• Title/Summary/Keyword: Chitosanase

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Isolation, Purification and Characterization of Chitosanase from Bacillus subtilis CH1

  • Oh, Chul-Hong;Lee, Je-Hee
    • Journal of Aquaculture
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    • v.19 no.1
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    • pp.40-46
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    • 2006
  • Bacillus subtilis strain with highly active chitosanase was isolated from the intestine of Sebastiscus marmoratus (scorpion fish). It was named as Bacillus subtilis CH1 by morphological, biochemical and 165 rRNA gene analysis. The optimal conditions for chitosanase production were investigated. The optimum carbon and nitrogen sources for Bacillus stibtilis CH1 were 2% starch and 1% yeast extract respectively. Unlike other chitosanases, the expression of this chitosanase was not induced or slightly induced with chitosan. The chitosanase secreted into the medium were concentrated with ammonium sulfate precipitation and purified by gel permeation chromatography. The molecular weight of purified chitosanase was 30 kDa. The optimum pH and temperature of purified chitosanase were 5.5 and $60^{\circ}C$ respectively. The purified chitosanase was continuously thermostable at $40^{\circ}C$ and showed stable activity between pH 6.0 and 8.0. Chitosanase activity of Bacillus subtilis CH1 under optimum condition was 4.1 units/ml.

Characteristics of Chitosanases from Aspergillus fumigatus KB-1

  • Eom, Tae-Kyoung;Lee, Kang-Man
    • Archives of Pharmacal Research
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    • v.26 no.12
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    • pp.1036-1041
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    • 2003
  • Two chitosanases produced by Aspergillus fumigatus KB-1 were purified by ion exchange and size exclusion chromatographies. Molecular weights of chitosanases were 111.23 kDa (chitosanase I) and 23.38 kDa (chitosanase II). The N-terminal amino acid sequence of chitosanase II was determined as follows: YNLPNNLKQIYDKHKGKXSXVLAKGFTN. The optimum pH of the chitosanase I and II was 6.5 and 5.5, respectively. The optimum temperatures were $60^{\circ}C$ for chitosanase land $70^{\circ}C$ for chitosanase II. Hydrolysis products of two chitosanases were analyzed by HPLC and GPC. Chitosanase I hydrolyzed substrate to glucosamine. Chitosanase II produced chitooligosaccharides.

Purification and Characteristics of Two Types of Chitosanases from Aspergillus fumigatus KH-94

  • Kim, Soon-Young;Shon, Dong-Hwa;Lee, Ke-Ho
    • Journal of Microbiology and Biotechnology
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    • v.8 no.6
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    • pp.568-574
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    • 1998
  • Two types of chitosanases produced from Aspergillus fumigatus KH-94 were purified by ion exchange and gel permeation chromatography. Molecular weights of the enzymes are 22.5 kDa (chitosanase I) and 108 kDa (chitosanase II). pI, optimum pH, and temperature of chitosanase I are 7.3, 5.5, and 70-$80^{\circ}C$, respectively, and those of chitosanase II are 4.8, 4.5~5.5, and 50~$60^{\circ}C$, respectively. Activities of both chitosanases were increased by $Mn^{2+}$ but inhibited by $Cu^{2+}$ and $Hg^{2+}$ . Chitosanase I has endo-splitting activity that hydrolyzes chitopentaose, chitohexaose, and chitosan to chitobiose, chitotriose, and chitotetraose, whereas chitosanase II has exo-splitting activity that hydrolyzes chitobiose and chitosan to glucosamine. Chitosanase II was found to have transglycosylation activity also in the reaction of 2% more chitooligosaccharides as a substrate and at the initial reaction. The higher degree of deacetylation, the stronger activities of chitosanase Iand II toward chitosans. Both chitosanases could hydrolyze chitosan and glycol chitosan but not chitin, cellulose, and carboxymethyl cellulose. To produce higher degree of polymerization of chitooligosaccharides, chitosanase I was used and yielded 80% of recovery.

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Purification, Characterization, and Gene Cloning of Chitosanase from Bacillus cereus H-l (Bacillus cereus H-1으로부터 Chitosanas리 분리와 특성연구 및 유전자 클로닝)

  • Jang, Hong-Ki;Yi, Jae-Hyoung;Kim, Jung-Tae;Lee, Keun-Eok;Park, Shin-Geon
    • Microbiology and Biotechnology Letters
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    • v.31 no.3
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    • pp.216-223
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    • 2003
  • A 1.3-kb of chitosanase gene (choA) encoding 45-kDa polypeptide was cloned, expressed, and characterized from a newly isolated Bacillus cereus H-1. The chitosanase protein (ChoA) of B. cereus H-l was purified to homogeneity by ammonium sulfate precipitation and CM-sephadex column chromatography. Optimum pH was around 7, and stable pH range in the incubation at 50 C was 4-11. Optimum temperature was around 50 C, and enzyme activity was relatively stable below 45 C. ChoA showed the activities toward carboxymethyl cellulose (CMC) in addition to soluble or glycol chitosan. Based on MALDI-TOF MS analysis of purified ChoA, the entire amino acid sequence of ChoA was interpreted by database searching of previously known Bacillus chitosanases. A 1.6 kb of PCR product of corresponding chitosanase gene was obtained and its DNA sequence was determined. The deduced amino acid of choA revealed that ChoA have a 98% homology with those of Bacillus sp. No.7-M strain and Bacillus sp. KCTC0377BP. The recombinant ChoA protein was expressed in E. coli DH5$\alpha$. Deduced amino acid comparison of choA with other chitosanases suggested that it belongs to family 8 microbial endo-chitosanase with chitosanase-cellulase activity.

Molecular Cloning and Characterization of Chitosanase Gene from Bacillus amyloliquefaciene MJ-1 (Bacillus amyloliquefaciens MJ-1 유래의 chitosanase 유전자의 클로닝 및 특성)

  • Park Chan-Soo;Oh Hae-Geun;Hong Soon-Kwang;Park Byung-Chul;Hyun Young;Kang Dae-Kyung
    • Korean Journal of Microbiology
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    • v.42 no.2
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    • pp.142-148
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    • 2006
  • In order to develop chitosanase for the production of chitosan oligosaccharides, a chitosanase-producing bacterium was isolated from the traditional fermented soybean, Meju, and identified as Bacillus amyloliquefaciene MJ-1. The cloned chitosanase gene, 825 bp in size, encoded a single peptide of 274 amino acids with a estimated molecular mass of 30.9 kDa. The deduced amino acid sequence showed significant homology with microbial chitosanases. The recombinant chitosanase was expressed in Escherichia coli upon induction with isopropyl-D-thiogalactopyranoside, and purified using $Ni^{2+}-NTA$ agarose column chromatography. The maximal activity of the recombinant chitosanase is at pH 5.0 and $60^{\circ}C$. The recombinant chitosanase is stable between pH 5.0 and pH 7.0 at $37^{\circ}C$ for 30 min, and more than 75% of the activity still remain at $80^{\circ}C$ for 30 min incubation.

Effective Production of Chitinase and Chitosanase by Streptomyces griseus HUT 6037 Using Colloidal Chitin and Various Degrees of Deacetylation of Chitosan

  • Jung, Ho-Sup;Son, Jeong-Woo;Ji, Hong-Seok;Kim, Kwang
    • Biotechnology and Bioprocess Engineering:BBE
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    • v.4 no.1
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    • pp.26-31
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    • 1999
  • The advantages of the organism Streptomycs griseus HUT 6037 is that the chitinase and chitosanase using chitinaceouse substrate are capable of hydrolyzing both amorphous and crystalline chitin and chitosan. We attempted to investigate the optimization of induction protocol for high-level production and secretion of chitosanase and the influence of chitin and partially deacetylated chitosan sources (75∼99% deacetylation). The maximum specific activity or chitinase has been found at 5 days cultivation with the 48 hours induction time using colloidal chitin as a carbon source. To investigate characteristic of chitosan activity according to substrate, we used chitosan with various degree of deacetylation as a carbon source and found that this strain accumulates chitosanase in the culture medium using chitosanaceous substrates rather than chitinaceous substrates. The highest chitosanase activity was also presented on 4 days with 99% deacetylated chitosan. The partially 53% deacetylated chitosan can secrete both chitinase and chitosanase which was defined as a soluble chitosan. The specific activities of chitinase and chitosanase were 0.89 at 3 days and 1.33 U/mg protein at 5 days, respectively. It indicate that chitosanase obtained from S. griseus HUT 6037 can hydrolyze GlcNAc-GlcN and GlcN-GlcN linkages by exo-splitting manner. This activity increased with increasing degree of deacetylation of chitosan. It is the first attempted to investigate the effects of chitosanase on various degrees of deacetylations of chitosan by S. griseus HUT 6037. The highest specific activity of chitosanase was obtained with 99% deacetylated chitosan.

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Characteristics of Chitosanase from Aspergillus fumigatus KB-1

  • Eom, Taek-Young;Lee, Kang-Man
    • Proceedings of the PSK Conference
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    • 2003.10b
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    • pp.161.1-161.1
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    • 2003
  • Two chitosanses produced by Aspergillus fumigatus KB-1 were purified by ion exchange and size exclusion chromatographies. Molecular weights of chitosanses were 111.23 KDa (chitosanase I) and 23.38 KDa (chitosanase II). The N-terminal amino acid sequence of chitosanase II was determined: YNLPNNLKQIYDKHKGKXSXVLAK(\ulcorner)GFTN. The optimum pH of the chitosanase I and II were 6.5 and 5.5 respectively. The optimum temperatures were $60^\times$C and $70^\times$. Two chitosanases were most stable at $10^\times$C. (omitted)

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Isolation and Characterization of Chitosanase-Producing Microorganism, Aureobacterium sp. YL, from Crab Shells

  • Lee, Dong-Mi;Lee, Ei-Leen;Lee, Kang-Man
    • Journal of Microbiology and Biotechnology
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    • v.10 no.2
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    • pp.208-214
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    • 2000
  • A bacterial strain producing extracellular chitosanase was isolated from crab shells and identified as a member of the genus Aureobacterium The production of chitosanase was proportionally related to the microbial growth, induced by the presence of chitosan, and repressed by glucose at 0.5% (w/v) concentration or higher. The optimal culture conditions for the production of chitosase were 3$0^{\circ}C$ and pH 7.0. Among the nitrogen sources tested, incubation with 0.25% (w/v) concentrations of tryptone and casitione showed the best production of chitosanase. The chitosanase of Aureobacterium sp. YL produced chitobiose as a major product and glucosamine, chitotriose, chitotetraose, and chitopentaose as minor products from chitosan.

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Effect of Chitin Sources on Production of Chitinase and Chitosanase by Streptomyces griseus HUT 6037

  • Kim, Kwang;Ji, Hong-Seok
    • Biotechnology and Bioprocess Engineering:BBE
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    • v.6 no.1
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    • pp.18-24
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    • 2001
  • The advantage of using Streptomyces griseus HUT 6037 in the production of chitinase or chitosanase is that the organism is capable of hydrolyzing amorphous or crystalline chitin and chitosan according to the type of the substrate used. We investigated the effects of the enzyme induction time and chitin sources, CM-chitosan and deacetylated chitosan (degree of deacetylation 75-99%), on production of chitosanase. We found that this strain accumulated chitosanase when cells were grown in the culture medium containing chitosanaceous substrates instead of chitinaceous substrates. The highest chitosanase activity was obtained at 4 dyas of cultivation with 99% deacetylated chitosan. The specific activities of chitinase and chitosanase were 0.91 and 1.33 U/mg protein at 3 and 5 days, respectively. From the study of the enzymatic digestibility of various degrees of deacetylated chitosan, it was found that (GlcN)$_3$, (GlcN)$_4$and (GlcN)(sub)5 were produced during the enzymatic hydrolysis reaction. The results of this study suggested that the sugar composition of (GlcN)$_3$was homogeneous and those of (GlcN)$_4$and (GlcN)(sub)5 were heterogeneous.

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Isolation, Purification, and Enzymatic Characterization of Extracellular Chitosanase from Marine Bacterium Bacillus subtilis CH2

  • Oh, Chul-Hong;Zoysa, Mahanama De;Kang, Do-Hyung;Lee, Young-Deuk;Whang, Il-Son;Nikapitiya, Chamilani;Heo, Soo-Jin;Yoon, Kon-Tak;Affan, Abu;Lee, Je-Hee
    • Journal of Microbiology and Biotechnology
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    • v.21 no.10
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    • pp.1021-1025
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    • 2011
  • A Bacillus subtilis strain was isolated from the intestine of Sebastiscus marmoratus (scorpion fish) that was identified as Bacillus subtilis CH2 by morphological, biochemical, and genetic analyses. The chitosanase of Bacillus subtilis CH2 was best induced by fructose and not induced with chitosan, unlike other chitosanases. The strain was incubated in LB broth, and the chitosanase secreted into the medium was concentrated with ammonium sulfate precipitation and purified by gel permeation chromatography. The molecular mass of the purified chitosanase was detected as 29 kDa. The optimum pH and temperature of the purified chitosanase were 5.5 and $60^{\circ}C$, respectively. The purified chitosanase was continuously thermostable at $40^{\circ}C$. The specific acitivity of the purified chitosanase was 161 units/mg. The N-terminal amino acid sequence was analyzed for future study.