Soil Heavy Metal Concentrations and Leaf Accumulation in Four Subtropical Plant Species from South China

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Abstract:

Four common subtropical understory sun plants from South China, i.e., Euodia lepta (Spreng.)Merr. (EL), Ilex asprella Champ. (IA), Mussaenda pubescens Ait.f. (MP), and Rhodomyrtus tomentosa (Ait.) Hassk. (RT), were sampled and determined for leaf Cu, Zn, Cd, and Pb concentrations, with an aim to investigate geographic variations in leaf heavy metal concentrations and phytoaccumulation. Significant differences were found among the 4 sampling sites for soil pH and heavy metal concentrations of Zn, Cd and Pb, with higher acidity in the 3 sampling sites from the Pearl River Delta industrial area. However, leaf pH did not vary significantly among the geographic populations of El and MP. For leaf heavy metal concentrations, significant variations were observed among the geographic populations of El for Cd; IA for Zn, Cd, and Pb; MP for Cu, Zn, Pb, and Cd; RT for Zn and Pb. The mean Biological Accumulation Coefficients (BACs) of IA for Zn, Cd, and Pb were as high as 10.38 for Zn, 18.29 for Cd, and 1.76 for Pb, respectively. Coefficient of Variation (CV) of BACs for heavy metals among different geographic populations of each species ranged from 41.99~221.83%, indicating high geographic variability in phytoaccumulation of heavy metals, and their accumulation capacity declined with the increase of soil heavy metal concentrations. This study revealed that some particular populations of IA can serve as potential hyperaccumulators for Zn and Cd, while those of MP and RT as hyperaccumulators for Pb, and the toxicity and safety of RT and IA should be further studied and assessed.

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Advanced Materials Research (Volumes 455-456)

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1310-1316

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January 2012

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© 2012 Trans Tech Publications Ltd. All Rights Reserved

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[1] Baker, A.J.M. 1981. Accumlators and excluders- strategies in the response of plants to heavy metal. Journal of Plant Nutrition, 3(1- 4): 643- 654.

Google Scholar

[2] Stoate, C., Boatman, N. D., Borralho, R. J., Rio Carvalho, C., de Snoo, G. R. & Eden, P. 2001. Ecological impacts of arable intensification in Europe. Journal of Environmental Management, 63(4): 337-365.

DOI: 10.1006/jema.2001.0473

Google Scholar

[3] Li, M.S., Luo, Y.P. & Su, Z.Y. 2007. Heavy metal concentrations in soils and plant accumulation in a restored manganese mineland in Guangxi, South China. Environmental Pollution, 147: 168-175.

DOI: 10.1016/j.envpol.2006.08.006

Google Scholar

[4] Khan, S., Cao, Q. & Zheng, Y.M., Huang, Y.Z. & Zhu, Y.G. 2008. Health risks of heavy metals in contaminated soils and food crops irrigated with wastewater in Beijing, China. Environmental Pollution, 152: 686-692.

DOI: 10.1016/j.envpol.2007.06.056

Google Scholar

[5] Yang, M,J., Lin, X.Y. & Yang, X.E. 1998. Impact of Cd on growth and nutrient accumulation of different plant species. Chinese Journal of Applied Ecology (in Chinese), 9(1): 89-94.

Google Scholar

[6] Ishikawa, S., Ae, N. & Yano, M. 2005. Chromosomal regions with quantitative trait loci controlling cadmium concentration in brown rice (Oryza sativa). New Phytologist, 168 (2): 345-350.

DOI: 10.1111/j.1469-8137.2005.01516.x

Google Scholar

[7] Han, L., Wei, W., Guan, Z.Q., Xu, J. and Chai, T. Y. 2007. A novel CAM gene from heavy metals hyperaccumulator ( Thlaspi caerulescens) L. and functional analysis in yeast. Journal of the Graduate School of the Chinese Academy of Sciences (in Chinese), 24(4): 465-472.

Google Scholar

[8] Ma, M., Su, H.W. and Li, X.Y. (1998). Study on the Leaf epidermal structure of Xinjiang wild flax in different populations and its systematic significance. Journal of Shihezi University (Natural Science) (in Chinese), 2(4): 327-329.

Google Scholar

[9] Zhao, A.M., Liu, Z.M., Kang, X.Y. and Zhou, S.L. 2003. Allozyme variation in Sophora moorcroftiana, an endemic species of Tibet, China. Biodiversity Science, 11 (2): 91-99.

Google Scholar

[10] Zhao, H. and Zhao, S.J. 2007. Phenotypic diversity of different Aquilaria sinensis (Lour. ) Spreng. populations. Journal of South China University of Technology (Natural Science Edition), 35(4): 117-123.

Google Scholar

[11] Yang, X.Y., Fu, M.Y. & Li, J.S. 2007. Geographic variation of Bambusa chungii. Scientia Silvae Sinicae (in Chinese), 43(6): 45-51.

Google Scholar

[12] Zhang, Y.D. 1999. Simple analysis of acid rain pollution in the Pearl River Delta Region. Research of Environmental Sciences (in Chinese), 12(3): 31-34.

Google Scholar

[13] Jiang, X.J., Luo, Y.M. & Zhao, Q.G. 2001. Phytoremediation of Cd contaminated soil and regulating effect of EDTA. I. Toxicity of Cd to the accumulative plant species Brassica Juncea. Soils (in Chinese), (4): 197-201.

Google Scholar

[14] Brunner, I., Luster, J., Madeleine, S. G. & Frey B. 2008. Heavy metal accumulation and phytostabilisation potential of tree fine roots in a contaminated soil. Environmental Pollution, 152: 559-568.

DOI: 10.1016/j.envpol.2007.07.006

Google Scholar

[15] Yuan, K.N. 1983. Soil Chemistry of Plant Nutrients (in Chinese). Science Press, Beijing. 610pp.

Google Scholar

[16] Wei, S.H. and Zhou, Q.X. 2004. Discussion on basic principles and strengthening measures for phytoremediation of soils contaminated by heavy metals. Chinese Journal of Ecology (in Chinese), 23(1): 65-72.

Google Scholar

[17] Singh, B.R. & Myhr, K. 1998. Cadmium uptake by barley as affected by Cd sources and pH levels. Geoderma, 84(1-3): 185-194.

DOI: 10.1016/s0016-7061(97)00128-6

Google Scholar

[18] McBride, M.B. 2002. Cadmium uptake by crops estimated from soil total Cd and pH. Soil Science, 167(1): 62-67.

DOI: 10.1097/00010694-200201000-00006

Google Scholar

[19] Chen, H.M., Zheng, C.R., Zhou, D.M., Tu, C. and Gao, L. 2005. Changes in soil fertility and extractable heavy metals in Dexing copper mine tailing pool after revegetation. Acta Pedologica Sinica (in Chinese), 42(1): 29-36.

Google Scholar

[20] Sauvé, S., Cook, N., Hendershot, W.H. and McBride, M.B. 1996. Linking plant tissue concentrations and soil copper pools in urban contaminated soils. Environmental Pollution, 94(2): 153-157.

DOI: 10.1016/s0269-7491(96)00081-4

Google Scholar

[21] McBride, M., Dumestre, A., Sauve, S. and Hendershot, W. 1998. Derivation of soil quality criteria using predicted chemical speciation of Pb2+ and Cu2+. Environmental Toxicology and Chemistry, 17(8): 1481-1489.

DOI: 10.1897/1551-5028(1998)017<1481:dosqcu>2.3.co;2

Google Scholar