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石灰岩定殖放线菌影响下的碳酸盐矿物形成:形态与多态性

Carbonate Mineral Formation under the Influence of Limestone-Colonizing Actinobacteria: Morphology and Polymorphism.

作者信息

Cao Chengliang, Jiang Jihong, Sun Henry, Huang Ying, Tao Faxiang, Lian Bin

机构信息

State Key Laboratory of Environmental Geochemistry, Institute of Geochemistry, Chinese Academy of SciencesGuiyang, China; Institute of Geochemistry, University of Chinese Academy of SciencesBeijing, China; The Key Laboratory of Biotechnology for Medicinal Plant of Jiangsu Province, School of Life Science, Jiangsu Normal UniversityXuzhou, China.

The Key Laboratory of Biotechnology for Medicinal Plant of Jiangsu Province, School of Life Science, Jiangsu Normal University Xuzhou, China.

出版信息

Front Microbiol. 2016 Mar 23;7:366. doi: 10.3389/fmicb.2016.00366. eCollection 2016.

Abstract

Microorganisms and their biomineralization processes are widespread in almost every environment on earth. In this work, Streptomyces luteogriseus DHS C014, a dominant lithophilous actinobacteria isolated from microbial mats on limestone rocks, was used to investigate its potential biomineralization to allow a better understanding of bacterial contributions to carbonate mineralization in nature. The ammonium carbonate free-drift method was used with mycelium pellets, culture supernatant, and spent culture of the strain. Mineralogical analyses showed that hexagonal prism calcite was only observed in the sub-surfaces of the mycelium pellets, which is a novel morphology mediated by microbes. Hemispheroidal vaterite appeared in the presence of spent culture, mainly because of the effects of soluble microbial products (SMP) during mineralization. When using the culture supernatant, doughnut-like vaterite was favored by actinobacterial mycelia, which has not yet been captured in previous studies. Our analyses suggested that the effects of mycelium pellets as a molecular template almost gained an advantage over SMP both in crystal nucleation and growth, having nothing to do with biological activity. It is thereby convinced that lithophilous actinobacteria, S. luteogriseus DHS C014, owing to its advantageous genetic metabolism and filamentous structure, showed good biomineralization abilities, maybe it would have geoactive potential for biogenic carbonate in local microenvironments.

摘要

微生物及其生物矿化过程广泛存在于地球上几乎每一个环境中。在本研究中,从石灰岩上的微生物垫中分离出的优势嗜石放线菌——浅灰链霉菌DHS C014,被用于研究其潜在的生物矿化作用,以便更好地理解细菌在自然界碳酸盐矿化过程中的作用。采用无碳酸铵自由漂移法处理该菌株的菌丝球、培养上清液和老化培养物。矿物学分析表明,六方柱状方解石仅在菌丝球的亚表面观察到,这是一种由微生物介导的新形态。在老化培养物存在的情况下出现了半球状球霰石,这主要是由于矿化过程中可溶性微生物产物(SMP)的影响。当使用培养上清液时,环状球霰石受到放线菌菌丝体的青睐,这在以前的研究中尚未被发现。我们的分析表明,菌丝球作为分子模板的作用在晶体成核和生长方面几乎比SMP更具优势,这与生物活性无关。由此确信,嗜石放线菌浅灰链霉菌DHS C014由于其有利的遗传代谢和丝状结构,表现出良好的生物矿化能力,也许它在局部微环境中对生物成因碳酸盐具有地球活性潜力。

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