• 제목/요약/키워드: metal-reducing bacteria

검색결과 67건 처리시간 0.026초

A Microbial Fuel Cell Type Lactate Biosensor Using a Metal-Reducing Bacterium, Shewanella putrefaciens

  • KIM, HYUNG JOO;MOON SIK HYUN;IN SEOP CHANG;BYUNG HONG KIM
    • Journal of Microbiology and Biotechnology
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    • 제9권3호
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    • pp.365-367
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    • 1999
  • A fuel cell type biosensor for lactate was developed using a metal-reducing bacterium, Shewanella putrefaciens IR-1. Under the operational conditions, the bacterial cell suspension generated the current without an electrochemical mediator in the presence of lactate. The current was proportional to the lactate concentration up to 30 mM.

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황산염환원미생물에 의한 금속재료의 부식 특성 (Corrosive Characteristics of Metal Materials by a Sulfate-reducing Bacterium)

  • 이승엽;정종태
    • 한국광물학회지
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    • 제26권4호
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    • pp.219-228
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    • 2013
  • 방사성 폐기물을 지하에 장기 보관하는 금속 용기에 관한 생지화학적 부식 특성을 알아보기 위해 주철과 구리로 된 금속재료를 환원조건 하에서 디설프리칸스 황산염환원미생물과 3개월간 반응시켰다. 금속재료의 화학적/광물학적 변화를 알아보기 위해 주기적으로 용존 금속이온들의 농도를 측정하였으며, 실험이 종료된 이후 금속 시편 및 표면 이차생성물들을 전자현미경을 이용하여 분석하였다. 디설프리칸스가 없는 조건에서는 금속재료의 부식이 매우 미약하였으나, 미생물이 있는 경우에는 부식이 상대적으로 컸다. 관찰된 생지화학적 부식 산물은 주로 맥키나와이트와 황화구리 같은 검은색의 금속황화물이었으며, 표면에서 쉽게 분리되거나 콜로이드화되어 부유하였다. 특히, 구리 시편의 경우 용액 상에 용존 철이 존재할 때 세균에 의한 구리 부식의 가속화가 관찰되었는데, 이는 구리 표면에 다른 종의 황화철이 성장하면서 구리 간의 결속력을 약화시켰기 때문인 것으로 보인다.

Most Probable Number 방법을 이용하여 측정한 중랑천 하상토양의 혐기성 세균의 수와 수질과의 상관 관계

  • 박두현;김병홍;임시근;최영효
    • 한국미생물·생명공학회지
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    • 제24권3호
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    • pp.364-370
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    • 1996
  • Sediments collected from the Jungnang-cheon and its tributaries were used to enumerate anaerobic bacteria by most probable number (MPN) methods. A simple method was developed to detect ferrous ion in the culture fluid in order to count the number of iron ion reducers, and sulfate-reducing bacteria (SRB) and methanogens were detected by the presence of FeS precipitate in the culture or methane in the head space, respectively. The numbers of iron reducer was in the range of 10$^{7}$ - 10$^{8}$ /g in the sediment of the stream containing higher organic content than the tributaries. The sediments of tributaries were analyzed to contain iron reducers less than 10$^{7}$ cells/g. With one exception the numbers of SRB and methanogens were less than 10$^{3}$ cells/g in the sediment. From these results it is concluded that organics in the sediment support the growth of iron reducers, which out-compete SRB and methanogens.

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원소의 지구화학적 거동에 미치는 박테리아의 영향 : 지구미생물학의 최근 연구 동향 (Bacterial Effects on Geochemical Behavior of Elements : An Overview on Recent Geomicrobiological Issues)

  • 이종운;전효택
    • 자원환경지질
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    • 제33권5호
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    • pp.353-365
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    • 2000
  • After their first appearance on Earth, bacteria have exerted significant influence on geochemical behavior of elements. Numerous evidence of their control on geochemistry through geologic history has been observed in a variety of natural environments. They have mediated weathering rate, formation of secondary minerals, redox transformation of metals and metalloids, and thus global cycling of elements. Such ability of bacteria receives so considerable attention from microbiologists, mineralogists, geologists, soil scientists, limnologists, oceanographers, and atmospheric scientists as well as geochemists that a new and interdisciplinary field of research called 'geomicrobiology' is currently expanding. Some recent subjects of geomicrobiology which are studied extensively are as follows: 1) Functional groups distributed on bacterial cell walls adsorb dissolved cations onto cell surfaces by electrostatic surface complexation, which is followed by hydrous mineral formation. 2) Dissimilatory metal reducing bacteria conserve energy to support growth by oxidation of organic matter coupled to reduction of some oxidized metals and/or metalloids. They can be effectively used in remediating environments contaminated with U, As, Se, and Cr. 3) Bacteria increase the rate of mineral dissolution by excreting proton and ligands such as organic acids into aqueous system. 4) Thorough investigation on the effects of biofilm on geochemical processes is needed, because most bacteria are adsorbed on solid substrates and form biofilms in natural settings.

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Microbial Production and Characterization of Superparamagnetic Magnetite Nanoparticles by Shewanella sp. HN-41

  • Lee, Ji-Hoon;Roh, Yul;Hur, Hor-Gil
    • Journal of Microbiology and Biotechnology
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    • 제18권9호
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    • pp.1572-1577
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    • 2008
  • A facultative dissimilatory metal-reducing bacterium, Shewanella sp. strain HN-41, was used to produce magnetite nanoparticles from a precursor, poorly crystalline iron-oxyhydroxide akaganeite ($\beta$-FeOOH), by reducing Fe(III). The diameter of the biogenic magnetite nanoparticles ranged from 26 nm to 38 nm, characterized by dynamic light scattering spectrophotometry. The magnetite nanoparticles consisted of mostly uniformly shaped spheres, which were identified by electron microscopy. The magnetometry revealed the superparamagnetic property of the magnetic nanoparticles. The atomic structure of the biogenic magnetite, which was determined by extended X-ray absorption fine structure spectroscopic analysis, showed similar atomic structural parameters, such as atomic distances and coordinations, to typical magnetite mineral.

토착미생물의 생지화학적 활동에 의한 지하수의 산화/환원전위 변화 특성 (Changes of the Oxidation/Reduction Potential of Groundwater by the Biogeochemical Activity of Indigenous Bacteria)

  • 이승엽;노열;정종태
    • 자원환경지질
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    • 제47권1호
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    • pp.61-69
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    • 2014
  • 중금속류나 방사성 물질로 오염된 지하수를 원위치에서 처리(정화 혹은 고정화)하고자 할 때, 반드시 고려해야 할 지화학적 요소 중의 하나는 지하수의 산화/환원전위 값이다. 우리는 생지화학적 작용에 의한 현장 지하수의 산화/환원전위 변화 특성을 알아보기 위해 실험실 조건에서 한국원자력연구원의 심부지하수를 대상으로 전자공여체(젖산), 전자수용체(황산염) 및 토착미생물을 주입하여 시간별로 산화/환원전위 변화를 관찰하였다. 질소가스-충전 글로브박스에 있는 순수 지하수는 시간이 경과함에 따라 미약한 Eh 상승(약산화)이 있었다. 하지만, 젖산, 황산염 혹은 미생물이 주입된 지하수 대부분의 Eh는 감소(환원)하는 특성을 보여주었다. 특히, 국내 토착 황산염환원미생물인 '바쿨라텀'이 주입되었을 때, 지하수의 Eh가 -500 mV 근처까지 감소하여 강환원성 지하수로 바뀌었다. 이처럼 일반 금속환원박테리아에 비해 황산염환원박테리아의 지하수 환원화 능력이 매우 우수함에도 불구하고, 용존 황산철을 필요로 하였고 최종적으로 황화광물(예; 맥키나와이트)이 생성되면서 추후 반응에 관한 예측을 어렵게 하였다. 결과적으로, 미생물 외에도 미량의 영양물질 주입 여하에 따라 지하수의 산화/환원전위가 크게 달라졌으며, 이는 산화/환원전위의 영향을 받는 용존 오염 물질의 산화수, 용해도 및 수착 등의 특성들이 생물자극법에 의해 바뀌거나 조절될 수 있음을 의미한다.

Electrochemical Analysis of the Microbiologically Influenced Corrosion of Steels by Sulfate-Reducing Bacteria

  • Moon, Kyung-Man;Lee, Myung-Hoon;Kim, Ki-Joon;Kim, Seong-Jong;Shin, Sung-Kyu;Koh, Sung-Cheol
    • Corrosion Science and Technology
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    • 제3권5호
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    • pp.187-193
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    • 2004
  • We have investigated the differences between the general corrosion and microbiologically influenced corrosion (MIC) of steels in terms of electrochemical behavior and surface phenomena. Corrosion potential of steels in the absence of SRB (sulfate-reducing bacteria) shifted to a low level and was maintained throughout the experimental period (40 days). The potential in the presence of SRB, however, shifted to a noble level after 20 days' incubation, indicating the growth of SRB biofilms on the test metal specimens and a formation of corrosion products. In addition, the color of medium inoculated with SRB changed from gray to black. The color change appeared to be caused by the formation of pyrites (FeS) as a corrosion product while no significant color change was observed in the medium without SRB inoculation. Moreover, corrosion rates of various steels tested for MIC were higher than those in the absence of SRB. This is probably because SRB were associated with the increasing corrosion rates through increasing cathodic reactions which caused reduction of sulfate to sulfide as well as formation of an oxygen concentration cell. The pitting corrosions were also observed in the SRB-inoculated medium.

황산염환원균을 이용한 폐광폐수의 중금속 제거 (Removal of Heavy Metals from Acid Mine Drainage Using Sulfate Reducing Bacteria)

  • 백병천;김광복
    • 상하수도학회지
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    • 제13권2호
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    • pp.47-54
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    • 1999
  • SRB(Sulfate Reducing Bacteria) converts sulfate into sulfide using an organic carbon source as the electron donor. The sulfide formed precipitates the various metals present in the AMD (Acid Mine Drainage). This study is the fundamental research on heavy metal removal from AMD using SRB. Two completely mixed anaerobic reactors were operated for cultivation of SRB at the temperature of $30^{\circ}C$ and anaerobic batch reactors were used to evaluate the effects of carbon source, COD/sulfate($SO_4^=$) ratio and alkalinity on sulfate reduction rate and heavy metal removal efficiency. AMD used in this study was characterized by low pH 3.0 and 1000mg/l of sulfate and dissolved high concentration of heavy metals such as iron, cadmium, copper, zinc and lead. It was found that glucose was an organic carbon source better than acetate as the electron donor of SRB for sulfate reduction in AMD. Amount of sulfate reduction maximized at the COD(glucose)/sulfate ratio of 0.5 in the influent and then removal efficiencies of heavy metals were 97.5% of Cu, 100% of Pb, 100% of Cr, 49% of Mn, 98% of Zn, 100% Cd and 92.4% of Fe. Although sulfate reduction results in an increase in the alkalinity of the reactor, alkalinity of 1000mg/1 (as $CaCo_3$) should be should be added continuously to the anaerobic reactor in order to remove heavy metals from AMD.

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고준위폐기물 완충재로 사용되는 벤토나이트의 미생물의 존재 및 특성 (Existence and Characteristics of Microbial cells in the Bentonite to be used for a Buffer Material of High-Level Wastes)

  • 이지영;이승엽;백민훈;정종태
    • 방사성폐기물학회지
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    • 제11권2호
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    • pp.95-102
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    • 2013
  • 고준위방사성폐기물 처분장의 완충재로 고려되고 있는 자연산 벤토나이트에 대해서 기존의 물리 화학적 및 광물학적 성질 외에 생물학적 특성을 살펴보았다. 국내산 '경주벤토나이트'를 대상으로 만든 현탁액을 영양배지 세럼병에서 일주일 이상 숙성시키며 시간에 따른 벤토나이트의 변화를 관찰하였다. 영양배지에서 활성화된 벤토나이트는 고체 시료뿐만 아니라 용액도 함께 변하였다. 용존황산염 수용액으로부터 검은색의 미립자 황화물이 생성되기 시작하였으며, 시료를 채취하여 배양한 결과 4 종류의 황산염환원박테리아(SRB)가 자체 생존하고 있음이 확인되었다. 이러한 결과는 벤토나이트 분말시료 내에 황산염환원(혹은 금속환원)박테리아가 고착 및 서식하고 있음을 말해주는 것으로, 이는 지하의 환원환경 조건하에서 완충재 내외부에 장기적으로 생지화학적 영향이 발현될 가능성이 있음을 의미한다.