Simultaneous Cd2+, Zn2+, and Pb2+ Uptake and Accumulation by Photosynthetic Euglena gracilis

被引:0
作者
D. G. Mendoza-Cózatl
E. Rangel-González
R. Moreno-Sánchez
机构
[1] Instituto Nacional de Cardiología,Departamento de Bioquímica
来源
Archives of Environmental Contamination and Toxicology | 2006年 / 51卷
关键词
Heavy Metal; Removal Capacity; Thiol Compound; Euglena Gracilis; Scenedesmus Obliquus;
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摘要
The ability of Euglena gracilis to simultaneously remove and accumulate Zn2+, Cd2+, and Pb2+ from culture up- to media was evaluated. E. gracilis was able to remove up to 80% of the Cd2+ present in the medium when cultured with 20 or 50 μM CdCl2. Higher external Cd2+ concentrations increased Cd2+ accumulation per cell but decreased cell growth, thus decreasing the capacity of the cell culture to remove Cd2+. E. gracilis removed 70% to 80% of the Zn2+ present in the medium when cultured with 5 to 50 μM ZnSO4. Zn2+ did not affect Cd2+ removal capacity. E. gracilis was much less efficient in removing Pb2+ (<15%) when cultured with 100 or 200 μM Pb(NO3)2. Moreover, Pb2+ decreased the efficiency to remove Cd2+, but it did not affect Zn2+ removal. Cd2+ induced a generalized increase in the cellular thiol compounds, including phytochelatins, and Pb2+ had an additive effect only at 200 μM. Zn2+ did not stimulate phytochelatin synthesis. Cd2+ and Pb2+ colocated in the same cytosolic high-molecular-weight fraction. Because Pb2+ is a weak phytochelatin inducer, competition between Pb2+ and Cd2+ for transportation across the plasma membrane and binding to phytochelatins and other thiol compounds is proposed to explain the detrimental effects of Pb2+ on the Cd2+ removal capacity of E. gracilis.
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页码:521 / 528
页数:7
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共 141 条
[1]  
Avilés C(2003)Mercury pretreatment selects an enhanced cadmium-accumulating phenotype in Arch Microbiol 180 1-10
[2]  
Loza-Tavera H(1992)Conversion in the peptides coating cadmium:sulfide crystallites in J Inorg Biochem 48 95-105
[3]  
Terry N(1985)Mechanism of Cd Physiol Plant 63 382-386
[4]  
Moreno-Sánchez R(2002) resistance in Analyst 127 333-336
[5]  
Barbas J(1998)Coumarins give misleading absorbance with Ellman’s reagent suggestive of thiol conjugates Bull Environ Contam Toxicol 60 433-440
[6]  
Santhanagopalan V(2002)Characterization of the cadmium-binding capacity of Waste Manage Res 20 541-545
[7]  
Blaszczynski M(2001)Toxicity assessment of a dye industry treatment sludge FEMS Microbiol Rev 25 335-347
[8]  
Ellis WR(1989)Interactions of chromium with microorganisms and plants Comp Biochem Physiol C 94 35-40
[9]  
Winge DR(1998)Glutathione, cysteine and acid-soluble thiol levels in Arch Environ Contam Toxicol 34 128-135
[10]  
Bariaud A(2000) cells exposed to copper and cadmium Arch Microbiol 174 175-180