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The Journey of 1000 Leagues towards the Decontamination of the Soil from Heavy Metals and the Impact on the Soil–Plant–Animal–Human Chain Begins with the First Step: Phytostabilization/Phytoextraction

Author

Listed:
  • Cristina Hegedus

    (Faculty of Animal Science and Biotechnology, University of Agricultural Sciences and Veterinary Medicine Cluj-Napoca, Mănăştur Street, 3-5, 400372 Cluj-Napoca, Romania)

  • Simona-Nicoleta Pașcalău

    (Faculty of Animal Science and Biotechnology, University of Agricultural Sciences and Veterinary Medicine Cluj-Napoca, Mănăştur Street, 3-5, 400372 Cluj-Napoca, Romania)

  • Luisa Andronie

    (Faculty of Forestry and Cadastre, University of Agricultural Sciences and Veterinary Medicine Cluj-Napoca, Mănăştur Street, 3-5, 400372 Cluj-Napoca, Romania)

  • Ancuţa-Simona Rotaru

    (Faculty of Animal Science and Biotechnology, University of Agricultural Sciences and Veterinary Medicine Cluj-Napoca, Mănăştur Street, 3-5, 400372 Cluj-Napoca, Romania)

  • Alexandra-Antonia Cucu

    (Faculty of Animal Science and Biotechnology, University of Agricultural Sciences and Veterinary Medicine Cluj-Napoca, Mănăştur Street, 3-5, 400372 Cluj-Napoca, Romania)

  • Daniel Severus Dezmirean

    (Faculty of Animal Science and Biotechnology, University of Agricultural Sciences and Veterinary Medicine Cluj-Napoca, Mănăştur Street, 3-5, 400372 Cluj-Napoca, Romania)

Abstract

Nowadays, there are a multitude of sources of heavy metal pollution which have unwanted effects on this super organism, the soil, which is capable of self-regulation, but limited. Living a healthy life through the consumption of fruits and vegetables, mushrooms, edible products and by-products of animal origin, honey and bee products can sometimes turn out to be just a myth due to the contamination of the soil with heavy metals whose values, even if they are below accepted limits, are taken up by plants, reach the food chain and in the long term unbalance the homeostasis of the human organism. Plants, these miracles of nature, some with the natural ability to grow on polluted soils, others needing a little help by adding chelators or amendments, can participate in the soil detoxification of heavy metals through phytoextraction and phytostabilization. The success of soil decontamination must take into account the collaboration of earth sciences, pedology, pedochemistry, plant physiology, climatology, the characteristics of heavy metals and how they are absorbed in plants, and in addition how to avoid the contamination of other systems, water or air. The present work materialized after extensive bibliographic study in which the results obtained by the cited authors were compiled.

Suggested Citation

  • Cristina Hegedus & Simona-Nicoleta Pașcalău & Luisa Andronie & Ancuţa-Simona Rotaru & Alexandra-Antonia Cucu & Daniel Severus Dezmirean, 2023. "The Journey of 1000 Leagues towards the Decontamination of the Soil from Heavy Metals and the Impact on the Soil–Plant–Animal–Human Chain Begins with the First Step: Phytostabilization/Phytoextraction," Agriculture, MDPI, vol. 13(3), pages 1-49, March.
  • Handle: RePEc:gam:jagris:v:13:y:2023:i:3:p:735-:d:1104335
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    References listed on IDEAS

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    1. Yuxia Liu & Weili Xu & Yi Wang & Weiduo Hao & Qixing Zhou & Jianv Liu, 2021. "Growth Responses and Accumulation Characteristics of Three Ornamental Plants to Sn Contamination in Soil," Agriculture, MDPI, vol. 11(3), pages 1-10, March.
    2. Mom TatahMentan & Syprose Nyachoti & Laura Scott & Nati Phan & Frederick O. Okwori & Nedaa Felemban & Tewodros R. Godebo, 2020. "Toxic and Essential Elements in Rice and Other Grains from the United States and Other Countries," IJERPH, MDPI, vol. 17(21), pages 1-12, November.
    3. L. Q. Ma & K. M. Komar & Cong Tu & Weihua Zhang & Yong Cai & E. D. Kennelley, 2001. "A fern that hyperaccumulates arsenic," Nature, Nature, vol. 411(6836), pages 438-438, May.
    4. Jesús D. Peco & Pablo Higueras & Juan A. Campos & José M. Esbrí & Marta M. Moreno & Fabienne Battaglia-Brunet & Luisa M. Sandalio, 2021. "Abandoned Mine Lands Reclamation by Plant Remediation Technologies," Sustainability, MDPI, vol. 13(12), pages 1-27, June.
    5. Maja Radziemska & Agnieszka Bęś & Zygmunt M. Gusiatin & Łukasz Sikorski & Martin Brtnicky & Grzegorz Majewski & Ernesta Liniauskienė & Václav Pecina & Rahul Datta & Ayla Bilgin & Zbigniew Mazur, 2020. "Successful Outcome of Phytostabilization in Cr(VI) Contaminated Soils Amended with Alkalizing Additives," IJERPH, MDPI, vol. 17(17), pages 1-16, August.
    6. Keli Zhao & Weijun Fu & Zhengqian Ye & Chaosheng Zhang, 2015. "Contamination and Spatial Variation of Heavy Metals in the Soil-Rice System in Nanxun County, Southeastern China," IJERPH, MDPI, vol. 12(2), pages 1-18, January.
    7. Lena Q. Ma & Kenneth M. Komar & Cong Tu & Weihua Zhang & Yong Cai & Elizabeth D. Kennelley, 2001. "A fern that hyperaccumulates arsenic," Nature, Nature, vol. 409(6820), pages 579-579, February.
    8. Paliza Shrestha & Korkmaz Bellitürk & Josef H. Görres, 2019. "Phytoremediation of Heavy Metal-Contaminated Soil by Switchgrass: A Comparative Study Utilizing Different Composts and Coir Fiber on Pollution Remediation, Plant Productivity, and Nutrient Leaching," IJERPH, MDPI, vol. 16(7), pages 1-16, April.
    9. Beatrice Omonike Otunola & Makhosazana P. Aghoghovwia & Melusi Thwala & Alba Gómez-Arias & Rian Jordaan & Julio Castillo Hernandez & Olusola Oluwayemisi Ololade, 2022. "Influence of Clay Mineral Amendments Characteristics on Heavy Metals Uptake in Vetiver Grass ( Chrysopogon zizanioides L. Roberty) and Indian Mustard ( Brassica juncea L. Czern)," Sustainability, MDPI, vol. 14(10), pages 1-13, May.
    10. Szilárd Bartha & Ioan Taut & Győző Goji & Ioana Andra Vlad & Florin Dinulică, 2020. "Heavy Metal Content in PolyfloralHoney and Potential Health Risk. A Case Study of Copșa Mică, Romania," IJERPH, MDPI, vol. 17(5), pages 1-12, February.
    11. Monika Hejna & Elisabetta Onelli & Alessandra Moscatelli & Maurizio Bellotto & Cinzia Cristiani & Nadia Stroppa & Luciana Rossi, 2021. "Heavy-Metal Phytoremediation from Livestock Wastewater and Exploitation of Exhausted Biomass," IJERPH, MDPI, vol. 18(5), pages 1-16, February.
    12. Beatriz E. Guerra Sierra & Jaider Muñoz Guerrero & Serge Sokolski, 2021. "Phytoremediation of Heavy Metals in Tropical Soils an Overview," Sustainability, MDPI, vol. 13(5), pages 1-24, February.
    13. N. Shabani & M. H. Sayadi, 2012. "Evaluation of heavy metals accumulation by two emergent macrophytes from the polluted soil: an experimental study," Environment Systems and Decisions, Springer, vol. 32(1), pages 91-98, March.
    14. Christopher Jorelle Gillespie & João Arthur Antonangelo & Hailin Zhang, 2021. "The Response of Soil pH and Exchangeable Al to Alum and Lime Amendments," Agriculture, MDPI, vol. 11(6), pages 1-13, June.
    15. Marianna Bandiera & Cristian Dal Cortivo & Giuseppe Barion & Giuliano Mosca & Teofilo Vamerali, 2016. "Phytoremediation Opportunities with Alimurgic Species in Metal-Contaminated Environments," Sustainability, MDPI, vol. 8(4), pages 1-17, April.
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