Piriformospora indica in Improving Stress Resistance in Horticultural Plants: Function and Mechanism
Abstract
1. Introduction
2. Function of P. indica in Plant Biotic Stress Response
3. The Role of P. indica Under Adverse Conditions
3.1. Salt Stress
3.2. Drought Stress
| Species | Abiotic Stress | Observed Physiological Effect | Reference |
|---|---|---|---|
| Tomato | Salt | Improved tomato growth performance and yield | [29] |
| Date palm | Salt | Maintained Na+ and K+ ion homeostasis | [44] |
| G. jamesonii | Salt | Upregulated the expression of ion homeostasis-related genes | [31] |
| G. Uralensis | Salt | Increased the biomass | [28] |
| Fenugreek | Salt | Promoted photosynthetic activity | [37] |
| Maize | Salt | Maintained the root water transport | [32] |
| Rice | Salt and drought | Promoted plant growth, nutrient uptake | [35] |
| Soybean | Saline–alkaline | Increased antioxidant enzyme activities and reduced MDA content | [33] |
| Strawberry | Saline–alkaline | Maintained the balance of carbon and nitrogen allocation | [38] |
| Soybean | Salt | Regulated the transcription level of PM H+-ATPase, SOS1, and SOS2 | [30] |
| Paulownia | Salt | Mitigated oxidative damage from ROS | [34] |
| Maize | Salt | Enhanced antioxidant enzyme activities | [45] |
| Rice | Drought | Increased seedling biomass | [41] |
| Banana | Drought | Upregulated the expression of MaNPK1-1 | [43] |
| Blueberry | Drought | Enhanced antioxidant ability | [17] |
| Basil | Drought and nickel | Enhanced essential oil content | [16] |
| Rice | Cd | Lowered oxidative stress | [46] |
| A. annua | As | Promoted phenolic acid and phenolic compounds | [47] |
| B. juncea | Cd | Attenuated ROS levels | [48] |
| Tomato | Nickel nitrate | Increased anthocyanin and proline | [49] |
| Banana | Cold | Stimulated antioxidant capacity | [50] |
| Tobacco | Cold | Mitigated oxidative damage | [51] |
| M. oleifera | Cold | Improved the yield and quality | [52] |
| Grapevine | Cold | Reduced lipid peroxidation and h H2O2 contents | [53] |
| M. laosensis | Cold | Decreased the H2O2 and MDA contents | [54] |
| Rice | Moisture | Promoted root development | [42] |
| Banana | Phosphorus and Potassium | Regulated the accumulation of carbohydrates, secondary metabolites, osmoprotectants | [18] |
3.3. Heavy Metal Stress
3.4. Temperature Stress
3.5. Other Stress
4. Involvement of P. indica in Phytohormone Signaling Under Stress
5. Conclusions and Future Perspectives
5.1. P. indica Enhances Stress Resistance Through the Involvement of Gas Molecules in Horticultural Plants
5.2. P. indica Regulates Transcription Factors or Key Genes, Which Can Be Elucidated Using Genomics and Transcriptomics
5.3. Optimization of P. indica Application Technology and Expansion of Application Scenarios
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Abbreviations
| AMF | Arbuscular Mycorrhizal Fungi |
| SA | Salicylic Acid |
| JA | Jasmonic Acid |
| ABA | Abscisic Acid |
| H2O2 | Hydrogen Peroxide |
| ROS | Reactive Oxygen Species |
| CAT | Catalase |
| SOD | Superoxide Dismutase |
| MDA | Malondialdehyde |
| P | Phosphorus |
| Zn | Zinc |
| Cd | Cadmium |
| As | Arsenic |
| GA | Gibberellic Acid |
| Al | Aluminium |
| NO | Nitric Oxide |
| GWAS | Genome-Wide Association Study |
| CTK | Cytokinins |
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Yang, Y.; Yang, P.; Cheng, C.; Zhang, H.; Yao, Y. Piriformospora indica in Improving Stress Resistance in Horticultural Plants: Function and Mechanism. Horticulturae 2026, 12, 860. https://doi.org/10.3390/horticulturae12070860
Yang Y, Yang P, Cheng C, Zhang H, Yao Y. Piriformospora indica in Improving Stress Resistance in Horticultural Plants: Function and Mechanism. Horticulturae. 2026; 12(7):860. https://doi.org/10.3390/horticulturae12070860
Chicago/Turabian StyleYang, Yan, Pei Yang, Chunzhen Cheng, Hongsheng Zhang, and Yandong Yao. 2026. "Piriformospora indica in Improving Stress Resistance in Horticultural Plants: Function and Mechanism" Horticulturae 12, no. 7: 860. https://doi.org/10.3390/horticulturae12070860
APA StyleYang, Y., Yang, P., Cheng, C., Zhang, H., & Yao, Y. (2026). Piriformospora indica in Improving Stress Resistance in Horticultural Plants: Function and Mechanism. Horticulturae, 12(7), 860. https://doi.org/10.3390/horticulturae12070860

