The potential of genetic engineering of plants for the remediation of soils contaminated with heavy metals

Потенциал генетической инженерии растений для рекультивации почв, загрязнённых тяжёлыми металлами
Elisa Fasani, Anna Manara, Flávio Martini, Antonella Furini, Giovanni DalCorso
2017-04-07

heavy metal phytoextractionmetal detoxificationmetal transportersphytoremediationplant genetic engineering
The genetic engineering of plants to facilitate the reclamation of soils and waters contaminated with inorganic pollutants is a relatively new and evolving field, benefiting from the heterologous expression of genes that increase the capacity of plants to mobilize, stabilize and/or accumulate metals. The efficiency of phytoremediation relies on the mechanisms underlying metal accumulation and tolerance, such as metal uptake, translocation and detoxification. The transfer of genes involved in any of these processes into fast-growing, high-biomass crops may improve their reclamation potential. The successful phytoextraction of metals/metalloids and their accumulation in aerial organs have been achieved by expressing metal ligands or transporters, enzymes involved in sulfur metabolism, enzymes that alter the chemical form or redox state of metals/metalloids and even the components of primary metabolism. This review article considers the potential of genetic engineering as a strategy to improve the phytoremediation capacity of plants in the context of heavy metals and metalloids, using recent case studies to demonstrate the practical application of this approach in the field.
1
Genetic engineering can enhance plant-based remediation of heavy-metal- and metalloid-contaminated soils and waters.
2
Introducing relevant genes into fast-growing, high-biomass crops may increase their potential for soil reclamation.
3
Phytoremediation efficiency depends on improving metal uptake, translocation, stabilization, accumulation, and detoxification mechanisms.
4
Recent case studies demonstrate the practical field potential of genetically engineered plants for heavy-metal and metalloid phytoremediation.
5
Successful phytoextraction and aerial accumulation have been achieved by expressing metal ligands, transporters, sulfur-metabolism enzymes, redox-modifying enzymes, and primary-metabolism components.

genetically engineered plants used for phytoremediation of soils contaminated with heavy metals and metalloids

the phytoremediation capacity of plants, including metal uptake, translocation, detoxification, stabilization and accumulation, enhanced through heterologous gene expression

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2017-04-07
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Elisa Fasani
Anna Manara
Flávio Martini
Antonella Furini
Giovanni DalCorso
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