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1.
对来源于Streptomycesolivaceoviridis的高比活木聚糖酶XYNB进行同源建模,并结合嗜热木聚糖酶氮末端芳香族氨基酸疏水作用的结构分析,设计了XYNB的T11Y定点突变,观察XYNB分子中折叠股B1和B2的疏水作用对酶的热稳定性的影响。将突变酶XYNB′在毕赤酵母中表达,表达的XYNB′经纯化后与原酶XYNB(同样经毕赤酵母表达后纯化)进行酶学性质比较,结果表明,XYNB′的耐热性比XYNB有明显的提高,但最适温度与原酶一样为60℃。另外,XYNB′的最适pH、Km值及比活性均有一定的改变。实验证实了木聚糖酶XYNB的氮端芳香族氨基酸之间的疏水相互作用与其热稳定性相关,为进一步的结构与功能研究提供了优良的基因材料。  相似文献   

2.
木聚糖酶XYNB的N46D突变、表达及酶学性质变化   总被引:4,自引:0,他引:4  
对来源于Streptomyces olivaceoviridis的高比活木聚糖酶XYNB进行同源建模和同源序列比较,发现第11族木聚糖酶的催化结构域在β折叠股A3和B3之间存的一个保守的氨基酸位点,该位点与木聚糖酶的pH特性有关.据此设计了XYNB的N46D定点突变.将突变酶XYNBN46D在毕赤酵母中表达,表达的XYNBN46D经纯化后与原酶XYNB(同样经毕赤酵母表达后纯化)进行酶学性质比较,结果表明, XYNBN46D的最适pH值由5.2下降到4.2,pH稳定性也向酸性pH偏移,同时,热稳定性和最适温度也有一定的提高, 但酶的比活性显著下降.结果证实,木聚糖酶XYNB的第46位Asn与其最适pH值相关.对导致酶学性质改变的可能因素进行了分析,结果为进一步的结构与功能研究提供了资料.  相似文献   

3.
N13D、S40E点突变提高木聚糖酶XYNB的热稳定性   总被引:1,自引:0,他引:1  
对来源于Streptomyces olivaceoviridis的高比活木聚糖酶XYNB进行同源建模和序列比较,设计了N13D、S40E的定点突变,以期改善中温酶XYNB的热稳定性。突变酶N13D、S40E分别在毕赤酵母中表达,经纯化后与野生型酶XYNB(同样经毕赤酵母表达后纯化)进行酶学性质比较,结果表明,突变酶N13D和S40E在70℃处理5min,热稳定性比XYNB分别提高了24.76%和14.46%;突变酶N13D的比活性比XYNB提高了22%。在其他性质方面突变酶N13D、S40E与野生型酶XYNB基本相似。通过对木聚糖酶XYNB的定点突变,提高了该酶的热稳定性,并为结构与功能的进一步研究提供了材料。  相似文献   

4.
高效表达高比活木聚糖酶是进一步提高木聚糖酶发酵效价、降低其生产成本的有效途径。将橄榄绿链霉菌(Streptomyces olivaceoviridis) A1的高比活木聚糖酶成熟蛋白编码基因xynB克隆到毕赤酵母表达载体pPIC9中,转化毕赤酵母得到重组酵母,在重组酵母中木聚糖酶基因得到了高效分泌表达,且表达产物具有生物学活性。在3L发酵罐中蛋白表达量约14mg/mL, 酶活性(效价)为1200IU/mL。SDSPAGE分析表明,表达的木聚糖酶XYNBa为糖基化蛋白, 分子量为31kD, 经脱糖基化处理得到21kD 的XYNBb, 与橄榄绿链霉菌A1所产原酶XYNB大小一致。通过对XYNB、XYNBa及XYNBb酶学性质的比较发现:三者在比活性、Vmax及热稳定性方面有较大差异。该酶对不同木聚糖的酶解产物的糖份分析表明:酶解产物的主要成分为木二糖、木三糖和木四糖,占总糖含量的95%以上。  相似文献   

5.
甘露聚糖酶和木聚糖酶是主要的半纤维素降解酶,在食品、饲料、纺织、造纸等工业应用广泛且通常搭配使用。文中将蓝状菌Talaromyces leycettanus JCM12802来源的性质优良的甘露聚糖酶编码基因man5A的CBM(Carbohydrate-bindingmodule)编码区去除,留下连接区和催化区,并将木聚糖酶基因Tlxyn11B成熟区编码序列与man5A的连接区进行融合,形成Tlxyn11B-linker-man5A融合基因,并在毕赤酵母中成功表达,获得了融合蛋白Tlxyn11B-Man5A。Tlxyn11B、不含CBM区的Man5A和Tlxyn11B-Man5A的理论分子量分别为21.6kDa、41.0 kDa、62.6 kDa。对纯化后的融合蛋白进行了性质分析,融合蛋白同时具有高的木聚糖酶和甘露聚糖酶活性。融合后的木聚糖酶的最适温度为70℃,较单独表达时提高了5℃。甘露聚糖酶的最适温度为90℃,与融合前一致。融合后的木聚糖酶热稳定性明显提高,60℃处理1 h剩余48%的酶活力,单独表达的木聚糖酶60℃处理20 min仅剩余20%的酶活力。融合后的木聚糖酶和甘露聚糖酶的最适pH分别为4.0和5.0,较单独表达时分别提高了0.5和1.0个单位,融合后酶的作用pH范围有所拓宽。融合前后的蛋白均具有较好的pH稳定性。融合后木聚糖酶和甘露聚糖酶的比活分别为1 784.3 U/mg和1 639.6 U/mg,较单独表达时比活(8 300 U/mg和1 979 U/mg)降低,与融合酶分子量增大相关。融合后的木聚糖酶和甘露聚糖酶的K_m值分别为1.2 mg/mL和1.7 mg/mL, V_(max)分别为2 000.0μmol/(min·mg)和2 831.6μmol/(min·mg)。综合其性质特点,融合木聚糖酶和甘露聚糖酶在饲料、食品等工业生产中有较大应用潜力,并为酶的性能改良提供了新的思路。  相似文献   

6.
以来自于谷氨酸棒杆菌内源AH6启动子和5′UTR及其前38 bp结合合适的Shine-Dalgarno (SD)序列,构建双顺反子表达载体对木聚糖酶进行表达。为了能够实现分泌表达,选取了来自谷氨酸棒杆菌的两种分泌途径的信号肽,分别为Tat型的CgR0949及Sec型的CspB信号肽。在实现分泌表达之后,对其进行5 L发酵罐的扩大培养以提高分泌量。并对纯化的木聚糖酶进行了部分酶学性质的研究,包括最适催化pH及酸碱耐受性;最适催化温度及热稳定性。结果表明:在上述表达体系中,以CgR0949为信号肽木聚糖酶不能分泌到胞外;木聚糖酶能在CspB信号肽的引导下分泌到胞外,分泌表达量为486.2 U/mL。木聚糖酶的分泌量在5 L发酵罐水平上达到1 648.7 U/mL,是摇瓶培养的3.4倍。该木聚糖酶的最适反应pH为4.5,最适温度为45℃;在pH 4–11范围内4℃处理24 h酶活保持在80%以上;在50℃前处理15 min酶活保持在95%以上,超过60℃则酶活迅速下降至20%及其以下。上述结果表明,谷氨酸棒杆菌内源元件能有效用于木聚糖酶的分泌表达,扩大培养能进一步提升木聚糖酶的分泌量。该双顺反子表达体系能为外源蛋白在谷氨酸棒杆菌中的分泌表达提供一种可用的工具。此外,通过酶学性质的研究可进一步提高木聚糖酶的催化效率。  相似文献   

7.
耐冷皮壳正青霉一种木聚糖酶的纯化与性质研究   总被引:1,自引:0,他引:1  
研究了耐冷皮壳正青霉Eupenicillium crustaceum一种木聚糖酶的纯化和酶学性质。采用硫酸铵沉淀和阴离子交换层析的方法,从耐冷皮壳正青霉液体发酵液中分离纯化出一种亚基分子量35kDa的木聚糖酶。酶学性质研究表明,酶的最适pH值为5.5,在pH4.5-6.5范围内具有较高的催化活性。最适温度为50℃,20℃下酶活为最高酶活的40%。Ag+和Fe2+大幅度提高木聚糖酶的酶活,而Mn2+和Hg2+强烈抑制木聚糖酶的活性。同时,该木聚糖酶具有严格的底物特异性。  相似文献   

8.
运用定点突变提高重组木聚糖酶在毕赤氏酵母中的表达   总被引:3,自引:1,他引:2  
陆健  曹钰  陈坚 《微生物学报》2002,42(4):425-430
运用PCR介导的定点突变对米曲霉(Aspergillus oryzae)来源的木聚糖酶在毕赤酵母中的重组表达进行了研究,获得一表达量远远高于亲本的突变株I156A,对其进行了提纯并研究其酶学特性,除热稳定性外其余与亲本基本一致。突变株I156A所产木聚糖酶XynFl的分子量为35kD,在pH 4~9范围内稳定,最适pH为70,最适温度为45℃,在50℃以下稳定性略高于亲本。  相似文献   

9.
[目的]利用常压室温等离子体快速诱变绿色糖单孢菌,筛选耐热耐碱木聚糖酶高产菌株,并对其进行酶学性质分析,确保其适用于生物制浆漂白工艺.[方法]采用刚果红平板水解圈法结合摇瓶发酵胞外酶测定法进行菌株筛选,并通过DNS木聚糖酶活性测定等方法对来源于不同突变株的木聚糖酶进行酶学性质分析对比.[结果]筛选出遗传稳定性良好的两株木聚糖酶高产菌株AT24和AT22-2,以麦草浆为诱导底物的粗酶液中,突变株AT24及AT22-2所产的木聚糖酶活性分别为512.74、552.70U/mL,分别为原始菌株S.v的16和17倍的.来源于突变株AT22-2的木聚糖酶的最适反应pH为9.5,最适反应温度为90℃,在50℃-90℃温度范围内具有良好的热稳定性,在100℃条件下处理30 min剩余酶活仍为68%;突变株AT24所产木聚糖酶的最适反应温度为60℃,最适pH为10.0,在60℃-80℃的高温环境下,突变株AT24所产的木聚糖酶具有良好的热稳定性.[结论]突变株AT22-2所产具有耐碱耐高温性质的木聚糖酶,在应用领域尤其在纸浆造纸行业具有较大的潜在应用价值.  相似文献   

10.
定点突变提高里氏木霉木聚糖酶 (XYN II) 的稳定性   总被引:2,自引:0,他引:2  
通过定点突变的方法,在来源于里氏木霉Trichderma reesei的木聚糖酶XYN II的N-末端两个β折叠片层间添加二硫键,以提高木聚糖酶的稳定性。原酶XYN-OU和突变酶XYN-HA12 (T2C、T28C和S156F) 分别在毕赤酵母中分泌表达,突变酶与原酶纯化后进行酶学性质比较。结果表明:突变酶最适反应温度由50℃提高到60℃;在70℃的半衰期由1 min提高到14 min;最适反应pH为5.0,与原酶保持一致,但是在50℃、30 min条件下的pH稳定范围由4.0~9.0扩展到3.0~10.0。对木聚糖酶分子改良的结果反映出在β片层间添加二硫键可以有效改善酶在较高温度下三维结构的刚性,提高热稳定性。  相似文献   

11.
Substitution of the N-terminus of Streptomyces olivaceoviridis xylanase XYNB to generate mutant TB has been previously shown to increase the thermostability of the enzyme. To further improve the stability of this mutant, we introduced a disulfide bridge (C109–C153) into the TB mutant, generating TS. To assess the effect of the disulfide bridge in the wild-type enzyme, the S109C-N153C mutation was also introduced into XYNB, resulting in XS. The mutants were expressed in Pichia pastoris, the recombinant enzymes were purified, and the effect of temperature and pH on enzymatic activity was characterized. Introduction of the disulfide bridge (C109–C153) into XYNB (XS variant) and TB (TS variant) increased the thermostability up to 2.8-fold and 12.4-fold, respectively, relative to XYNB, after incubation at 70°C, pH 6.0, for 20 min. In addition, a synergistic effect of the disulfide bridge and the N-terminus replacement was observed, which extended the half-life of XYNB from 3 to 150 min. Moreover, XS and TS displayed better resistance to acidic conditions compared with the respective enzymes that did not contain a disulfide bridge.  相似文献   

12.
The filamentous fungus Penicillium funiculosum produces a mixture of modular and non-modular xylanases belonging to different glycoside hydrolase (GH) families. In the present study, we heterologously expressed the cDNA encoding GH11 xylanase B (XYNB) and studied the enzymatic properties of the recombinant enzyme. Expression in Escherichia coli led to the partial purification of a glutathione fusion protein from the soluble fraction whereas the recombinant protein produced in Pichia pastoris was successfully purified using a one-step chromatography. Despite O-glycosylation heterogeneity, the purified enzyme efficiently degraded low viscosity xylan [K(m)=40+/-3 g l(-1), V(max)=16.1+/-0.8 micromol xylose min(-1) and k(cat)=5405+/-150 s(-1) at pH 4.2 and 45 degrees C] and medium viscosity xylan [K(m)=34.5+/-3.2 g l(-1), V(max)=14.9+/-1.0 micromol xylose min(-1)k(cat)=4966+/-333 s(-1) at pH 4.2 and 45 degrees C]. XYNB was further tested for its ability to interact with wheat xylanase inhibitors. The xylanase activity of XYNB produced in P. pastoris was strongly inhibited by both XIP-I and TAXI-I in a competitive manner, with a K(i) of 89.7+/-8.5 and 2.9+/-0.3 nM, respectively, whereas no inhibition was detected with TAXI-II. Physical interaction of both TAXI-I and XIP-I with XYNB was observed using titration curves across a pH range 3-9.  相似文献   

13.
14.
AIMS: A xylanase from the newly isolated thermophilic fungus, Thermomyces lanuginosus CAU44, was characterized and evaluated for its suitability in bread making. METHODS AND RESULTS: Xylanase was purified 3.5-fold to homogeneity with a recovery yield of 32.8%. It appeared as a single protein band on SDS-PAGE gel with a molecular mass of c. 25.6 kDa. The purified xylanase had an optimum pH of 6.2, and it was stable over pH 5.6-10.3. The optimal temperature of xylanase was 75 degrees C and it was stable up to 65 degrees C at pH 6.2. Study was further carried out to investigate the effect of the purified xylanase on the properties of wheat bread and its staling during storage. CONCLUSIONS: The purified xylanase from T. lanuginosus CAU44 was stable up to 65 degrees C and had a broad pH range. The presence of thermostable xylanase during bread making led to an improvement of the specific bread volume and better crumb texture. Besides, addition of xylanase provided an anti-staling effect. SIGNIFICANCE AND IMPACT OF THE STUDY: The xylanase from the newly isolated Thermomyces lanuginosus CAU44 shows great promise as a processing aid in the bread-making industry.  相似文献   

15.
Kozak M 《Biopolymers》2006,83(6):668-674
Xylanase XYNII from Trichoderma longibrachiatum is a small protein of the molecular weight 21 kDa, belonging to the family 11 of glycosyl hydrolases, which catalyses hydrolysis of xylan. This article reports thermal stability study of xylanase XYN II conformation in the temperature range 15-65 degrees C by the small angle synchrotron radiation scattering. The study has been performed at different pH conditions: at pH 4.0 (below the physiological optimum of the enzyme activity) at pH 5.8 close to the optimum for enzymatic activity and at pH 8.0. The radius of gyration and the pair distance distribution function p(r) have been analyzed to characterize the changes of the enzyme conformation on heating. In the environment of the pH close to that of the optimum for the enzymatic activity, xylanase shows the greatest thermal stability and undergoes denaturation only above 55 degrees C. In the acidic and basic environments, the enzyme stability is much lower and denaturation begins at 45 degrees C. On the basis of the SAXS data, the shape of the xylanase molecule in solution in different temperatures has been reconstructed using ab initio method and program DAMMIN. The shape of the xylanase molecule at room temperature is similar to the right hand, which is typically observed for xylanase crystal structure. In higher temperatures (close to the enzyme activity optimum), the conformation of the right hand is loosened and half opened.  相似文献   

16.
Shan ZQ  Zhou JG  Zhou YF  Yuan HY  Lv H 《遗传》2012,34(3):356-365
从青海盐碱湖土壤中筛选到25株产碱性木聚糖酶的菌株,其中编号为QH14的菌株产酶量达648.79U/mL,纯化后比活可达1148.56 U/mg。16 SrDNA鉴定表明菌株QH14属于短小芽孢杆菌,命名为Bacillus sp.QH14。从该菌株的基因组中克隆获得了碱性木聚糖酶编码基因XynQH14,并在大肠杆菌E.coliBL21(DE3)中获得重组表达。通过Ni-NTA亲和层析分离纯化后的重组QH14木聚糖酶比活达700.47 U/mg。该碱性木聚糖酶的酶促反应最适温度为60℃,最适pH为9.2;55℃处理1h仍保持50%的活力;在pH7.0~11条件下37℃处理酶液24 h后均保持80%以上的活力,且在pH11缓冲溶液中50℃处理24 h仍保持31.02%的酶活,显示了该碱性木聚糖酶较好的热稳定性和碱稳定,提示该碱性木聚糖酶在制浆造纸、纺织等行业的应用潜力。  相似文献   

17.
To improve the thermostability and catalytic activity of Aspergillus niger xylanase A (AnxA), its N-terminus was substituted with the corresponding region of Thermomonospora fusca xylanase A (TfxA). The constructed hybrid xylanase, named ATx, was overexpressed in Pichia pastoris and secreted into the medium. After 96-h 0.25% methanol induction, the activity of the ATx in the culture supernatant reached its peak, 633 U/mg, which was 3.6 and 5.4 times as high as those of recombinant AnxA (reAnxA) and recombinant TfxA (reTfxA), respectively. Studies on enzymatic properties showed that the temperature and pH optimum of the ATx were 60 degrees C and 5.0, respectively. The ATx was more thermostable, when it was treated at 70 degrees C, pH 5.0, for 2 min, the residual activity was 72% which was higher than that of reAnxA and similar to that of reTfxA. The ATx was very stable over a broader pH range (3.0-10.0) and much less affected by acid/base conditions. After incubation at pH 3.0-10.0, 25 degrees C for 1 h, all the residual activities of the ATx were over 80%. These results revealed that the thermostability and catalytic activity of the AnxA were enhanced. The N-terminus of TfxA contributed to the observed thermostability of itself and the ATx, and to the high activity of the ATx. Replacement of N-terminus between mesophilic eukaryotic and thermostable prokaryotic enzymes may be a useful method for constructing the new and improved versions of biologically active enzymes.  相似文献   

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