• 제목/요약/키워드: carbohydrate-binding module (CBM)

검색결과 11건 처리시간 0.023초

Improving Endoglucanase Activity by Adding the Carbohydrate-Binding Module from Corticium rolfsii

  • Tang, Zizhong;Chen, Hui;Chen, Lijiao;Liu, San;Han, Xueyi;Wu, Qi
    • Journal of Microbiology and Biotechnology
    • /
    • 제24권4호
    • /
    • pp.440-446
    • /
    • 2014
  • The carbohydrate-binding module (CBM) is an important domain of most cellulases that plays a key role in the hydrolysis of cellulose. The neutral endoglucanase (EG1) gene was reconstructed. A redesigned endoglucanase, named EG2, was constructed with a CBM containing a linker from Corticium rolfsii (GenBank Accession No. D49448). The redesigned EG genes were expressed in Escherichia coli, and their characteristics are discussed. Results showed that the degradation of cellulose by EG2 was about double that by EG1. The specific activities of EG1 and EG2 were tested under optimal conditions, and EG2 had higher activity ($169.1{\pm}2.74$ U/mg) toward CMC-Na than did EG1 ($84.0{\pm}1.98$) in the process of cellulose degradation. The optimal pH and temperature, pH stability, and heat stability of EG1 and EG2 were similar. Results indicated that the CBM plays an essential role in the hydrolysis of cellulose. We can improve EG's catalytic power by adding the CBM from Corticium rolfsii.

Roles of Carbohydrate-Binding Module (CBM) of an Endo-β-1,4-Glucanase (Cel5L) from Bacillus sp. KD1014 in Thermostability and Small-Substrate Hydrolyzing Activity

  • Lee, Jae Pil;Shin, Eun-Sun;Cho, Min Yeol;Lee, Kyung-Dong;Kim, Hoon
    • Journal of Microbiology and Biotechnology
    • /
    • 제28권12호
    • /
    • pp.2036-2045
    • /
    • 2018
  • An endo-${\beta}$-1,4-glucanase gene, cel5L, was cloned using the shot-gun method from Bacillus sp.. The gene, which contained a predicted signal peptide, encoded a protein of 496 amino acid residues, and the molecular mass of the mature Cel5L was estimated to be 51.8 kDa. Cel5L contained a catalytic domain of glycoside hydrolase (GH) family 5 and a carbohydrate-binding module family 3 (CBM_3). Chromatography using HiTrap Q and CHT-II resulted in the isolation of two truncated forms corresponding to 50 (Cel5L-p50) and 35 kDa (Cel5L-p35, CBM_3-deleted form). Both enzymes were optimally active at pH 4.5 and $55^{\circ}C$, but had different half-lives of 4.0 and 22.8 min, respectively, at $70^{\circ}C$. The relative activities of Cel5L-p50 and Cel5L-p35 for barley ${\beta}$-glucan were 377.0 and 246.7%, respectively, compared to those for carboxymethyl-cellulose. The affinity and hydrolysis rate of pNPC by Cel5L-p35 were 1.7 and 3.3 times higher, respectively, than those by Cel5L-p50. Additions of each to a commercial enzyme set increased saccharification of pretreated rice straw powder by 17.5 and 21.0%, respectively. These results suggest CBM_3 is significantly contributing to thermostability, and to affinity and substrate specificity for small substrates, and that these two enzymes could be used as additives to enhance enzymatic saccharification.

Cloning, Sequencing, and Expression of the Gene Encoding a Multidomain Endo-$\beta$-1,4-Xylanase from Paenibacillus curdlanolyticus B-6, and Characterization of the Recombinant Enzyme

  • Waeonukul, Rattiya;Pason, Patthra;Kyu, Khin Lay;Sakka, Kazuo;Kosug, Akihiko;Mori, Yutaka;Ratanakhanokchai, Khanok
    • Journal of Microbiology and Biotechnology
    • /
    • 제19권3호
    • /
    • pp.277-285
    • /
    • 2009
  • The nucleotide sequence of the Paenibacillus curdlanolyticus B-6 xyn10A gene, encoding a xylanase Xyn10A, consists of 3,828 nucleotides encoding a protein of 1,276 amino acids with a predicted molecular mass of 142,726 Da. Sequence analysis indicated that Xyn10A is a multidomain enzyme comprising nine domains in the following order: three family 22 carbohydrate-binding modules (CBMs), a family 10 catalytic domain of glycosyl hydrolases (xylanase), a family 9 CBM, a glycine-rich region, and three surface layer homology (SLH) domains. Xyn10A was purified from a recombinant Escherichia coli by a single step of affinity purification on cellulose. It could effectively hydrolyze agricultural wastes and pure insoluble xylans, especially low substituted insoluble xylan. The hydrolysis products were a series of short-chain xylooligosaccharides, indicating that the purified enzyme was an endo-$\beta$-1,4-xylanase. Xyn10A bound to various insoluble polysaccharides including Avicel, $\alpha$-cellulose, insoluble birchwood and oat spelt xylans, chitin, and starches, and the cell wall fragments of P. curdlanolyticus B-6, indicating that both the CBM and the SLH domains are fully functioning in the Xyn10A. Removal of the CBMs from Xyn10A strongly reduced the ability of plant cell wall hydrolysis. These results suggested that the CBMs of Xyn10A play an important role in the hydrolysis of plant cell walls.

A Novel pH-Stable, Bifunctional Xylanase Isolated from a Deep-Sea Microorganism, Demequina sp. JK4

  • Meng, Xin;Shao, Zongze;Hong, Yuzhi;Lin, Ling;Li, Chanjuan;Liu, Ziduo
    • Journal of Microbiology and Biotechnology
    • /
    • 제19권10호
    • /
    • pp.1077-1084
    • /
    • 2009
  • A genomic library was constructed to clone a xylanase gene (Mxyn10) from Demequina sp. JK4 isolated from a deep sea. Mxyn10 encoded a 471 residue protein with a calculated molecular mass of 49 kDa. This protein showed the highest sequence identity (70%) with the xylanase from Streptomyces lividans. Mxyn10 contains a catalytic domain that belongs to the glycoside hydrolase family 10 (GH10) and a carbohydrate-binding module (CBM) belonging to family 2. The optimum pH and temperature for enzymatic activity were pH 5.5 and $55^{\circ}C$, respectively. Mxyn10 exhibited good pH stability, remaining stable after treatment with buffers ranging from pH 3.5 to 10.0. The protein was not significantly affected by a variety of chemical reagents, including some compounds that usually inhibit the activity of other related enzymes. In addition, Mxyn10 showed activity on cellulose. These properties mark Mxyn10 as a potential enzyme for industrial application and saccharification processes essential for bioethanol production.

Cloning and Characterization of a Novel Mannanase from Paenibacillus sp. BME-14

  • Fu, Xiaoyu;Huang, Xiaoluo;Liu, Pengfu;Lin, Ling;Wu, Gaobing;Li, Chanjuan;Feng, Chunfang;Hong, Yuzhi
    • Journal of Microbiology and Biotechnology
    • /
    • 제20권3호
    • /
    • pp.518-524
    • /
    • 2010
  • A mannanase gene (man26B) was obtained from a sea bacterium, Paenibacillus sp. BME-14, through the constructed genomic library and inverse PCR. The gene of man26B had an open reading frame of 1,428 bp that encoded a peptide of 475- amino acid residues with a calculated molecular mass of 53 kDa. Man26B possessed two domains, a carbohydrate binding module (CBM) belonging to family 6 and a family 26 catalytic domain (CD) of glycosyl hydrolases, which showed the highest homology to Cel44C of P. polymyxa (60% identity). The optimum pH and temperature for enzymatic activity of Man26B were 4.5 and $60^{\circ}C$, respectively. The activity of Man26B was not affected by $Mg^{2+}$ and $Co^{2+}$, but was inhibited by $Hg^{2+},\;Ca^{2+},\;Cu^{2+},\;Mn^{2+},\;K^+,\;Na^+$, and $\beta$-mercaptoethanol, and slightly enhanced by $Pb^{2+}$ and $Zn^{2+}$. EDTA did not affect the activity of Man26B, which indicates that it does not require divalent ions to function. Man26B showed a high specific activity for LBG and konjac glucomannan, with $K_m,\;V_{max}$, and $k_{cat}$ values of 3.80 mg/ml, 91.70 ${\mu}mol$/min/mg protein, and 77.08/s, respectively, being observed when LBG was the substrate. Furthermore, deletion of the CBM6 domain increased the enzyme stability while enabling it to retain 80% and 60% of its initial activity after treatment at $80^{\circ}C$ and $90^{\circ}C$ for 30 min, respectively. This finding will be useful in industrial applications of Man26B, because of the harsh circumstances associated with such processes.

한천분해효소의 재조합발현 : 기원, 활성조건, 분비신호와 게놈분석 등 (Recombinant Expression of Agarases: Origin, Optimal Condition, Secretory Signal, and Genome Analysis)

  • 이동근;이상현
    • 생명과학회지
    • /
    • 제30권3호
    • /
    • pp.304-312
    • /
    • 2020
  • 한천분해효소(agarase)는 기초과학영역, 한천유래 고기능성 올리고당의 생산, 해조류를 이용한 바이오에너지 생산 등에 사용될 수 있다. 본 연구진은 2012년에 한천의 분류, 기원, 생산 및 응용에 관하여 총설하였다. 이에 본고에서는 2012년부터의 agarase 재조합 발현에 대해 총설하고자 한다. Agarase의 재조합 발현에 사용된 유전자는 Agarivorans 속(genus) 세균, Flameovirga 속 세균, Pseudoalteromonas 속 세균, Gayadomonas 속 세균, Catenovulum 속 세균, Microbulbifer 속 세균, Cellulophaga속 세균, Saccharophagus 속 세균, Simiduia 속, Vibrio 속 세균 등의 19종의 세균들에서 유래하였다. 47개의 재조합 발현된 agarase 중에서 α-agarase는 2개였고 나머지는 모두 β-agarase 였다. α-Agarase는 모두 agarotetraose (A4)를 생산하였고 β-agarase는 NA2부터 NA12까지 다양한 산물을 생산하였다. 최적온도는 25~60℃, 최적 pH는 3.0~8.5의 범위였다. 50℃ 이상의 최적 온도를 갖는 agarase는 14개로 이들은 한천을 가열한 후에 졸상태가 유지되는 온도에서도 활발한 활성을 보일 것이다. CBM (carbohydrate-binding module)의 조작 등의 인위적 돌연변이로 agarase의 열안정성 증가, 최적온도와 활성의 동시 증가에 관한 연구 사례도 있었다. 재조합발현의 숙주로 E. coli, B. subtilis, S. lividans, S. cerevisiae 등이 활용되었으며, agarase 유전자의 분비신호, 다른 생물의 분비신호 및 riboswitch가 agarase의 재조합 발현에 사용되었다. Agarase를 정제한 후에 아미노산 서열에 기반한 유전자 재조합 이외에도 게놈서열 파악과 유사성 비교를 통해 putative agarase와 메타게놈에서 유래한 agarase의 재조합 발현에 관한 연구도 있다. 이러한 연구들은 향후 agarase 및 agarase를 이용한 한천분해산물의 응용 분야 등에 활발하게 이용될 것으로 기대된다.

Carboxy-Terminal Region of a Thermostable CITase from Thermoanaerobacter thermocopriae Has the Ability to Produce Long Isomaltooligosaccharides

  • Jeong, Woo Soo;Kim, Yu-Ri;Hong, Seong-Jin;Choi, Su-Jeong;Choi, Ji-Ho;Park, Shin-Young;Woo, Eui-Jeon;Kim, Young Min;Park, Bo-Ram
    • Journal of Microbiology and Biotechnology
    • /
    • 제29권12호
    • /
    • pp.1938-1946
    • /
    • 2019
  • Isomaltooligosaccharides (IMOs) have good prebiotic effects, and long IMOs (LIMOs) with a degree of polymerization (DP) of 7 or above show improved effects. However, they are not yet commercially available, and require costly enzymes and processes for production. The N-terminal region of the thermostable Thermoanaerobacter thermocopriae cycloisomaltooligosaccharide glucanotransferase (TtCITase) shows cyclic isomaltooligosaccharide (CI)-producing activity owing to a catalytic domain of glycoside hydrolase (GH) family 66 and carbohydrate-binding module (CBM) 35. In the present study, we elucidated the activity of the C-terminal region of TtCITase (TtCITase-C; Met740-Phe1,559), including a CBM35-like region and the GH family 15 domain. The domain was successfully cloned, expressed, and purified as a single protein with a molecular mass of 115 kDa. TtCITase-C exhibited optimal activity at 40℃ and pH 5.5, and retained 100% activity at pH 5.5 after 18-h incubation. TtCITase-C synthesized α-1,6 glucosyl products with over seven degrees of polymerization (DP) by an α-1,6 glucosyl transfer reaction from maltopentaose, isomaltopentaose, or commercialized maltodextrins as substrates. These results indicate that TtCITase-C could be used for the production of α-1,6 glucosyl oligosaccharides with over DP7 (LIMOs) in a more cost-effective manner, without requiring cyclodextran.

Isolation and Characterization of an Eosinophilic GH 16 β-Agarase (AgaDL6) from an Agar-Degrading Marine Bacterium Flammeovirga sp. HQM9

  • Liu, Yan;Tian, Xiaoxu;Peng, Chao;Du, Zongjun
    • Journal of Microbiology and Biotechnology
    • /
    • 제29권2호
    • /
    • pp.235-243
    • /
    • 2019
  • A special eosinophilic agarase exo-type ${\beta}$-agarase gene, AgaDL6, was cloned from a marine agar-degrading bacterium, Flammeovirga sp. HQM9. The gene comprised 1,383-bp nucleotides encoding a putative agarase AgaDL6 of 461 amino acids with a calculated molecular mass of 52.8 kDa. Sequence analysis revealed a ${\beta}$-agarase domain that belongs to the glycoside hydrolase family (GH) 16 and a carbohydrate-binding module (CBM_4_9) unique to agarases. AgaDL6 was heterologously expressed in Escherichia coli BL21 (DE3). Enzyme activity analysis of the purified protein showed that the optimal temperature and pH of AgaDL6 were $50^{\circ}C$ and 3.0, respectively. AgaDL6 showed thermal stability by retaining more than 98% of activity after incubation for 2 h at $50^{\circ}C$, a feature quite different from other agarases. AgaDL6 also exhibited outstanding acid stability, retaining 100% of activity after incubation for 24 h at pH 2.0 to 5.0, a property distinct from other agarases. This is the first agarase characterized to have such high acid stability. In addition, we observed no obvious stimulation or inhibition of AgaDL6 in the presence of various metal ions and denaturants. AgaDL6 is an exo-type ${\beta}$-1,4 agarase that cleaved agarose into neoagarotetraose and neoagarohexaose as the final products. These characteristics make AgaDL6 a potentially valuable enzyme in the cosmetic, food, and pharmaceutical industries.

Paenibacillus woosongensis로부터 대장균에 Xylanase 10A의 유전자 클로닝과 정제 및 특성분석 (Gene Cloning, Purification and Characterization of Xylanase 10A from Paenibacillus woosongensis in Escherichia coli)

  • 윤기홍
    • 한국미생물·생명공학회지
    • /
    • 제48권2호
    • /
    • pp.158-166
    • /
    • 2020
  • Paenibacillus woosongensis의 xylanase 유전자를 클로닝하고 그 염기서열을 결정하였다. Xylanase 유전자는 xyn10A로 명명되었으며, 481 아미노잔기로 구성된 단백질을 코드하는 1,446개 뉴클레오티드로 구성되었다. 추론된 아미노산 배열에 따르면 Xyn10A는 glycosyl hydrolase family 10 xylanase와 상동성이 높은 활성영역과 카르복실 말단에 탄수화물을 결합하는 것으로 추정되는 영역이 포함된 다영역 효소로 확인되었다. DEAE-Sepharose와 Phenyl-Separose 컬럼 크로마토그래피 과정을 통해 P. woosongensis xyn10A 유전자를 함유한 재조합 대장균의 균체 파쇄상등액으로부터 Xyn10A를 정제하였다. 정제된 Xyn10A의 아미노 말단 배열이 GIANGSKF로 결정되었으며 이는 SignalP5.0 server로 예측된 signal peptide의 다음 아미노산 배열과 정확하게 일치하였다. 정제된 Xyn10A는 33 kDa 크기의 절단된 단백질이며 균체내 분해에 의해 카르복시 말단에서 CBM이 제거된 것으로 판단된다. 정제된 효소는 최적 pH와 온도가 6.0과 55-60℃이며 oat spelt xylan에 대한 반응 동력학적 계수 Vmax와 Km이 298.8 U/mg과 2.47 mg/ml로 각각 나타났다. 효소는 birchwood xylan이나 oat spelt xylan보다 arabinoxylan에 대한 활성이 높았으며 para-nitrophenyl-β-xylopyranoside에 대해 낮은 활성을 보였다. Xyn10A의 활성은 Cu2+, Mn2+과 SDS에 의해서 크게 저해되었으며 K+, Ni2+과 Ca2+에 의해는 상당하게 증진되었다. 또한 이 효소는 xylobiose 보다 중합도가 큰 자일로올리고당을 분해하였으며, 자일로올리고당의 최종 가수분해 산물은 xylose와 xylobiose로 확인되었다.

Gene Cloning, Expression, and Characterization of a $\beta$-Agarase, AgaB34, from Agarivorans albus YKW-34

  • Fu, Xiao Ting;Pan, Cheol-Ho;Lin, Hong;Kim, Sang-Moo
    • Journal of Microbiology and Biotechnology
    • /
    • 제19권3호
    • /
    • pp.257-264
    • /
    • 2009
  • A $\beta$-agarase gene, agaB34, was functionally cloned from the genomic DNA of a marine bacterium, Agarivorans albus YKW-34. The open reading frame of agaB34 consisted of 1,362 bp encoding 453 amino acids. The deduced amino acid sequence, consisting of a typical N-terminal signal peptide followed by a catalytic domain of glycoside hydrolase family 16 (GH-16) and a carbohydrate-binding module (CBM), showed 37-86% identity to those of agarases belonging to family GH-16. The recombinant enzyme (rAgaB34) with a molecular mass of 49 kDa was produced extracellularly using Escherichia coli $DH5{\alpha}$ as a host. The purified rAgaB34 was a $\beta$-agarase yielding neoagarotetraose (NA4) as the main product. It acted on neoagarohexaose to produce NA4 and neoagarobiose, but it could not further degrade NA4. The maximal activity of rAgaB34 was observed at $30^{\circ}C$ and pH 7.0. It was stable over pH 5.0-9.0 and at temperatures up to $50^{\circ}C$. Its specific activity and $k_{cat}/K_m$ value for agarose were 242 U/mg and $1.7{\times}10^6/sM$, respectively. The activity of rAgaB34 was not affected by metal ions commonly existing in seawater. It was resistant to chelating reagents (EDTA, EGTA), reducing reagents (DTT, $\beta$-mercaptoethanol), and denaturing reagents (SDS and urea). The E. coli cell harboring the pUC18-derived agarase expression vector was able to efficiently excrete agarase into the culture medium. Hence, this expression system might be used to express secretory proteins.