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Characterization of calcium deposition induced by Synechocystis sp. PCC6803 in BG11 culture medium 被引量:6

Characterization of calcium deposition induced by Synechocystis sp. PCC6803 in BG11 culture medium
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摘要 Calcium carbonate(CaCO 3) crystals in their preferred orientation were obtained in BG11 culture media inoculated with Synechocystis sp. PCC6803(inoculated BG11). In this study, the features of calcium carbonate deposition were investigated. Inoculated BG11 in different calcium ion concentrations was used for the experimental group, while the BG11 culture medium was used for the control group. The surface morphologies of the calcium carbonate deposits in the experimental and control groups were determined by scanning and transmission electron microscopy. The deposits were analyzed by electronic probe micro-analysis, Fourier transform infrared spectrum, X-ray diffraction, thermal gravimetric analysis and differential scanning calorimetry. The results show that the surfaces of the crystals in the experimental group were hexahedral in a scaly pattern. The particle sizes were micrometer-sized and larger than those in the control group. The deposits of the control group contained calcium(Ca), carbon(C), oxygen(O), phosphorus(P), iron(Fe), copper(Cu), zinc(Zn), and other elements. The deposits in the experimental group contained Ca, C, and O only. The deposits of both groups contained calcite. The thermal decomposition temperature of the deposits in the control group was lower than those in the experimental group. It showed that the CaCO 3 deposits of the experimental group had higher thermal stability than those of the control group. This may be due to the secondary metabolites produced by the algae cells, which affect the carbonate crystal structure and result in a close-packed structure. The algae cells that remained after thermal weight loss were heavier in higher calcium concentrations in BG11 culture media. There may be more calciumcontaining crystals inside and outside of these cells. These results shall be benefi cial for understanding the formation mechanism of carbonate minerals. Calcium carbonate (CaCO3) crystals in their preferred orientation were obtained in BG11 culture media inoculated with Synechocystis sp. PCC6803 (inoculated BG11). In this study, the features of calcium carbonate deposition were investigated. Inoculated BGll in different calcium ion concentrations was used for the experimental group, while the BGll culture medium was used for the control group. The surface morphologies of the calcium carbonate deposits in the experimental and control groups were determined by scanning and transmission electron microscopy. The deposits were analyzed by electronic probe micro-analysis, Fourier transform infrared spectrum, X-ray diffraction, thermal gravimetric analysis and differential scanning calorimetry. The results show that the surfaces of the crystals in the experimental group were hexahedral in a scaly pattern. The particle sizes were micrometer-sized and larger than those in the control group. The deposits of the control group contained calcium (Ca), carbon (C), oxygen (O), phosphorus (P), iron (Fe), copper (Cu), zinc (Zn), and other elements. The deposits in the experimental group contained Ca, C, and O only. The deposits of both groups contained calcite. The thermal decomposition temperature of the deposits in the control group was lower than those in the experimental group. It showed that the CaCO3 deposits of the experimental group had higher thermal stability than those of the control group. This may be due to the secondary metabolites produced by the algae cells, which affect the carbonate crystal structure and result in a close-packed structure. The algae cells that remained after thermal weight loss were heavier in higher calcium concentrations in BGll culture media. There may be more calcium- containing crystals inside and outside of these cells. These results shall be beneficial for understanding the formation mechanism of carbonate minerals.
出处 《Chinese Journal of Oceanology and Limnology》 SCIE CAS CSCD 2014年第3期503-510,共8页 中国海洋湖沼学报(英文版)
基金 Supported by the National Natural Science Foundation of China(Nos.40972043,41040018,41210104058,21176145,41372108,41302079) the Higher Educational Science and Technology Program of Shandong Province(No.J10LC15) the China Postdoctoral Science Foundation(No.2013M540560) the Program for Scientific Research Innovation Team in Colleges and Universities of Shandong Province,and SDUST Research Fund(No.2010KYTD103) the Open Project of Key Lab of Marine Bioactive Substance and Modern Analytical Technique,State Oceanic Administration,China(No.MBSMAT-2012-03) the Scientific and Technological Program of Qingdao(No.13-1-4-232-jch) the Domestic Visiting Scholar Program for Young Core Teachers in Shandong Universities,Shandong Province,China
关键词 碳酸钙沉积 培养基 集胞藻 傅里叶变换红外光谱 透射电子显微镜 差示扫描量热法 晶体结构 CACO3 Synechocystis sp. PCC6803 preferred orientation biomineralization calcium carbonate thermal stability
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  • 1Cacchio P, Ercole C, Cappuccio G, Lepidi A. 2003. Calcium carbonate precipitation by bacterial strains isolated from a limestone cave and from a loamy soil. Geomicrobiol. J., 20: 85-95.
  • 2Castanier S, Le Metayer-Levrel G, Perthuisot J P. 1999. Cacarbonates precipitation and limestone genesis-the microbiologist point of view. Sediment. Geol., 126: 9-23.
  • 3Colfen H. 2003. Precipitation of carbonates: recent progress in controlled production of complex shapes. Curro Opin. Colloid Interface Sci., 8: 23-31.
  • 4de Vrind-de Jong E W, de Vrind J P M. 1997. Algal deposition of carbonates and silicates. In: Banfield J F, Nealson K H eds. Geomicrobiology: Interactions Between Microbes and Minerals, 35. Mineralogical Society of America, Washington, DC. p.267-307.
  • 5Dittrich M, Kurz P, Wehrli B. 2004. The role of autotrophic picocyanobacteria in calcite precipitation in an oligotrophic lake. Geomicrobiol. J., 21: 45-53.
  • 6Dittrich M, Muller B, Mavrocordatos D, Wehrli B. 2003. Induced calcite precipitation by cyanobacterium Synechococcus. Acta Hydrochim. Hydrobiol., 31: 162-169.
  • 7Fujita Y, Ferris F G, Lawson R D, Colwell F S, Smith R W. 2000. Calcium carbonate precipitation by ureolytic subsurface bacteria. Geomicrobiol. J., 17: 305-318.
  • 8Hammes F, Boon N, de Villiers J, Verstraete W, Siciliano S D. 2003. Strain-specific ureolytic microbial calcium carbonate precipitation. Appl. Environ. Microbiol., 69: 4901-4909.
  • 9Hammes F, Verstraete W. 2002. Key roles of pH and calcium metabolism in microbial carbonate precipitation. Rev. Environ. Sci. Biotechnol., 1: 3-7.
  • 10Han Z Z, Yan H X, Zhou S X, Zhao H, Zhang Y, Zhang N N, Yao C K, Zhao L, Han C Y. 2013. Precipitation of calcite induced by Synechocystis sp. PCC6803. World J. Microbiol. Biotechnol., http://dx.doi.org/10.1007/s11274- 013-1341-1.

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