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Early Access

Biochar-mediated mitigation of dishwashing detergent-contaminated water effects on Vicia faba L.: Physiological and gene expression analysis

DOI
https://doi.org/10.14719/pst.10258
Submitted
25 June 2025
Published
20-10-2025
Versions

Abstract

The increasing population and ongoing modernization exert significant pressure on the environment, particularly affecting water and soil quality.  The increasing population and ongoing modernization exert significant pressure on the environment, particularly affecting water and soil quality. Biochar (BC) is increasingly recognized as a sustainable solution for enhancing plant growth and mitigating environmental stress, due to its distinctive properties, including improving soil permeability and retaining nutrients and water. The study aimed to assess the effect of detergents at high levels (25, 50 and 75 %) and subsequently evaluate the potential role of BC in reducing the adverse impact of the water contaminated with detergents on growth, productivity and gene expression. The morphological parameters analysed were (height, number of leaves, number of pods, number of seeds, leaf area and chlorophyll contents). Control treatments have used tap water for irrigation. Gene expression analysis was performed using the RT-qPCR technique to detect the expression of stress-related genes (Unigene077619 calcium-binding protein, Unigene047182 zinc ion-binding protein and Unigene072411 alpha/beta fold hydrolase). The results indicated that the effect of detergents were concentration-dependent and statistically significant, except for leaf area, that showed an inverse correlation with increasing detergent concentration. The 75 % showed the highest negative impact on growth parameters and gene expression pattern. BC treatments were evaluated against 75 % detergent concentration at application rates of 3 %, 5 % and 10 %. The 5 % BC amendment demonstrated that the most effective mitigation was followed by 3 % and 10 %, respectively. The study concluded that BC revealed a positive effect on cope with abiotic stresses such as water contamination with detergents.

References

  1. 1. Alkharabsheh HM, Seleiman MF, Battaglia ML, Shami A, Jalal RS, Alhammad BA, et al. Biochar and its broad impacts in soil quality and fertility, nutrient leaching and crop productivity: A review. Agron. 2021;11(5):993. https://doi.org/10.3390/agronomy11050993
  2. 2. Mazurek K, Drużyński S, Kiełkowska U, Wróbel-Kaszanek A, Igliński B, Cichosz M. The application of pyrolysis biochar obtained from waste rapeseed cake to remove copper from industrial wastewater: an overview. Energi. 2024;17(2):498. https://doi.org/10.3390/en17020498
  3. 3. Zhong L, Wu C, Li M, Wu J, Chen Y, Ju Z, et al. 1, 2, 4-Oxadiazole as a potential scaffold in agrochemistry: a review. Org Biomol Chem. 2023;21(37):7511–24.
  4. 4. Bonanomi G, Zotti M, Abd-ElGawad AM, Iacomino G, Nappi A, Grauso L, et al. Plant-growth promotion by biochar-organic amendments mixtures explained by selective chemicals adsorption of inhibitory compounds. J Environ Chem Eng. 2023;11(1):109009. https://doi.org/10.1016/j.jece.2022.109009
  5. 5. Hussain I, Afzal S, Ashraf MA, Rasheed R, Saleem MH, Alatawi A, et al. Effect of metals or trace elements on wheat growth and its remediation in contaminated soil. J Plant Growth Regul. 2023;42(4):2258–82. https://doi.org/10.1007/s00344-022-10700-7
  6. 6. Gomes MP, Pereira EG, Qiu BS, Juneau P. Coping with pollution–the effects of environmental contaminants on plant growth and physiology. Vol. 12, Frontiers in Plant Sci. Frontiers Media SA; 2021. p. 740802. https://doi.org/10.3389/fpls.2021.740802 7.
  7. 7. Heidari H, Karimi S. Effect of contaminated water (handwashing detergent) on seed germination traits in wheat, mung bean and chickpea. Tenside Surfactants Deterg. 2024;61(2):189–93. https://doi.org/10.1515/tsd-2023-2578
  8. 8. Mousavi SA, Khodadoost F. Effects of detergents on natural ecosystems and wastewater treatment processes: a review. Environ Sci Pollut Res. 2019;26:26439–48. https://doi.org/10.1007/s11356-019-05802-x
  9. 9. Singh A, Mehta S, Yadav S, Nagar G, Ghosh R, Roy A, et al. How to cope with the challenges of environmental stresses in the era of global climate change: An update on ros stave off in plants. Int J Mol Sci. 2022;23(4). https://doi.org/10.3390/ijms23041995
  10. 10. Paul SK, Gupta DR. Faba bean (Vicia faba L.), a promising grain legume crop of Bangladesh: a review. Agric Rev. 2021;42(3):292–9.
  11. 11. Gamar MA, Muhaidat R, Fhely T, Abusahyoun F, Al-Deeb T. The impact of selected ecological factors on the growth and biochemical responses of giza Faba bean (Vicia faba L.) Seedlings. Jordan J Biol Sci. 2023;16(2). https://doi.org/10.54319/jjbs/160215
  12. 12. Ibrahim AG, Al-Ghamdi LS. Bioremediation of phenol by mutated and immobilized Aspergillus and Penicillium species. Not Sci Biol. 2019;11(4):410–6. https://doi.org/10.15835/nsb11410581
  13. 13. Zhang R, Yang P, Liu S, Wang C, Liu J. Evaluation of the methods for estimating leaf chlorophyll content with SPAD chlorophyll meters. Remote Sens. 2022;14(20):5144. https://doi.org/10.3390/rs14205144
  14. 14. Li X, Yu Y, He R, Zhen Q, She D. Synergistic effects of aged lignin-based biochar and selenium fertilization on heavy metal remediation in agricultural soils. Ind Crops Prod. 2025;225:120464. https://doi.org/10.1016/j.indcrop.2025.120464
  15. 15. Ankodia V. Water Pollution. Contemp Glob Issues Challen. 2021.
  16. 16. Alfred NB, Ogaboh AMI, Anietie BR, Egwu EA. Effect of irrigation with household detergent on germination, activities of oxidative stress enzymes and chlorophyll content of pod maize. Pakistan J Agric Res. 2024;37(3):290–9.
  17. 17. Cretu R, Circiumaru A, Murariu G. Effect of liquid detergents on the biochemical parameters of some plantlets. Mater Plast. 2018;55(4):575–9.
  18. 18. Ali O, Cheddadi I, Landrein B, Long Y. Revisiting the relationship between turgor pressure and plant cell growth. New Phytol. 2023;238(1):62–9. https://doi.org/10.1111/nph.18683
  19. 19. Gholamian F, Karimi N, Gholamian F, Bayat P. The effects of some detergents and heavy metals on fucoxanthin yield and phycoremediation potential of Polycladia myrica. Int J Environ Sci Technol. 2023;20(8):8349–58. https://doi.org/10.1007/s13762-023-05005-5
  20. 20. Jayalal NA, Yatawara M. Toxicity assessment of powdered laundry detergents: an in vivo approach with a plant-based bioassa y. Environ Sci Pollut Res. 2024;31(49):59166–78. https://doi.org/10.1007/s11356-024-35158-w
  21. 21. Haiying T, Shubin W, Ying LIU, Hassan MU, Ying S, Huang G, et al. Biochar: A promising soil amendment to mitigate heavy metals toxicity in plants. Not Bot Horti Agro Cluj-Napoca. 2022;50(3):12778. https://doi.org/10.15835/nbha50312778
  22. 22. Perdigão A, da Silva Pereira JL. Effects of biochar in soil and water remediation: a review. Biodegrad Technol Org Inorg Pollut. 2021; https://doi.org/10.3390/agronomy11050993
  23. 23. Rasheed MM, Saeed IO, Ibrahim OM. Concentrations of some heavy metals in plants adjacent to the Tigris River, Iraq. Nativa. 2024;12(1):191–4. https://doi.org/10.31413/nat.v12i1.17292
  24. 24. Taher AM, Saeed IO. Bioremediation of contaminated soil with crude oil using new genus and species of bacteria. J King Abdulaziz Univ Mar Sci. 2022;32(2):13–35. https://doi.org/10.4197/Mar.32-2.2

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