Bioaugmentation-assisted phytoextraction of Co, Pb and Zn: an assessment with a phosphate-solubilizing bacterium isolated from metal-contaminated mines of Boryeong Area in South Korea. 

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dc.contributor.advisor
dc.contributor.author Arunakumara, K. K. I. U,
dc.contributor.author Walpola, B. C,
dc.contributor.author Yoon, M. H,
dc.date.accessioned 2023-02-16T05:48:13Z
dc.date.available 2023-02-16T05:48:13Z
dc.date.issued 2015
dc.identifier.citation Arunakumara, K. K. I. U., Walpola, B. C. & Yoon, M. H., (2015). Bioaugmentation-assisted phytoextraction of Co, Pb and Zn: an assessment with a phosphate-solubilizing bacterium isolated from metal-contaminated mines of Boryeong Area in South Korea. Biotechnology, Agronomy, Society and Environment (BASE), 19(2), 143-152. en_US
dc.identifier.issn 13706233
dc.identifier.uri http://ir.lib.ruh.ac.lk/xmlui/handle/iruor/11197
dc.description.abstract Description of the subject. Make use of microbes having remarkable metal tolerance and plant growth-promoting abilities to remediate metal-contaminated soils. Objectives. The objectives were to isolate phosphate solubilizing bacterial strain, assess metal (Co, Pb and Zn) mobilization potential of the strain and to evaluate the effects of the strain on growth and uptake of metals by Helianthus annuus. Method. A phosphate solubilizing bacterium was isolated from metal-contaminated soils. Heavy metal (Co, Pb and Zn) tolerance of the strain was assessed using the agar dilution method. Bacterial-assisted growth promotion and metal uptake by H. annuus was evaluated in a pot experiment. The impact of bacterial inoculation on the mobility of metals in soil was investigated in a batch experiment. Results. The strain showed close proximity with Klebsiella oxytoca JCM1665, according to 16S rRNA sequence analysis. The strain was efficient in solubilizing phosphate, both in the presence and absence of metals. Inoculation of the strain enhanced the growth of H. annuus (49, 22 and 39% respectively in Co, Pb and Zn contaminated soils) compared to non-inoculated plants. Accumulation and translocation of Co, Pb and Zn from roots to shoots were also enhanced by the strain. Water soluble fraction of Co, Pb and Zn in soil was increased by 51, 24 and 76% respectively in inoculated soils with regard to those of non-inoculated soils. Conclusions. Taking the plant growth promotion and metal mobilizing potential of the strain into account, practical application of the strain in enhancing phytoextraction of Co, Pb and Zn from contaminated soils could be recommended.
dc.language.iso en en_US
dc.publisher Presses agronomiques de Gembloux en_US
dc.subject Klebsiella en_US
dc.subject Pollution control en_US
dc.subject soil pollution en_US
dc.subject Heavy metals en_US
dc.subject Cobalt en_US
dc.subject Zinc en_US
dc.subject Lead en_US
dc.title Bioaugmentation-assisted phytoextraction of Co, Pb and Zn: an assessment with a phosphate-solubilizing bacterium isolated from metal-contaminated mines of Boryeong Area in South Korea.  en_US
dc.type Article en_US


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