Plant defense activator-mediated seed priming suppresses leaf rust (Puccinia triticina) and enhances yield in bread wheat genotypes

Ikhlas Shafique Department of Sustainable Agriculture and Food Security, Institute of Science, Çukurova University, Adana, Türkiye , Muhammad Waseem Zulfiqar Department of Plant Pathology, University of Agriculture, Faisalabad, Pakistan. , Mahad-ur- Rehman Department of Plant Pathology, University of Agriculture, Faisalabad, Pakistan. , Laraib Zulfiqar Department of Plant Pathology and Crop Protection, Georg-August-Universität Göttingen, Germany , Amjad Abbas Department of Plant Pathology, University of Agriculture, Faisalabad, Pakistan , Muhammad Amjad Ali * Department of Plant Pathology, University of Agriculture, Faisalabad, Pakistan
* Corresponding author: amjad.ali@uaf.edu.pk

DOI:

https://doi.org/10.66432/tj0gn463

Keywords:

Bread wheat; leaf rust; seed priming; dose optimization; response-dependent on genotype.

Abstract

Puccinia triticina causing leaf rust is a significant pathogen of wheat because it negatively affects the canopy functioning, grain filling, and final yield. This research investigated the impact of seed priming on leaf rust severity, growth and yield of three bread wheat varieties Arooj-22, Dilkash-20 and MH-21. For this experiment, a completely randomized factorial design was used with three replications, including hormonal (jasmonic acid, salicylic acid, gibberellic acid), nutritional (KNO₃), botanical (moringa leaf extract), and biological (Trichoderma sp.) priming treatments. Disease severity and agronomic traits were significantly influenced by seed priming, with treatment and varietal differences in response. Arooj-22 was lowest in severity with GA 25 ppm and Dilkash-20 with Trichoderma 50 %, but the highest severity was in diseased control, especially in MH-21. Arooj-22 had the greatest yield of plants in Trichoderma 50 % and KNO3 0.5 % had the best yield response uniformly in all three varieties. Correlation analysis demonstrated that 1000 grains weight, leaf area and plant yield had a negative relationship with disease severity, but multivariate analysis differentiated between favorable lower dose treatments and weaker higher dose treatments. In general, the results indicate that seed priming has the potential to lessen the severity of leaf rust and significantly enhance the productivity of wheat, although its effectiveness requires attention to the choice of the primer, dose, and host genotype in the field pot condition.

References

1. Figueroa, M., Hammond‐Kosack, K. E., & Solomon, P. S. (2018). A review of wheat diseases a field perspective. Molecular plant pathology, 19(6), 1523-1536.

2. Food and Agriculture Organization of the United Nations – FAOSTAT. 2024-25.

3. USDA. Department of Agriculture, Foreign Agricultural Service. (2024-25). Production Commodity 0410000 accessed on 26 September, 2025. https://www.fas.usda.gov/data/production/commodity/0410000.

4. Prikhodko, D., & Zrilyi, O. (2013). Pakistan: Review of the wheat sector and grain storage issues country highlights. Rome: Food and Agriculture Organisation, 1-81.

5. Shafi, U., Mumtaz, R., Shafaq, Z., Zaidi, S. M. H., Kaifi, M. O., Mahmood, Z., & Zaidi, S. A. R. (2022). Wheat rust disease detection techniques: a technical perspective. Journal of Plant Diseases and Protection, 129(3), 489-504.

6. Yousafzai, S. N., Nasir, I. M., Tehsin, S., Malik, D. S., Keshta, I., Fitriyani, N. L., ... & Syafrudin, M. (2025). Multi-stage neural network-based ensemble learning approach for wheat leaf disease classification. IEEE Access.Yousafzai, S. N., Nasir, I. M., Tehsin, S., Malik, D. S., Keshta, I., Fitriyani, N. L., & Syafrudin, M. (2025). Multi-stage neural network-based ensemble learning approach for wheat leaf disease classification. IEEE Access.

7. Kumamaru, T., Ogawa, M., Satoh, H., & Okita, T. W. (2007). Protein body biogenesis in cereal endosperms. In Endosperm: developmental and molecular biology (pp. 141-158). Berlin, Heidelberg: Springer Berlin Heidelberg.

8. Moore, J., & Fung, J. (2016). The complete guide to fasting: Heal your body through intermittent, alternate-day, and extended fasting. Simon and Schuster.

9. Soetan, K. O., Olaiya, C. O., & Oyewole, O. E. (2010). The importance of mineral elements for humans, domestic animals and plants: A review. African journal of food science, 4(5), 200-222.

10. Soko, T., Bender, C. M., Prins, R., & Pretorius, Z. A. (2018). Yield loss associated with different levels of stem rust resistance in bread wheat. Plant Disease, 102(12), 2531-2538.

11. Fahim, M. A., Khadegah, M. A., Thabet, M., Negm, S. S., & El-Deeb, S. H. (2021). Early warning of wheat leaf rust disease and prediction disease status based on the modeling weather. Journal of Applied Plant Protection, 10(1), 87-95.

12. Khalil, H. B., Lutfi, A. M., Sayed, A. R., Mahmoud, M. T., Mostafa, S. A., Ibrahim, Z. A., ... & Thabet, M. (2024). Gamma-Aminobutyric Acid (GABA) as a Defense Booster for Wheat against Leaf Rust Pathogen (Puccinia triticina). Plants, 13(19), 2792.

13. Nihayati, E., & Najah, M. W. (2021). Comparative assessment of the effect of Moringa oleifera leaf extract (MLE) and zeatin on in vitro regeneration response of Pogostemon cablin bud explants. AIMS Agriculture and Food, 6(1), 308–320.

14. Khan, M. N., Z. Khan, T. Luo, J. Liu, M. Rizwan, J. Zhang, and Hu. L 2020. Seed priming with gibberellic acid and melatonin in rapeseed: consequences for improving yield and seed quality under drought and non-stress conditions. Ind. Crops Prod. 156: 112850.

15. Vinale, F., Sivasithamparam, K., Ghisalberti, E. L., Marra, R., Woo, S. L., & Lorito, M. (2008). Trichoderma–plant–pathogen interactions. Soil biology and Biochemistry, 40(1), 1-10.

16. Irshad, R., Aslam, A. H., Tariq, M., Shafique, I., Usman, M., Naveed, M., & Abbas, A. (2026). Synergetic effect of seed-primed biocontrol agents and biochar soil amendment on wheat productivity and leaf rust suppression. Integrative Plant Biotechnology, 4, 73-83.

17. Razzaq, M. U., Shafique, I., Naz, E., Jamil, S., Anas, M., Javed, A., Murtaza, U., & Abbas, A. (2024). Seed priming with bacterial and fungal biocontrol agents alter physio-chemical parameters to suppress leaf rust disease in bread wheat. Integrative Plant Biotechnology, 02, 51–62.

18. Soleimani, B.; Lehnert, H.; Schikora, A.; Stahl, A.; Matros, A.; Wehner, G. Bacterial N-Acyl Homoserine Lactone Priming Enhances Leaf-Rust Resistance in Winter Wheat and Some Genomic Regions Are Associated with Priming Efficiency. Microorganisms 2024, 12, 1936.

19. Almanzalawi, E. A. (2026). Seed and foliar application of Trichoderma harzianum HE22 and Bacillus spp. prolong leaf rust latency, induce host defense responses, and improve wheat productivity. Notulae Botanicae Horti Agrobotanici Cluj-Napoca, 54(1), 14893-14893.

20. Wang, Y., Abrouk, M., Gourdoupis, S. et al. An unusual tandem kinase fusion protein confers leaf rust resistance in wheat. Nat Genet 55, 914–920 (2023).

21. Sharma, D., Avni, R., Gutierrez-Gonzalez, J. et al. A single NLR gene confers resistance to leaf and stripe rust in wheat. Nat Commun 15, 9925 (2024).

22. Shen, S., Wang, F., Cui, Z., Yuan, S., Meng, L., Liu, D., ... & Wang, H. (2024). Puccinia triticina avirulence protein AvrLr21 directly interacts with wheat resistance protein Lr21 to activate wheat immune response. Communications Biology, 7(1), 1170.

23. Yang, J., Li, H., Li, M., Song, R., Shen, T., Wang, G., ... & Chen, S. (2025). Genome-assisted identification of wheat leaf rust resistance gene Lr. ace-4A/Lr30. Nature Communications, 16(1), 9339.

24. Jiao, Q., Fan, L., Zhang, H., Zhang, J., Jiang, Y., Yang, J., ... & Liu, H. (2025). Transcriptomic and ultrastructural insights into zinc-induced hormesis in wheat seedlings: Glutathione-mediated antioxidant defense in zinc toxicity regulation. Plant Stress, 16, 100820.

25. Zhang, D., Wang, H., Zhang, Y., Su, Z., Hu, T., Liu, J., ... & Ma, L. (2024). Methyl jasmonate enhances the safe production ability of Cd-stressed wheat by regulating the antioxidant capacity, Cd absorption, and distribution in wheat. Plant Physiology and Biochemistry, 212, 108788.

26. Fu, Y., Chen, W., Zhang, M., Wang, X., & Chang, C. (2025). Chromatin remodeler TaSWI3D controls wheat susceptibility to pathogenic fungus Blumeria graminis forma specialis tritici. Microorganisms, 13(12), 2779.

27. Ge, P., Chen, W., Liu, J., Wang, X., & Chang, C. (2025). Wheat DNA methyltransferase TaMET1 negatively regulates salicylic acid biosynthesis to facilitate powdery mildew susceptibility. Journal of Fungi, 11(12), 876.

28. Chen, W., Fu, Y., Zhang, M., Zhao, W., Zhi, P., & Chang, C. (2026). Wheat SWI3B Subunit of SWI/SNF Chromatin Remodeling Complex Governs Powdery Mildew Susceptibility by Suppressing Salicylic Acid Biosynthesis. Journal of Fungi, 12(1), 68.

29. Bakhshi, T., Mehrabi, R., Sarbarzeh, M. A., Türkoğlu, A., Demirel, F., Haliloğlu, K., ... & Bocianowski, J. (2025). Monitoring wheat leaf rust severity using machine learning techniques. Scientific Reports.

30. Fang, L., Struik, P. C., Girousse, C., Yin, X., & Martre, P. (2024). Source–sink relationships during grain filling in wheat in response to various temperature, water deficit, and nitrogen deficit regimes. Journal of Experimental Botany, 75(20), 6563-6578.

31. Liu, S., Liu, H., Guo, M., Pan, Y., Hao, C., Hou, J., ... & Li, T. (2024). Knockout of GRAIN WIDTH2 has a dual effect on enhancing leaf rust resistance and increasing grain weight in wheat. Plant biotechnology journal, 22(7), 2007.

32. Sui, L., Li, J., Philp, J., Yang, K., Wei, Y., Li, H., ... & Wang, Y. (2022). Trichoderma atroviride seed dressing influenced the fungal community and pathogenic fungi in the wheat rhizosphere. Scientific reports, 12(1), 9677.

33. Boamah, S., Zhang, S., Xu, B., Zhu, N., & Li, E. (2025). Trichoderma longibrachiatum TG1 colonization and signal pathway in alleviating salinity and Fusarium pseudograminearum stress in wheat. International Journal of Molecular Sciences, 26(9), 4018.

34. Breedt, G., Korsten, L., & Gokul, J. K. (2025). Enhancing multi-season wheat yield through plant growth-promoting rhizobacteria using consortium and individual isolate applications. Folia Microbiologica, 1-10.

35. Nawaz, H., Rehman, H. U., Ihsan, M. Z., Rizwan, M. S., Hussain, N., Ali, B., ... & Arslan, M. (2024a). Organic seed priming with curtailed seed rate compensated wheat grains productivity by upgrading anti-oxidant status against terminal drought at flowering and milking. Scientific Reports, 14(1), 4941.

36. Nawaz, H., Rehman, H. U., Yousef, M. M., Ali, L., Hussain, N., Abdullah, M., ... & Ayaz, M. (2024b). Zinc-priming via moringa leaf extract (MLE30) achieved Zn biofortified wheat grains and drought tolerance by efficient anti-oxidant status. Plant Stress, 12, 100501.

37. Singh, R. N., Krishnan, P., Singh, V. K., Sah, S., & Das, B. (2023). Combining biophysical parameters with thermal and RGB indices using machine learning models for predicting yield in yellow rust affected wheat crop. Scientific Reports, 13(1), 18814.

38. Kumar, P., Gill, H. S., Singh, M., Kaur, K., Koupal, D., Talukder, S., ... & Sehgal, S. K. (2024). Characterization of flag leaf morphology identifies a major genomic region controlling flag leaf angle in the US winter wheat (Triticum aestivum L.). Theoretical and Applied Genetics, 137(9), 205.

39. Song, K., Hong, S., & Shim, S. (2025). Responses of Photosynthetic Activity in Flag Leaves and Spikes as well as Seed Development of Wheat (Triticum aestivum L.) to Artificial Shading. Agronomy, 15(11), 2577.

40. Porras, R., Miguel-Rojas, C., Lorite, I. J., Pérez-de-Luque, A., & Sillero, J. C. (2023). Characterization of durum wheat resistance against leaf rust under climate change conditions of increasing temperature and [CO2]. Scientific Reports, 13(1), 22001.

41. Atwa, A. A., Ahmed, S. S., El-Aziz, G. H. A., Abou-Zeid, M. A., Omara, R. I., Atwa, N. A., & Fahmy, A. H. (2025). Leaf rust resistance in wheat and interpretation of the antifungal activity of silver and copper nanoparticles. Scientific Reports, 15(1), 9429.

42. Bagwell, J. W., Mergoum, M., Subedi, M., Sapkota, S., Ghimire, B., Lopez, B., ... & Bahri, B. A. (2025). Discovering leaf and stripe rust resistance in soft red winter wheat through genome‐wide association studies. The Plant Genome, 18(2), e70055.

43. Mohan, R., Singh, V. K., Chetan, K. K., Rani, L. U., Sameriya, K. K., Kumar, S., ... & Saharan, M. S. (2025). Multiple patho-phenotyping and molecular analysis to characterize wide-spectrum durable leaf rust resistance in wheat collections from India. Frontiers in Microbiology, 16, 1596282.

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Published

22-08-2026

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Original Research

How to Cite

Plant defense activator-mediated seed priming suppresses leaf rust (Puccinia triticina) and enhances yield in bread wheat genotypes. (2026). Journal of Genetics and Applied Biotechnology, 1(3), e2026035. https://doi.org/10.66432/tj0gn463

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