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热液喷口系统中Fe-Si氧化物沉淀体的形成及微生物的作用
Formation Mechanism of Biogenic Fe-Si Oxide Deposits in Seafloor Hydrothermal Systems

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孙治雷 1   李军 1 *   孙致学 2   黄威 1   崔汝勇 1   李季伟 3  
文摘 根据形貌识别以及分子生物学最新研究结果,包括Gallionella ferruginea, Leptothrix ochracea和Mariprofundus ferrooxydans在内的嗜中性Fe氧化菌在现代甚至古代热液喷口系统的Fe氧化物沉积体的形成中起到了重要作用.对于现代热液喷口系统而言,性羽流进入氧化性海水时形成的氧化过渡带是嗜中性Fe氧化菌最重要的生存环境,它们能在此环境中与Fe的无机氧化机制展开有效竞争,藉此获取生存所必须的能量.此外,通过静电吸引和表面活性基团的键合作用,细胞能在其表面和附属器官形成Fe氧化物壳层,从而形成与细胞自身相态相似的各种丝缕状结构.丝缕状结构生长到一定程度,就会阻滞热液流体和海水混合,进而在丝缕体交织成的网络内发生传导性热冷却,使流体中的Si达到饱和,在Fe氧化物表面沉淀下来,形成现代热液喷口系统的Fe-Si"二期次"复合生长结构.与现代Fe-Si沉淀类似的古代条带状Fe建造(B IF)沉积体的近期研究成果显示, Fe的来源很可能是前寒武纪时的热液喷口系统.由于B IF形成的海洋环境处于整体缺氧状态,早期营光合作用的微生物以及与现代类似的嗜中性Fe氧化菌很可能都参与了这个过程
其他语种文摘 Hydrothermal Fe-Si oxide deposits are ubiquitous in the hydrothermal vent sites at mid-ocean ridge and back-arc seafloor spreading centers. According to the recognitions of micron-scale filamentous textures and the results of molecular biology, neutrophilic Fe-oxidizing bacteria including Gallionella ferruginea, Leptothrix ochracea and the novel Mariprofundus ferrooxydans(PV-1 Strain) are considered to have a significant role in the formations of Fe-Si oxides deposits of the hydrothermal systems. These bacteria are capable of autotrophic metabolism with Fe2+ as the sole electron donor, increas the rate of Fe2+ oxidation, and then get energy for their growth. Electrostatic attraction along with the organic functional groups lead to the precipitations of iron oxides on the surface of abundant filamentous microbial structure that closely resemble the morphology of the Fe-oxidizing bacteria. Then the filaments were combined together to form a three-dimensional network. Novel observations were made of the Fe-Si framework of the network revealing the composite structure of Fe-rich filamentous in the core and the pure opal crust in the outer to form the "two-generation structure". This indicates that the large-scale silica precipitation caused by conductive cooling often takes place after the construction of the network. Recent studies about the Banded Iron Formations(BIF) considered to be the analog of modern hydrothermal Fe-Si deposits indicate an ancient hydrothermal origin for the iron. Moreover, owing to the pervasive anoxic state when the BIFs formed, the photosynthetic organisms for instance, cyanobacteria and the neutrophilic Fe-oxidizing bacteria are proposed to be involved in the ancient BIFs formations
来源 地球科学进展 ,2010,25(12):1325-1336 【核心库】
关键词 嗜中性Fe氧化菌 ; Fe-Si沉淀 ; BIF ; 热液喷口系统
地址

1. 青岛海洋地质研究所, 国土资源部海洋油气资源和环境地质重点实验室, 山东, 青岛, 266071  

2. 中国石油大学(青岛)石油工程学院, 山东, 青岛, 257061  

3. 中国科学院广州地球化学研究所, 广东, 广州, 510640

语种 中文
文献类型 研究性论文
ISSN 1001-8166
学科 地质学;海洋学
基金 国家自然科学基金 ;  国际海底区域研究开发"十一五"项目"现代海底热液硫化物矿床与古代相似矿床成矿特征的比较研究" ;  国家863计划
文献收藏号 CSCD:4098315

参考文献 共 87 共5页

1.  Alt J C. Hydrothermal oxide and nontronite deposits on seamounts in the eastern Pacific. Marine Geology,1988,81:227-239 被引 17    
2.  Hekinian R. Hydrothermal Fe and Si oxyhydroxide deposits from south Pacific intraplate volcanoes and east Pacific rise axial and off-axial regions. Economic Geology,1993,88:2099-2121 被引 21    
3.  Boyd T D. Microbial and hydrothermal aspects of ferric oxyhydroxides and ferrosic hydroxides: The example of Franklin seamount, western Woodlark basin, Papua New Guinea. Geochemical Transactions,2001,2:45 被引 2    
4.  Kennedy C B. Characterization of bacteriogenic iron oxide deposits from Axial Volcano, Juan de Fuca Ridge, northeast Pacific ocean. Geomicrobiology Journal,2003,20:199-214 被引 9    
5.  Kennedy C B. Ultrastructure and potential sub-seafloor evidence of bacteriogenic iron oxides from Axial Volcano, Juan de Fuca Ridge, northeast Pacific ocean. FEMS Microbiology Ecology,2003,43:247-254 被引 8    
6.  Emerson D. A novel lineage of proteobacteria involved in formation of marine fe-oxidizing microbial mat communities. PloS One,2007,2(7):e667 被引 18    
7.  Hrischeva E. Geochemistry and morphology of metalliferous sediments and oxyhydroxides from the Endeavour segment, Juan de Fuca Ridge. Geochimica et Cosmochimica Acta,2007,71:3476-3497 被引 17    
8.  Kato S. Microbial communities in iron-silica-rich microbial mats at deep-sea hydrothermal fields of the southern Mariana trough. Environmental Microbiology,2009,11:2094-2111 被引 7    
9.  Langley S. Preliminary characterization and biological reduction of putative biogenic iron oxides (BIOS) from the Tonga-Kermadec Arc, southwest Pacific ocean. Geobiology,2009,7:35-49 被引 5    
10.  Duhig N C. Microbial involvement in the formation of Cambrian sea-floor silica-iron oxide deposits. Australia Geology,1992,20:511-514 被引 1    
11.  Davidson G J. Geochemical anatomy of silica iron exhalites: Evidence for hydrothermal oxyanion cycling in response to vent fluid redox and thermal evolution (Mt. Windsor Subprovince, Australia). Economic Geology,2001,96:1201-1226 被引 1    
12.  Grenne T. Paleozoic and Mesozoic silica-rich seawater: Evidence from hematitic chert (jasper) deposits. Geology,2003,31:319-322 被引 7    
13.  Little C T S. Four-hundred and ninetymillion-year record of bacteriogenic iron oxide precipitation at seafloor hydrothermal vents. Geomicrobiology Journal,2004,21:415429 被引 1    
14.  Kato S. Abundance of Zetaproteobacteria within crustal fluids in back-arc hydrothermal fields of the southern Mariana trough. Environmental Microbiology,2009,11:3210-3222 被引 5    
15.  Schadler S. Formation of cell-ironmineral aggregates by phototrophic and nitrate-reducing anaerobic Fe (II) -oxdizing bacteria. Geomicrobiology Journal,2009,26:93-103 被引 17    
16.  Hofmann B A. Subsurface filamentous fabrics: An evaluation of origins based on morphological and geochemical criteria, with implications for exopaleontology. Astrobiology,2008,8:87-117 被引 4    
17.  Knoll A H. Early Proterozoic microfossils and penecontemporaneous quartz cementation in the sokomon iron formation, Canada. Science,1981,211:478480 被引 1    
18.  Strother P K. Observations on the genus Huroniospora Barghoom: Implications for paleoecology of the Gunflint microbiota. Precambrian Research,1987,36:323-333 被引 2    
19.  Knoll A H. Life on a Young Planet: The First Three Billion Years of Evolution on Earth,2003:304 被引 1    
20.  Goldich S S. Ages of Precambrian banded iron-formations. Economic Geology,1973,68:1126-1134 被引 5    
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