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1.
Aspergillus fumigatus来源的植酸酶具有热稳定性好、pH作用范围广的优点, 但其比活性很低。设计的植酸酶Q23L突变能在pH4.5~7.0范围内大幅提高比活性,但pH稳定性却显著下降, 为了进一步改良Q23L的pH稳定性, 在Q23L分子上加入了G272E突变。将原酶、突变酶Q23L和突变酶Q23LG272E分别在毕赤酵母GS115中表达,表达酶经纯化后进行酶学性质比较分析,结果表明:突变酶Q23L的比活性比原酶显著提高, 在pH5.5比活性由51u/mg提高到109u/mg, 但其pH稳定性, 尤其是在pH3.0~4.0酸性条件下的稳定性却显著降低,低于80%。突变酶Q23LG272E在pH3.0~4.5和pH6.5~7.0时的稳定性比Q23L有所提高, 恢复到原酶的水平,而比活性基本维持在Q23L的水平。通过一级序列和三维结构比较,分析了可能影响Q23LG272E酶学性质的因素,为进一步研究植酸酶的结构与功能提供了材料。  相似文献   

2.
Aspergillus fumigatus来源的植酸酶具有热稳定性好、pH作用范围广的优点, 但其比活性很低。设计的植酸酶Q23L突变能在pH4.5~7.0范围内大幅提高比活性,但pH稳定性却显著下降, 为了进一步改良Q23L的pH稳定性, 在Q23L分子上加入了G272E突变。将原酶、突变酶Q23L和突变酶Q23LG272E分别在毕赤酵母GS115中表达,表达酶经纯化后进行酶学性质比较分析,结果表明:突变酶Q23L的比活性比原酶显著提高, 在pH5.5比活性由51u/mg提高到109u/mg, 但其pH稳定性, 尤其是在pH3.0~4.0酸性条件下的稳定性却显著降低,低于80%。突变酶Q23LG272E在pH3.0~4.5和pH6.5~7.0时的稳定性比Q23L有所提高, 恢复到原酶的水平,而比活性基本维持在Q23L的水平。通过一级序列和三维结构比较,分析了可能影响Q23LG272E酶学性质的因素,为进一步研究植酸酶的结构与功能提供了材料。  相似文献   

3.
【目的】表达鱼腥藻苯丙氨酸脱氨酶(AvPAL),并经分子改造降低其最适反应pH。【方法】PCR克隆AvPAL编码基因,并在大肠杆菌中表达,用Ni2+亲和层析柱和凝胶柱纯化重组蛋白。利用GETAREA软件筛选与催化残基距离较近的暴露于酶分子表面的氨基酸位点,将其突变为带电性质不同的氨基酸,并对突变体进行酶学性质研究。【结果】在大肠杆菌中成功表达了AvPAL,纯化后得到电泳纯的重组酶。突变体E75Q和E75R的最适反应pH从8.5分别偏移到7.5和7.0。E75Q在pH 7.5时的比酶活较原酶提高了25%,在pH 6.5–9.5之间酶的稳定性良好,其最适反应温度为50 °C,在此温度下保温1 h酶活无显著变化。在最适反应条件下,E75Q的kcat/Km值较原酶提高了26.6%。【结论】改变AvPAL酶分子中起路易斯碱作用的关键氨基酸残基(质子受体)附近与之有相互作用的氨基酸的带电性质,降低了AvPAL的最适反应pH,提升了其在医疗领域的应用前景。  相似文献   

4.
从蜂房哈夫尼菌(Hafniaalvei)中克隆获得一个植酸酶编码基因appA,该基因全长1335bp,编码444个氨基酸,其中前33个氨基酸为信号肽,成熟蛋白的理论分子量为45.2kD。将基因appA克隆到大肠杆菌E.coli表达载体pET-22b( ),并在大肠杆菌中表达,表达产物具有植酸酶活性。对表达的酶蛋白进行纯化,并初步研究了该酶的酶学性质,结果表明:酶的作用最适pH值为4.5;在pH2.0~10.0范围内,酶活性保留80%以上;酶的作用最适温度为60℃;酶的比活性为356.7U/mg,酶动力学分析表明其Km为0.49mmol/L,Vmax为238U/mg;该酶对胰蛋白酶和胃蛋白酶有一定的抗性。该研究为哈夫尼菌属来源植酸酶的首次报道。  相似文献   

5.
利用易错PCR技术对黑曲霉(Aspergillus niger)N25的植酸酶基因phyA进行定向进化研究,突变基因产物重组于表达载体pET32a(+)中,并导入大肠杆菌BL21(DE3)构建突变体文库,经筛选获得了最佳突变菌株pET32a-phyAep,其植酸酶活力比出发酶提高了41.8%。突变酶的酶学性质研究发现,与野生酶相比,它的热稳定性,最适温度和最适pH值无显著变化。  相似文献   

6.
为研究N-糖基化对黑曲霉Aspergillus niger963植酸酶蛋白酶学性质的影响,利用Megaprimer PCR介导基因定点突变的技术,构建了植酸酶phyA2基因两个N-糖基化突变体,即将该基因编码蛋白质N87位和N102位的天冬酰胺密码子置换为编码与其具有相似结构的谷氨酰胺密码子,两个突变体分别命名为N87Q、N102Q,经测序结果比对和图谱分析,表明在核酸水平上成功实现了点突变,构建了酵母表达载体pPIC9-N87Q,pPIC9-N102Q,转化毕赤酵母GS115,经发酵罐水平诱导表达后,获得了N-糖基化缺失突变蛋白,对突变体蛋白在60℃进行处理发现,突变体N87Q处理1h后剩余50%的酶活,N102Q处理10min后酶活完全丧失,在37℃,不同的pH缓冲体系(pH1~10)处理1h,N87Q剩余约大于70%的活性,而N102Q在pH8的环境下,没有检测到酶活。  相似文献   

7.
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,3个突变体分子量均约为55kDa,最适pH均为4.5,与野生型无明显差别,热稳定性较野生型均有显著提高,其中突变体APPA3的最适温度为65℃,较野生酶提高5℃,在90℃处理10min后保留50%的酶活。酶的三维结构模拟显示,5个突变位点在植酸酶整体结构上均引入新氢键。结论:通过定向进化获得热稳定性提高的大肠杆菌Escherichia coli植酸酶突变体,对植酸酶的工业应用和研究植酸酶结构与功能关系具有重要意义。  相似文献   

8.
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   

9.
为了研究木兰假丝酵母(Candida magnolia)中的醇脱氢酶(alcohol dehydrogenase)3(ADH3)的突变酶(AIDI)的纯化、酶学性质以及不对称还原合成(3R,5S)-6-氯-3,5-二羟基己酸叔丁酯的能力。首先对AIDI进行(NH_4)_2SO_4沉淀、透析以及DEAE Sepharose离子交换层析。将纯化后的酶用于最适温度、pH、有机溶剂耐受等酶学性质的研究,同时考察底物浓度对催化效率的影响。结果发现:通过纯化获得了电泳纯的AIDI。酶的最适温度为40℃,最适pH为7.0。该醇脱氢酶的热稳定性较好,对环境pH的变化不敏感,在pH 4~8之间较为稳定。部分金属离子对该酶的活性具有抑制作用,特别是Fe2+对其具有显著抑制作用。在0.1 mol/L、pH 7.0的Na_3PO_4缓冲液中,底物质量浓度为50 g/L,30℃转化24 h,转化率能达到94%。  相似文献   

10.
从天蓝色链霉菌Streptomyces coelicolor克隆得到海藻糖合酶基因 (ScTreS),在大肠杆菌Escherichia coli BL21(DE3) 中进行了异源表达,通过 Ni-NTA 亲和柱对表达产物进行分离纯化得到纯酶,经 SDS-PAGE 测定其分子量约为62.3 kDa。研究其酶学性质发现该酶最适温度35 ℃;最适pH 7.0,对酸性条件比较敏感。通过同源建模和序列比对分析,对该基因进行定点突变。突变酶K246A比酶活比野生酶提高了1.43倍,突变酶A165T相对提高了1.39倍,海藻糖转化率分别提高了14%和10%。利用突变体重组菌K246A进行全细胞转化优化海藻糖的合成条件并放大进行5 L罐发酵,结果表明:在麦芽糖浓度300 g/L、初始反应温度和pH分别为35 ℃和7.0的条件下,转化率最高达到71.3%,产量为213.93 g/L;当底物浓度增加到700 g/L时,海藻糖产量仍可达到465.98 g/L。  相似文献   

11.
Engineering of phytase for improved activity at low pH   总被引:4,自引:0,他引:4  
For industrial applications in animal feed, a phytase of interest must be optimally active in the pH range prevalent in the digestive tract. Therefore, the present investigation describes approaches to rationally engineer the pH activity profiles of Aspergillus fumigatus and consensus phytases. Decreasing the negative surface charge of the A. fumigatus Q27L phytase mutant by glycinamidylation of the surface carboxy groups (of Asp and Glu residues) lowered the pH optimum by ca. 0.5 unit but also resulted in 70 to 75% inactivation of the enzyme. Alternatively, detailed inspection of amino acid sequence alignments and of experimentally determined or homology modeled three-dimensional structures led to the identification of active-site amino acids that were considered to correlate with the activity maxima at low pH of A. niger NRRL 3135 phytase, A. niger pH 2.5 acid phosphatase, and Peniophora lycii phytase. Site-directed mutagenesis confirmed that, in A. fumigatus wild-type phytase, replacement of Gly-277 and Tyr-282 with the corresponding residues of A. niger phytase (Lys and His, respectively) gives rise to a second pH optimum at 2.8 to 3.4. In addition, the K68A single mutation (in both A. fumigatus and consensus phytase backbones), as well as the S140Y D141G double mutation (in A. fumigatus phytase backbones), decreased the pH optima with phytic acid as substrate by 0.5 to 1.0 unit, with either no change or even a slight increase in maximum specific activity. These findings significantly extend our tools for rationally designing an optimal phytase for a given purpose.  相似文献   

12.
Previously, we determined the DNA and amino acid sequences as well as biochemical and biophysical properties of a series of fungal phytases. The amino acid sequences displayed 49-68% identity between species, and the catalytic properties differed widely in terms of specific activity, substrate specificity, and pH optima. With the ultimate goal to combine the most favorable properties of all phytases in a single protein, we attempted, in the present investigation, to increase the specific activity of Aspergillus fumigatus phytase. The crystal structure of Aspergillus niger NRRL 3135 phytase known at 2.5 A resolution served to specify all active site residues. A multiple amino acid sequence alignment was then used to identify nonconserved active site residues that might correlate with a given favorable property of interest. Using this approach, Gln27 of A. fumigatus phytase (amino acid numbering according to A. niger phytase) was identified as likely to be involved in substrate binding and/or release and, possibly, to be responsible for the considerably lower specific activity (26.5 vs. 196 U x [mg protein](-1) at pH 5.0) of A. fumigatus phytase when compared to Aspergillus terreus phytase, which has a Leu at the equivalent position. Site-directed mutagenesis of Gln27 of A. fumigatus phytase to Leu in fact increased the specific activity to 92.1 U x (mg protein)(-1), and this and other mutations at position 27 yielded an interesting array of pH activity profiles and substrate specificities. Analysis of computer models of enzyme-substrate complexes suggested that Gln27 of wild-type A. fumigatus phytase forms a hydrogen bond with the 6-phosphate group of myo-inositol hexakisphosphate, which is weakened or lost with the amino acid substitutions tested. If this hydrogen bond were indeed responsible for the differences in specific activity, this would suggest product release as the rate-limiting step of the A. fumigatus wild-type phytase reaction.  相似文献   

13.
Engineering of the PhoN enzyme of Salmonella typhimurium due to its superior characteristics for bioremediation of heavy metals has been advocated by Macaskie and colleagues [Basnakova, G., Stephens, E.R., Thaller, M.C., Rossolini, G.M., Macaskie, L.E., 1998. The use of Escherichia coli bearing a phoN gene for the removal of uranium and nickel from aqueous flows. Appl. Microbiol. Biotechnol. 50, 266-272]. The native enzyme hydrolyzes disparate organophosphates and exhibits optimal phosphatase activity at pH 5.5, for instance, with substrate p-nitrophenyl phosphate. Structurally guided Ile-78 was mutated using site-directed mutagenesis to Ala, Asp and His residues, with an aim to shift the optimum pH of the PhoN enzyme. Encouragingly, the I78A mutant displays significantly higher (as high as 160%) enzymatic efficiency over a broad pH range of 3.0-9.0, compared to the wild-type PhoN. The higher catalytic efficiency is due to the increase in k(cat), and can be mainly attributed to a deshielding of catalytic His-158 from the bulk-solvent. The I78D mutant possesses nearly twice the specific activity at the optimum pH of 7.0. The alkaline shift of the pH-activity profile agrees well with reasoning based on electrostatics. An increase in K(m), however, lowers the catalytic efficiency of the I78D mutant at the optimum pH. The I78H mutant, counter-intuitively, also exhibits an alkaline shift in the pH-optimum. Nonetheless, the active site scaffold in I78H mutant may not be disturbed, as similar steady-state kinetic parameters are observed for both I78H mutant and wild-type PhoN at their respective pH optima.  相似文献   

14.
Site-directed mutagenesis of a thermostable alkaline phytase from Bacillus sp. MD2 was performed with an aim to increase its specific activity and activity and stability in an acidic environment. The mutation sites are distributed on the catalytic surface of the enzyme (P257R, E180N, E229V and S283R) and in the active site (K77R, K179R and E227S). Selection of the residues was based on the idea that acid active phytases are more positively charged around their catalytic surfaces. Thus, a decrease in the content of negatively charged residues or an increase in the positive charges in the catalytic region of an alkaline phytase was assumed to influence the enzyme activity and stability at low pH. Moreover, widening of the substrate-binding pocket is expected to improve the hydrolysis of substrates that are not efficiently hydrolysed by wild type alkaline phytase. Analysis of the phytase variants revealed that E229V and S283R mutants increased the specific activity by about 19% and 13%, respectively. Mutation of the active site residues K77R and K179R led to severe reduction in the specific activity of the enzyme. Analysis of the phytase mutant-phytate complexes revealed increase in hydrogen bonding between the enzyme and the substrate, which might retard the release of the product, resulting in decreased activity. On the other hand, the double mutant (K77R-K179R) phytase showed higher stability at low pH (pH 2.6-3.0). The E227S variant was optimally active at pH 5.5 (in contrast to the wild type enzyme that had an optimum pH of 6) and it exhibited higher stability in acidic condition. This mutant phytase, displayed over 80% of its initial activity after 3 h incubation at pH 2.6 while the wild type phytase retained only about 40% of its original activity. Moreover, the relative activity of this mutant phytase on calcium phytate, sodium pyrophosphate and p-nitro phenyl phosphate was higher than that of the wild type phytase.  相似文献   

15.
Phytases are of biotechnological importance as animal feed additives for their ability to catalyze the hydrolysis of phosphate from phytate for absorption by simple-stomached animals, and to reduce their fecal phosphorus excretion. Aspergillus niger PhyB has high catalytic activity at low pHs around 2.5, but has little activity at the commonly observed gastric pH of young animals (3.0–3.5). Our objective was to determine if the pH optima of PhyB could be broadened to a more characteristic pH range in the stomach of young animals through site-directed mutagenesis. We created two mutants, E272K and E272Q, each with a single amino acid substitution of the same residue in the substrate specificity site. Mutants were designed to replace an acidic amino acid, with either a neutral amino acid (E272Q) or basic amino acid (E272K), and were overexpressed in the yeast Pichia pastoris. While the wild-type (WT) pH optimum was 2.5, mutant E272K shifted to a new optimum of pH 3.2. E272K had a concomitant reduction in K m of 36-fold at pH 2.5 and 6-fold at pH 3.2 compared to the WT. Our results indicate that the pH optimum of PhyB can be altered to match the stomach pH, along with an improved substrate affinity.  相似文献   

16.
The monomer-dimer equilibrium for the human immunodeficiency virus type 1 (HIV-1) protease has been investigated under physiological conditions. Dimer dissociation at pH 7.0 was correlated with a loss in beta-sheet structure and a lower degree of ANS binding. An autolysis-resistant mutant, Q7K/L33I/L63I, was used to facilitate sedimentation equilibrium studies at neutral pH where the wild-type enzyme is typically unstable in the absence of bound inhibitor. The dimer dissociation constant (KD) of the triple mutant was 5.8 microM at pH 7.0 and was below the limit of measurement (approximately 100 nM) at pH 4.5. Similar studies using the catalytically inactive D25N mutant yielded a KD value of 1.0 microM at pH 7.0. These values differ significantly from a previously reported value of 23 nM obtained indirectly from inhibitor binding measurements (Darke et al., 1994). We show that the discrepancy may result from the thermodynamic linkage between the monomer-dimer and inhibitor binding equilibria. Under conditions where a significant degree of monomer is present, both substrates and competitive inhibitors will shift the equilibrium toward the dimer, resulting in apparent increases in dimer stability and decreases in ligand binding affinity. Sedimentation equilibrium studies were also carried out on several drug-resistant HIV-1 protease mutants: V82F, V82F/I84V, V82T/I84V, and L90M. All four mutants exhibited reduced dimer stability relative to the autolysis-resistant mutant at pH 7.0. Our results indicate that reductions in drug affinity may be due to the combined effects of mutations on both dimer stability and inhibitor binding.  相似文献   

17.
A thermostable glucose dehydrogenase (GlcDH) mutant of Bacillus megaterium IWG3 harboring the Q252L substitution (Y. Makino, S. Negoro, I. Urabe, and H. Okada, J. Biol. Chem. 264:6381-6385, 1989) is stable at pH values above 9, but only in the presence of 2 M NaCl. Another GlcDH mutant exhibiting increased stability at an alkaline pH in the absence of NaCl has been isolated previously (S.-H. Baik, T. Ide, H. Yoshida, O. Kagami, and S. Harayama, Appl. Microbiol. Biotechnol. 61:329-335, 2003). This mutant had two amino acid substitutions, Q252L and E170K. In the present study, we characterized three GlcDH mutants harboring the substitutions Q252L, E170K, and Q252L/E170K under low-salt conditions. The GlcDH mutant harboring two substitutions, Q252L/E170K, was stable, but mutants harboring a single substitution, either Q252L or E170K, were unstable at an alkaline pH. Gel filtration chromatography analyses demonstrated that the oligomeric state of the Q252/E170K enzyme was stable, while the tetramers of the enzymes harboring a single substitution (Q252L or E170K) dissociated into dimers at an alkaline pH. These results indicated that the Q252L and E170K substitutions synergistically strengthened the interaction at the dimer-dimer interface. The crystal structure of the E170K/Q252L mutant, determined at 2.0-angstroms resolution, showed that residues 170 and 252 are located in a hydrophobic cavity at the subunit-subunit interface. We concluded that these residues in the wild-type enzyme have thermodynamically unfavorable effects, while the Q252L and E170K substitutions increase the subunit-subunit interactions by stabilizing the hydrophobic cavity.  相似文献   

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