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Research Articles

Early Access

Accumulation of copper in tissues of Sonchus arvensis L. grown in copper-polluted soil

DOI
https://doi.org/10.14719/pst.11806
Submitted
16 September 2025
Published
16-03-2026

Abstract

Copper (Cu) contamination in agricultural soils poses environmental risks and potential health hazards through food-chain transfer. Sonchus arvensis L., a widely consumed medicinal plant, has not been fully assessed for its capacity to accumulate heavy metals. This study investigated whether the species exhibits sufficient tolerance and uptake ability to evaluate its safety implications for human consumption while also assessing its ability to function as a phytoremediation agent. S. arvensis was cultivated in soils spiked with graded Cu concentrations (0, 50, 100, 150 and 200 mg/kg). Morphological responses, Cu partitioning between roots and shoots and phytoremediation ability were measured to determine its remediation potential. The plant survived across all treatments, showing dose-dependent stress symptoms but maintaining structural viability. Copper accumulation followed a clear pattern of root greater than shoot across all concentrations. Removal efficiency reached up to 43 % within 14 days, indicating rapid metal sequestration and demonstrating the species’ potential for phytostabilisation. However, Cu concentrations in aerial tissues exceeded international food safety limits (WHO) even at the lowest contamination level. These findings highlight a dual implication: S. arvensis is a promising, cost-effective candidate for stabilising Cu-contaminated soils, yet its ability to accumulate Cu in edible parts presents significant safety concerns. Regulation of its harvest in polluted environments is therefore essential.

References

  1. 1. Ali H, Khan E, Ilahi I. Environmental chemistry and ecotoxicology of hazardous heavy metals: environmental persistence, toxicity and bioaccumulation. J Chem. 2019;2019:6730305. https://doi.org/10.1155/2019/6730305
  2. 2. Briffa J, Sinagra E, Blundell R. Heavy metal pollution in the environment and their toxicological effects on humans. Heliyon. 2020;6:e04691. https://doi.org/10.1016/j.heliyon.2020.e04691
  3. 3. Afifudin AFM, Pramesti HN, Irawanto R, Sari A, Soegianto A, Affandi M, et al. Spatial distribution and risk assessment of heavy metal contamination in Western Madura Strait sediments. Results Eng. 2025;26:105157. https://doi.org/10.1016/j.rineng.2025.105157
  4. 4. Afifudin AFM, Agustina E, Firdhausi NF, Irawanto R. Respon tanaman daun tombak (Sagittaria lancifolia) dalam cekaman logam berat tembaga (Cu). J Al-Azhar Indones Ser Sains Teknol. 2022;7:87. https://doi.org/10.36722/sst.v7i2.1118
  5. 5. Araya M, Olivares M, Pizarro F, González M, Speisky H, Uauy R. Gastrointestinal symptoms and blood indicators of copper load in healthy adults undergoing controlled copper exposure. Am J Clin Nutr. 2003;77:646–50. https://doi.org/10.1093/ajcn/77.3.646
  6. 6. Jaishankar M, Tseten T, Anbalagan N, Mathew BB, Beeregowda KN. Toxicity, mechanism and health effects of some heavy metals. Interdiscip Toxicol. 2014;7:60–72. https://doi.org/10.2478/intox-2014-0009
  7. 7. Nurhab MI. Penanaman dan pemanfaatan tanaman obat keluarga (TOGA) bagi masyarakat Desa Negeri Tua. J Umum Pengabd Masy. 2023;2:33–42.
  8. 8. Wulandari TM, Chandra B, Zulharmita Z, Rivai H. Traditional uses, phytochemicals and pharmacological activities of tempuyung (Sonchus arvensis L.). Int J Pharm Sci Med. 2021;6:34–41. https://doi.org/10.47760/ijpsm.2021.v06i06.004
  9. 9. Wahyuni DK, Rahayu S, Purnama PR, Saputro TB, Suharyanto, Wijayanti N, et al. Morpho-anatomical structure and DNA barcode of Sonchus arvensis L. Biodiversitas. 2019;20(8):2417-26. https://doi.org/10.13057/biodiv/d200841
  10. 10. Suwartiny NL, Rafi M, Rohaeti E. Traditional use, phytochemical composition and biological activities of Sonchus arvensis. Indones J Pharm. 2022;33:540–53. https://doi.org/10.22146/ijp.3823
  11. 11. Wahyuni DK, Lestari S, Kuncoro EP, Purnobasuki H. Callus induction and its metabolite profiles of Sonchus arvensis L. under temperature treatment. Ann Biol. 2020;36(2):299-303.
  12. 12. Wahyuni DK, Nariswari A, Supriyanto A, Purnobasuki H, Punnapayak H, Bankeeree W, et al. Antioxidant, antimicrobial, and antiplasmodial activities of Sonchus arvensis L. leaf ethyl acetate fractions. Pharmacogn J. 2022;14(6 Suppl):993-98. https://doi.org/10.5530/pj.2022.14.202
  13. 13. Khalaf IM, Hameed AT, Talak AO, Nasir KM. Phytoremediation of heavy metals using plant species of the Asteraceae family. Anbar J Agric Sci. 2024;22:1019–32. https://doi.org/10.32649/ajas.2024.184465
  14. 14. Qin L, Li Z, Li B, Wang J, Zu Y, Jiang M, et al. Organic acid excretion as a mechanism of cadmium uptake in a Sonchus asper-Zea mays intercropping system. Bull Environ Contam Toxicol. 2021;107:1059–64. https://doi.org/10.1007/s00128-021-03361-x
  15. 15. Bech J, Duran P, Roca N, Poma W, Sánchez I, Barceló J, et al. Shoot accumulation of trace elements in native plant species from contaminated soils in the Peruvian Andes. J Geochem Explor. 2012;113:106–11. https://doi.org/10.1016/j.gexplo.2011.04.007
  16. 16. Mujahid R, Subositi D. Kandungan kadmium dan timbal dalam tempuyung (Sonchus arvensis L.). Art Pemakalah Paralel. 2020;783–86.
  17. 17. Charkiewicz AE. Is copper still safe for us? Curr Issues Mol Biol. 2024;46:8441–63. https://doi.org/10.3390/cimb46080498
  18. 18. Purwanti IF, Obenu A, Tangahu BV, Kurniawan SB, Imron MF, Abdullah SRS. Bioaugmentation of Vibrio alginolyticus in phytoremediation using Scirpus grossus and Typha angustifolia. Heliyon. 2020;6:e05004. https://doi.org/10.1016/j.heliyon.2020.e05004
  19. 19. Purwanti IF, Simamora D, Kurniawan SB. Toxicity test of tempe industrial wastewater on Cyperus rotundus and Scirpus grossus. Int J Civ Eng Technol. 2018;9:1162–72.
  20. 20. Tangahu BV, Abdullah SS, Basri H, Idris M, Anuar N, Mukhlisin M. Range finding test of lead on Scirpus grossus. Proc Reg Eng Postgrad Conf. 2010;28–9.
  21. 21. Khotimah NN, Rozirwan R, Putri WAE, Fauziyah F, Aryawati R, Isnaini I, et al. Bioaccumulation and ecological risk of lead and copper in Avicennia alba and Excoecaria agallocha. J Ecol Eng. 2024;25:101–13. https://doi.org/10.12911/22998993/185716
  22. 22. Sajad MA, Khan MS, Bahadur S, Naeem A, Ali H, Batool F, et al. Chromium phytoremediation potential of plants from Dir Lower, Pakistan. Acta Ecol Sin. 2020;40:158–65. https://doi.org/10.1016/j.chnaes.2019.12.002
  23. 23. Gupta N, Yadav KK, Kumar V, Kumar S, Chadd RP, Kumar A. Trace elements in soil-vegetable interface: translocation, bioaccumulation and toxicity. Sci Total Environ. 2019;651:2927–42. https://doi.org/10.1016/j.scitotenv.2018.10.047
  24. 24. Pashaei H, Ghaemi A, Nasiri M, Heydarifard M. Effect of nano heavy metal oxides on CO₂ absorption in piperazine solution. Energy Fuels. 2018;32:2037–52. https://doi.org/10.1021/acs.energyfuels.7b03481
  25. 25. Feil SB, Zuluaga MYA, Cesco S, Pii Y. Copper toxicity compromises nitrate acquisition in roots. Front Plant Sci. 2023;13:1034425. https://doi.org/10.3389/fpls.2022.1034425
  26. 26. Costa MB, Tavares FV, Martinez CB, Colares IG, Martins CDMG. Effects of copper on aquatic macrophyte Potamogeton pectinatus L. Ecotoxicol Environ Saf. 2018;155:117–24. https://doi.org/10.1016/j.ecoenv.2018.01.062
  27. 27. Moreira A, Moraes LAC, Delfim JJ, Moreti LG. Copper toxicity and tolerance in plants. In: Heavy Metal Toxicity and Tolerance in Plants. 2023. p. 251–73. https://doi.org/10.1002/9781119906506.ch12
  28. 28. Wairich A, De Conti L, Lamb TI, Keil R, Neves LO, Brunetto G, et al. Copper uptake, distribution and accumulation in plants. Agronomy. 2022;12:994. https://doi.org/10.3390/agronomy12050994
  29. 29. Abdelgawad ZA, Abd El-Wahed MN, Ahmed AA, Madbouly SM, El-Sayad GS, Khalafallah AA. Heavy metal accumulation and health risk in edible weeds. Sci Rep. 2023;13:21768. https://doi.org/10.1038/s41598-023-48763-5
  30. 30. Bandiera M, Dal Cortivo C, Barion G, Mosca G, Vamerali T. Phytoremediation opportunities with alimurgic species. Sustainability. 2016;8:357. https://doi.org/10.3390/su8040357
  31. 31. Amiriyan CZ, Amini R, Dabbagh MNA. Optimizing copper phytoremediation and mung bean (Vigna radiata L.) yield using Sinorhizobium meliloti and Piriformospora indica. Sci Rep. 2025;15:18759. https://doi.org/10.1038/s41598-025-01681-0

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