• 제목/요약/키워드: endo-glucanase

검색결과 69건 처리시간 0.024초

Expression of a Bacillus subtilis Endoglucanase in Protease-Deficient Bacillus subtilis Strains

  • Yang, Mi-Jeong;Jung, Sun-Hwa;Shin, Eun-Sun;Kim, Jung-Ho;Yun, Han-Dae;Wong, Sui-Lam;Kim, Ho-On
    • Journal of Microbiology and Biotechnology
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    • 제14권2호
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    • pp.430-434
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    • 2004
  • Three extracellular protease-deficient Bacillus subtilis strains were transformed with the plasmid pCK98 containing the endo-$\beta$-1,4-glucanase (Eng) gene of B. subtilis BSE616. The three transformants, B. subtilis DB104 (pCK98), WB600 (pCK98) and WB700 (pCK98), produced the same high level of enzyme activity and showed similar patterns of cell growth and enzyme production. When B. subtilis DB 104 (pCK98), a two-extracellular protease deficient strain, was cultured for 22 h, almost all the secreted enzyme was found to be in the completely cleaved form by both activity staining and Western blotting studies. B. subtilis WB600 (pCK98), a six-extracellular protease-deficient strain, produced a partially cleaved form in addition to the intact form of the enzyme, although the degree of internal cleavage of the enzyme was greatly reduced. With B. subtilis WB700 (pCK98), a seven-extracellular protease-deficient strain, almost all the enzyme was produced as the intact uncleaved form. This study illustrates that a role of the V pr protease is to degrade foreign proteins produced in B. subtilis and WB700 is a suitable expression system for producing the intact form of the Eng and other foreign proteins that may lose at least part of their efficacy due to internal proteolytic cleavage.

섬유소 분해시 혐기성 Clostridium thermocellum이 생산하는 Cellulase의 $C_{1}$ 성분의 역할과 성질 (A Role and Properties of $C_{1}$ Enriched Cellulase Fraction from Anaerobic Clostridium thermocellum in Cellulose Degradation)

  • 이용현;심욱한;신현동
    • 미생물학회지
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    • 제25권4호
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    • pp.293-303
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    • 1987
  • 혐기성 Clostrium therrnocellurn의 배양액으로부터 hydroxyapatite column chromatography를 통하여 cellulase complex중의 $C_{1}$ enriched fraction을 분리하였다. 다은 호기성 미생물과 마찬가지로 분리된 $C_{x}$, fraction과 다른 $C_{x}$ 성분과의 synergism에 의해 볼용성 성유소의 분해가 현저히 촉진되였다. $C_{x}$ 성분과는 달리 $C_{1}$, fraction은 공기중에서 산화에 의해 잘 실활되었으나 환원제, 특히 $\beta$-mercaptoethanol에 의해 효소 환성이 강하게 증가되는 것으로 보아 $C_{1}$ component는 다량의 sulfhydryl grou을 가지고 있는 것으로 판단되었다. 이 fraction은 열에 매우 안정하였으며 최적 온도와 pH는 각각 $60^{\circ}C$와 6.0 이었다.

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A Novel Endo-β-1,4-xylanase from Acanthophysium sp. KMF001, a Wood Rotting Fungus

  • Yoon, Sae-Min;Kim, Yeong-Suk;Kim, Young-Kyoon;Kim, Tae-Jong
    • Journal of the Korean Wood Science and Technology
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    • 제46권6호
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    • pp.670-680
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    • 2018
  • Acanthophysium sp. KMF001, a wood rotting fungus, produces a strong crude enzyme complex that efficiently produces simple sugars from wood. The transcriptomic analysis of Acanthophysium sp. KMF001 identified 14 genes for putative glycoside hydrolases. Among them, isotig01043 was expressed heterogeneously in Escherichia coli BL21(DE3), and the expressed protein exhibited an endo-${\beta}$-1,4-xylanase activity which showed the optimum reaction at pH 5.0 and $30^{\circ}C$. The enzyme kinetic values of $K_m$ and $V_{max}$ were 25.92 mg/ml and $0.628{\mu}mole/mg/ml$, respectively. The enzymatic characteristics of the expressed xylanase showed a typical fungal xylanase. However, the bioinformatics analysis suggested that the protein encoded by isotig01043 was a novel xylanase based on a low identity when it was compared with the closest protein in the NCBI database and a similar protein domain with GH16_fungal_Lam16A_glucanase, which had not been earlier suggested as a xylanase.

Novel Alkali-Tolerant GH10 Endo-${\beta}$-1,4-Xylanase with Broad Substrate Specificity from Microbacterium trichothecenolyticum HY-17, a Gut Bacterium of the Mole Cricket Gryllotalpa orientalis

  • Kim, Do Young;Shin, Dong-Ha;Jung, Sora;Kim, Hyangmi;Lee, Jong Suk;Cho, Han-Young;Bae, Kyung Sook;Sung, Chang-Keun;Rhee, Young Ha;Son, Kwang-Hee;Park, Ho-Yong
    • Journal of Microbiology and Biotechnology
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    • 제24권7호
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    • pp.943-953
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    • 2014
  • The XylH gene (1,167-bp) encoding a novel hemicellulase (41,584 Da) was identified from the genome of Microbacterium trichothecenolyticum HY-17, a gastrointestinal bacterium of Gryllotalpa orientalis. The enzyme consisted of a single catalytic domain, which is 74% identical to that of an endo-${\beta}$-1,4-xylanase (GH10) from Isoptericola variabilis 225. Unlike other endo-${\beta}$-1,4-xylanases from invertebrate-symbiotic bacteria, rXylH was an alkali-tolerant multifunctional enzyme possessing endo-${\beta}$-1,4-xylanase activity together with ${\beta}$-1,3/${\beta}$-1,4-glucanase activity, which exhibited its highest xylanolytic activity at pH 9.0 and 60oC, and was relatively stable within a broad pH range of 5.0-10.0. The susceptibilities of different xylosebased polysaccharides to the XylH were assessed to be as follows: oat spelts xylan > beechwood xylan > birchwood xylan > wheat arabinoxylan. rXylH was also able to readily cleave p-nitrophenyl (pNP) cellobioside and pNP-xylopyranoside, but did not hydrolyze other pNP-sugar derivatives, xylobiose, or hexose-based materials. Enzymatic hydrolysis of birchwood xylan resulted in the product composition of xylobiose (71.2%) and xylotriose (28.8%) as end products.

Biochemical Studies of an Endoglucanase from Marine Rotifer, Brachionus plicatilis

  • Chun Chang Zoon;Park Heum Gi;Hur Sung Bum;Kim Young Tae
    • 한국양식학회지
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    • 제9권4호
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    • pp.453-459
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    • 1996
  • Cellulase was purified from marine rotifer, Brachionus plicatilis, to homogeneity by using chromatographic methods. Purified enzyme is an endo-${\beta}$-1,4 glucanase and shows a strong hydrolytic activity against carboxymethyl (CM) -cellulose. The physicochemical parameters of enzyme activity were determined. The molecular weight of the purified protein was approximately 62 kDa as determined by SDS-polyacrylamide gel electrophoresis. The enzymatic capability to digest cellulose of Chlorella cell wall was compared with that of other well known cellulases from Thermomonospora fusca. Experiments involving Chlorella digestion indicated that CM-cellulase from marine rotifer, Brachionus plicatilis, could digest Chlorella very efficiently while cellulase purified from Thermomonospora fusca did not. From the result here, we propose that the cellulolytic system from marine rotifer is responsible for the hydrolysis of cellulosic wall of Chlorella, probing that rotifer digests Chlorella as a major live food.

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Cellulase Activity of Symbiotic Bacteria from Snails, Achatina fulica

  • Kim, Jon Young;Yoon, Sae Min;Kim, Yeong-Suk
    • Journal of the Korean Wood Science and Technology
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    • 제43권5호
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    • pp.628-640
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    • 2015
  • Cellulase is the key enzyme in the use of cellulose-based biomaterials. Because of its structure, cellulose is difficult to be degraded by enzymes. In order to utilize cellulose-based biomaterials efficiently, evolutionary wisdom of how to use enzymes accurately and harmoniously in a biological system is needed, such as the cellulose digestive system in animals. In this study, the symbiotic bacteria from snails, Achatina fulica, were identified and their cellulase activity was evaluated. The 16S rRNA sequence analysis of 100 aerobic bacteria showed that they belonged to 9 genus and almost half of the bacteria were Lactococcus spp. Among 100 identified strains, only two Aeromonas sp. strains showed cellulase activity. Aeromonas sp. KMBS020 had both endo-${\beta}$-glucanase and ${\beta}$-glucosidase activities but Aeromonas sp. KMBS018 had ${\beta}$-glucosidase activity only. None of the 100 bacterial colonies had any cellobiohydrolase activity.

Schizophyllum commune에 의한 Cellulase 생산 및 섬유소계 바이오매스의 당화를 위한 효소적 특성 (Characterization of Cellulases from Schizophyllum commune for Hydrolysis of Cellulosic Biomass)

  • 김현정;김윤희;조문정;신금;이동흡;김태종;김영숙
    • Journal of the Korean Wood Science and Technology
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    • 제38권6호
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    • pp.547-560
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    • 2010
  • 본 연구에서는 Schizophyllum commune의 당 분해효소 생산을 위한 최적 배양 조건과 목질바이오매스에 대한 당화 특성에 대하여 연구하였다. S. commune 균체 외 효소에는 endo-${\beta}$-1,4-glucanase (EG), cellobiohydrolase (CBH), ${\beta}$-glucosidase (BGL)와 같은 cellulase와 ${\beta}$-1,4-xylosidase (BXL)이 함유되어 있고 그 중에서 EG 및 BGL활성이 비교적 높은 활성을 나타낸 것으로 밝혀졌다. S. commune에서 생산된 EG, BGL, 및 CBH의 최적 온도는 $50^{\circ}C$이었으나, 열안정성을 가지는 온도범위는 $30{\sim}40^{\circ}C$였다. 그리고 최적 pH는 5.5이었으며 열 안정성을 나타내는 온도범위에서의 적정 pH는 동일한 pH 5.5이었다. Cellulase 생산을 위한 S. commune의 최적배양 조건은, 탄소원으로 천연 cellulose, 질소원으로는 corn steep, 또는 peptone/yeast extract 혼합물, 비타민은 첨가하지 않는 것이 cellulase 효소활성 증가에 적절한 것으로 밝혀졌다. 또한 탄소원의 최적 첨가 농도는 2% (w/w), 적정 배양 pH 및 온도는 5.5~6.0과 $25{\sim}30^{\circ}C$로 밝혀졌다. 본 연구에서 도출된 최적 배양 조건으로 S. commune를 배양시키고 40배로 농축한 결과, EG가 3670.5 U/$m{\ell}$, BGL과 CBH가 각각 631.9 U/$m{\ell}$, 398.5 U/$m{\ell}$, BXL이 15.2 U/$m{\ell}$로 매우 높은 효소 활성을 나타냈다. 동일한 효소의 Filter Paper Unit도 11 FPU/$m{\ell}$로 상당히 높았다. 최적배양조건에서 얻어진 S. commune 효소로 다양한 기질에 대해 당화 시험을 실행한 결과, 전처리를 하지 않은 공시 활엽수에 대하여 낮은 당화율을 나타냈으나 천연 cellulose (Aldrich, ~20 micron) 및 볏짚의 경우에는 각각 50.5% 및 33.1%의 높은 당화성능을 나타냈다. 이 같은 당화 수준은 동일 효소농도 (30 FPU/g, glucan)로 비교했을 때 Trichoderma reesei 유래 상용화 효소인 Celluclast 1.5L의 약 110% 수준을 나타냄으로써, 대량생산기술 개발과정을 통해 목질계 당화 효소로의 상용화 가능성이 높은 균주로 평가되었다.

Cloning and Characterization of an Endoglucanase Gene from Actinomyces sp. Korean Native Goat 40

  • Kim, Sung Chan;Kang, Seung Ha;Choi, Eun Young;Hong, Yeon Hee;Bok, Jin Duck;Kim, Jae Yeong;Lee, Sang Suk;Choi, Yun Jaie;Choi, In Soon;Cho, Kwang Keun
    • Asian-Australasian Journal of Animal Sciences
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    • 제29권1호
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    • pp.126-133
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    • 2016
  • A gene from Actinomyces sp. Korean native goat (KNG) 40 that encodes an endo-${\beta}$-1,4-glucanase, EG1, was cloned and expressed in Escherichia coli (E. coli) $DH5{\alpha}$. Recombinant plasmid DNA from a positive clone with a 3.2 kb insert hydrolyzing carboxyl methyl-cellulose (CMC) was designated as pDS3. The entire nucleotide sequence was determined, and an open-reading frame (ORF) was deduced. The ORF encodes a polypeptide of 684 amino acids. The recombinant EG1 produced in E. coli $DH5{\alpha}$ harboring pDS3 was purified in one step using affinity chromatography on crystalline cellulose and characterized. Sodium dodecyl sulfate-polyacrylamide gel electrophoresis/zymogram analysis of the purified enzyme revealed two protein bands of 57.1 and 54.1 kDa. The amino terminal sequences of these two bands matched those of the deduced ones, starting from residue 166 and 208, respectively. Putative signal sequences, a Shine.Dalgarno-type ribosomal binding site, and promoter sequences related to the consensus sequences were deduced. EG1 has a typical tripartite structure of cellulase, a catalytic domain, a serine-rich linker region, and a cellulose-binding domain. The optimal temperature for the activity of the purified enzyme was $55^{\circ}C$, but it retained over 90% of maximum activity in a broad temperature range ($40^{\circ}C$ to $60^{\circ}C$). The optimal pH for the enzyme activity was 6.0. Kinetic parameters, $K_m$ and $V_{max}$ of rEG1 were 0.39% CMC and 143 U/mg, respectively.

Arthrobacter luteus가 생산하는 AL-Protease의 효모세포벽 용해 촉진작용 (The Synergistic Action of the AL-Protease from Arthrobacter luteus on the Lysis of Yeast Cell Walls)

  • 오홍록;선진승
    • 한국식품영양과학회지
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    • 제14권4호
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    • pp.401-408
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    • 1985
  • 효모세포벽 용해효소의 일종인 Zymolyase$(endo-{\beta}-1\;,3-glucanase)$와 더불어 Arthrobacter luteus로 부터 생산되었고, 또한 Zymolyase의 조효소중에서 발견된 바 있는 염기성 AL-protease의 효모세포벽 용해작용을 S. sake의 생세포와 그 세포벽 표품(標品)을 사용하여 조사하였다. AL-protease의 효모 생세포에 대한 용해활성은 그 단독작용만으로는 지극히 미약하였으나, Zymolyase와의 복합작용에 의해서 용해활성은 고도로 상승하였다. 효모생세포를 AL-protease와 Zymolyase로써 단계적인 처리를 할 경우, 효모세포는 AL-protease로 전처리된 뒤에 Zymolyase로 처리되는 처리 순서에 한하여 효과적으로 용해되었다. 이러한 AL-protease의 촉진적 작용은 AL-protease처럼 염기성이고 serine protease로 알려진 몇가지 시판의 효소들 중에서는 발견되지 않았으며, 또한 AL-protease의 이러한 작용은 실험에 사용된 효모들의 배양조건 및 균종에 따라서 커다란 영향을 받는 것으로 밝혀졌다. AL-protease는 효모세포벽 표품(標品)으로부터 일정량의 peptide와 상당량의 당을 유리시키고 있으나, 그 세포벽을 66% 이상은 용해시키지 못하였다. 반면에, Zymolyase는 그 단독작용으로도 효모세포벽을 거의 완전히 용해시킬 수 있었다. 이상의 실험결과를 기초로 하여, S. sake 세포벽의 용해에 있어서 AL-protease의 효소적 작용은, 먼저 AL-protease가 mannan과 단백질로 구성되는 세포벽 표층부에 결합하고, 이어서 그들의 구조를 변화시킴으로써, Zymolyase를 세포벽의 외부로 부터 알카리 불용성 glucan으로 구축되고 있는 세포벽 내부의 골격구조로까지의 침투를 촉진시키는 것으로 추론되었다.

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Isolation of cellulosic biomass degrading microorganisms from different sources for low cost biofuel production

  • ;김철환;이지영;;박혁진;;김성호;김재원
    • 한국펄프종이공학회:학술대회논문집
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    • 한국펄프종이공학회 2011년도 춘계학술발표회 논문집
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    • pp.81-91
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    • 2011
  • Current fuel ethanol research and development deals with process engineering trends for improving biotechnological production of ethanol. Recently, a large amount of studies regarding the utilization of lignocellulosic biomass as a good feedstock for producing fuel ethanol is being carried out worldwide. The plant biomass is mainly composed of cellulose, hemicellulose and lignin. The main challenge in the conversion of biomass into ethanol is the complex, rigid and harsh structures which require efficient process and cost effective to break down. The isolation of microorganisms is one of the means for obtaining enzymes with properties suitable for industrial applications. For these reasons, crude cultures containing cellulosic biomass degrading microorganisms were isolated from rice field soil, cow farm soil and rotten rice straw from cow farm. Carboxymethyl cellulose (CMC), xylan and Avicel (microcrystalline cellulose) degradation zone of clearance on agar platefrom rice field soil resulted approximately at 25 mm, 24 mm and 22 mm respectively. As for cow farm soil, CMC, xylan and Avicel degradation clearancezone on agar plate resulted around at 24mm, 23mm and 21 mm respectively. Rotten rice straw from cow farm also resulted for CMC, xylan and Avicel degradation zone almost at 24 mm, 23 mm and 22 mm respectively. The objective of this study is to isolatebiomass degrading microbial strains having good efficiency in cellulose hydrolysis and observed the effects of different substrates (CMC, xylan and Avicel) on the production of cellulase enzymes (endo-glucanase, exo-glucanase, cellobiase, xylanase and avicelase) for producing low cost biofuel from cellulosic materials.

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