• Title/Summary/Keyword: Enzymatic characterization

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Production and Characterization of a Novel Microbial Transglutaminase from Actinomadura sp. T-2

  • Kim, Hyun-Soo;Jung, Sang-Hong;Lee, In-Seon;Yu, Tae-Shick
    • Journal of Microbiology and Biotechnology
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    • v.10 no.2
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    • pp.187-194
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    • 2000
  • An actinomycetes strain, T-2, which produces transglutaminase (EC 2.3.2.13), was isolated from soil and identified as belonging to the Actinomadura sp., based on taxonomc studies. The conditions for the transglutaminase production and its enzymatic properties were investigated. The optimum components for the transglutaminase production were 2% glucose, 1% polypeptone and soytone, and 0.1% MnCl2. The optimum pH and temperature of the enzyme reaction were pH 8.0 and $45^{\circ}C$, respectively. The enzyme was stable within the pH range of 5.0-9.0 and $30^{\circ}C-45^{\circ}C$. The novel enzyme required no calcium ions for its activity. This enzyme polymerized various proteins such as casien, soy protein, hemoglobin, egg white, gelatin, and soybean milk.

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Molecular Cloning of an Extremely Thermostable Alanine Racemase from Aquifex pyrophilus and Enzymatic Characterization of the Expressed Protein

  • Kim, Sang-Suk;Yu, Yeon-Gyu
    • BMB Reports
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    • v.33 no.1
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    • pp.82-88
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    • 2000
  • A homologous gene to alanine racemase was cloned from a hyperthermophilic bacterium, Aquifex pyrophilus. The cloned gene encodes a protein of 341 amino acids, which has a significant homology to alanine racemase of Bacillus stearothermophilus, Lactobacillus brevis, and E. coli. When the gene was expressed in Escherichia coli, it produced a 40 kDa protein. The purified protein contains one mole pyridoxal 5-phosphate per one mole of protein, which is essential for catalytic activity of alanine racemase. The purified protein catalyzed racemization of L-alanine to D-alanine, or vice versa, indicating that the cloned gene encoded alanine racemase. It also showed significant racemization activity against L-serine and ${\alpha}-aminobutylic$ acid. The A. pyrophilus alanine racemase showed strong thermostability, and it maintained catalytic activity in the presence of organic solvents.

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Characterization of Cyclofructans from Inulin by Saccharomyces cerevisiae Strain Displaying Cell-Surface Cycloinulooligosaccharide Fructanotransferase

  • Kim, Hyun-Jin;Lee, Jae-Hyung;Kim, Hyun-Chul;Lee, Jin-Woo;Kim, Yeon-Hee;Nam, Soo-Wan
    • Journal of Microbiology and Biotechnology
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    • v.17 no.4
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    • pp.695-700
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    • 2007
  • The cycloinulooligosaccharide fructanotransferase (CFTase) gene (cft) from Paenibacillus macerans (GenBank access code AF222787) was expressed on the cell surface of Saccharomyces cerevisiae by fusing with Aga2p linked to the membrane-anchored protein Aga1p. The surface display of CFTase was confirmed by immunofluorescence microscopy and enzymatic assay. The optimized reaction conditions of surface-displayed CFTase were as follows; pH, 8.0; temperature, $50^{\circ}C$; enzyme amount, 30 milliunit; substrate concentration, 5%; inulin source, Jerusalem artichoke. As a result of the reaction with inulin, cycloinulohexaose was produced as a major product along with cycloinuloheptaose and cycloinulooctaose as minor products.

Isolation and Characterization of an Antioxidant from Enzymatic Hydrolysates of Yellowfin Sole(Limanda aspera) Frame Protein

  • Kim, Se-Kwon;Park, Pyo-Jam;Jung, Won-Kyo;Je, Jae-Young;Byun, Hee-Guk;Kim, Jong-Bae;Chang, Soo-Hyun
    • Proceedings of the Korean Society of Fisheries Technology Conference
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    • 2002.10a
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    • pp.189-190
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    • 2002
  • The term antioxidant is defined as my substance that, when present at low concentrations compared to that of an oxidizable substrate, significantly delays or inhibits oxidation of that substrate. Synthetic antioxidants such as butylated hydroxyanisole (BHA), butylated hydroxytoluene (BHT), tertiary-butylhydroquinone (TBHQ) and propyl gallate (PG) may be added to food products to retard lipid oxidation. (omitted)

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Purificatior and characterization of agaropectin sulfatase produced from Sphingomonas AS6330.

  • Kim, Jung-Hong;Seo, Hae-Jeom;Choi, Won-Chul;Byun, Dae-Suck;Kim, Hyeung-Rak
    • Proceedings of the Korean Society of Fisheries Technology Conference
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    • 2001.10a
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    • pp.233-234
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    • 2001
  • Marine microorganisms have a diverse range of enzymatic activity and are capable of catalyzing various biochemical reactions with diverse enzymes. There have been several studies reporting that various sulfatases isolated from such bacteria as Klebsiella pneumoniae (Miech et al., 1998), Salmonella typhimurium (Henderson and Milazzo, 1979; Murooka and Harada, 1981), Serratia marcescens (Murooka et al., 1980), Pseudomonas aeruginosa(Delisle and Milazzo, 1970), and Comamonas terigena(Fitzgerald and Cline, 1977). (omitted)

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Characterization of Fatty Acids Extracted from Brachionus rotundiformis Using Lipase-catalyzed Hydrolysis

  • Lee, Jung-Kwon;Kim, Se-Kwon;Byun, Hee-Guk
    • Fisheries and Aquatic Sciences
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    • v.12 no.1
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    • pp.16-23
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    • 2009
  • Lipids were extracted from marine rotifer, Brachionus rotundiformis in order to examine the functionality of lipid enzymatic modification. The fatty acids, palmitic, linoleic, oleic and stearic acids were the dominant forms accounting for approximately 35.8%, 21.5%, 15.9% and 7.7% of the total lipid content, respectively. Lipid fractions were categorized as neutral lipids (38.5%), glycolipids (45.9%) and phospholipids (17.6%), and after extraction from the rotifer were isolated by thin-layer chromatography (TLC) as free fatty acids (FFA), monoacylglycerol (MAG), diacylglycerol (DAG) and triacylglycerol (TAG). The production of polyunsaturated fatty acid (PUFA) concentrate from rotifer lipids was studied using lipase-catalyzed hydrolysis. In addition, rotifer lipids were modified by hydrolysis using lipases such as porcine pancreas, Candida rugosa and Rhizomucor miehei. The lipase from Rhizomucor miehei was effective in extracting linoleic acid (C 18:2), while the lipase from Candida rugosa was effective in palmitic acid (C16:0) extraction.

The Novel Angiotensin I Converting Enzyme Inhibitory Peptide from Rainbow Trout Muscle Hydrolysate

  • Kim, Sung-Rae;Byun, Hee-Guk
    • Fisheries and Aquatic Sciences
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    • v.15 no.3
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    • pp.183-190
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    • 2012
  • The purpose of this study was the purification and characterization of an angiotensin I converting enzyme (ACE) inhibitory peptide purified from enzymatic hydrolysates of rainbow trout Oncorhynchus mykiss muscle. After removal of lipid, the approximate composition analysis of the rainbow trout revealed 24.4%, 1.7%, and 68.3% for protein, lipid, and moisture, respectively. Among six hydrolysates, the peptic hydrolysate exhibited the highest ACE inhibitory activity. We attempted to purify ACE inhibitory peptides from peptic hydrolysate using high performance liquid chromatography on an ODS column. The $IC_{50}$ value of purified ACE inhibitory peptide was $63.9{\mu}M$. The amino acid sequence of the peptide was identified as Lys-Val-Asn-Gly-Pro-Ala-Met-Ser-Pro-Asn-Ala-Asn, with a molecular weight of 1,220 Da, and the Lineweaver-Burk plots suggested that they act as a competitive inhibitor against ACE. Our study suggested that novel ACE inhibitory peptides purified from rainbow trout muscle protein may be beneficial as anti-hypertension compounds in functional foods.

Cloning and Characterization of Xylanase Gene from Bacillus licheniformis NBL420 (Bacillus licheniformis NBL420 유래의 Xylanase 유전자의 클로닝과 특성 검토)

  • Hong, In-Pyo;Choi, Shin-Geon
    • Journal of Industrial Technology
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    • v.29 no.A
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    • pp.169-176
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    • 2009
  • The gene encoding endoxylanase (xylS) was isolated from a genomic library of Bacillus licheniformis NBL420. Two positive clones, which harbor 1.5 kb and 0.8 kb inserts respectively, were screened on RBB dyed-xylan plates and the recombinant plasmids were named as pBX3 and pBX5. The nucleotide sequencings of two inserts revealed the existence of common 639 bp of open reading frame which encode 232 amino acids. The xylS gene was successfully subcloned into pET22b(+) vector and overexpressed. Enzymatic properties including optimum pH, optimum temp, thermostability and pH stability were investigated. Activity staining of XylS was identical with that of original Bacillus licheniformis NBL420.

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Purification and Characterization of Angiotensin I Converting Enzyme lnhibitory Peptides from Enzymatic Hydrolysate of Cod Liver Protein (대구의 간 단백질의 효소적 가수분해물로부터 안지오텐신 I 전환효소 저해 펩타이드의 분리.정제 및 특성)

  • 최영일;박표잠;최정호;변희국;정인철;문성훈;김세권
    • Journal of Life Science
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    • v.10 no.2
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    • pp.140-149
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    • 2000
  • In order to utilize marine processing waste which would normally be discarded, cod liver protein was hydrolysed by ${\alpha}$-chymotrysin, and the hydrolysate was investigated for the new angiotensin I converting enzyme (ACE) inhibitor. Thy hydrolysate was separated into three major types, with molecular weight cut-off (MWCO) values less than 10 kDa, 5 kDa and 1 kDa of ultrafiltration membranes, respectively. ACE inhibitory peptides were isolated from the fractions passed through MWCO 1 kDa membrane, and purified by using ion-exchange chromatography on a SP-Sephadex C-25 column, gel filtration on a Sephadex G-15 column, and HPLC on an ODS column. The purity was identified with capillary electrophoresis. The amino acid sequences of two peptides were Met-Ile-Pro-Pro-Tyr-Tyr (IC50=10.9 ${\mu}$M) and Gly-Leu-Arg-Asn-Gly-Ile (IC50=35.0 ${\mu}$M)

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Isolation, Purification and enzymatic characterization of the Cellulase produced by Aspergillus Phoenicis (Aspergillus phoenices K.U. 175이 생성하는 셀루라아제의 분리, 정제 및 효소학적 성질)

  • 김봉수;이영녹
    • Korean Journal of Microbiology
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    • v.19 no.1
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    • pp.31-37
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    • 1981
  • Avicelase, CMCase and salicinase of A.phoenicis K.U. 175 were purified from wheat bran culture by salting out with ammonium sulfate, dialysis and successive column chromatography Sephadex G-100. Optimum pH and temperature of avicelase were pH 3.8-4.8, $35-55^{\circ}C$ and that of CMCase, salicinase were pH4.5-5.5, $45-60^{\circ}C$ and pH 4.5-6.0, $45-60^{\circ}C$ respectively. These enzymes were relatively thermostable, alkali unstable and inhibited by $Ca^{++},\;Mn^{++},\;Cu^{++},\;and\;Hg^{++}$. Km values of avicelase, CMCase and salicinase were calculated to be $1.5{\times}10^{-4}M,\;5.5{\times}10^{-4}M\;and\;2.75{\times}10^{-5}M$ and Vmax values $1.66{\times}10^{-4}mM/min,\;3.33{\times}10^{-4}mM/min\;and\;1.14{\times}10^{-4}mM/min$, respectively.

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