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

Research Articles

Vol. 13 No. sp5 (2026): Recent Advances in Agriculture

Mitigation of heavy metal bioavailability and uptake by fodder crops using organic and mineral amendments in a sewage-irrigated peri-urban agroecosystem

DOI
https://doi.org/10.14719/pst.16191
Submitted
18 June 2026
Published
11-09-2026

Abstract

Long-term irrigation with sewage wastewater can increase the bioavailability of potentially toxic metals in peri-urban soils and promote their entry into fodder-livestock systems. This greenhouse study evaluated six amendments namely biochar, bentonite, zeolite, humic acid, vermicompost and farmyard manure (FYM), for reducing lead (Pb), cadmium (Cd), nickel (Ni) and chromium (Cr) availability and uptake by fodder maize, fodder sorghum and Cumbu Napier grown in contaminated soil. Each crop was evaluated in a separate completely randomised experiment with 8 treatments and 3 replications. Zeolite was consistently the most effective amendment. Compared with the unamended control, it reduced post-harvest diethylenetriaminepentaacetic acid (DTPA)-extractable Pb, Cd, Ni and Cr by 66.7 % across the three crop soils and lowered metal concentrations in plant tissues by approximately 57.6 %. Vermicompost and farmyard manure (FYM) were the next most effective treatments, whereas recommended fertiliser alone and the unamended control retained the greatest metal availability. Metal concentrations followed the order root > leaf > stem, indicating restricted movement to above-ground tissues. Fodder maize had the lowest overall tissue concentrations, while Cumbu Napier accumulated more Pb, Cd and Ni; Cr accumulation was comparatively greater in sorghum and maize roots. All bioaccumulation and translocation factors were below one. The first two principal components explained 99.79 % of the variation and clearly separated low- and high-metal treatments. The integrated amendment-crop assessment identifies zeolite-amended maize as the lowest-transfer combination under the tested conditions and provides a practical basis for safer fodder production in sewage-irrigated peri-urban soils.

References

  1. 1. Soleimani H, Mansouri B, Kiani A, Omer AK, Tazik M, Ebrahimzadeh G, et al. Ecological risk assessment and heavy metals accumulation in agriculture soils irrigated with treated wastewater effluent, river water and well water combined with chemical fertilizers. Heliyon. 2023;9(3):e14580. https://doi.org/10.1016/j.heliyon.2023.e14580
  2. 2. Rattan RK, Datta SP, Chhonkar PK, Suribabu K, Singh AK. Long-term impact of irrigation with sewage effluents on heavy metal content in soils, crops and groundwater-a case study. Agric Ecosyst Environ. 2005;109(3–4):310–22. https://doi.org/10.1016/j.agee.2005.02.025
  3. 3. Singh PK, Kumar U, Kumar I, Sharma RK. Trace metal contamination and health risk assessment in irrigated soils: seasonal dynamics and multivariate insights from a tropical ecosystem. Soil Res. 2026;64(1):SR25180. https://doi.org/10.1071/SR25180
  4. 4. Ghosh P, Ghoshal A. Potentially Toxic Elements (PTEs) in Plants and Animals: Environmental Pathways, Toxicity Mechanisms and Biomonitoring Insights. Environ Qual Manag. 2026;35(3):e70299. https://doi.org/10.1002/tqem.70299
  5. 5. Prasad M, Mahawer SK, Das MM, Coumar MV, Saha JK, Palsaniya DR. Assessing heavy metal pollution and livestock health risks in sewage water-irrigated fodder systems: a comprehensive study. Environ Monit Assess. 2025;197(8):839. https://doi.org/10.1007/s10661-025-14327-5
  6. 6. Murtaza G, Shehzad MT, Kanwal S, Farooqi ZUR, Owens G. Biomagnification of potentially toxic elements in animals consuming fodder irrigated with sewage water. Environ Geochem Health. 2022;44(12):4523–38. https://doi.org/10.1007/s10653-022-01211-1
  7. 7. Khan ZI, Ameer N, Ashfaq A, Ahmad K, Ashraf MI, Noorka IR, et al. From roadside soil to cow milk: a potentially toxic metal transfer study using Pennisetum glaucum as fodder. Environ Monit Assess. 2026;198(5):556. https://doi.org/10.1007/s10661-026-15398-8
  8. 8. Ugulu I, Khan ZI, Ameer N, Ashfaq A, Ahmad K, Ullah S, et al. Multimatrix evaluation of heavy metal transfer via Sorghum bicolor L. Moench: Soil-fodder-milk contamination and risk assessment. J Food Compos Anal. 2026;151:108976. https://doi.org/10.1016/j.jfca.2026.108976
  9. 9. Rizwan MS, Imtiaz M, Zhu J, Yousaf B, Hussain M, Ali L, et al. Immobilization of Pb and Cu by organic and inorganic amendments in contaminated soil. Geoderma. 2021;385:114803. https://doi.org/10.1016/j.geoderma.2020.114803
  10. 10. Rani N, Singh M. Remediation of Soil Impacted by Heavy Metal Using Farm Yard Manure, Vermicompost, Biochar and Poultry Manure. In: Aide M, Braden I, editors. Soil Science - Emerging Technologies, Global Perspectives and Applications. IntechOpen; 2022. https://doi.org/10.5772/intechopen.105536
  11. 11. Tahervand S, Jalali M. Sorption and desorption of potentially toxic metals (Cd, Cu, Ni and Zn) by soil amended with bentonite, calcite and zeolite as a function of pH. J Geochem Explor. 2017;181:148–59. https://doi.org/10.1016/j.gexplo.2017.07.005
  12. 12. Abbaspour A, Golchin A. Immobilization of heavy metals in a contaminated soil in Iran using di-ammonium phosphate, vermicompost and zeolite. Environ Earth Sci. 2011;63(5):935–43. https://doi.org/10.1007/s12665-010-0762-5
  13. 13. Shetaya WH, Bailey EH, Young SD, Mohamed EF, Antoniadis V, Rinklebe J, et al. Soil and plant contamination by potentially toxic and emerging elements and the associated human health risk in some Egyptian environments. Environ Geochem Health. 2023;45(2):359–79. https://doi.org/10.1007/s10653-021-01097-5
  14. 14. Alhogbi BG, Al-Ansari SA, El-Shahawi MS. A comparative study on the bioavailability and soil-to-plant transfer factors of potentially toxic element contamination in agricultural soils and their impacts: a case study of dense farmland in the western region of Saudi Arabia. Processes. 2023;11(9):2515. https://doi.org/10.3390/pr11092515
  15. 15. Gutiérrez-Martínez PB, Ramírez-Hernández BC, Maldonado-Villegas MM, Villanueva-Viramontes S, Becerril-Espinosa A, Ocampo-Alvarez H, et al. Heavy metal contamination in plant-based foods in Mexico: public health implications and regulatory challenges. Environments. 2026;13(5):251. https://doi.org/10.3390/environments13050251
  16. 16. Shahid A, Rashid A, Bashir H, Shehzad MT. Organic amendments and biochar alleviate chromium stress in mungbean (Vigna radiata). Plant Environ. 2025;6(02):1–18. https://doi.org/10.54219/plantenviron.06.02.2025.276
  17. 17. Sher A, Adnan M, Sattar A, Ul-Allah S, Ijaz M, Hassan MU, et al. Combined application of organic and inorganic amendments improved the yield and nutritional quality of forage sorghum. Agronomy. 2022;12(4):896. https://doi.org/10.3390/agronomy12040896
  18. 18. Xu D, Shen Z, Dou C, Dou Z, Li Y, Gao Y, et al. Effects of soil properties on heavy metal bioavailability and accumulation in crop grains under different farmland use patterns. Sci Rep. 2022;12(1):9211. https://doi.org/10.1038/s41598-022-13140-1
  19. 19. Bhatti SS, Kumar V, Sambyal V, Singh J, Nagpal AK. Comparative analysis of tissue compartmentalized heavy metal uptake by common forage crop: a field experiment. CATENA. 2018;160:185–93. https://doi.org/10.1016/j.catena.2017.09.015
  20. 20. Aziz RA, Yiwen M, Saleh M, Salleh MN, Gopinath SCB, Giap SGE, et al. Bioaccumulation and translocation of heavy metals in paddy (Oryza sativa L.) and soil in different land use practices. Sustainability.
  21. 21. Younas W, Khan H, Amin H, Ullah S, Ullah A, Ali U, et al. Synergistic role of plant growth-promoting rhizobacteria and zinc ferrite nanoparticles in mitigating mercury stress in chickpea (Cicer arietinum L.). Water Air Soil Pollut. 2026;237(3):139. https://doi.org/10.1007/s11270-025-08835-w
  22. 22. Fusaro L, Lanni F, Varone L, Falasca G, Serranti S, Gasbarrone R, et al. Functional traits as indicators of maize (Zea mays L.) strategies to cope with Zn, Pb and Cr heavy metal-induced stress. Chem Biol Technol Agric. 2025;12(1):82. https://doi.org/10.1186/s40538-025-00798-8
  23. 23. Page V, Feller U. Heavy metals in crop plants: transport and redistribution processes on the whole plant level. Agronomy. 2015;5(3):447–63. https://doi.org/10.3390/agronomy5030447
  24. 24. Eid EM, Hussain AA, Alamri SAM, Alrumman SA, Shaltout KH, Sewelam N, et al. Prediction models based on soil characteristics for evaluation of the accumulation capacity of nine metals by forage sorghum grown in agricultural soils treated with varying amounts of poultry manure. Bull Environ Contam Toxicol. 2023;110(1):40. https://doi.org/10.1007/s00128-022-03654-9
  25. 25. Zhang J, Li C, Li G, He Y, Yang J, Zhang J. Effects of biochar on heavy metal bioavailability and uptake by tobacco (Nicotiana tabacum) in two soils. Agric Ecosyst Environ. 2021;317:107453. https://doi.org/10.1016/j.agee.2021.107453
  26. 26. Rumi FA, Islam MdS, Kashem MdA. Role of different organic amendments on Cd and Pb bioavailability, uptake and growth by Ipomoea aquatica. Environ Chall. 2025;20:101266. https://doi.org/10.1016/j.envc.2025.101266
  27. 27. Mohan D, Abhishek K, Patel M, Pittman CU. Harnessing biochar in contaminated soil for heavy metal immobilization, soil health enhancement and carbon sequestration. Ind Eng Chem Res. 2024;63(23):10380–96. https://doi.org/10.1021/acs.iecr.4c00082
  28. 28. Choppala G, Bolan N, Lamb D, Kunhikrishnan A. Comparative sorption and mobility of Cr (III) and Cr (VI) species in a range of soils: implications to bioavailability. Water Air Soil Pollut. 2013;224(12):1699. https://doi.org/10.1007/s11270-013-1699-6
  29. 29. Yang D, Fang W, Zhang H, Gu X, Chen H, Sun H, et al. Migration and availability of Ni and Cd in industrial soils under different leaching conditions: insights from DGT and DIFS models. J Hazard Mater. 2024;480:135863. https://doi.org/10.1016/j.jhazmat.2024.135863
  30. 30. Guo Q, Yu D, Yang J, Zhao T, Yu D, Li L, et al. A novel sequential extraction method for the measurement of Cr(VI) and Cr(III) species distribution in soil: new insights into the chromium speciation. J Hazard Mater. 2024;480:135864. https://doi.org/10.1016/j.jhazmat.2024.135864
  31. 31. Hussain B, Abbas A, Saleem AR, Riaz L, Rahman SU, Liu S, et al. Uptake, agglomeration and detoxification of trace metals and metalloids in plants. J Soil Sci Plant Nutr. 2024;24(3):4965–83. https://doi.org/10.1007/s42729-024-01885-9
  32. 32. Sinduja M, Sathya V, Maheswari M, Dinesh GK, Dhevagi P, Prasad S, et al. Phytoextraction potential of Chrysanthemum and Cumbu Napier hybrid grass to remediate chromium-contaminated soils using bioamendments. Int J Environ Res. 2023;17(1):8. https://doi.org/10.1007/s41742-022-00496-5
  33. 33. Patra DK, Nayak M, Pradhan C, Patra HK. Heavy metals tolerance and toxic effects on plants: a review. Chem Ecol. 2026;42(5):640–72. https://doi.org/10.1080/02757540.2026.2661739
  34. 34. Gao J, Han H, Gao C, Wang Y, Dong B, Xu Z. Organic amendments for in situ immobilization of heavy metals in soil: a review. Chemosphere. 2023;335:139088. https://doi.org/10.1016/j.chemosphere.2023.139088
  35. 35. Głąb T, Gondek K, Mierzwa-Hersztek M. Biological effects of biochar and zeolite used for remediation of soil contaminated with toxic heavy metals. Sci Rep. 2021;11(1):6998. https://doi.org/10.1038/s41598-021-86446-1
  36. 36. Wieczorek J, Baran A, Bubak A. Mobility, bioaccumulation in plants and risk assessment of metals in soils. Sci Total Environ. 2023;882:163574. https://doi.org/10.1016/j.scitotenv.2023.163574
  37. 37. Alhaj Hamoud Y, Shaghaleh H, Zia-ur-Rehman M, Rizwan M, Umair M, Usman M, et al. Cadmium and lead accumulation in important food crops due to wastewater irrigation: pollution index and health risks assessment. Heliyon. 2024;10(3):e24712. https://doi.org/10.1016/j.heliyon.2024.e24712
  38. 38. Liu Q, Wang S, Zhou J, Bao L, Zhou W, Zhang N. Accumulation and transport of Cd, Pb, As and Cr in different maize varieties in Southwest China. Agriculture. 2025;15(2):203. https://doi.org/10.3390/agriculture15020203
  39. 39. Anning AK, Akoto R. Assisted phytoremediation of heavy metal contaminated soil from a mined site with Typha latifolia and Chrysopogon zizanioides. Ecotoxicol Environ Saf. 2018;148:97–104. https://doi.org/10.1016/j.ecoenv.2017.10.014
  40. 40. Tamma AA, Lejcuś K, Fiałkiewicz W, Marczak D. Advancing phytoremediation: a review of soil amendments for heavy metal contamination management. Sustainability. 2025;17(13):5688. https://doi.org/10.3390/su17135688
  41. 41. Araujo ASF, Miranda ARL, Pereira APDA, De Melo WJ, Melo VMM, Ventura SH, et al. Microbial communities in the rhizosphere of maize and cowpea respond differently to chromium contamination. Chemosphere. 2023;313:137417. https://doi.org/10.1016/j.chemosphere.2022.137417
  42. 42. Soliman M, Al-Akeel R, Al-Ghamdi M, Almadiy A, Rawi S, Zhang W, et al. Trophic transfer of heavy metals across a food chain in a wastewater-irrigated agroecosystem. Environ Monit Assess. 2024;196(11):1082. https://doi.org/10.1007/s10661-024-13179-9

Downloads

Download data is not yet available.