Phytoremediation: A Promising Approach for Revegetation of Heavy Metal-Polluted Land

被引:855
作者
Yan, An [1 ]
Wang, Yamin [1 ]
Tan, Swee Ngin [1 ]
Yusof, Mohamed Lokman Mohd [2 ]
Ghosh, Subhadip [2 ,3 ]
Chen, Zhong [1 ,4 ]
机构
[1] Nanyang Technol Univ, Natl Inst Educ, Nat Sci & Sci Educ, Singapore, Singapore
[2] Natl Pk Board, Ctr Urban Greenery & Ecol, Singapore, Singapore
[3] Univ New England, Sch Environm & Rural Sci, Armidale, NSW, Australia
[4] M Grass Int Inst Smart Urban Greenol, Singapore, Singapore
关键词
phytoremediation; heavy metal; uptake; detoxification; genetic engineering; chelate; SEDUM-ALFREDII; CADMIUM ACCUMULATION; THLASPI-CAERULESCENS; CONTAMINATED SOILS; MANGANESE UPTAKE; TOXIC METALS; SUBCELLULAR-LOCALIZATION; PLANT-RESPONSES; CALCAREOUS SOIL; LEAD TOLERANCE;
D O I
10.3389/fpls.2020.00359
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Heavy metal accumulation in soil has been rapidly increased due to various natural processes and anthropogenic (industrial) activities. As heavy metals are non-biodegradable, they persist in the environment, have potential to enter the food chain through crop plants, and eventually may accumulate in the human body through biomagnification. Owing to their toxic nature, heavy metal contamination has posed a serious threat to human health and the ecosystem. Therefore, remediation of land contamination is of paramount importance. Phytoremediation is an eco-friendly approach that could be a successful mitigation measure to revegetate heavy metal-polluted soil in a cost-effective way. To improve the efficiency of phytoremediation, a better understanding of the mechanisms underlying heavy metal accumulation and tolerance in plant is indispensable. In this review, we describe the mechanisms of how heavy metals are taken up, translocated, and detoxified in plants. We focus on the strategies applied to improve the efficiency of phytostabilization and phytoextraction, including the application of genetic engineering, microbe-assisted and chelate-assisted approaches.
引用
收藏
页数:15
相关论文
共 169 条
[21]   Prosopis laevigata a potential chromium (VI) and cadmium (II) hyperaccumulator desert plant [J].
Buendia-Gonzalez, L. ;
Orozco-Villafuerte, J. ;
Cruz-Sosa, F. ;
Barrera-Diaz, C. E. ;
Vernon-Carter, E. J. .
BIORESOURCE TECHNOLOGY, 2010, 101 (15) :5862-5867
[22]   From phytoremediation of soil contaminants to phytomanagement of ecosystem services in metal contaminated sites [J].
Burges, Aritz ;
Alkorta, Itziar ;
Epelde, Lur ;
Garbisu, Carlos .
INTERNATIONAL JOURNAL OF PHYTOREMEDIATION, 2018, 20 (04) :384-397
[23]   High-Affinity Manganese Uptake by the Metal Transporter NRAMP1 Is Essential for Arabidopsis Growth in Low Manganese Conditions [J].
Cailliatte, Remy ;
Schikora, Adam ;
Briat, Jean-Francois ;
Mari, Stephane ;
Curie, Catherine .
PLANT CELL, 2010, 22 (03) :904-917
[24]  
Cempel M, 2006, POL J ENVIRON STUD, V15, P375
[25]  
Chaney R. L., 2010, Trace elements in soils, P311
[26]  
Chehregani A., 2007, International Journal of Agriculture and Biology, V9, P462
[27]   The role of arbuscular mycorrhiza in zinc uptake by red clover growing in a calcareous soil spiked with various quantities of zinc [J].
Chen, BD ;
Li, XL ;
Tao, HQ ;
Christie, P ;
Wong, MH .
CHEMOSPHERE, 2003, 50 (06) :839-846
[28]   Modeling and evaluation of urban pollution events of atmospheric heavy metals from a large Cu-smelter [J].
Chen, Bing ;
Stein, Ariel F. ;
Castell, Nuria ;
Gonzalez-Castanedo, Yolanda ;
Sanchez de la Campa, A. M. ;
de la Rosa, J. D. .
SCIENCE OF THE TOTAL ENVIRONMENT, 2016, 539 :17-25
[29]   Toxic metal accumulation, responses to exposure and mechanisms of tolerance in plants [J].
Clemens, S. .
BIOCHIMIE, 2006, 88 (11) :1707-1719
[30]   A long way ahead:: understanding and engineering plant metal accumulation [J].
Clemens, S ;
Palmgren, MG ;
Krämer, U .
TRENDS IN PLANT SCIENCE, 2002, 7 (07) :309-315