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1.
设计引物克隆玫瑰微球菌QS412中麦芽寡糖基海藻糖水解酶(MTHase)的基因treZ,通过与pET-28a( )载体相连,转化入宿主菌E.coli BL21,进行发酵诱导。通过SDS-PAGE检测到外源基因在大肠杆菌中有很高的MTHase表达量,但大部分都以不溶性包含体形式存在。对菌体超声破碎全菌液检测酶活,结果显示了水解酶酶活。这是来源于微球菌属的麦芽寡糖基海藻糖水解酶首次获得基因克隆和活性表达,为进一步提高酶活、增大海藻糖产量奠定了基础。  相似文献   

2.
海藻糖微生物酶法合成机制的研究   总被引:5,自引:0,他引:5  
来源于嗜酸热古菌芝田硫化叶菌(Sulfolobus shibatae)B12的麦芽寡糖基海藻糖合酶(MTSase)和麦芽寡糖基海藻糖海藻糖水解酶(MTHase)基因在大肠杆菌中获得表达。将获得纯化的两个酶,分别以麦芽寡糖和淀粉为转化底物,在pH5.5,60℃条件下合成海藻糖。从反应产物分析结果可知,两个酶合成海藻糖时能利用的最小底物是麦芽四糖,海藻糖产率与麦芽寡糖链长正相关。同时还发现两个酶都具有轻微的α-1,4-葡萄糖苷酶活性,能在麦芽寡糖还原末端水解α-1,4糖苷键,生成葡萄糖分子,其反应最小底物分别是麦芽三糖和四糖。推测海藻糖合成酶可能有两个不同的催化活性中心。  相似文献   

3.
海藻糖微生物酶法合成机制的研究*   总被引:1,自引:0,他引:1  
来源于嗜酸热古菌芝田硫化叶菌 (Sulfolobusshibatae)B1 2的麦芽寡糖基海藻糖合酶(MTSase)和麦芽寡糖基海藻糖海藻糖水解酶 (MTHase)基因在大肠杆菌中获得表达。将获得纯化的两个酶 ,分别以麦芽寡糖和淀粉为转化底物 ,在pH5 5 ,6 0℃条件下合成海藻糖。从反应产物分析结果可知 ,两个酶合成海藻糖时能利用的最小底物是麦芽四糖 ,海藻糖产率与麦芽寡糖链长正相关。同时还发现两个酶都具有轻微的α 1 ,4 葡萄糖苷酶活性 ,能在麦芽寡糖还原末端水解α 1 ,4糖苷键  相似文献   

4.
麦芽寡糖基海藻糖合成酶(maltosyltrehalose synthase, MTSase)和麦芽寡糖基海藻糖水解酶(maltosyltrehalose hydrolase, MTHase)是酶法合成海藻糖的关键酶。由于该酶系在天然菌种内产量极低,研究者相继在各种模式微生物中对该酶系编码基因进行表达。为了实现MTSase和MTHase在食品安全级菌株的分泌表达,本研究选择重要工业微生物地衣芽孢杆菌(Bacillus licheniformis)作为宿主菌株,以MTSase为报告蛋白,通过对天然启动子进行筛选,发现PP2介导下MTSase的表达量最高,在此基础上利用启动子工程策略构建了一系列串联启动子及合成启动子,发现合成启动子P1-P2在原有PP2基础上将MTSase的表达量提高了37%,该启动子对于MTHase的表达同样具有提高作用,在P1-P2介导下MTHase的表达量较在PP2介导下的提高了10%。在发酵培养基和P1-P2启动子介导下MTSase和MTHase的酶活力分...  相似文献   

5.
海藻糖生产过程中产酶发酵条件的研究   总被引:1,自引:0,他引:1  
研究了产酶的培养基组分和比例以及最佳培养条件对微球菌生产麦芽寡糖基海藻糖合成酶(MTSase)和麦芽寡糖基海藻糖海藻糖水解酶(MTHase)的影响,得到最优培养基组成为:葡萄糖2.0%,酵母膏2.0%,蛋白胨1.0%,磷酸氢二钾0.1%,硫酸镁0.05%;优化后的培养条件为:以15%的接种量接种至250mL的锥形瓶中,装液量为50mL,初始pH值7.5~8.5,培养温度为30℃,摇床培养4d。经优化后菌体干重由原来的1.938g/L增加到18.5g/L,生物量几乎增长了10倍;而酶活也由原来的30.64U/g增加到206.11U/g,酶活提高了接近7倍。  相似文献   

6.
九十年代中期以后非磷酸化合成海藻糖的新酶系列及相关微生物(多为极端微生物)被发现,不同菌株纯化得到的新酶虽在专一性及酶特性方面存在差异,但均为非磷酸化酶。基因测序及同源性分析表明这些新酶与淀粉酶家族具有很强的同源性。一些文献报道了这些新酶合成海藻糖的作用机制,基本证实酶Ⅰ(MTSase、GTase和TSase)的分子内转糖基作用及酶Ⅱ(MTHase和Amylase)对麦芽寡糖基海藻糖的专一性内切作用,但这些新酶的作用机制仍需深入研究。  相似文献   

7.
藤黄微球菌海藻糖生物合成基因的克隆与鉴定   总被引:1,自引:0,他引:1  
首次从一株能利用淀粉产生海藻糖的藤黄微球菌中克隆了海藻糖生物合成基因。采用PCR方法结合非随机鸟枪法得到藤黄微球菌中低聚麦芽糖苷基海藻糖合成酶(MTSase)基因(MtreY)的全序列及低聚麦芽糖苷基海藻糖水解酶(MTHase)基因(MtreZ)的部分序列,其中MtreY共有2,370个碱基,编码789个氨基酸,表达产物分子量为86·7kD。同源性分析表明,与已报道的MTSase和α-淀粉酶家族成员具有相同的保守模体。将MtreY基因在大肠杆菌JM83中表达,证明表达产物具有预期的酶活性。  相似文献   

8.
从嗜热硫矿硫化叶菌(Sulfolobussolfataricus)ATCC35092的基因组中用PCR方法扩增得到编码MTSase和MTSase的基因,分别将其插入原核表达载体pTrc99a中,并转入大肠杆菌BL21(DE3),进行诱导表达。MTSase和MTHase酶活产率达到了31.3U/g(wetcell)和403U/g(wetcell)。在75℃,pH5.0条件下,两酶联合作用转化淀粉生产海藻糖,当淀粉浓度为15%,DE值为10时,海藻糖转化率最高为53.6%。  相似文献   

9.
在麦芽糖苷基海藻糖合成酶(MTSase)和麦芽糖苷基海藻糖水解酶(MTHase)双酶的作用下,淀粉可转化为海藻糖,但是其转化率较低。中采用多种固定化载体进行酶固定化研究,发现通过经戊二醛与壳聚糖交联后的载体与酶液作用,可吸附与海藻糖合成无关的杂酶和杂质,从而提高海藻糖合成酶的活性。通过比较固定化过程中与反应条件中多个因素的影响,得到了如下最佳作用条件:将酶液与经3%戊二醛交联18h后的滤纸作用18h,再与10%的淀粉溶液反应9h,与未经固定化作用比较,海藻糖的产率提高10倍,达到27.22g/L转化率从5.33%提升到54.43%。  相似文献   

10.
玫瑰微球菌中treZ基因在毕赤酵母中的表达研究   总被引:2,自引:1,他引:1  
首次将玫瑰微球菌中麦芽寡糖基海藻糖水解酶(MTHase)treZ基因序列连接到表达载体pPICZαA中,通过电转化法将构建好的表达载体分别转入巴斯德毕赤酵母GS115和KM71菌株中.利用含有Zeocin的YPD平板筛选到阳性转化子,并经PCR、SDS-PAGE电泳以及Western blot最终验证海藻糖水解酶基因treZ已经整合到巴斯德毕赤酵母的基因组上,并且得到了预期的表达.  相似文献   

11.
【背景】南极假丝酵母脂肪酶B (Candida antarctica lipase B,CALB)具有优异的酯合成活性,是在非水相催化中应用极为广泛的工业用酶。【目的】在保留CALB优秀催化性能的基础上,提高CALB的热稳定性。【方法】采用预测软件PoPMuSiC和FoldX计算CALB潜在热稳定性突变位点,并根据氨基酸残基的空间位置进一步筛选。利用重叠延伸PCR技术在基因calb中引入10个单点突变,于毕赤酵母GS115中表达。【结果】点突变A146G、A151P、L278M均能有效提高CALB的热稳定性。在单点突变的基础上,组合突变体A146G-L278M和A146G-L278M-A151P的热稳定性得到进一步提高。与野生型相比,突变体A146G-L278M和A146G-L278M-A151P的最适反应温度均提高了5°C,T_m值分别提高了3.3°C和4.2°C。此外,合成己酸乙酯的酶促反应动力学分析表明,相比于野生型,突变体A146G-L278M和A146G-L278M-A151P对己酸和乙醇均具有更高的亲和力,且对己酸的催化效率k_(catA)/K_(m A)是野生型的4.1倍。通过分子动力学模拟,从分子水平阐明了突变体A146G-L278M和A146G-L278M-A151P热稳定性提高的机制。【结论】本研究采用的理性设计策略对提高CALB的热稳定性是行之有效的,该策略可作为其他工业用酶提高热稳定性的参考。  相似文献   

12.
Tang SY  Le QT  Shim JH  Yang SJ  Auh JH  Park C  Park KH 《The FEBS journal》2006,273(14):3335-3345
DNA shuffling was used to improve the thermostability of maltogenic amylase from Bacillus thermoalkalophilus ET2. Two highly thermostable mutants, III-1 and III-2, were generated after three rounds of shuffling and recombination of mutations. Their optimal reaction temperatures were all 80 degrees C, which was 10 degrees C higher than that of the wild-type. The mutant enzyme III-1 carried seven mutations: N147D, F195L, N263S, D311G, A344V, F397S, and N508D. The half-life of III-1 was about 20 times greater than that of the wild-type at 78 degrees C. The mutant enzyme III-2 carried M375T in addition to the mutations in III-1, which was responsible for the decrease in specific activity. The half-life of III-2 was 568 min while that of the wild-type was < 1 min at 80 degrees C. The melting temperatures of III-1 and III-2, as determined by differential scanning calorimetry, increased by 6.1 degrees C and 11.4 degrees C, respectively. Hydrogen bonding, hydrophobic interaction, electrostatic interaction, proper packing, and deamidation were predicted as the mechanisms for the enhancement of thermostability in the enzymes with the mutations.  相似文献   

13.
Trehalose (alpha-D-glucopyranosyl-1,1-alpha-D-glucopyranose) is a non-reducing diglucoside found in various organisms that serves as a carbohydrate reserve and as an agent that protects against a variety of physical and chemical stresses. Deinococcus radiodurans possesses an alternative biosynthesis pathway for the synthesis of trehalose from maltooligosaccharides. This reaction is mediated by two enzymes: maltooligosyltrehalose synthase (MTSase) and maltooligosyltrehalose trehalohydrolase (MTHase). Here, we present the 1.1A resolution crystal structure of MTHase. It consists of three major domains: two beta-sheet domains and a conserved glycosidase (beta/alpha)8 barrel catalytic domain. Three subdomains consisting of short insertions were identified within the catalytic domain. Subsequently, structures of MTHase in complex with maltose and trehalose were obtained at 1.2 A and 1.5 A resolution, respectively. These structures reveal the importance of the three inserted subdomains in providing the key residues required for substrate recognition. Trehalose is recognised specifically in the +1 and +2 binding subsites by an extensive hydrogen-bonding network and a strong hydrophobic stacking interaction in between two aromatic residues. Moreover, upon binding to maltose, which mimics the substrate sugar chain, a major concerted conformational change traps the sugar chain in the active site. The presence of magnesium in the active site of the MTHase-maltose complex suggests that MTHase activity may be regulated by divalent cations.  相似文献   

14.
Oh KH  Nam SH  Kim HS 《Protein engineering》2002,15(8):689-695
N-Carbamyl-D-amino acid amidohydrolase (N-carbamoylase), which is currently employed in the industrial production of unnatural D-amino acid in conjunction with D-hydantoinase, has low oxidative and thermostability. We attempted the simultaneous improvement of the oxidative and thermostability of N-carbamoylase from Agrobacterium tumefaciens NRRL B11291 by directed evolution using DNA shuffling. In a second generation of evolution, the best mutant 2S3 with improved oxidative and thermostability was selected, purified and characterized. The temperature at which 50% of the initial activity remains after incubation for 30 min was 73 degrees C for 2S3, whereas it was 61 degrees C for wild-type enzyme. Treatment of wild-type enzyme with 0.2 mM hydrogen peroxide for 30 min at 25 degrees C resulted in a complete loss of activity, but 2S3 retained about 79% of the initial activity under the same conditions. The K(m) value of 2S3 was estimated to be similar to that of wild-type enzyme; however k(cat) was decreased, leading to a slightly reduced value of k(cat)/K(m), compared with wild-type enzyme. DNA sequence analysis revealed that six amino acid residues were changed in 2S3 and substitutions included Q23L, V40A, H58Y, G75S, M184L and T262A. The stabilizing effects of each amino acid residue were investigated by incorporating mutations individually into wild-type enzyme. Q23L, H58Y, M184L and T262A were found to enhance both oxidative and thermostability of the enzyme and of them, T262A showed the most significant effect. V40A and G75S gave rise to an increase only in oxidative stability. The positions of the mutated amino acid residues were identified in the structure of N-carbamoylase from Agrobacterium sp. KNK 712 and structural analysis of the stabilizing effects of each amino acid substitution was also carried out.  相似文献   

15.
亚栖热菌透性化细胞的耦合固定化研究   总被引:1,自引:0,他引:1  
将海藻酸盐凝胶包埋法与交联法和聚电解质静电自组装覆膜法相耦合,对含有海藻糖合酶活性的亚栖热菌的透性化细胞进行了固定化研究。结果表明,利用重氮树脂和聚苯乙烯磺酸钠对海藻酸凝胶微球交替覆膜,可以显著提高凝胶微球在磷酸盐缓冲液中的稳定性,以碳二亚胺对固定化细胞进行交联处理则可以提高固定化细胞中海藻糖合酶的热稳定性。透性化细胞经包埋-交联-覆膜耦合固定化后,酶活回收率为32%,最适酶反应pH值由6.5左右升至7.0左右,最适反应温度未变,仍为60℃。所得固定化细胞间歇反应时,催化麦芽糖转化为海藻糖的转化率可达60%,重复使用4次(每次50℃、反应24h),酶活损失小于20%,转化率可保持在50%以上。  相似文献   

16.
目的:对大肠杆菌Escherichia coli植酸酶基因进行定向进化,获得热稳定性提高的植酸酶突变体.方法:利用易错PCR技术和96微孔板高通量筛选方法获得突变体基因,并对突变酶进行异源表达、纯化及性质研究.结果:通过筛选获得3株热稳定性明显提高的植酸酶突变体APPA1、APPA2、APPA3.酶学性质分析结果表明,...  相似文献   

17.
Anabaena 7120 cells were exposed to NaCl (25-175 mM) stress. Maximum growth was recorded in media containing 150mM NaCl. Short-term exposure (48h) of the cyanobacterial biomass to 150mM NaCl, induced highest trehalose level (37mM). Control cells lacking NaCl did not show any trace of trehalose as ascertained by NMR and HPLC analysis. Trehalose biosynthesis observed with NaCl plus high temperature (40 degrees C) indicated that its production was specifically triggered by NaCl, not temperature. The increase in trehalose level during NaCl stress was the result of overexpression of the trehalose-forming enzymes maltooligosyltrehalose synthase (MTSase), EC 5.4.99.15 (114kDa) and maltooligosyltrehalose trehalohydrolase (MTHase), EC 3.2.1.141 (68 kDa) as evidenced by SDS-PAGE analysis. To our knowledge this is the first report of induced trehalose biosynthesis in Anabaena 7120 during salt-stress, accompanied by identification of MTSase and MTHase enzymes on gel. It is suggested that Anabaena 7120 cells synthesize the osmolyte trehalose to withstand osmotic fluctuations.  相似文献   

18.
The thermostability of maltogenic amylase from Thermus sp. strain IM6501 (ThMA) was improved greatly by random mutagenesis using DNA shuffling. Four rounds of DNA shuffling and subsequent recombination of the mutations produced the highly thermostable mutant enzyme ThMA-DM, which had a total of seven individual mutations. The seven amino acid substitutions in ThMA-DM were identified as R26Q, S169N, I333V, M375T, A398V, Q411L, and P453L. The optimal reaction temperature of the recombinant enzyme was 75 degrees C, which was 15 degrees C higher than that of wild-type ThMA, and the melting temperature, as determined by differential scanning calorimetry, was increased by 10.9 degrees C. The half-life of ThMA-DM was 172 min at 80 degrees C, a temperature at which wild-type ThMA was completely inactivated in less than 1 min. Six mutations that were generated during the evolutionary process did not significantly affect the specific activity of the enzyme, while the M375T mutation decreased activity to 23% of the wild-type level. The molecular interactions of the seven mutant residues that contributed to the increased thermostability of the mutant enzyme with other adjacent residues were examined by comparing the modeled tertiary structure of ThMA-DM with those of wild-type ThMA and related enzymes. The A398V and Q411L substitutions appeared to stabilize the enzyme by enhancing the interdomain hydrophobic interactions. The R26Q and P453L substitutions led potentially to the formation of genuine hydrogen bonds. M375T, which was located near the active site of ThMA, probably caused a conformational or dynamic change that enhanced thermostability but reduced the specific activity of the enzyme.  相似文献   

19.
在高温下保持催化活性是工业酶的重要性质。近年来,采用基因工程、蛋白质工程技术提高野生酶进行催化活性或耐热等性质取得了重要进展。文中利用新近建立起来的异肽键介导的SpyTag/SpyCatcher系统对瘤胃微生物来源的木聚糖酶XYN11-6进行分子环化,获得稳定的环化酶C-XYN11-6。在60℃、70℃和80℃下处理10 min,C-XYN11-6的残余活性为81.53%、73.98%和64.41%,分别是相同条件下线性蛋白L-XYN11-6残余活性的1.48、2.92、3.98倍。经60–90℃热处理10 min后,C-XYN11-6仍保持可溶状态,而L-XYN11-6几乎完全聚沉。内源荧光和8-苯胺-1-萘磺酸(8-anilino-1-naphthalenesulfonic acid,ANS)结合荧光光谱分析显示,较之L-XYN11-6,热处理环境中C-XYN11-6更能够维持其构象稳定。值得注意的是,分子环化提高了C-XYN11-6对0.1–50 mmol/L Ca2+或0.1 mmol/L Cu2+的耐受能力。综上所述,文中利用Spy...  相似文献   

20.
Good protein thermostability is very important for the protein application. In this report, we propose a strategy which contained a prediction method to select residues related to protein thermal stability, but not related to protein function, and an experiment method to screen the mutants with enhanced thermostability. The prediction strategy was based on the calculated site evolutionary entropy and unfolding free energy difference between the mutant and wild-type (WT) methyl parathion hydrolase enzyme from Ochrobactrum sp. M231 [Ochr-methyl parathion hydrolase (MPH)]. As a result, seven amino acid sites within Ochr-MPH were selected and used to construct seven saturation mutagenesis libraries. The results of screening these libraries indicated that six sites could result in mutated enzymes exhibiting better thermal stability than the WT enzyme. A stepwise evolutionary approach was designed to combine these selected mutants and a mutant with four point mutations (S274Q/T183E/K197L/S192M) was selected. The T m and T 50 of the mutant enzyme were 11.7 and 10.2 °C higher, respectively, than that of the WT enzyme. The success of this design methodology for Ochr-MPH suggests that it was an efficient strategy for enhancing protein thermostability and suitable for protein engineering.  相似文献   

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