Potentials of Miscanthus x giganteus for phytostabilization of trace element-contaminated soils: Ex situ experiment

被引:24
|
作者
Nsanganwimana, Florien [1 ,2 ]
Al Souki, Karim Suhail [1 ,3 ]
Waterlot, Christophe [1 ]
Douay, Francis [1 ]
Pelfrene, Aurelie [1 ]
Ridoskova, Andrea [4 ]
Louvel, Brice [1 ]
Pourrut, Bertrand [1 ,5 ]
机构
[1] ISA Lille Junia, Lab Genie Civil & GeoEnvironm LGCgE, 48 Blvd Vauban, F-59046 Lille, France
[2] Univ Rwanda, Coll Educ UR CE, KG 11 Ave, Kigali, Rwanda
[3] Jan Evangelista Purkyne Univ Usti nad Labem, Dept Tech Sci, Pasteurova 3632-15, Usti Nad Labem 40096, Czech Republic
[4] Mendel Univ Brno, Dept Chem & Biochem, Zemedelska 1, Brno 61300, Czech Republic
[5] Univ Toulouse, Lab Ecol Fonct & Environm, UPS, INPT,CNRS, Toulouse, France
关键词
Miscanthus; Energy crop; Excluder; Trace element mobility; Phytostabilization; ASH-AIDED PHYTOSTABILISATION; IMPACT; ZN; CD; CADMIUM; PB; RHIZOSPHERE; CULTIVATION; PARAMETERS; RESPONSES;
D O I
10.1016/j.ecoenv.2021.112125
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Phytomanagement is proposed as a cost-effective and environmentally-friendly suggestion for sustainable use of large metal-contaminated areas. In the current work, the energy crop miscanthus (Miscanthus ? giganteus) was grown in ex situ conditions on agricultural soils presenting a Cd, Pb and Zn contamination gradient. After 93 days of culture, shoot and root growth parameters were measured. Soils and plants were sampled as well to study the TE accumulation in miscanthus and the effects of this plant on TE mobility in soils. Results demonstrated that miscanthus growth depended more on the soils silt content rather than TE-contamination level. Moreover, soil organic carbon at T93 increased in the soils after miscanthus cultivation by 25.5?45.3%, whereas CaCl2extractible TEs decreased due to complex rhizosphere processes driving plant mineral uptake, and organic carbon inputs into the rhizosphere. In the contaminated soils, miscanthus accumulated Cd, Pb and Zn mainly in roots (BCF in roots: Cd " Zn > Pb), while strongly reducing the transfer of these elements from soil to all organs and from roots to rhizomes, stems and leaves (average TFs: 0.01?0.06, 0.11?1.15 and 0.09?0.79 corresponding to Cd, Pb and Zn respectively). Therefore, miscanthus could be considered a TE-excluder, hence a potential candidate crop for coupling phytostabilization and biomass production on the studied Metaleurop TE-contaminated soils.
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页数:10
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  • [1] Assessment of Miscanthus x giganteus capacity to restore the functionality of metal-contaminated soils: Ex situ experiment
    Al Souki, Karim Suhail
    Louvel, Brice
    Douay, Francis
    Pourrut, Bertrand
    [J]. APPLIED SOIL ECOLOGY, 2017, 115 : 44 - 52
  • [2] Aided phytostabilization using Miscanthus sinensis x giganteus on heavy metal-contaminated soils
    Pavel, Petronela-Bianca
    Puschenreiter, Markus
    Wenzel, Walter W.
    Diacu, Elena
    Barbu, Constantin Horia
    [J]. SCIENCE OF THE TOTAL ENVIRONMENT, 2014, 479 : 125 - 131
  • [3] Aided phytostabilization of a trace element-contaminated technosol developed on steel mill wastes
    Oustriere, Nadege
    Marchand, Lilian
    Bouchardon, Jean Luc
    Faure, Olivier
    Moutte, Jacques
    Mench, Michel
    [J]. JOURNAL OF HAZARDOUS MATERIALS, 2016, 320 : 458 - 468
  • [4] Potentials of Miscanthus x giganteus grown on highly contaminated Technosols
    Wanat, Nastasia
    Austruy, Annabelle
    Joussein, Emmanuel
    Soubrand, Marilyne
    Hitmi, Adnane
    Gauthier-Moussard, Cecile
    Lenain, Jean-Francois
    Vernay, Philippe
    Munch, Jean Charles
    Pichon, Martin
    [J]. JOURNAL OF GEOCHEMICAL EXPLORATION, 2013, 126 : 78 - 84
  • [5] The Role of Plant Growth Regulators in Miscanthus x giganteus Growth on Trace Elements-Contaminated Soils
    Pidlisnyuk, Valentina
    Mamirova, Aigerim
    Newton, Robert Ato
    Stefanovska, Tatyana
    Zhukov, Oleksandr
    Tsygankova, Viktoria
    Shapoval, Pavlo
    [J]. AGRONOMY-BASEL, 2022, 12 (12):
  • [6] Agronomic Practices for Improving Gentle Remediation of Trace Element-Contaminated Soils
    Kidd, Petra
    Mench, Michel
    Alvarez-Lopez, Vanessa
    Bert, Valerie
    Dimitriou, Ioannis
    Friesl-Hanl, Wolfgang
    Herzig, Rolf
    Janssen, Jolien Olga
    Kolbas, Aliaksandr
    Mueller, Ingo
    Neu, Silke
    Renella, Giancarlo
    Ruttens, Ann
    Vangronsveld, Jaco
    Puschenreiter, Markus
    [J]. INTERNATIONAL JOURNAL OF PHYTOREMEDIATION, 2015, 17 (11) : 1005 - 1037
  • [7] Trace Element Uptake by Herbaceous Plants from the Soils at a Multiple Trace Element-Contaminated Site
    Nworie, Obinna Elijah
    Qin, Junhao
    Lin, Chuxia
    [J]. TOXICS, 2019, 7 (01)
  • [8] Evaluation of Miscanthus x giganteus Tolerance to Trace Element Stress: Field Experiment with Soils Possessing Gradient Cd, Pb, and Zn Concentrations
    Bastia, Giulia
    Al Souki, Karim Suhail
    Pourrut, Bertrand
    [J]. PLANTS-BASEL, 2023, 12 (07):
  • [9] MISCANTHUS X GIGANTEUS AS A BIOFUEL CROP FOR PHYTOREMEDIATION OF HEAVY METAL CONTAMINATED SOILS
    Angelova, Violina
    Zapryanova, Vanya
    [J]. SCIENTIFIC PAPERS-SERIES E-LAND RECLAMATION EARTH OBSERVATION & SURVEYING ENVIRONMENTAL ENGINEERING, 2021, 10 : 192 - 203
  • [10] Assessment of Miscanthus x giganteus for rhizoremediation of long term PAH contaminated soils
    Techer, Didier
    Martinez-Chois, Claudia
    Laval-Gilly, Philippe
    Henry, Sonia
    Bennasroune, Amar
    D'Innocenzo, Marielle
    Falla, Jairo
    [J]. APPLIED SOIL ECOLOGY, 2012, 62 : 42 - 49