• Title/Summary/Keyword: Soil enzyme activity

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Isolation and Characterization of Thermophilic Bacteria for Aerobic Decomposition of Food Waste (음식물 쓰레기의 호기성분해를 위한 고온균의 분리 및 생육 특성)

  • Choi, Min Ho;Cho, Sung Eun;Yoo, Jung Mok;Chung, Yoon Jin;Park, Yun Hee
    • Journal of the Korea Organic Resources Recycling Association
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    • v.3 no.1
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    • pp.21-34
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    • 1995
  • For development of microbial additives applicable to in-vessel composting system of food waste, thermophilic bacteria which showed amylase, protease, lipase and cellulase activity were isolated from soil, compost and food waste. Among 81 isolates, the growth characteristic of 20 strains with high enzyme activity were examined. All strains are Gram positive rod with catalase activity and 17 strains are spore formers. At $50^{\circ}C$, most of the strains were able to grow from pH 5 to pH 10 and in presence of 8% of NaCl. In trypticase soy broth, the growth of these strains was greatly increased by aeration, but decreased at elevated temperature above $50^{\circ}C$.

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Isolation, Production, and Characterization of Protease from Bacillus subtilis IB No. 11

  • Lee, Min-Hyang;Lee, Kang-Moon;Choi, Yong-Jin;Baek, Yeon-Soo
    • Journal of Animal Science and Technology
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    • v.51 no.6
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    • pp.527-536
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    • 2009
  • A potent protein degrading bacterium was isolated from soil samples of different environments. Polyphasic taxonomic studies and phylogenetic 16S rRNA sequence analyses led to identify the isolate IB No. 11 as a strain of Bacillus subtilis. The isolated strain was recognized to produce protease constitutively, and the maximum production (1.64 units/ml) was attained in a shake flask culture when the isolate was grown at $40^{\circ}C$, for 32 h in basal medium supplemented with starch (0.25%) and gelatin (1.25%) as sole carbon and nitrogen source, respectively. The optimum pH and temperature for the protease activity were determined to be pH 7.0 and $50^{\circ}C$, respectively. $Ca^{2+}$ and $Mn^{2+}$ enhanced remarkably the protease activity but neither showed positive effect on the protease's thermal stability. In addition, it was observed that the protease was fairly stable in the pH range of 6.5-8.0 and at temperatures below $50^{\circ}C$, and it could be a good candidate for an animal feed additive. The inhibition profile of the protease by various inhibitors indicated that the enzyme is a member of serine-proteases. A combination of UV irradiation and NTG mutagenesis allowed to develop a protease hyper-producing mutant strain coded as IB No. 11-4. This mutant strain produced approximately 3.23-fold higher protease activity (6.74 units/mg) than the parent strain IB No. 11 when grown at $40^{\circ}C$ for 32h in the production medium. The protease production profile of the selected mutants was also confirmed by the zymography analysis.

Production and Characterization of Keratinase from Paracoccus sp. WJ-98

  • Lee, Yoon-Jeong;Kim, Jae-Ho;Kim, Ha-Kun;Lee, Jong-Soo
    • Biotechnology and Bioprocess Engineering:BBE
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    • v.9 no.1
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    • pp.17-22
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    • 2004
  • A bacterial strain WJ-98 found to produce active extracellular keratinase was isolated from the soil of a poultry factory. It was identified as Paracoccus sp. based on its 16S rRNA sequence analysis, morphological and physiological characteristics. The optimal culture conditions for the production of keratinase by Paracoccus sp. WJ-98 were investigated. The optimal medium composition for keratinase production was determined to be 1.0% keratin, 0.05% urea and NaCl, 0.03% K$_2$HPO$_4$, 0.04% KH$_2$PO$_4$, and 0.01% MgCl$_2$$.$6H$_2$O. Optimal initial pH and temperature for the production of keratinase were 7.5 and 37$^{\circ}C$, respectively. The maximum keratinase production of 90 U/mL was reached after 84 h of cultivation under the optimal culturing conditions. The keratinase from Paracoccus sp. WJ-98 was partially purified from a culture broth by using ammonium sulfate precipitation, ion-exchange chromatography on DEAE-cellulose, followed by gel filtration chromatography on Sephadex G-75. Optimum pH and temperature for the enzyme reaction were pH 6.8 and 50$^{\circ}C$, respectively and the enzymes were stable in the pH range from 6.0 to 8.0 and below 50$^{\circ}C$. The enzyme activity was significantly inhibited by EDTA, Zn$\^$2+/ and Hg$\^$2+/. Inquiry into the characteristics of keratinase production from these bacteria may yield useful agricultural feed processing applications.

Production of D-Lactic Acid from DL-Lactonitrile by Pseudomonas sp. (Pseudomonas sp.에 의한 DL-Iactonitrile로부터 D-lactic acid의 생산)

  • 김현수;황인균;정남현;방원기
    • Microbiology and Biotechnology Letters
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    • v.30 no.4
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    • pp.373-379
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    • 2002
  • By using DL-acetonitrile as enzyme inducer, 90 bacteria were isolated from a field soil. Among the isolated strains, the strain WJ-003 showed the highest activity for production of D-lactic acid from DL-lactonitrile, and was partially identified as Pseudomonas sp. The production condition of D-lactic acid from DL-lactonitrile using resting cells as an enzyme source was optimized as follows: the reaction mixture contained 10 mM of DL-lactonitrile, 20 g of wet cells in 11 of 20 mM potassium phosphate buffer (pH 7.0) and the reaction was carried out at $30^{\circ}C$. After 18 h of reaction, 0.843 g/l of D-lactic acid was produced which corresponded to a conversion ratio of 93.7% and an optical purity of 99.8%. Additionally, when 10 mM of DL-lactonitrile was added once more to the reaction mixture at 14 h, 1.64 g/1 of D-lactic acid was produced after 28 h. In this experiment, the conversion ratio was 91.1% and optical purity 99.8%.

Aerobic Liquid Fermentation of Residual Food Waste by Thermophilic Bacteria (고온세균을 이용한 남은 음식물의 호기적 액상발효)

  • Ryu, Seung-Yong;Park, Myoung-Ju;Kim, So-Young;Lee, Ki-Young
    • Journal of the Korea Organic Resources Recycling Association
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    • v.10 no.3
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    • pp.126-131
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    • 2002
  • For the probiotic feed production from residual food waste, aerobic liquid fermentation was conducted by thermophilic bacteria. 11 Strains of bacteria were isolated from several soil sources and residual food waste. Screening was carried by shaking incubator for the separation of thermophilic strain at $55^{\circ}C$. The isolated strains were tested for enzyme activities such as ${\alpha}$-amylase and protease. 6 Bacterial strains were chosen and were adapted by repeated fermentation processes in food waste substrate. The viable cell count of them at final fermentation stages were shown as $3-7{\times}10^9/ml$ in 2L-jar fermenter. Among them B3, B6 showed higher enzyme activity. By the mixed fermentation of B3, B6 and Bacillus stearothermophilus, the highest viable cell count reached to $1.4{\times}10^{10}/ml$ in 8 hours.

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Purification and Properties of Extracellular Inulinase of Pseudomouas sp. (Pseudomonas sp.가 생산하는 Inulinase에 관한 연구 -효소의 정제와 성질 -)

  • 이태경;최용진;양한철
    • Microbiology and Biotechnology Letters
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    • v.16 no.4
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    • pp.259-264
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    • 1988
  • Two forms of extracellular inulinase, designated as PI and PII were detected in the crude enzyme preparation from n species of Pseudomonas isolated from soil. PI and PII were purified to homogeneity by ammonium sulfate fractionation, DEAE Sephadex A-50 chromatography, Sephadex G-100 and Sephadex G-200 gel filteration. Both isoenzymes catalyzed specifically and endowise the cleavage of the $\beta$-2,1-fructofranoside linkage of inulin, and displayed no action upon sucrose, raffinose and levan. The optimal pH values for the PI and PII enzyme were pH 5.5 and 6.0, respectively and the highest activity of the two enzymes was observed at 55$^{\circ}C$. The Km values of PI and PII were calculated to be 2$\times$10$^{-3}$M and 5$\times$10$^{-3}$M, respectively.

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Production Properties on Extracellular Protease from Chryseobacterium Novel Strain JK1 (Chryseobacterium 속 신종세균 JK1의 세포외 단백질분해효소 생산특성)

  • Lee, Yu-Kyong;Oh, Yong-Sik;Roh, Dong-Hyun
    • Korean Journal of Microbiology
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    • v.48 no.1
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    • pp.48-51
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    • 2012
  • A novel Chryseobacterium sp. JK1 strain producing extracellular protease had been isolated from soil. The largest clear zones were observed on nutrient agar plates supplemented with 1% skim milk at $30-35^{\circ}C$ along with the growth of Chryseobacterium sp. JK1. The cell growth of JK1 strain was maximal at 24 h and maximum protease activity was reached up to 560 unit/ml at the stationary phase in liquid culture. In the presence of maltose, glucose or mannitol in Nutrient broth, cells grew well, but protease were produced poorly with lower production yields of 64-77% than in NB broth only. Similarly, the addition of skim milk, beef extract, yeast extract, malt extract or tryptone showed good growth and poor enzyme production. On the contrary, the addition of $(NH_4)_2HPO_4$ or $(NH_4)_2SO_4$ gave poor growth and good enzyme production of 121-146%.

Different Catabolism Pathways Triggered by Various Methylxanthines in Caffeine-Tolerant Bacterium Pseudomonas putida CT25 Isolated from Tea Garden Soil

  • Ma, Yi-Xiao;Wu, Xiao-Han;Wu, Hui-Shi;Dong, Zhan-Bo;Ye, Jian-Hui;Zheng, Xin-Qiang;Liang, Yue-Rong;Lu, Jian-Liang
    • Journal of Microbiology and Biotechnology
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    • v.28 no.7
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    • pp.1147-1155
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    • 2018
  • The degradation efficiency and catabolism pathways of the different methylxanthines (MXs) in isolated caffeine-tolerant strain Pseudomonas putida CT25 were comprehensively studied. The results showed that the degradation efficiency of various MXs varied with the number and position of the methyl groups on the molecule (i.e., xanthine > 7-methylxanthine ${\approx}$ theobromine > caffeine > theophylline > 1-methylxanthine). Multiple MX catabolism pathways coexisted in strain CT25, and a different pathway would be triggered by various MXs. Demethylation dominated in the degradation of N-7-methylated MXs (such as 7-methylxanthine, theobromine, and caffeine), where C-8 oxidation was the major pathway in the catabolism of 1-methylxanthine, whereas demethylation and C-8 oxidation are likely both involved in the degradation of theophylline. Enzymes responsible for MX degradation were located inside the cell. Both cell culture and cell-free enzyme assays revealed that N-1 demethylation might be a rate-limiting step for the catabolism of the MXs. Surprisingly, accumulation of uric acid was observed in a cell-free reaction system, which might be attributed to the lack of activity of uricase, a cytochrome c-coupled membrane integral enzyme.

Production of Inulin Fructotransferase(Depolymerizing) from Bacillus sp. snu-7 (Bacillus sp. snu-7에 의한 Inulin Fructotransferase의 생산)

  • Kim, Woo-Pyo;Kang, Su-Il;Kim, Su-Il
    • Applied Biological Chemistry
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    • v.40 no.3
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    • pp.184-188
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    • 1997
  • A bacterial strain, producing extracellular inulin fructotransferase which converts inulin into di-D-fructofuranose 1,2':2,3' dianhydride(DFA III), was isolated from soil and presumed as Bacillus sp.. The highest production of the enzyme was obtained by using medium containing Jerusalem artichoke extract as carbon source, peptone as organic nitrogen source, and $NH_4H_2PO_4$, as inorganic source. Under optimum condition, the enzyme activity of the culture broth supernatant reached maximal 2.61 units/ml after cultivation for 45 hrs.

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Purification of Three Extracellular Proteases from Alkalophilic Coryneform Bacteria TU-19 (호알칼리성 Coryeform bacteria TU-19가 생산하는 세종류의 균체외 단백질분해호소의 정제)

  • Choi, Myoung-Chul;Yang, Jae-Sub;Kang, Sun-Chul
    • Applied Biological Chemistry
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    • v.38 no.6
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    • pp.534-540
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    • 1995
  • Alkalophilic coryneform bacteria TU-19 isolated from soil extracellularly produced at least three proteases (Protease I, II, and III). Investigating the cultural conditions related to the enzyme production of this bacterial cell, the optimum pH and temperature were 10.0 and $30^{\circ}C$, respectively. In order to purify these enzymes from the 2 day culture broth ammonium sulfate fractionation, gel filtration and QAE-Sephadex column chromatography were performed step by step. And then these three proteases were purified to near homogeneity by judging from SDS-PAGE pattern, and had the molecular weights of 120, 80, and 45 kilodaltons, respectively. The optimum pH and temperature for the enzyme activity of Protease I and II were 10.5 and $45^{\circ}C$, respectively, and Protease II were 11.0 and $50^{\circ}C$. And the enzymes were completely inhibited by PMSF suggesting serine protease, but not affected by pCMB. 1,10-phenanthroline, IAA, and EDTA.

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