Skip to main navigation menu Skip to main content Skip to site footer

Research Articles

Vol. 13 No. 3 (2026)

Nano-enabled enhancement of reproductive efficiency and metabolic signaling in broccoli (Brassica oleracea var. italica) under in vitro conditions

DOI
https://doi.org/10.14719/pst.15410
Submitted
5 May 2026
Published
07-08-2026 — Updated on 29-09-2026
Versions

Abstract

This study investigated the comparative effects of zinc oxide nanoparticles (ZnO-NPs), silver nitrate (AgNO₃), salicylic acid (SA) and methyl jasmonate (MeJA) on in vitro reproductive development of broccoli (Brassica oleracea var. italica) under controlled conditions. Murashige and Skoog (MS) media were supplemented with each treatment at 0, 10, 20 and 30 mg L-1 concentrations and explants were cultured under uniform photoperiod and temperature. An integrative statistical framework comprising analysis of variance (ANOVA), canonical correlation analysis (CCA), principal component analysis (PCA) and heatmap visualisation was employed to interpret morphogenic, reproductive and physiological responses. Among all treatments, ZnO-NPs at 20 mg L-1 exhibited superior bioefficacy, significantly enhancing shoot elongation (5.5 cm, p <  0.05), pollen viability (92 %), stomatal conductance (0.38 mol H₂O m-2 s-1) and photosystem II(PSII) efficiency (Fv/Fm = 0.84), while reducing flower abortion (5.2 %) and shedding (12.5 %). Antioxidant enzyme activities (SOD = 15.2, CAT = 10.4, POD = 18.3 U g-1 fresh weight (FW)) increased significantly, correlating with reduced lipid peroxidation (malondialdehyde (MDA) = 4.2 nmol g-1 FW). Multivariate analyses distinctly separated ZnO-NP from other treatments, confirming its integrative regulatory influence. These results highlight the potential of ZnO-NPs as an effective nanoelicitor for improving reproductive physiology and antioxidative balance in broccoli under controlled in vitro conditions.

References

  1. 1. Li W, Chen M, Zhang H, Wang W. Gametophyte development and reproductive plasticity under abiotic stress: mechanisms and prospects. Trends Plant Sci. 2022;27:1161–74. https://doi.org/10.1016/j.tplants.2022.06.009
  2. 2. Ahmad A, Tola E, Alshahrani TS, Seleiman MF. Enhancement of morphological and physiological performance of Zea mays L. under saline stress using ZnO nanoparticles and 24-epibrassinolide seed priming. Agronomy. 2023;13:771. https://doi.org/10.3390/agronomy13030771
  3. 3. Mirakhorli T, Ardebili ZO, Ladan-Moghadam A, Danaee E. Bulk and nanoparticles of zinc oxide exert beneficial effects by modifying transcription factors, histone deacetylase and metabolism in soybean. PLoS One. 2021;16:e0256905. https://doi.org/10.1371/journal.pone.0256905
  4. 4. Mahmood CH, Rasul KS, Halshoy HS. Mitigating salinity stress in Solanaceae: role of nanoparticles in seed germination and growth. Crops. 2025;5:62. https://doi.org/10.3390/crops5050062
  5. 5. Sultana R, Imam Z, Kumar RR, Banu VS, Nahakpam S, Bharti R, et al. Signaling and defence mechanism of jasmonic and salicylic acid response in pulse crops. Plant Growth Regul. 2025;44:5–21. https://doi.org/10.1007/s00344-023-11203-9
  6. 6. Yu X, Zhang W, Zhang Y, Zhang X, Lang D, Zhang X. Roles of methyl jasmonate in plant stress response. Funct Plant Biol. 2019;46:197–212. https://doi.org/10.1071/FP18106
  7. 7. Ochatt S, Abdollahi MR, Akin M, Bello JB, Eimert K, Faisal M, et al. Application of nanoparticles in plant tissue cultures. Plant Cell Tissue Organ Cult. 2023;155:323–6. https://doi.org/10.1007/s11240-023-02614-3
  8. 8. Liu Y, Peterson DA, Kimura H, Schubert D. Mechanism of cellular MTT reduction. J Neurochem. 1997;69:581–93. https://doi.org/10.1046/j.1471-4159.1997.69020581.x
  9. 9. Fang X, Turner NC, Yan G, Li F, Siddique KHM. Reproductive responses of chickpea under terminal drought. J Exp Bot. 2010;61:335–45. https://doi.org/10.1093/jxb/erp307
  10. 10. Gleason SM, Cooper M, Wiggans DR, Bliss CA, Romay MC, Gore MA, et al. Traits underpinning maize performance under drought. Field Crops Res. 2019;234:119–28. https://doi.org/10.1016/j.fcr.2019.02.001
  11. 11. Zhou J, Wang JZ, Hang T, Li PP. Photosynthetic performance of lettuce under light/dark cycles. Photosynthetica. 2020;58:3. https://doi.org/10.32615/ps.2020.013
  12. 12. Heath RL, Packer L. Photoperoxidation in isolated chloroplasts. Arch Biochem Biophys. 1968;125:189–98. https://doi.org/10.1016/0003-9861(68)90654-1
  13. 13. Beauchamp C, Fridovich I. Superoxide dismutase assay methods. Anal Biochem. 1971;44:276–87. https://doi.org/10.1016/0003-2697(71)90370-8
  14. 14. Aebi H. Catalase in vitro. Methods Enzymol. 1984;105:121–6. https://doi.org/10.1016/S0076-6879(84)05016-3
  15. 15. Pütter J. Peroxidases. Methods Enzym Anal. 1974:685–90. https://doi.org/10.1016/B978-0-12-091302-2.50033-5
  16. 16. Karabulut F. Impact of nanoparticles on plant growth and phytohormones. In: Nanoparticles in Plant Biotic Stress Management. Singapore: Springer; 2024. p. 87–105. https://doi.org/10.1007/978-981-97-0851-2_4
  17. 17. Gao Y, Yu H, Lin H, Lu L. Mechanisms of zinc effects on Sedum alfredii. 2023. https://doi.org/10.21203/rs.3.rs-3444862/v1
  18. 18. Jiang HS, Qiu XN, Li GB, Li W, Yin LY. Silver nanoparticles induce ROS in Spirodela polyrhiza. Environ Toxicol Chem. 2014;33:1398–405. https://doi.org/10.1002/etc.2577
  19. 19. Faizan M, Bhat JA, Chen C, Alyemeni MN, Wijaya L, Ahmad P, et al. ZnO nanoparticles induce salt tolerance in tomato. Plant Physiol Biochem. 2021;161:122–30. https://doi.org/10.1016/j.plaphy.2021.02.002
  20. 20. Xie DL, Zheng XL, Zhou CY, Kanwar MK, Zhou J. Redox signaling in pollen development. Antioxidants. 2022;11:287. https://doi.org/10.3390/antiox11020287
  21. 21. Djanaguiraman M, Anbazhagan V, Dhankher OP, Prasad PV. Uptake, translocation, toxicity and impact of nanoparticles on plant physiological processes. Plants. 2024;13(22):3137. https://doi.org/10.3390/plants13223137
  22. 22. Singh A, Rajput VD, Lalotra S, Agrawal S, Ghazaryan K, Singh J, et al. ZnO nanoparticles and salinity tolerance. Environ Geochem Health. 2024;46:148. https://doi.org/10.1007/s10653-024-01921-8
  23. 23. Singh P, Shukla AK, Behera SK, Tiwari PK. Zinc enhances enzyme activity in wheat. J Soil Sci Plant Nutr. 2019;19:477–87. https://doi.org/10.1007/s42729-019-00038-7
  24. 24. Channab BE, Idrissi AE, Ammar A, Dardari O, Marrane SE, El Gharrak A, et al. Advances in nano-fertilizers. Nanoscale. 2024;16:4484–513. https://doi.org/10.1039/D3NR05012B
  25. 25. Rivero-Montejo SDJ, Vargas-Hernandez M, Torres-Pacheco I. Nanoparticles as elicitors in plants. Agriculture. 2021;11:134. https://doi.org/10.3390/agriculture11020134
  26. 26. Salehi H, Chehregani Rad A, Sharifan H, Raza A, Varshney RK. ZnO nanoparticles affect bean reproduction. Front Plant Sci. 2022;12:808141. https://doi.org/10.3389/fpls.2021.808141
  27. 27. Kumar V, Sharma N, Maitra SS. Toxicity assessment of nanoparticles. Int Nano Lett. 2017;7:243–56. https://doi.org/10.1007/s40089-017-0221-3
  28. 28. Basit F, Shahid M, Abbas S, Naqqash T, Akram MS, Tahir M, et al. ZnO nanoparticles protect soybean under Cr stress. Plant Growth Regul. 2023;100:703–16. https://doi.org/10.1007/s10725-023-00965-7
  29. 29. Thounaojam TC, Meetei TT, Devi YB, Panda SK, Upadhyaya H. ZnO nanoparticles in plant science. Acta Physiol Plant. 2021;43:136. https://doi.org/10.1007/s11738-021-03307-0
  30. 30. Ahmed S, Khan MT, Abbasi A, Haq IU, Hina A, Mohiuddin M, et al. ZnO nanoparticles improve photosynthesis in coriander. Front Plant Sci. 2023;13:1079283. https://doi.org/10.3389/fpls.2022.1079283
  31. 31. Ghani MI, Saleem S, Rather SA, Rehmani MS, Alamri S, Rajput VD, et al. ZnO nanoparticles mitigate drought stress in cucumber. Chemosphere. 2022;289:133202. https://doi.org/10.1016/j.chemosphere.2021.133202
  32. 32. Ye X, Kang BG, Osburn LD, Li Y, Chen ZM. YUCCA gene family in Populus. Plant Cell Tissue Organ Cult. 2009;97:271–83. https://doi.org/10.1007/s11240-009-9526-x
  33. 33. Meraj TA, Fu J, Raza MA, Zhu C, Shen Q, Xu D, et al. Transcription factors regulate plant stress responses. Genes. 2020;11:346. https://doi.org/10.3390/genes11040346
  34. 34. Chen C, Unrine JM, Hu Y, Guo L, Tsyusko OV, Fan Z, et al. Responses of soil bacteria and fungal communities to pristine and sulfidized zinc oxide nanoparticles relative to Zn ions. Journal of hazardous materials. 2021;405:124258. https://doi.org/10.1016/j.jhazmat.2020.124258
  35. 35. Abou El-Nasr MK, Hassan KM, Abd-Elhalim BT, Kucher DE, Rebouh NY, Ansabayeva A, et al. The emerging roles of nanoparticles in managing the environmental stressors in horticulture crops-A review. Plants. 2025;14(14):2192. https://doi.org/10.3390/plants14142192
  36. 36. Strekalovskaya EI, Perfileva AI, Krutovsky KV. ZnO nanoparticles in soil-plant systems. Agronomy. 2024;14:1588. https://doi.org/10.3390/agronomy14071588

Downloads

Download data is not yet available.