• Title/Summary/Keyword: Thermoactinomyces sp

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Treatment of Thermoactinomyces sp. to Application of Poultry Feces (계분을 이용하기 위한 Thermoactinomyces sp. 균처리)

  • Choi, Moo-Young;Lee, Eun
    • Microbiology and Biotechnology Letters
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    • v.18 no.5
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    • pp.530-534
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    • 1990
  • A strain of actinomycetes, Thermoactinomyces sp. CH-53, was isolated from manure and composted livestock feces. Actinornycetes-feed additive was prepared with the solid wheat bran medium of Thermoactinomyces sp. CH-53 that grew vigorously on unsterilized poultry feces at $50^{\circ}C$. pH 6.5- 9.5 and moisture content of 55-65% and added at a rate of 1% (wtlwt) to the commercially assorted feed to be fed poultry. The excreted feces contained $10^7-10^8$. Thermoactinomyces sp. CH-53 cells per gram. Poultry feces malodour was got rid of during treatment. The effect on plant growth was evaluated on the basis of the amount of nitrogen as fertilizer under a loading of 0.2g N1600g soillpot. A11 samples were showed a promotion effect for plant growth. The treated poultry feces added from O.lg to 0.4g total nitrogen per 600g soil in a pat increased the growth of Brassica rapa var. perui-ridis.

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Analysis of Producing of Thermostable Alkaline Protease using Thermoactinomyces sp. E79 (Thermoactinomyces sp. E79를 이용한 내열성 Alkaline 단백질 분해효소 생산:환경인자의 영향)

  • 정상원;박성식;박용철;오태광
    • Microbiology and Biotechnology Letters
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    • v.28 no.3
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    • pp.167-171
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    • 2000
  • Analysis of Production of Thermostable Alkaline Protease using Thermoactinomyces sp. E79. Jung, Sang Won, Sung-Sik Park, Yong-Cheol Park" Tae Kwang Oh2, and Jin-Ho Seo*, Department of Food Science and Technology, Seoul National University, Suwon 441-744, Korea, 1lnterdisciplinary program [or Biochemical Engineering & Biotechnology, Seoul National Univer5it}~ Seoul 151 "7421 Koreal 2Microbial Enzyme RU, Korea Research Institute of Bioscience & Biotechnology, Po. Box 1151 Yusong, Taejon 305"6001 Korea - This research was undertaken to analyze fermentation properties of Thermoactinomyces sp. E79 for production of a thermostable alkaline protease, which is able to specifically hydrolyze defatted soybean meal (DSM) to amino acids. TIle optimum pH for cell growth and protease production was pH 6.7, Thermoactinomyces sp. E79 did not grow at pHlO Among carbon sources tested, soluble starch was the best for protease production, while glucose repressed protease production. Tryptone was found to be the best nitrogen source for cell growth and soytone was good tor protease production. Oxygen transfer rate played an important role in producing thermostable alkaline protease. Ma'<..imum values of 6.58 glL of dry cell weight and 43.0 UJmL of protease activity were obtained in a batch fermentation using a 2.5 L jar fermentor at 1.93 X 102 hr-l of volumetric oxygen transfer coeff'jcient (kLa). Addition of 200 mgIL humic acid to the growth medium resulted in 1.64 times higher protease activity and 1.77 times higher cell growth than the case without humic acid addition.

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Production and Characterization of Keratinolytic Proteases by a Chicken Feather-Degrading Thermophilic Strain, Thermoactinomyces sp. YT06

  • Wang, Lin;Qian, Yuting;Cao, Yun;Huang, Ying;Chang, Zhizhou;Huang, Hongying
    • Journal of Microbiology and Biotechnology
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    • v.27 no.12
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    • pp.2190-2198
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    • 2017
  • Thermoactinomyces sp. strain YT06 was isolated from poultry compost and observed to degrade integral chicken feathers completely at $60^{\circ}C$, resulting in the formation of 3.24 mg/ml of free amino acids from 50 ml of culture containing 10 g/l chicken feathers. Strain YT06 could grow and secrete keratinase using feather as the only carbon and nitrogen sources without other supplement, but complementation of 10 g/l sucrose and 4 g/l $NaNO_3$ increased the production of the keratinolytic enzyme. The maximum protease activity obtained was 110 U/ml and for keratinase was 42 U/ml. The keratinase maintained active status over a broad pH (pH 8-11) and temperature ($60-75^{\circ}C$). It was inhibited by serine protease inhibitors and most metal ions; however, it could be stimulated by $Mn^{2+}$ and the surfactant Tween-20. A reductive agent (${\beta}$-mercaptoethanol) was observed to cleave the disulfide bond of keratin and improve the access of the enzyme to the keratinaceous substrate. Zymogram analysis showed that strain YT06 primarily secreted keratinase with a molecular mass of approximately 35 kDa. The active band was assessed by MALDI-TOF mass spectrometry and was observed to be completely identical to an alkaline serine protease from Thermoactinomyces sp. Gus2-1. Thermoactinomyces sp. strain YT06 shows great potential as a novel candidate in enzymatic processing of hard-to-degrade proteins into high-value products, such as keratinous wastes.

Minor Thermostable Alkaline Protease Produced by Thermoactinomyces sp. E79

  • Kim, Young-Ok;Lee, Jung-Kee;Sunitha, Kandula;Kim, Hyung-Kwoun;Oh, Tae-Kwang
    • Journal of Microbiology and Biotechnology
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    • v.9 no.4
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    • pp.469-474
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    • 1999
  • Thermoactinomyces sp. E79 produced two types of thermostable alkaline proteases extracellularly. A minor protease was separated from a major protease by using DEAE-column chromatography. This enzyme was purified to homogeneity by ammonium sulfate and DEAE-Sepharose ion-exchange chromatography. The purified minor protease showed different biochemical properties compared to the major protease. The molecular mass of the purified enzyme was estimated by SDS-PAGE to be 36 kDa. Its optimum temperature and pH for proteolytic activity against Hammarsten casein were $70^{\circ}C$ and 9.0, respectively. The enzyme was stable up to$75^{\circ}C$ and in an alkaline pH range of 9.0-11.0. The enzyme was inhibited by phenylmethylsulfonyl fluoride (PMSF) and $Hg^{2+}, indicating that the enzyme may be a cysteine-dependent serine protease. In addition, the enzyme cleaved the endoproteinase substrate, succinyl-Ala-Ala-Pro-Phe-p- nitroanilide, and the $K_m$ value for the substrate was 1.2 mM.

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Isolation of a Promoter Element that is Functional in Bacillus subtilis for Heterologous Gene Expression

  • Maeng, Chang-Jae;Kim, Hyung-Kwoun;Park, Sun-Yang;Koo, Bon-Tag;Oh, Tae-Kwang;Lee, Jung-Kee
    • Journal of Microbiology and Biotechnology
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    • v.11 no.1
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    • pp.85-91
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    • 2001
  • To construct an efficient Bacillus subtilis expression vector, strong promoters were isolated from the chromosomal DNA libraries of Clostridium acetobutylicum ATCC 4259, Thermoactinomyces sp. E79, and Bacillus thermoglucosidasius KCTC 3400. The $P_{C27}$ promoter cloned from the clostridial chromosmal DNA showed a 5-fold higher promoter strength than the $P_{SP02}$ promoter in the expression of the cat gene, and its sequence was estimated as an upstream region of the predicted hypothetical gene (tet-R family bacterial transcription regulator gene) in C. acetobutylicum. As a promoter element, $P_{C27}$ exhibited putative nucleotide sequences that can bind with bacterial RNAP and the 3'end of the 16S rRNA just upstream of the start codon. In addition, the promoter activity of $P_{C27}$ was distinctively repressed in the presence of glucose. Using $P_{C27}$ as the promoter element, a glucose controllable B. subtilis expression vector was constructed and the lipase gene from Staphylococcus haemolyticus KCTC 8957P was expressed in B. subtilis. When compared with the lipase expression by the T7 promoter induced by IPTG in E. coli, the $P_{C27}$ promoter showed about a 1.5-fold higher expression level in B. subtilis than that without induction.

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