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1.
【目的】克隆温泉中嗜热嗜酸的脂环酸芽孢杆菌D-1(Alicyclobacillus tengchongensis CGMCC1504)的内切葡聚糖酶基因gluE1,并对该酶进行序列分析和重组酶的酶学特性分析。【方法】通过全基因组测序获得gluE1全长,并对其氨基酸序列(GluE1)进行分析。将gluE1重组到载体p EASY-E2中并转化到大肠杆菌BL21(DE3)中异源表达,利用组氨酸标签纯化GluE1并进行酶学性质分析。【结果】gluE1与NCBI数据库中GH5的内切葡聚糖酶具有较高的相似性,全长1020 bp,GC含量50.5%,编码339个氨基酸(40.45 k Da)。GluE1与数据库中序列的最高一致性为97%,与其余纤维素酶的一致性<60%。GluE1可水解CMC-Na、可溶性淀粉和大麦β-葡聚糖,表观最适pH为6.5,pH 5.0–10.0稳定并维持60%以上的酶活性。GluE1的表观最适温度为55℃,在37℃下稳定。在55℃ pH 6.5条件下,GluE1对大麦β-葡聚糖的K_m、V_(max)和k_(cat)分别为8.58 mg/mL、416.67 U/mg和280.90 s^(–1)。GluE1受Ag^+、Hg^(2+)及SDS抑制,β-巯基乙醇、Pb^(2+)、Mg^(2+)、Ca^(2+)和Na^+对GluE1有微弱的促进作用,NaCl对GluE1的影响不大,加入30%的NaCl,仍有64%以上的酶活性;经30%的NaCl在37℃下处理60 min,仍能保持93%以上的活性。【结论】首次报道从Alicyclobacillus属的细菌中克隆得到内切葡聚糖酶基因并对其酶学性质进行研究,GluE1具有良好的pH稳定性和有较强的耐盐性,可能具有更大应用潜力。  相似文献   
2.
Extracellular proteases produced by Scytalidium thermophilum, grown on microcrystalline cellulose, were most active at pH 6.5–8 and 37–45 °C when incubated for 60 min. Highest protease activity was at day 3 where endoglucanase activity was low. Protease activity measurements with and without the protease inhibitors, p-chloromercuribenzoate, PMSF, antipain, E-64, EDTA and pepstatin A, suggest production of thiol-containing serine protease and serine proteases. Endoglucanase and Avicel-adsorbable endoglucanase activity in culture medium was not significantly affected by protease inhibitors.  相似文献   
3.
The egI gene, encoding a major endoglucanase (EGI) of Scopulariopsis brevicaulis TOF-1212, was cloned and sequenced. The egI gene consisted of 868 bp with one intron and encoded a protein of 229 amino acids with a calculated molecular mass of 22,392 daltons. The EGI was assigned to a family 45 of glycosyl hydrolases and showed high similarity with other fungal endoglucanases, especially with those of Humicola grisea and Fusarium oxysporum, on the basis of hydrophobic cluster analysis. The egI gene was expressed under the promoter of the phosphoglycerate kinase gene (PGK) in Saccharomyces cerevisiae. The transformed cells were able to secrete the enzyme efficiently in an active form.  相似文献   
4.
A gene (cel4) coding for a cellobiohydrolase II (Ex-4) was isolated from the white rot basidiomycete, Irpex lacteus strain MC-2. The cel4 ORF was composed of 452 amino acid residues and was interrupted by eight introns. Its deduced amino acid sequence revealed a multi domain structure composed of a cellulose-binding domain, a linker, and a catalytic domain belonging to family 6 of glycosyl hydrolases, from the N-terminus. cel4 cDNA was successfully expressed in the yeast Pichia pastoris. Recombinant Ex-4 showed endo-processive degrading activity towards cellulosic substrates, and a synergistic effect in the degradation of Avicel was observed when the enzyme acted together with either cellobiohydrolase I (Ex-1) or endoglucanase (En-1) produced by I. lacteus MC-2.  相似文献   
5.
In this study, we report a novel cellulase [β-1,4-endoglucanase (EGase), EC 3.2.1.4] cDNA (Bh-EGase II) belonging to the glycoside hydrolase family (GHF) 45 from the beetle Batocera horsfieldi. The Bh-EGase II gene spans 720 bp and consists of a single exon coding for 239 amino acid residues. Bh-EGase II showed 93.72% protein sequence identity to Ag-EGase II from the beetle Apriona germari. The GHF 45 catalytic site is conserved in Bh-EGase II. Bh-EGase II has three putative N-glycosylation sites at 56–58 (N–K–S), 99–101 (N–S–T), and 237–239 (N–Y–S), respectively. The cDNA encoding Bh-EGase II was expressed in baculovirus-infected insect BmN cells and Bombyx mori larvae. Recombinant Bh-EGase II from BmN cells and larval hemolymph had an enzymatic activity of approximately 928 U/mg. The enzymatic catalysis of recombinant Bh-EGase II showed the highest activity at 50 °C and pH 6.0.  相似文献   
6.
The interaction of some anthracycline antibiotics (adriamycin, daunomycin, aclacinomycin-A) with bacteriophage ?X174 was investigated. Adriamycin and daunomycin inactivated the infectivity of both free ?X174 phage and naked single-stranded ?X174 DNA without DNA strand scission, but aclacinomycin-A did not show this action. The phage inactivation reaction was reversibly inhibited by Superoxide dismutase, catalase or other oxygen radical scavengers. The inactivation of ?X174 by adriamycin and aclacinomycin-A was stimulated by the addition of Cu2+, while the ?X174 inactivation by daunomycin was inhibited by the addition of Cu2+. The ?X174 inactivation by adriamycin and aclacinomycin-A in the presence of Cu2+ was caused by degradation of DNA, and this inactivation reaction was inhibited irreversibly by oxygen radical scavengers. These results indicate that anthracycline antibiotics bind to ?X174 DNA in the form of free radicals and that during the auto-oxidation of these antibiotics in the presence of Cu2+, oxygen radicals were generated to cause the degradation of ?X174 DNA.  相似文献   
7.
Termites and their gut microbial symbionts efficiently degrade lignocellulose into fermentable monosaccharides. This study examined three glycosyl hydrolase family 7 (GHF7) cellulases from protist symbionts of the termite Reticulitermes flavipes. We tested the hypotheses that three GHF7 cellulases (GHF7‐3, GHF7‐5, and GHF7‐6) can function synergistically with three host digestive enzymes and a fungal cellulase preparation. Full‐length cDNA sequences of the three GHF7s were assembled and their protist origins confirmed through a combination of quantitative PCR and cellobiohydrolase (CBH) activity assays. Recombinant versions of the three GHF7s were generated using a baculovirus‐insect expression system and their activity toward several model substrates compared with and without metallic cofactors. GHF7‐3 was the most active of the three cellulases; it exhibited a combination of CBH, endoglucanase (EGase), and β‐glucosidase activities that were optimal around pH 7 and 30°C, and enhanced by calcium chloride and zinc sulfate. Lignocellulose saccharification assays were then done using various combinations of the three GHF7s along with a host EGase (Cell‐1), beta‐glucosidase (β‐glu), and laccase (LacA). GHF7‐3 was the only GHF7 to enhance glucose release by Cell‐1 and β‐glu. Finally, GHF7‐3, Cell‐1, and β‐glu were individually tested with a commercial fungal cellulase preparation in lignocellulose saccharification assays, but only β‐glu appreciably enhanced glucose release. Our hypothesis that protist GHF7 cellulases are capable of synergistic interactions with host termite digestive enzymes is supported only in the case of GHF7‐3. These findings suggest that not all protist cellulases will enhance saccharification by cocktails of other termite or fungal lignocellulases.  相似文献   
8.
Specific quantifications of the major cellulolytic components of the Trichoderma reesei enzyme complex, i.e., endoglucanases I and III and cellobiohydrolases I and II, are described and, employing a defined mixture of these four cellulases reconstituted according to the composition of the native Trichoderma cellulase complex, used to determine the binding of each individual component onto filter paper. During substrate degradation by this enzyme mixture, the specific adsorption of each individual cellulase gradually increases and no preferential binding of one enzyme component in any particular phase of cellulose hydrolysis is found. T. reesei cellobiohydrolases I and II admixed with endoglucanases I and III represent a "full-value" cellulase system that is capable of degrading semicrystalline cellulose efficiently. In comparison with the crude Trichoderma enzyme complex, almost identical adsorption properties and similar hydrolytic efficiency are found for the reconstituted mixture. (c) 1994 John Wiley & Sons, Inc.  相似文献   
9.
During the course of our studies on the structure-function relationship of cellulosomes, we were interested in converting the free cellulase system of the aerobic bacterium, Thermobifida fusca, to a cellulosomal system. For this purpose, the cellulose-binding modules (CBM) of two T. fusca family-6 cellulases, endoglucanase Cel6A and exoglucanase Cel6B, were replaced by divergent dockerin modules. Thus far, family-6 cellulases have not been shown to be members of natural cellulosome systems. The resultant chimaeric proteins, 6A-c and t-6B, respectively, were purified and found to interact specifically and stoichiometrically with their corresponding cohesin modules, indicating their suitability for use as components in 'designer cellulosomes'. Both chimaeric enzymes showed somewhat decreased but measurable levels of activity on carboxymethyl cellulose, consistent with the known endo- and exo-glucanase character of the parent enzymes. The activity of 6A-c on phosphoric acid swollen cellulose was also consistent with that of the wild-type endoglucanase Cel6A. The startling finding of the present research was the extent of degradation of this substrate by the chimaeric enzyme t-6B. Wild-type exoglucanase Cel6B exhibited very low activity on this substrate, while the specific activity of t-6B was 14-fold higher than the parent enzyme.  相似文献   
10.
The endoglucanase (E1) from Acidothermus cellulolyticus has been used extensively in cellulase research. The goal of this work was to produce high levels of this enzyme in a system that facilitates purification. A codon-optimized synthetic gene for A. cellulolyticus E1 with a C-terminal histidine tag was cloned into the genome of Pichia pastoris. Strain KM71H expressed the most enzyme, with a yield of 550mg/L culture supernatant. The temperature optimum (80°C) and pH optimum (5.1) of the purified enzyme agree with previously determined values for the enzyme produced in other systems. Michaelis-Menten kinetic parameters were determined, using a fluorescent substrate (methylumbelliferyl-β-d-cellobioside) at various temperatures. This thermostable enzyme can be used in future cellulosic biofuels-related research.  相似文献   
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