• 제목/요약/키워드: Arthrobacter crystallopoietes

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Structural Characterization of Non-reducing Oligosaccharide Produced by Arthrobacter crystallopoietes N-08

  • Bae, Bum-Sun;Shin, Kwang-Soon;Lee, Ho
    • Food Science and Biotechnology
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    • 제18권2호
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    • pp.519-525
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    • 2009
  • A bacterial strain (Strain N-08) capable of extracellularly producing high level of non-reducing oligosaccharide (NR-OS) isolated from soil. The strain was identified phylogenetically by 16S rDNA sequence analysis and found to be very close to Arthrobacter crystallopoietes. The high production of NR-OS was observed in the basal culture medium containing maltose as a sole carbon source. The NR-OS in culture supernatant was purified by glucoamylase treatment and Dowex-1 (OH.) ion exchange chromatography and its structure was characterized. This oligosaccharide consisted of only glucose. Methylation analysis indicated that this fraction was composed mainly of non-reducing terminal glucopyranoside. Matrixassisted laser-induced/ionization time-of-flight (MALDI-TOF) and electrospray ionization-mass spectrometry (ESI-MS)/MS analyses suggested that this oligosaccharide comprised non-reducing disaccharide unit with 1,1-glucosidic linkage. When this disaccharide was analyzed by $^1H$-NMR and $^{13}C$-NMR, it gave the same signals with $\alpha$-D-glucopyranosyl-(1,1)-$\alpha$-Dglucopyranoside. These results indicated that the NR-OS produced by A. crystallopoietes N-08 was ${\alpha}1$,${\alpha}1$-trehalose. This is the first report of the trehalose which can be produced directly from maltose by A. crystallopoietes N-08.

Optimal Conditions and Substrate Specificity for Trehalose Production by Resting Cells of Arthrobacter crystallopoietes N-08

  • Seo, Yi-Seul;Shin, Kwang-Soon
    • Preventive Nutrition and Food Science
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    • 제16권4호
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    • pp.357-363
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    • 2011
  • Recently, we found that Arthrobacter crystallopoietes N-08 isolated from soil directly produces trehalose from maltose by a resting cell reaction. In this study, the optimal set of conditions and substrate specificity for the trehalose production using resting cells was investigated. Optimum temperature and pH of the resting cell reaction were $55^{\circ}C$ and pH 5.5, respectively, and the reaction was stable for two hours at $37{\sim}55^{\circ}C$ and for one hour at the wide pH ranges of 3~9. Various disaccharide substrates with different glycosidic linkages, such as maltose, isomaltose, cellobiose, nigerose, sophorose, and laminaribiose, were converted into trehalose-like spots in thin layer chromatography (TLC). These results indicated broad substrate specificity of this reaction and the possibility that cellobiose could be converted into other trehalose anomers such as ${\alpha},{\beta}$- and ${\beta},{\beta}$-trehalose. Therefore, the product after the resting cell reaction with cellobiose was purified by ${\beta}$-glucosidase treatment and Dowex-1 ($OH^-$) column chromatography and its structure was analyzed. Component sugar and methylation analyses indicated that this cellobiose-conversion product was composed of only non-reducing terminal glucopyranoside. MALDI-TOF and ESI-MS/MS analyses suggested that this oligosaccharide contained a non-reducing disaccharide unit with a 1,1-glucosidic linkage. When this disaccharide was analyzed by $^1H$-NMR and $^{13}C$-NMR, it gave the same signals with ${\alpha}$-D-glucopyranosyl-(1,1)-${\alpha}$-D-glucopyranoside. These results suggest that cellobiose can be converted to ${\alpha},{\alpha}$-trehalose by the resting cells of A. crystallopoietes N-08.

Calcite-Forming Bacteria for Compressive Strength Improvement in Mortar

  • Park, Sung-Jin;Park, Yu-Mi;Chun, Woo-Young;Kim, Wha-Jung;Ghim, Sa-Youl
    • Journal of Microbiology and Biotechnology
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    • 제20권4호
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    • pp.782-788
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    • 2010
  • Microbiological calcium carbonate precipitation (MCP) has been investigated for its ability to improve the compressive strength of mortar. However, very few studies have been conducted on the use of calcite-forming bacteria (CFB) to improve compressive strength. In this study, we discovered new bacterial genera that are capable of improving the compressive strength of mortar. We isolated 4 CFB from 7 environmental concrete structures. Using sequence analysis of the 16S rRNA genes, the CFB could be partially identified as Sporosarcina soli KNUC401, Bacillus massiliensis KNUC402, Arthrobacter crystallopoietes KNUC403, and Lysinibacillus fusiformis KNUC404. Crystal aggregates were apparent in the bacterial colonies grown on an agar medium. Stereomicroscopy, scanning electron microscopy, and X-ray diffraction analyses illustrated both the crystal growth and the crystalline structure of the $CaCO_3$ crystals. We used the isolates to improve the compressive strength of cement-sand mortar cubes and found that KNUC403 offered the best improvement in compressive strength.

토양 미생물의 2-hydroxypyridine 대사에 미치는 기아상태와 부식산의 영향 (Influence of Starvation and Humic Acid on Soil Microbial 2- Hydroxypyridine Metabolism)

  • 황선형
    • 한국토양환경학회지
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    • 제4권1호
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    • pp.13-23
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    • 1999
  • 본 연구에서는 기아상태에 있는 토양 미생물, Arthrobacter crystallopoietes cell의 2-hydroxypyridine대사능력의 변화 와 이 미생물의 대사능력에 대한 부식산의 영향에 대해 다루어졌다. 기질 2-HP에 대한 대수기 세포(exponential phase cell)는 적응기 세포(lag phase cell)와 비교할 때 기아상태에 있어서도 더 높은 2-HP대사능력을 보여 기아상태 3일 후 대수기 세포에서 2-HP반감기는 14시간으로 나타난 반면 적응기 세포의 경우 46.5시간으로 나타났다. 부식산은 기아상태에서 이 미생물 세포의 유도효소, 2-HP monooxygenase의 안정성을 높여주어 기아시간 2일 후 표준조건에서 기아상태에 있던 미생물의 효소활성이 처음의 1.5%로 남아 있는 반면 0.2% 부식산 용액에서 기아상태로 있던 미생물의 효소활성은 12%까지 남아 있었다. 기아시간 14일 후 까지도 부식산 용액 속에서 기아상태로 있던 이 미생물 세포의 2-HP대사능력은 표준 조건의 것에 비해 월등히 높아 2-HP반감기를 비교해 보면 표준 조건의 경우 43시간인 반면 부식산의 경우 1.25시간으로 나타났다.

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Application of Alkaliphilic Biofilm-Forming Bacteria to Improve Compressive Strength of Cement-Sand Mortar

  • Park, Sung-Jin;Chun, Woo-Young;Kim, Wha-Jung;Ghim, Sa-Youl
    • Journal of Microbiology and Biotechnology
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    • 제22권3호
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    • pp.385-389
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    • 2012
  • The application of microorganisms in the field of construction material is rapidly increasing worldwide; however, almost all studies that were investigated were bacterial sources with mineral-producing activity and not with organic substances. The difference in the efficiency of using bacteria as an organic agent is that it could improve the durability of cement material. This study aimed to assess the use of biofilm-forming microorganisms as binding agents to increase the compressive strength of cement-sand material. We isolated 13 alkaliphilic biofilmforming bacteria (ABB) from a cement tetrapod block in the West Sea, Korea. Using 16S RNA sequence analysis, the ABB were partially identified as Bacillus algicola KNUC501 and Exiguobacterium marinum KNUC513. KNUC513 was selected for further study following analysis of pH and biofilm formation. Cement-sand mortar cubes containing KNUC513 exhibited greater compressive strength than mineral-forming bacteria (Sporosarcina pasteurii and Arthrobacter crystallopoietes KNUC403). To determine the biofilm effect, Dnase I was used to suppress the biofilm formation of KNUC513. Field emission scanning electron microscopy image revealed the direct involvement of organic-inorganic substance in cement-sand mortar.