Literature DB >> 29644506

Uptake and accumulation of potentially toxic elements in colonized plant species around the world's largest antimony mine area, China.

Jiumei Long1,2,3, Di Tan1, Sihan Deng1, Ming Lei4,5.   

Abstract

To provide information on reclamation of multi-heavy metal polluted soils with conception of phytostabilization, a field survey on the uptake and accumulation of potentially toxic elements such as antimony (Sb), arsenic (As), lead (Pb), cadmium (Cd), copper (Cu), and zinc (Zn) in colonized plant species around the world's largest antimony mine area, China, was conducted. Samples including leaves and shoots (including roots and stems) of colonized plants as well as rhizospheric soils were collected from eight sampling zones in the studied area. The results showed that the contents of Cu, Zn, and Pb in rhizospheric soils below plants were comparable to the corresponding background values of Hunan province, otherwise Sb, Cd, and As contents were extremely high (17-106, 17-87, and 3-7 times of the corresponding background values). The highest concentration of Sb was found in Aster subulatus (410 mg kg-1); Cd, As, and Zn were in Herba bidentis bipinnatae (10.9, 264, and 265 mg kg-1, respectively); and Cu was in Artemisia lavandulaefolia (27.1 mg kg-1). It also exhibited that all the contents of As in leaves were several times of those in shoots of plants, Cd and other heavy metals showed in a similar pattern in several studied species, implying that the uptake route of these heavy metals via foliar might contribute to the accumulation. With high bioconcentration factors of heavy metals (more than 1, except for Zn), together with the growth abundance, Herba bidentis bipinnatae was considered as the most suitable colonized species for phytostabilization of the multi-heavy metal pollution in soils on this antimony mine area.

Entities:  

Keywords:  Bioconcentration; Biodistribution; Heavy metal tolerance; Multi-heavy metal pollution; Phytostabilization; Potentially toxic elements

Mesh:

Substances:

Year:  2018        PMID: 29644506     DOI: 10.1007/s10653-018-0104-1

Source DB:  PubMed          Journal:  Environ Geochem Health        ISSN: 0269-4042            Impact factor:   4.609


  29 in total

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1.  Heavy metal distribution, translocation, and human health risk assessment in the soil-rice system around Dongting Lake area, China.

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  1 in total

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