HomePage >> Journals >> Frontier of Environmental Science

Frontier of Environmental Science

Frontier of Environmental Science is an international comprehensive professional academic journal of Ivy Publisher, concerning the development of environmental pollution prevention and environmental quality improvement on the combination of environmental science theory and modern industrial technology. The main focus of the journal is the academic papers and comments of latest improvement in the field, report of latest research result, aiming at ... [More] Frontier of Environmental Science is an international comprehensive professional academic journal of Ivy Publisher, concerning the development of environmental pollution prevention and environmental quality improvement on the combination of environmental science theory and modern industrial technology. The main focus of the journal is the academic papers and comments of latest improvement in the field, report of latest research result, aiming at providing a good communication platform to transfer, share and discuss the theoretical and technical development of environmental science research and development for professionals, scholars, researchers and engineers in this field, reflecting the academic front level, promote academic change and foster the improvement of environmental protection awareness and technology.

The journal receives manuscripts written in Chinese or English. As for Chinese papers, the following items in English are indispensible parts of the paper: paper title, author(s), author(s)'affiliation(s), abstract and keywords. If this is the first time you contribute an article to the journal, please format your manuscript as per the sample paper and then submit it into the online submission system. Accepted papers will immediately appear online followed by printed hard copies by Ivy Publisher globally. Therefore, the contributions should not be related to secret. The author takes sole responsibility for his views.

ISSN Print:2326-8859

ISSN Online:2326-8921

Email:fes@ivypub.org

Website: http://www.ivypub.org/fes/

  0
  0

Paper Infomation

The Indication of Environmental Significance by Mineral Characteristics during Biomineralization of Living Coccolithophores

Full Text(PDF, 68KB)

Author: Shiyong SUN, Pengyun GUO, Xiang ZOU, Sen LIN

Abstract: Coccolithophores is a class of single-celled autotrophic microalgaes which are widely distributed in modern ocean. Fossil coccoliths which formed by the biomineralization process of coccolithophores have important significance in paleoceanography. Therefore, mineralogical characteristics during biomieralization of living coccolithophores, which revealed by synchrotron based chemical composition and fine structure spatial distribution, major and trace element composition, structure and spectroscopic, carbon and oxygen stable isotopes and analysis of physiological and biochemical assays, can be used for enviornmental indication. According to typomorphic characteristics of fine mineral and response to environmental changes, and their relationship between each other, the environment coupled micro regulation mechanism of coccolithopores mineralization will be revealed and quantitative indicators of coccolithopores mineralization for response vertical variation of marine environment will be built for applying to forecasting future adaption mechanism and inversing Holocene paleoceanographic and paleoclimatic marine conditions. The indication of environmental significance by mineral characterisitics during biomineralization of living coccolithophores is presented in this review. The key points in the future study were also discussed.

Keywords: Biomineralization; Coccolithophores; Mineral-microbe interaction; Environmental indication significance; Geobiology

References:

[1] 殷鸿福, 谢树成, 童金南, 史晓颖. 谈地球生物学的重要意义[J]. 古生物学报, 2009, 48(03): 293-301.

[2] 谢树成, 殷鸿福, 史晓颖. 地球生物学: 生命与地球环境的相互作用和协同演化[M]. 北京: 科学出版社, 2011.

[3] 鲁安怀. 生命活动中矿化作用的环境响应机制研究[J]. 高校地质学报, 2007, 13(04): 613-620.

[4] Hailiang Dong, Lu Anhuai. Mineral–microbe interactions and implications for remediation[J]. Elements, 2012, 8(2): 95-100.

[5] Hermann Ehrlich. Biological materials of marine origin[M]. Springer, 2014.

[6] 李胜荣, 许虹, 申俊峰, 李国武, 张秀宝. 环境与生命矿物学的科学内涵与研究方法[J]. 地学前缘, 2008, 15(06): 1-10.

[7] 梅冥相. 从生物矿化作用衍生出的有机矿化作用: 地球生物学框架下重要的研究主题[J]. 地质论评, 2012, 58(5): 937-951.

[8] S Mann. Biomineralization: Principles and concepts in bioinorganic materials chemistry[M]. Oxford: Oxford University Press, 2001.

[9] 苏翔, 刘传联. 海洋酸化对颗石藻的影响[J]. 地球科学进展, 2012, 27(11): 1274-1280.

[10] C. Schwab, Kinkel H., Weinelt M., Repschlager J. Coccolithophore paleoproductivity and ecology response to deglacial and holocene changes in the azores current system[J]. Paleoceanography, 2012, 27: PA3210.

[11] Y. Candelier, Minoletti F., Probert I., Hermoso M. Temperature dependence of oxygen isotope fractionation in coccolith calcite: A culture and core top calibration of the genus calcidiscus[J]. Geochim. Cosmochim. Acta, 2013, 100: 264-281.

[12] 梁丹, 刘传联. 颗石藻元素地球化学研究进展[J]. 地球科学进展, 2012, 27(2):

[13] J.R. Young, Henriksen K. Biomineralization within vesicles: The calcite of coccoliths[J]. Reviews in Mineralogy and Geochemistry, 2003, 54(1): 189-215.

[14] C. Berger, Meier K. J. S., Kinkel H., Baumann K. H. Changes in calcification of coccoliths under stable atmospheric co2[J]. Biogeosciences, 2014, 11(4): 929-944.

[15] John Beardall, Raven John A. Calcification and ocean acidification: New insights from the coccolithophore emiliania huxleyi[J]. New Phytologist, 2013, 199(1): 1-3.

[16] Bethan M. Jones, Iglesias-Rodriguez M. Debora, Skipp Paul J., Edwards Richard J., Greaves Mervyn J., Young Jeremy R., Elderfield Henry, O'Connor C. David. Responses of the emiliania huxleyi proteome to ocean acidification[J]. Plos One, 2013, 8(4):

[17] P. Jin, Gao K. S., Beardall J. Evolutionary responses of a coccolithophorid gephyrocapsa oceanica to ocean acidification[J]. Evolution, 2013, 67(7): 1869-1878.

[18] U. Riebesell, Bellerby R. G. J., Engel A., Fabry V. J., Hutchins D. A., Reusch T. B. H., Schulz K. G., Morel F. M. M. Comment on "phytoplankton calcification in a high-co2 world"[J]. Science, 2008, 322(5907): 1466.

[19] M. D. Iglesias-Rodriguez, Halloran P. R., Rickaby R. E. M., Hall I. R., Colmenero-Hidalgo E., Gittins J. R., Green D. R. H., Tyrrell T., Gibbs S. J., von Dassow P., Rehm E., Armbrust E. V., Boessenkool K. P. Phytoplankton calcification in a high-co2 world[J]. Science, 2008, 320(5874): 336-340.

[20] M. D. Iglesias-Rodriguez, Buitenhuis E. T., Raven J. A., Schofield O., Poulton A. J., Gibbs S., Halloran P. R., de Baar H. J. W. Response to comment on "phytoplankton calcification in a high-co2 world"[J]. Science, 2008, 322(5907): 1466.

[21] K. Saruwatari, Tanaka Y., Nagasawa H., Kogure T. Crystallographic variability and uniformity in cretaceous heterococcoliths[J]. Eur. J. Mineral., 2011, 23(4): 519-528.

[22] K. Saruwatari, Nagasaka S., Ozaki N., Nagasawa H. Morphological and crystallographic transformation from immature to mature coccoliths, pleurochrysis carterae[J]. Marine Biotechnology, 2011, 13(4): 801-809.

[23] E. Cabarcos, Flores J. A., Sierro F. J. High-resolution productivity record and reconstruction of enso dynamics during the holocene in the eastern equatorial pacific using coccolithophores[J]. Holocene, 2014, 24(2): 176-187.

[24] M. N. Müller, Lebrato M., Riebesell U., Barcelos e Ramos J., Schulz K. G., Blanco-Ameijeiras S., Sett S., Eisenhauer A., Stoll H. M. Influence of temperature and co2 on the strontium and magnesium composition of coccolithophore calcite[J]. Biogeosciences, 2014, 11(4): 1065-1075.

[25] J. R. Young, Andruleit H., Probert I. Coccolith function and morphogenesis: Insights from appendage-bearing coccolithophores of the family syracosphaeraceae(haptophyta)[J]. Journal of Phycology, 2009, 45(1): 213-226.

[26] [26] Wenye Yu, Liu Chuanlian, Su Xiang. Coccolith records and their meanings for the mid-brunhes interval in the southern south china sea[J]. Mar. Geol. Quat. Geol., 2011, 31(6): 85-90.

[27] Xiaoqing Rui, Liu Chuanlian, Liang Dan, Zhao Meixun. Distribution of calcareous nannofossils in the surface sediments of the southern yellow sea[J]. Mar. Geol. Quat. Geol., 2011, 31(5): 89-9393.

[28] Peng Jin, Gao Kunshan, Villafane Virginia E., Campbell Douglas A., Helbling E. Walter. Ocean acidification alters the photosynthetic responses of a coccolithophorid to fluctuating ultraviolet and visible radiation[J]. Plant Physiol., 2013, 162(4): 2084-2094.

[29] J. Sun, Gu X. Y., Feng Y. Y., Jin S. F., Jiang W. S., Jin H. Y., Chen J. F. Summer and winter living coccolithophores in the yellow sea and the east china sea[J]. Biogeosciences, 2014, 11(3): 779-806.

Privacy Policy | Copyright © 2011-2024 Ivy Publisher. All Rights Reserved.

Contact: customer@ivypub.org