon and Bacterial Community to Amendments in Saline-Alkali Soils of the Yellow River Delta. Eur. J. Soil Sci. 2025, 76, e70147. [Google Scholar] [CrossRef]
- Zhang, G.; Bai, J.; Jia, J.; Wang, W.; Wang, D.; Zhao, Q.; Wang, C.; Chen, G. Soil Microbial Communities Regulate the Threshold Effect of Salinity Stress on SOM Decomposition in Coastal Salt Marshes. Fundam. Res. 2023, 3, 868–879. [Google Scholar] [CrossRef] [PubMed]
- Wong, V.N.L.; Dalal, R.C.; Greene, R.S.B. Carbon Dynamics of Sodic and Saline Soils Following Gypsum and Organic Material Additions: A Laboratory Incubation. Appl. Soil Ecol. 2009, 41, 29–40. [Google Scholar] [CrossRef]
- Rezapour, S.; Nouri, A.; Asadzadeh, F.; Qin, R.; Erpul, G. Integrated Organochemical—Microbial Solutions Remediate Degraded Saline-Sodic Soils. Int. Soil Water Conserv. Res. 2025, 13, 992–1007. [Google Scholar] [CrossRef]
- Mi, W.; Sun, Y.; Xia, S.; Zhao, H.; Mi, W.; Brookes, P.C.; Liu, Y.; Wu, L. Effect of Inorganic Fertilizers with Organic Amendments on Soil Chemical Properties and Rice Yield in a Low-Productivity Paddy Soil. Geoderma 2018, 320, 23–29. [Google Scholar] [CrossRef]
- Chenu, C.; Cosentino, D. Microbial Regulation of Soil Structural Dynamics. In The Architecture and Biology of Soils; Ritz, E., Young, I., Eds.; CAB International: Oxfordshire, UK, 2011; pp. 37–70. [Google Scholar] [CrossRef]
- Elmeknassi, M.; Elghali, A.; de Carvalho, H.W.P.; Laamrani, A.; Benzaazoua, M. A Review of Organic and Inorganic Amendments to Treat Saline-Sodic Soils: Emphasis on Waste Valorization for a Circular Economy Approach. Sci. Total Environ. 2024, 921, 171087. [Google Scholar] [CrossRef]
- Bastida, F.; Kandeler, E.; Hernández, T.; García, C. Long-Term Effect of Municipal Solid Waste Amendment on Microbial Abundance and Humus-Associated Enzyme Activities Under Semiarid Conditions. Microb. Ecol. 2008, 55, 651–661. [Google Scholar] [CrossRef]
- Wu, L.; Zhang, S.; Ma, R.; Chen, M.; Wei, W.; Ding, X. Carbon Sequestration under Different Organic Amendments in Saline-Alkaline Soils. Catena 2021, 196, 104882. [Google Scholar] [CrossRef]
- Tao, W.-Q.; Wu, Q.-Q.; Zhang, J.; Chang, T.-T.; Liu, X.-N. Effects of Applying Organic Amendments on Soil Aggregate Structure and Tomato Yield in Facility Agriculture. Plants 2024, 13, 3064. [Google Scholar] [CrossRef]
- Guo, L.; Nie, Z.; Zhou, J.; Zhang, S.; An, F.; Zhang, L.; Tóth, T.; Yang, F.; Wang, Z. Effects of Different Organic Amendments on Soil Improvement, Bacterial Composition, and Functional Diversity in Saline–Sodic Soil. Agronomy 2022, 12, 2294. [Google Scholar] [CrossRef]
- Wang, M.; Zhao, S.; Wang, L.; Chen, S.; Li, S.; Lei, X.; Sun, X.; Qin, L. Salt Stress-Induced Changes in Microbial Community Structures and Metabolic Processes Result in Increased Soil Cadmium Availability. Sci. Total Environ. 2021, 782, 147125. [Google Scholar] [CrossRef]
- Zambelli, A.; Nocito, F.F.; Araniti, F. Unveiling the Multifaceted Roles of Root Exudates: Chemical Interactions, Allelopathy, and Agricultural Applications. Agronomy 2025, 15, 845. [Google Scholar] [CrossRef]
- Zhang, Y.; Du, Y.; Mu, Z.; Islam, W.; Zeng, F.; Gonzalez, N.C.T.; Zhang, Z. Impact of Seasonal Changes on Root-Associated Microbial Communities among Phreatophytes of Three Basins in Desert Ecosystem. Front. Plant Sci. 2025, 16, 1554879. [Google Scholar] [CrossRef]
- Prajapati, P.; Yadav, M.; Nishad, J.H.; Gautam, V.S.; Kharwar, R.N. Salt Tolerant Fungal Endophytes Alleviate the Growth and Yield of Saline-Affected Wheat Genotype PBW-343. Microbiol. Res. 2024, 278, 127514. [Google Scholar] [CrossRef]
- Gupta, S.; Schillaci, M.; Walker, R.; Smith, P.M.C.; Watt, M.; Roessner, U. Alleviation of Salinity Stress in Plants by Endophytic Plant-Fungal Symbiosis: Current Knowledge, Perspectives and Future Directions. Plant Soil 2021, 461, 219–244. [Google Scholar] [CrossRef]
- Yang, M.; Zhang, Y.; Tan, X.; Li, L.; OuYang, Q.; Tao, N. Sodium Cuminate Inhibits the Mycelial Growth of Penicillium Digitatum by Inducing Oxidative Stress and Damaging the Cell Membrane. J. Fungi 2025, 11, 612. [Google Scholar] [CrossRef] [PubMed]
- Mao, X.; Yang, Y.; Guan, P.; Geng, L.; Ma, L.; Di, H.; Liu, W.; Li, B. Remediation of Organic Amendments on Soil Salinization: Focusing on the Relationship between Soil Salts and Microbial Communities. Ecotoxicol. Environ. Saf. 2022, 239, 113616. [Google Scholar] [CrossRef]
- Sree, S.S.; Al-zharani, M.; Nasr, F.A.; Alneghery, L.M.; Kumar, T.T.A.; Sureshkumar, B.T.; Mohamed, J.M.M.; Ravichandran, M.; Dineshkumar, R. Innovative Bio-Amelioration Strategies for Sustainable Reclamation of Salt-Affected Agroecosystems: A Review. Plant Soil 2025, 516, 67–114. [Google Scholar] [CrossRef]
- Prisa, D.; Fresco, R.; Spagnuolo, D. Microbial Biofertilisers in Plant Production and Resistance: A Review. Agriculture 2023, 13, 1666. [Google Scholar] [CrossRef]
- Piccolo, A.; Drosos, M. The Essential Role of Humified Organic Matter in Preserving Soil Health. Chem. Biol. Technol. Agric. 2025, 12, 21. [Google Scholar] [CrossRef]
- Islam, M.D.; Binte, B.I.; Hazzazi, Y.; Kamal, M.Z.U. Factors Affecting Biopore-Root Interaction: A Review. Discov. Agric. 2024, 2, 67. [Google Scholar] [CrossRef]
- Zhao, Y.; Bian, Q.; Dong, Z.; Rao, X.; Wang, Z.; Fu, Y.; Chen, B. The Input of Organic Fertilizer Can Improve Soil Physicochemical Properties and Increase Cotton Yield in Southern Xinjiang. Front. Plant Sci. 2025, 15, 1520272. [Google Scholar] [CrossRef]
- Hossain, M.B.; Rahman, M.M.; Biswas, J.C.; Miah, M.M.U.; Akhter, S.; Maniruzzaman, M.; Choudhury, A.K.; Ahmed, F.; Shiragi, M.H.K.; Kalra, N. Carbon Mineralization and Carbon Dioxide Emission from Organic Matter Added Soil under Different Temperature Regimes. Int. J. Recycl. Org. Waste Agric. 2017, 6, 311–319. [Google Scholar] [CrossRef]
- Ashraf, M.; Foolad, M.R. Crop Breeding for Salt Tolerance in the Era of Molecular Markers and Marker-Assisted Selection. Plant Breed. 2013, 132, 10–20. [Google Scholar] [CrossRef]
- El-Sharkawy, M.; Li, J.; AL-Huqail, A.A.; Du, D.; EL-Khamisy, R.R.; El-Gamal, B.A. Sustainable Microbial Strategies for Enhancing Soil Fertility and Wheat (Triticum aestivum L.) Production. J. Soil Sci. Plant Nutr. 2025, 25, 496–513. [Google Scholar] [CrossRef]
- Ho, T.T.K.; Tra, V.T.; Le, T.H.; Nguyen, N.-K.-Q.; Tran, C.-S.; Nguyen, P.-T.; Vo, T.-D.-H.; Thai, V.-N.; Bui, X.-T. Compost to Improve Sustainable Soil Cultivation and Crop Productivity. Case Stud. Chem. Environ. Eng. 2022, 6, 100211. [Google Scholar] [CrossRef]
- Zhou, L.; Liu, W.; Duan, H.; Dong, H.; Li, J.; Zhang, S.; Zhang, J.; Ding, S.; Xu, T.; Guo, B. Improved Effects of Combined Application of Nitrogen-Fixing Bacteria Azotobacter Beijerinckii and Microalgae Chlorella Pyrenoidosa on Wheat Growth and Saline-Alkali Soil Quality. Chemosphere 2023, 313, 137409. [Google Scholar] [CrossRef] [PubMed]
- Pirzada, A.M.; Anwar, T.; Qureshi, W.A.; Qureshi, H.; Siddiqi, E.H.; Zaman, W.; Soufan, W. Salinity Stress Mitigation in Wheat through Synergistic Application of Ascorbic Acid, Nanoparticles and Salvadora Oleoides Extract. Sci. Rep. 2024, 14, 30687. [Google Scholar] [CrossRef]
- Flowers, T.J.; Munns, R.; Colmer, T.D. Sodium Chloride Toxicity and the Cellular Basis of Salt Tolerance in Halophytes. Ann. Bot. 2015, 115, 419–431. [Google Scholar] [CrossRef] [PubMed]
- Singh, P.; Sharma, S.; Nisar, S.; Choudhary, O.P. Structural Stability and Organic Matter Stabilization in Soils: Differential Impacts of Soil Salinity and Sodicity. J. Soil Sci. Plant Nutr. 2023, 23, 1751–1773. [Google Scholar] [CrossRef]
- Liu, T.; Xia, L.; Dong, X.; Wang, J.; Liu, X.; Sun, H.; Fang, Y. Saline Water Concentration Determines the Reduction Pathway for Oat Phosphorus Absorption. Agric. Water Manag. 2025, 307, 109236. [Google Scholar] [CrossRef]
- Shahzad, M.; Hayat, R.; Mujtaba, G.; Rehman, W.U.; Nadeem, M. Biofertilizers in Sustainable Agriculture: Mechanisms, Applications, and Future Prospects. Discov. Agric. 2025, 3, 224. [Google Scholar] [CrossRef]
- Rao, M.J.; Duan, M.; Zhou, C.; Jiao, J.; Cheng, P.; Yang, L.; Wei, W.; Shen, Q.; Ji, P.; Yang, Y.; et al. Antioxidant Defense System in Plants: Reactive Oxygen Species Production, Signaling, and Scavenging During Abiotic Stress-Induced Oxidative Damage. Horticulturae 2025, 11, 477. [Google Scholar] [CrossRef]
- Kumar, S.; Diksha; Sindhu, S.S.; Kumar, R. Biofertilizers: An Ecofriendly Technology for Nutrient Recycling and Environmental Sustainability. Curr. Res. Microb. Sci. 2022, 3, 100094. [Google Scholar] [CrossRef] [PubMed]
- Gill, S.S.; Tuteja, N. Reactive Oxygen Species and Antioxidant Machinery in Abiotic Stress Tolerance in Crop Plants. Plant Physiol. Biochem. 2010, 48, 909–930. [Google Scholar] [CrossRef]
- Wang, Y.; Guo, T.; Tian, C.; Zhang, K.; Zhao, Z.; Mao, X.; Mai, W. Effects of Root Growth on Salt Leaching and Soil Structure Improvement in Saline Soils: A Case Study of Suaeda Salsa. Agric. Water Manag. 2025, 314, 109533. [Google Scholar] [CrossRef]
- Azam, G.; Wickramarachchi, K.; Scanlan, C.; Chen, Y. Deep and Continuous Root Development in Ameliorated Soil Improves Water and Nutrient Uptakes and Wheat Yield in Water-Limited Conditions. Plant Soil 2025, 512, 1405–1420. [Google Scholar] [CrossRef]
- Loudari, A.; Mansouri, H.; Colinet, G.; Oukarroum, A. Growth and Physiological Responses of Wheat Plants to Polyphosphate and Orthophosphate Fertilizers Supply under Salt Stress. Plant Physiol. Biochem. 2025, 229, 110509. [Google Scholar] [CrossRef] [PubMed]
- Chauhan, J.; Prathibha, M.D.; Singh, P.; Choyal, P.; Mishra, U.N.; Saha, D.; Kumar, R.; Anuragi, H.; Pandey, S.; Bose, B.; et al. Plant Photosynthesis under Abiotic Stresses: Damages, Adaptive, and Signaling Mechanisms. Plant Stress 2023, 10, 100296. [Google Scholar] [CrossRef]
- Liu, Y.; Lan, X.; Hou, H.; Ji, J.; Liu, X.; Lv, Z. Multifaceted Ability of Organic Fertilizers to Improve Crop Productivity and Abiotic Stress Tolerance: Review and Perspectives. Agronomy 2024, 14, 1141. [Google Scholar] [CrossRef]
- Khalid, F.; Rasheed, Y.; Asif, K.; Ashraf, H.; Maqsood, M.F.; Shahbaz, M.; Zulfiqar, U.; Sardar, R.; Haider, F.U. Plant Biostimulants: Mechanisms and Applications for Enhancing Plant Resilience to Abiotic Stresses. J. Soil Sci. Plant Nutr. 2024, 24, 6641–6690. [Google Scholar] [CrossRef]
- Kalteh, A.M.; Hjorth, P.; Berndtsson, R. Review of the Self-Organizing Map (SOM) Approach in Water Resources: Analysis, Modelling and Application. Environ. Model. Softw. 2008, 23, 835–845. [Google Scholar] [CrossRef]
- Liu, H.-Q.; Lu, X.-B.; Li, Z.-H.; Tian, C.-Y.; Song, J. The Role of Root-Associated Microbes in Growth Stimulation of Plants under Saline Conditions. Land Degrad. Dev. 2021, 32, 3471–3486. [Google Scholar] [CrossRef]
- Kurup, S.S.; Abdul Mohsen Ali Salem, M.; Cheruth, A.J.; Sreeramanan, S.; Purayil, F.T.; Al Amouri, A.W.; Pessarakli, M. Changes in Antioxidant Enzyme Activity in Turfgrass Cultivars Under Various Saline Water Irrigation Levels To Suit Landscapes Under Arid Regions. Commun. Soil Sci. Plant Anal. 2017, 48, 1989–2001. [Google Scholar] [CrossRef]

Upper and lower mean + SD.
Upper and lower mean + SD.






| Traits | Values | 1st Season | 2nd Season | ||||||
|---|---|---|---|---|---|---|---|---|---|
| Soil | Water (1) | Water (2) | Compost | Soil | Water (1) | Water (2) | Compost | ||
| pH | - | 7.93 $ | 8.18 | 7.73 | 6.85 α | 7.82 $ | 8.19 | 7.57 | 6.87 α |
| EC | dS m−1 | 4.08 $ | 2.91 | 6.39 | 3.53 α | 4.38 $ | 2.85 | 6.41 | 3.48 α |
| SAR | % | 12.87 | 9.01 | 13.94 | - | 11.22 | 8.92 | 13.96 | - |
| ESP | % | 15.15 | 10.75 | 16.18 | - | 13.51 | 10.64 | 16.2 | - |
| Available (N) | mg kg−1 | 37.54 | 3.94 | - | 1.47 * | 32.74 | 3.83 * | - | 1.45 * |
| Available (P) | mg kg−1 | 5.97 | - | - | 0.74 * | 6.14 | - | - | 0.71 * |
| Available (K) | mg kg−1 | 224 | - | - | 1.37 * | 235 | - | - | 1.29 * |
| OM | % | 1.31 | - | - | 38.25 | 1.26 | - | - | 38.22 |
| CaCO3 | % | 2.26 | - | - | 16.32 | 2.29 | - | - | 16.59 |
| Sand | % | 18.87 | - | - | - | 18.61 | - | - | - |
| Silt | % | 27.37 | - | - | - | 27.12 | - | - | - |
| Clay | % | 53.76 | - | - | - | 54.27 | - | - | - |
| Texture class | - | Clayey | - | - | - | Clayey | - | - | - |
| F.C | % | 44.42 | - | - | - | 44.31 | - | - | - |
| W. P | % | 23.51 | - | - | - | 23.65 | - | - | - |
| Bulk density | kg m−3 | 1.39 | - | - | - | 1.38 | - | - | - |
| TP | % | 47.55 | - | - | - | 47.92 | - | - | - |
| SPR | N cm−2 | 330 | - | - | - | 340 | - | - | - |
| Total Mn | mg kg−1 | - | - | - | 298 | - | - | - | 287 |
| Total Fe | mg kg−1 | - | - | - | 3221 | - | - | - | 3324 |
| Total Zn | mg kg−1 | - | - | - | 72 | - | - | - | 76 |
| Salinity | Verities | Treatments | pH | EC | ESP | OM | MBC | BD | SPR |
|---|---|---|---|---|---|---|---|---|---|
| dS m−1 | % | % | mg C g−1 Soil | g cm−3 | N m−2 | ||||
| 3 (dS m−1) | Miser 4 | CK | 7.96 ± 0.66 a | 5.59 ± 0.46 hi | 17.80 ± 1.45 f | 0.93 ± 0.07 k | 0.46 ± 0.03 i | 1.42 ± 0.1 e | 300.05 ± 23.68 abc |
| Bio1 | 7.65 ± 0.64 hi | 5.24 ± 0.45 jk | 17.42 ± 1.43 g | 1.11 ± 0.09 h | 0.59 ± 0.04 jh | 1.41 ± 0.1 g | 295.09 ± 23.69 abc | ||
| Bio2 | 7.69 ± 0.65 fg | 5.36 ± 0.44 ij | 17.35 ± 1.43 g | 1.18 ± 0.10 ef | 0.60 ± 0.04 e | 1.40 ± 0.1 h | 290.00 ± 22.87 bc | ||
| C | 7.59 ± 0.63 jk | 4.51 ± 0.35 l | 15.57 ± 1.25 jk | 1.23 ± 0.10 d | 0.66 ± 0.04 cd | 1.35 ± 0.1 m | 279.94 ± 22.86 bc | ||
| C+Bio1 | 7.54 ± 0.63 l | 3.90 ± 0.29 m | 14.71 ± 1.24 m | 1.33 ± 0.18 b | 0.68 ± 0.05 bc | 1.36 ± 0.1 m | 280.09 ± 32.66 bc | ||
| C+Bio2 | 7.51 ± 0.63 l | 3.35 ± 0.47 n | 14.28 ± 1.23 n | 1.36 ± 0.11 ab | 0.70 ± 0.05 ab | 1.35 ± 0.1 no | 275.52 ± 22.09 c | ||
| Sakha 95 | CK | 7.96 ± 0.68 a | 5.96 ± 0.48 g | 18.23 ± 1.49 d | 0.71 ± 0.06 m | 0.35 ± 0.03 l | 1.44 ± 0.1 a | 405.03 ± 31.85 a | |
| Bio1 | 7.80 ± 0.65 c | 5.95 ± 0.38 g | 18.02 ± 1.46 e | 1.03 ± 0.08 j | 0.52 ± 0.04 i | 1.43 ± 0.1 c | 395.12 ± 24.50 ab | ||
| Bio2 | 7.72 ± 0.65 ef | 5.07 ± 0.34 k | 18.05 ± 1.50 de | 1.14 ± 0.10 gh | 0.58 ± 0.04 fg | 1.41 ± 0.1 f | 395.00 ± 31.84 ab | ||
| C | 7.66 ± 0.64 ef | 5.92 ± 0.47 g | 14.24 ± 1.22 n | 1.23 ± 0.10 d | 0.65 ± 0.04 d | 1.37 ± 0.1 k | 324.93 ± 23.12 abc | ||
| C+Bio1 | 7.66 ± 0.64 gh | 4.06 ± 0.27 m | 13.92 ± 1.17 o | 1.29 ± 0.11 c | 0.66 ± 0.05 cd | 1.37 ± 0.1 l | 320.11 ± 26.14 abc | ||
| C+Bio2 | 7.62 ± 0.64 gh | 4.60 ± 0.35 l | 13.69 ± 1.14 p | 1.34 ± 0.11 ab | 0.68 ± 0.05 ab | 1.36 ± 0.1 l | 315.59 ± 25.36 abc | ||
| 6 (dS m−1) | Miser 4 | CK | 7.75 ± 0.65 ij | 7.66 ± 0.61 d | 18.74 ± 1.52 c | 0.86 ± 0.07 l | 0.44 ± 0.03 k | 1.42 ± 0.1 d | 310.01 ± 25.31 abc |
| Bio1 | 7.65 ± 0.64 de | 7.32 ± 0.60 e | 17.71 ± 1.45 f | 1.07 ± 0.09 i | 0.55 ± 0.04 h | 1.39 ± 0.1 i | 300.09 ± 24.50 abc | ||
| Bio2 | 7.60 ± 0.63 hi | 7.23 ± 0.60 e | 17.65 ± 1.45 f | 1.18 ± 0.10 ef | 0.60 ± 0.04 e | 1.38 ± 0.1 j | 300.00 ± 24.50 abc | ||
| C | 7.42 ± 0.63 jk | 6.64 ± 0.54 f | 16.66 ± 1.30 h | 1.21 ± 0.11 c | 0.68 ± 0.05 ab | 1.35 ± 0.1 n | 290.10 ± 23.69 bc | ||
| C+Bio1 | 7.38 ± 0.61 m | 5.92 ± 0.52 g | 15.82 ± 1.30 i | 1.33 ± 0.11 ab | 0.69 ± 0.05 ab | 1.35 ± 0.1 no | 289.94 ± 23.67 bc | ||
| C+Bio2 | 7.36 ± 0.60 n | 5.81 ± 0.53 gh | 15.95 ± 1.29 i | 1.37 ± 0.11 a | 0.70 ± 0.05 a | 1.34 ± 0.11 o | 290.55 ± 23.72 bc | ||
| Sakha 95 | CK | 7.90 ± 0.61 n | 9.41 ± 0.63 a | 19.22 ± 1.53 a | 0.69 ± 0.06 m | 0.35 ± 0.03 l | 1.44 ± 0.12 a | 364.98 ± 33.48 abc | |
| Bio1 | 7.80 ± 0.65 b | 8.72 ± 0.62 b | 18.95 ± 1.51 b | 1.02 ± 0.08 j | 0.52 ± 0.04 i | 1.44 ± 0.12 b | 357.62 ± 33.49 abc | ||
| Bio2 | 7.76 ± 0.65 c | 8.19 ± 0.61 c | 18.79 ± 1.50 bc | 1.15 ± 0.09 fg | 0.59 ± 0.04 ef | 1.43 ± 0.12 c | 362.70 ± 34.29 abc | ||
| C | 7.58 ± 0.63 d | 7.85 ± 0.47 d | 15.77 ± 1.30 ij | 1.21 ± 0.10 de | 0.65 ± 0.04 d | 1.37 ± 0.11 k | 306.00 ± 26.53 abc | ||
| C+Bio1 | 7.25 ± 0.63 k | 7.66 ± 0.47 d | 15.36± 1.27 l | 1.26 ± 0.10 c | 0.65 ± 0.05 d | 1.37 ± 0.11 l | 305.10 ± 26.14 abc | ||
| C+Bio2 | 7.28 ± 0.60 o | 6.09 ± 0.46 g | 15.43 ± 1.27 kl | 1.36 ± 0.11 ab | 0.69 ± 0.05 ab | 1.36 ± 0.11 m | 305.42 ± 26.18 abc |
| Sources of Variations | DF | GY | SY | Plant Height | Ear Length | FPA | Proline | Peroxidase | Total Chlorophyll |
|---|---|---|---|---|---|---|---|---|---|
| t ha−1 | t ha−1 | cm | cm | cm2 | μmole g−1 FWL | U g−1 min−1 | mg g−1 FWL | ||
| Salinity (S) | 1 | 15.97 ** | 9.461 ** | 561.08 ** | 33.37 ** | 184.16 ** | 57842.13 ** | 386.84 * | 5993.33 ** |
| Varieties (V) | 1 | 17.79 ** | 10.963 ** | 3011.64 ** | 40.35 ** | 3642.39 ** | 803.44 ** | 124.0 | 284.27 ** |
| V × S | 1 | 0.01 | 1.357 ** | 363.63 ** | 12.01 ** | 0.08 * | 14.42 | 20.74 | 257.28 ** |
| Season (Se) | 1 | 13.03 ** | 24.269 ** | 560.99 ** | 0.33 ** | 2.080 ** | 110.20 ** | 34.96 | 296.46 ** |
| S × Se | 1 | 0.00 | 1.409 * | 40.40 ** | 21.34 ** | 30.11 ** | 0.15 | 24.62 | 80.50 ** |
| Se × V | 1 | 0.04 | 0.128 | 16.33 ** | 0.33 ** | 44.13 ** | 5.58 | 20.43 | 99.55 ** |
| Se × V × S | 1 | 1.13 * | 1.335 * | 147.11 ** | 1.33 ** | 0.74 ** | 11.18 | 24.55 | 88.03 ** |
| Treatments (T) | 5 | 15.15 | 7.057 ** | 1356.19 ** | 55.84 ** | 506.75 ** | 467.46 | 23.80 | 1233.40 ** |
| T × S | 5 | 0.65 ** | 1.563 ** | 17.34 ** | 2.14 ** | 20.04 ** | 39.48 ** | 20.59 | 30.14 ** |
| T × V | 5 | 0.14 ** | 0.358 ** | 45.14 ** | 1.95 ** | 33.10 ** | 76.29 ** | 25.18 | 27.45 ** |
| T × Se | 5 | 0.93 ** | 1.548 ** | 2.60 ** | 3.14 ** | 6.76 ** | 13.72 ** | 22.50 | 24.05 ** |
| T × V × S | 5 | 1.35 ** | 0.693 ** | 45.53 ** | 1.61 ** | 17.44 ** | 17.67 | 29.98 | 25.14 ** |
| T × S × Se | 5 | 0.31 ** | 1.103 ** | 49.49 ** | 1.73 ** | 13.79 ** | 0.93 | 22.81 | 23.32 ** |
| T × V × Se | 5 | 0.18 ** | 0.085 ** | 34.51 ** | 0.73 ** | 88.34 ** | 7.29 | 22.24 | 34.89 ** |
| T × S × V × Se | 5 | 0.14 ** | 0.706 ** | 31.19 ** | 2.52 ** | 5.04 ** | 4.26 | 21.62 | 16.96 ** |
| Residual | 120 | 0.01 | 0.001 | 0.03 | 0.00 | 0.01 | 8.40 | 21.67 | 0.26 |
| Total | 191 | 0.77 | 0.623 | 66.05 | 2.40 | 38.55 | 330.27 | 24.80 | 74.41 |
| T × S × V × Se LSD (0.05) | 0.07 | 0.05 | 0.31 | 0.03 | 0.21 | 5.27 | 8.46 | 1.13 | |
| Salinity | Verities | Treatments | Grain Yield | Straw Yield | Plant Height | Ear Length | Flag-Paper Area | Harvest Index |
|---|---|---|---|---|---|---|---|---|
| t ha−1 | t ha−1 | cm | cm | cm2 | % | |||
| 3 | Miser 4 | CK | 2.62 ± 0.03 l | 3.67 ± 0.02 e | 83.52 ± 3.21 q | 7.00 ± 0.03 h | 63.50 ± 0.02 l | 41.60 ± 0.01 x |
| Bio1 | 3.97 ± 0.02 f | 3.19 ± 0.02 h | 91.03 ± 3.28 l | 8.00 ± 0.03 f | 67.02 ± 0.02 g | 55.47 ± 0.01 b | ||
| Bio2 | 4.11 ± 0.01 e | 3.39 ± 0.01 g | 89.01 ± 1.35 n | 8.50 ± 0.01 e | 69.00 ± 0.01 e | 55.15 ± 0.01 c | ||
| C | 4.24 ± 0.02 d | 3.98 ± 0.03 d | 93.48 ± 1.32 h | 9.00 ± 0.13 d | 70.98 ± 0.10 b | 51.69 ± 0.06 i | ||
| C+Bio1 | 4.49 ± 0.02 b | 4.07 ± 0.02 c | 96.53 ± 4.62 g | 9.50 ± 0.05 c | 71.52 ± 0.03 a | 52.40 ± 0.02 h | ||
| C+Bio2 | 4.66 ± 0.03 a | 3.94 ± 0.02 d | 101.19 ± 4.23 e | 10.52 ± 0.42 a | 71.63 ± 0.29 a | 54.04 ± 0.16 e | ||
| Sakha 95 | CK | 2.23 ± 0.02 n | 2.81 ± 0.08 kl | 90.01 ± 3.44 m | 7.50 ± 0.03 g | 54.50 ± 0.02 s | 44.19 ± 0.10 w | |
| Bio1 | 2.91 ± 0.01 j | 2.87 ± 0.03 k | 91.03 ± 3.04 l | 8.50 ± 0.03 e | 58.02 ± 0.02 r | 50.36 ± 0.00 m | ||
| Bio2 | 2.85 ± 0.02 jk | 3.10 ± 0.03 i | 96.50 ± 1.49 g | 9.00 ± 0.01 d | 60.00 ± 0.01 q | 47.99 ± 0.01 t | ||
| C | 3.54 ± 0.01 h | 3.65 ± 0.02 e | 97.98 ± 1.38 f | 9.50 ± 0.14 c | 60.99 ± 0.08 p | 49.26 ± 0.03 q | ||
| C+Bio1 | 4.37 ± 0.02 c | 4.44 ± 0.06 a | 103.53 ± 4.84 c | 10.00 ± 0.05 b | 63.52 ± 0.03 l | 49.79 ± 0.03 p | ||
| C+Bio2 | 4.64 ± 0.03 a | 3.50 ± 0.02 f | 106.70 ± 4.43 b | 10.52 ± 0.44 a | 64.62 ± 0.25 k | 56.71 ± 0.10 a | ||
| 6 | Miser 4 | CK | 2.51 ± 0.02 m | 2.52 ± 0.01 m | 78.99 ± 3.17 s | 5.50 ± 0.03 k | 62.00 ± 0.02 n | 49.88 ± 0.10 o |
| Bio1 | 2.79 ± 0.01 k | 2.76 ± 0.08 l | 82.03 ± 2.80 r | 6.50 ± 0.03 i | 65.52 ± 0.02 i | 50.23 ± 0.01 n | ||
| Bio2 | 3.18 ± 0.04 i | 3.36 ± 0.04 g | 85.08 ± 1.27 p | 6.50 ± 0.12 i | 66.00 ± 0.01 h | 48.95 ± 0.01 r | ||
| C | 3.80 ± 0.03 g | 4.39 ± 0.03 b | 86.99 ± 1.22 o | 8.00 ± 0.04 f | 68.48 ± 0.10 f | 47.10 ± 0.04 u | ||
| C+Bio1 | 4.23 ± 0.08 d | 3.50 ± 0.02 f | 92.56 ± 4.15 i | 9.00 ± 0.36 d | 69.52 ± 0.03 d | 54.80 ± 0.05 d | ||
| C+Bio2 | 4.22 ± 0.05 d | 4.06 ± 0.01 c | 92.08 ± 3.59 j | 9.02 ± 0.03 d | 70.63 ± 0.29 c | 50.87 ± 0.09 k | ||
| Sakha 95 | CK | 2.04 ± 0.08 o | 2.36 ± 0.01 n | 87.00 ± 3.44 o | 6.00 ± 0.03 i | 54.75 ± 0.02 s | 46.66 ± 0.01 v | |
| Bio1 | 2.59 ± 0.02 l | 2.22 ± 0.01 o | 90.03 ± 3.11 m | 7.50 ± 0.01 g | 61.52 ± 0.02 o | 53.87 ± 0.02 f | ||
| Bio2 | 2.82 ± 0.03 k | 2.85 ± 0.03 k | 91.50 ± 1.39 k | 9.51 ± 0.15 c | 62.28 ± 0.01 m | 50.57 ± 0.01 l | ||
| C | 3.13 ± 0.02 i | 3.41 ± 0.02 g | 101.98 ± 1.45 d | 10.00 ± 0.05 b | 63.74 ± 0.08 l | 48.83 ± 0.03 s | ||
| C+Bio1 | 3.21 ± 0.06 i | 2.85 ± 0.01 k | 103.53 ± 4.89 c | 10.00 ± 0.44 b | 65.02 ± 0.03 i | 52.82 ± 0.03 g | ||
| C+Bio2 | 3.18 ± 0.02 i | 3.01 ± 0.04 j | 107.70 ± 4.43 a | 10.01 ± 0.04 b | 68.60 ± 0.26 f | 51.02 ± 0.00 j |
| Salinity | Verities | Treatments | Grain | Straw | Proline | Peroxidase | Total Chlorophyll | ||||
|---|---|---|---|---|---|---|---|---|---|---|---|
| N | P | K | N | P | K | ||||||
| % | % | % | % | % | % | μmole g−1 FWL | U g−1 min−1 | mg g−1 FWL | |||
| 3 (dS m−1) | Miser 4 | CK | 1.41 ± 0.01 g | 0.620 ± 0.00 e | 0.625 ± 0.01 m | 0.525 ± 0.00 o | 0.160 ± 0.001 d | 1.10 ± 0.00 l | 54.77 ± 2.53 i | 4.05 ± 0.19 a | 26.73 ± 0.41 h |
| Bio1 | 1.58 ± 0.01 f | 0.620 ± 0.00 e | 0.635 ± 0.01 k | 0.630 ± 0.00 k | 0.160 ± 0.001 d | 1.12 ± 0.00 k | 60.93 ± 4.17 gh | 4.47 ± 0.28 a | 32.14 ± 0.43 f | ||
| Bio 2 | 1.68 ± 0.00 e | 0.620 ± 0.00 e | 0.645 ± 0.01 i | 0.755 ± 0.00 h | 0.160 ± 0.000 d | 1.19 ± 0.01 h | 60.97 ± 1.61 gh | 4.44 ± 22 a | 34.52 ± 0.31 e | ||
| C | 1.82 ± 0.01 d | 0.625 ± 0.01 d | 0.650 ± 0.01 h | 0.805 ± 0.01 f | 0.165 ± 0.002 c | 1.21 ± 0.00 g | 56.92 ± 1.40 hi | 4.32 ± 0.14 a | 36.34 ± 0.19 d | ||
| C+Bio1 | 1.90 ± 0.01 b | 0.630 ± 0.00 c | 0.680 ± 0.01 d | 0.910 ± 0.00 c | 0.170 ± 0.001 b | 1.27 ± 0.01 d | 56.33 ± 2.80 i | 4.20 ± 0.14 a | 41.83 ± 0.54 b | ||
| C+Bio2 | 1.93 ± 0.02 a | 0.661 ± 0.01 b | 0.701 ± 0.01 a | 0.982 ± 0.01 a | 0.170 ± 0.007 b | 1.61 ± 0.01 a | 63.89 ± 2.84 g | 4.50 ± 0.26 a | 45.06 ± 0.35 a | ||
| Sakha 95 | CK | 1.04 ± 0.00 n | 0.620 ± 0.00 e | 0.625 ± 0.00 m | 0.560 ± 0.00 n | 0.160 ± 0.001 d | 0.90 ± 0.00 s | 55.25 ± 1.67 i | 6.06 ± 0.63 a | 25.32 ± 0.17 i | |
| Bio1 | 1.14 ± 0.00 l | 0.620 ± 0.01 e | 0.635 ± 0.01 k | 0.595 ± 0.00 l | 0.160 ± 0.001 d | 0.96 ± 0.00 p | 62.95 ± 3.35 g | 6.07 ± 0.24 a | 27.16 ± 0.27 h | ||
| Bio 2 | 1.38 ± 0.00 h | 0.625 ± 0.00 d | 0.650 ± 0.01 h | 0.760 ± 0.00 g | 0.160 ± 0.000 d | 1.14 ± 0.00 j | 61.42 ± 0.95 h | 4.94 ± 0.32 a | 30.64 ± 0.42 g | ||
| C | 1.68 ± 0.01 e | 0.630 ± 0.01 c | 0.665 ± 0.01 f | 0.860 ± 0.01 e | 0.160 ± 0.002 d | 1.18 ± 0.01 i | 61.16 ± 1.34 gh | 5.35 ± 0.35 a | 32.08 ± 0.16 f | ||
| C+Bio1 | 1.83 ± 0.01 c | 0.630 ± 0.00 c | 0.680 ± 0.01 d | 0.915 ± 0.00 b | 0.165 ± 0.001 c | 1.27 ± 0.01 d | 59.69 ± 1.82 ghi | 4.95 ± 0.40 a | 36.26 ± 0.24 d | ||
| C+Bio2 | 1.90 ± 0.02 b | 0.681 ± 0.01 a | 0.696 ± 0.01 b | 0.982 ± 0.04 a | 0.170 ± 0.007 b | 1.33 ± 0.01 b | 74.59 ± 7.44 f | 4.33 ± 0.44 a | 39.82 ± 0.32 c | ||
| 6 (dS m−1) | Miser 4 | CK | 0.70 ± 0.00 s | 0.620 ± 0.01 e | 0.610 ± 0.01 p | 0.490 ± 0.00 p | 0.160 ± 0.001 d | 0.92 ± 0.00 r | 89.55 ± 0.79 e | 5.56 ± 0.27 a | 15.28 ± 0.15 n |
| Bio1 | 0.94 ± 0.00 q | 0.620 ± 0.01 e | 0.620 ± 0.00 n | 0.575 ± 0.00 m | 0.160 ± 0.001 d | 1.00 ± 0.00 o | 94.66 ± 1.59 bcd | 7.34 ± 0.28 a | 18.15 ± 0.40 l | ||
| Bio 2 | 1.02 ± 0.00 o | 0.620 ± 0.01 e | 0.630 ± 0.00 l | 0.665 ± 0.00 j | 0.165 ± 0.000 c | 1.03 ± 0.00 n | 94.76 ± 2.02 bcd | 6.22 ± 0.25 a | 19.87 ± 0.19 k | ||
| C | 1.07 ± 0.01 m | 0.630 ± 0.001 c | 0.655 ± 0.01 g | 0.700 ± 0.01 i | 0.170 ± 0.002 b | 1.18 ± 0.01 i | 90.97 ± 2.07 de | 6.00 ± 0.42 a | 24.67 ± 0.47 i | ||
| C+Bio1 | 1.13 ± 0.00 l | 0.630 ± 0.001 c | 0.670 ± 0.00 e | 0.805 ± 0.00 f | 0.175 ± 0.00 a | 1.23 ± 0.01 e | 92.04 ± 2.75 cde | 5.76 ± 0.43 a | 27.49 ± 0.27 h | ||
| C+Bio2 | 1.16 ± 0.01 k | 0.631 ± 0.003 c | 0.681 ± 0.01 d | 0.912 ± 0.004 c | 0.175 ± 0.001 a | 1.29 ± 0.01 c | 96.82 ± 2.64 b | 8.19 ± 0.07 a | 31.02 ± 0.19 g | ||
| Sakha 95 | CK | 0.88 ± 0.00 r | 0.620 ± 0.001 e | 0.615 ± 0.00 o | 0.525 ± 0.00 o | 0.160 ± 0.00 d | 0.86 ± 0.00 t | 96.57 ± 2.18 bc | 8.30 ± 0.17 a | 14.54 ± 0.38 n | |
| Bio1 | 0.94 ± 0.00 q | 0.620 ± 0.00 e | 0.630 ± 0.00 l | 0.560 ± 0.00 n | 0.160 ± 0.00 d | 0.95 ± 0.00 q | 96.95 ± 3.10 b | 7.26 ± 0.24 a | 16.85 ± 0.23 m | ||
| Bio 2 | 1.00 ± 0.00 p | 0.626 ± 0.001 d | 0.641 ± 0.00 j | 0.666 ± 0.00 j | 0.160 ± 0.00 d | 1.03 ± 0.00 n | 94.99 ± 3.60 bcd | 6.79 ± 0.34 a | 21.66 ± 0.27 j | ||
| C | 1.04 ± 0.01 n | 0.625 ± 0.01 d | 0.645 ± 0.01 i | 0.700 ± 0.01 i | 0.165 ± 0.00 c | 1.08 ± 0.01 m | 96.19 ± 2.03 bc | 6.88 ± 0.40 a | 25.06 ± 0.19 i | ||
| C+Bio1 | 1.20 ± 0.01 j | 0.630 ± 0.010 c | 0.680 ± 0.00 d | 0.875 ± 0.00 d | 0.170 ± 0.00 b | 1.22 ± 0.01 f | 96.80 ± 1.95 b | 10.57 ± 0.45 a | 26.99 ± 0.29 h | ||
| C+Bio2 | 1.28 ± 0.01 i | 0.631 ± 0.01 c | 0.691 ± 0.01 c | 0.981 ± 0.01 a | 0.170 ± 0.001 b | 1.29 ± 0.01 c | 105.14 ± 6.10 a | 6.06 ± 0.46 a | 32.72 ± 0.16 f | ||
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El-Sharkawy, M.; Alotaibi, M.O.; Alhaithloul, H.A.S.; ElGhannam, M.K.; Gab Alla, M.M.M.; El-Akhdar, I.; Shabana, M.M.A. Multivariate Linkages Between Soil Health, Salinity Stress, and Wheat Yield Under Bio-Organic Management. Sustainability 2026, 18, 2902. https://doi.org/10.3390/su18062902
El-Sharkawy M, Alotaibi MO, Alhaithloul HAS, ElGhannam MK, Gab Alla MMM, El-Akhdar I, Shabana MMA. Multivariate Linkages Between Soil Health, Salinity Stress, and Wheat Yield Under Bio-Organic Management. Sustainability. 2026; 18(6):2902. https://doi.org/10.3390/su18062902
Chicago/Turabian StyleEl-Sharkawy, Mahmoud, Modhi O. Alotaibi, Haifa A. S. Alhaithloul, Mohamed Kh ElGhannam, Mokhtar M. M. Gab Alla, Ibrahim El-Akhdar, and Mahmoud M. A. Shabana. 2026. "Multivariate Linkages Between Soil Health, Salinity Stress, and Wheat Yield Under Bio-Organic Management" Sustainability 18, no. 6: 2902. https://doi.org/10.3390/su18062902
APA StyleEl-Sharkawy, M., Alotaibi, M. O., Alhaithloul, H. A. S., ElGhannam, M. K., Gab Alla, M. M. M., El-Akhdar, I., & Shabana, M. M. A. (2026). Multivariate Linkages Between Soil Health, Salinity Stress, and Wheat Yield Under Bio-Organic Management. Sustainability, 18(6), 2902. https://doi.org/10.3390/su18062902

