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1.
卤醇脱卤酶(Halohydrin dehalogenase)不仅对于含氯污染物的生物降解、净化环境具有重要意义,而且在手性医药中间体合成中也是一种重要的生物催化剂,但其数量较少。采用基因挖掘在基因组数据库中获得一种来自运动替斯崔纳菌Tistrella mobilis KA081020-065的新型卤醇脱卤酶基因Hhe TM,将该基因克隆、表达在大肠杆菌BL21(DE3)中,利用镍柱亲和层析将该酶进行纯化并研究了其酶学性质。Hhe TM是一种同源四聚体;最适温度为50℃;不同的p H缓冲液对其活性有较大影响;在碱性、30℃以下的条件下稳定性高。在氰根离子存在的条件下,Hhe TM能够催化(S)-4-氯-3-羟基丁酸乙酯合成(R)-4-氰基-3-羟基丁酸乙酯,为酶法合成阿托伐他汀关键中间体提供了一种新的卤醇脱卤酶。 相似文献
2.
卤醇脱卤酶是细菌降解环境中重要污染物有机卤化物的关键酶之一,具有与其他已知脱卤酶不同的脱卤机制。它是一类通过分子内亲核取代机制催化邻卤醇转化为环氧化物的脱卤酶,可以高效催化有机邻卤醇进行脱卤反应,在治理环境污染方面具有十分重要作用。此外,在催化环氧化物和邻卤醇之间的转化反应中,卤醇脱卤酶具有很高的立体选择性,因而在手性药物合成方面也有广阔的应用前景。我们着重从卤化物生物降解途径、脱卤机制及应用等方面介绍了卤醇脱卤酶的最新研究进展,同时对卤醇脱卤酶改造的新方法进行了阐述与展望。 相似文献
3.
根据GenBank中的序列设计引物,克隆芽孢杆菌中的β-脱卤酶基因(命名为bhd)。以pET30a(+)为载体、Escherichia coli BL21(DE3)-CondonPlus为宿主菌,实现了bhd的高效表达。使用HisTrapTMFF亲和层析柱纯化重组β-脱卤酶,分子量约为23.1 kD。酶学性质研究表明,纯化的重组β-脱卤酶水解3-氯丙酸制备3-羟基丙酸的最适反应体系为30°C,100 mmol/L,pH 7.0的磷酸钠缓冲液。在最适反应条件下,重组β-脱卤酶的比活为16.2 U/mg,Km和Vmax分别为3.26μmol/L和17.86 mmol/(min.g protein)。在最适反应条件下,以10 mmol/L 3-氯丙酸为底物,反应36 h的转化率在93%以上。 相似文献
4.
【背景】β-葡聚糖是自然界中广泛存在的非淀粉多糖,是谷类植物细胞壁的主要成分。β-葡聚糖酶能够水解β-葡聚糖生成低聚合度的寡糖,在食品、饲料、造纸等领域发挥着重要的作用。【目的】从海洋细菌沙质微泡菌(Microbulbifer arenaceous)中克隆到一个β-1,3(4)-葡聚糖酶基因,在大肠杆菌中可溶表达,研究其相关酶学性质。【方法】以沙质微泡菌(Microbulbifer arenaceous)基因组DNA为模板,克隆一个β-1,3(4)-葡聚糖酶基因(MaGlu16A),构建重组表达载体p ET-28a-MaGlu16A并在大肠杆菌BL21(DE3)中诱导表达,通过Ni-NTA亲和层析纯化后进行酶学性质研究。【结果】MaGlu16A的最适pH和最适温度分别为pH 6.0和40°C,在pH 5.0-10.5和35°C以下稳定。对EDTA具有较高的抵抗性,在1 mmol/L和10 mmol/L EDTA浓度下仍保持99.3%和82.5%的酶活力。该酶能够有效水解可得然多糖、昆布多糖、大麦葡聚糖、地衣多糖、燕麦葡聚糖和酵母葡聚糖,水解产物主要为葡萄糖、二糖、三糖和四糖。【结论】海... 相似文献
5.
对实验室保藏菌种进行筛选,得到一株葡萄汁酵母Saccharomyces uvarum SW-58,对其产酶条件进行优化,其发酵培养基组成:醋酸钠60 g/L,玉米浆30 g/L,KH2PO46 g/L,MgSO4.7H2O 1 g/L;培养条件为:发酵温度30℃,初始pH 6.0,发酵周期36 h。4,4,4-三氟乙酰乙酸乙酯羰基还原酶酶活最高可达388.1 U/L,产物的浓度由优化前的3.5 g/L提高到4.6 g/L,所得产物的光学纯度由优化前的60.8%e.e.提高到85.0%e.e。 相似文献
6.
采用盐析、DE 52、Q-Sepharose Fast Flow阴离子交换层析、Toyopearl Butyl 650C疏水层析以及Sephacryl S-300 HR凝胶过滤层析联用的方法, 从Leifsonia shinshuensis DICP 16菌体中纯化出一种β-木糖苷酶.分离后该酶在SDS-PAGE 上呈单一蛋白质条带, 通过SDS-PAGE和凝胶过滤层析法, 测得该酶是一个由两个分子量约为91 kD的相同亚基组成的同源二聚体.其水解对硝基苯酚木糖苷(pNPX)的最适反应温度为55°C, pH值为7.0.该木糖苷酶在45°C以下, pH 6.0~11.0之间具有很好的稳定性.在45°C, pH值为7.0的条件下, 水解pNPX的Km, Vmax分别为1.04 mmol/L, 0.095 mmol/(min·mg).研究不同的金属离子对该酶的活性影响, 发现Fe2+和Cu2+是很强的抑制剂.通过对天然木糖苷化合物的水解测试, 发现该酶可以水解人参皂苷Rb3的木糖基, 产生人参皂苷Rd, 却不能水解紫杉烷木糖苷的木糖基. 相似文献
7.
聚对苯二甲酸乙二醇酯[poly(ethylene terephthalate),PET]降解酶的发掘是国内外研究的热点。双(2-羟乙基)对苯二甲酸酯[bis-(2-hydroxyethyl)terephthalic acid,BHET]是PET降解过程的一种中间化合物,会与PET竞争酶的底物结合位点,从而抑制PET进一步降解。因此,探寻新型BHET降解酶,对进一步提高PET的降解效率具有促进作用。本研究通过基因挖掘发现了一种来源于浅黄糖丝菌(Saccharothrix luteola)参与PET降解过程的水解酶基因sle(ID:CP064192.1,5085270–5086049),其编码的蛋白质可以将BHET水解为单(2-羟乙基)对苯二甲酸酯[mono-(2-hydroxyethyl)terephthalate,MHET]和对苯二甲酸(terephthalic acid,TPA)。将BHET水解酶(Sle)通过重组质粒在大肠杆菌(Escherichia coli)中异源表达,结果表明,在异丙基-β-D-硫代半乳糖苷(isopropyl-β-D-thiogalactoside,IPTG)诱导终浓度为0.4 mmol/L,诱导时长为12 h,诱导温度为20℃时蛋白的表达量最高。通过镍亲和层析、阴离子交换层析和凝胶过滤层析3步分离纯化,获得了高纯度的Sle重组蛋白;同时对其酶学性质进行了表征,Sle最适温度和pH分别为35℃和8.0,在25–35℃和pH 7.0–9.0区间内能保持80%以上的残余酶活,且金属离子Co^(2+)能提高酶活力;进一步通过同源序列及Sle复合物结构分析得知,该酶属于二烯酸内酯水解酶(dienelactone hydrolase,DLH)家族,具备该家族典型的催化三联体,预测其催化位点分别为S129、D175和H207,并初步分析了其催化机理。最后,利用高效液相色谱法(high performance liquid chromatography,HPLC)鉴定了该酶能够特异性降解BHET生成MHET和TPA,属于BHET降解酶。本研究为生物酶法高效降解PET塑料提供了新的酶资源。 相似文献
8.
本文将来自反硝化无色杆菌Achromobacterdenitrificans1104的酯酶基因EHest,转化大肠杆菌中,成功表达了具有不对称水解农药甲霜灵的中间体(R,S)-2,6-二甲基苯基氨基丙酸甲酯( MAP )活性的酯酶EHesterase。用重组酯酶EHesterase催化MAP 的水解,底物浓度50 g/L,反应1h的转化率29.5%,产物( R-酸)的eep 是85.1%。该酶的最适反应pH和温度分别为9.0和50℃,在50℃以下和pH5~9之间具有较好的稳定性。该酶水解MAP 的米氏动力学参数Vm、Km 分别是0.733 g/(L·min)和7.49 g/L。加入10%DMSO对酶EHesterase的立体选择性和催化速度有一定的促进作用。 Cu2+、Fe3+对酶活有明显抑制作用。该酶水解MAP 的活性与水解p-对硝基苯乙酸酯的活性数量级相当,是水解橄榄油活性的333倍。 相似文献
9.
摘要:【目的】干酪乳杆菌广泛的应用于食品加工和饲料行业,本研究拟构建表达甘露聚糖酶的重组干酪乳杆菌并进行相关评价。【方法】利用干酪乳杆菌表达载体pELX1和pELSH,将短小芽孢杆菌的β-1,4-甘露聚糖酶成熟肽的基因克隆到上述两个载体中,构建的重组质粒电转化到干酪乳杆菌宿主中,分别构建能够胞内表达和分泌表达甘露聚糖酶的重组干酪乳杆菌。【结果】重组干酪乳杆菌菌株经培养后,胞内表达的β-1,4-甘露聚糖酶在重组细胞总蛋白中最高可达23 U/mg,分泌表达培养基上清的β-1,4-甘露聚糖酶最高达到8.8 U/mL。【结论】本研究首次实现了甘露聚糖酶在干酪乳杆菌中的表达,结果表明该重组干酪乳杆菌具有较大的应用前景,值得进一步研究。 相似文献
10.
【目的】通过表达多种重组立体选择性氧化还原酶,分析其催化不对称还原N,N-二甲基-3-酮-3-(2-噻吩)-1-丙胺(DKTP)的性质,从而构建酶促合成(S)-N,N-二甲基-3-羟基-3-(2-噻吩)-1-丙胺(DHTP)的反应体系。【方法】基于已有立体选择性氧化还原酶重组大肠杆菌,通过Ni离子亲和层析法纯化得到重组氧化还原酶,以DKTP为底物,考察不同重组氧化还原酶对DKTP的催化活性和选择性,进一步对高选择性酶促合成(S)-DHTP的重组酶CR2进行性质分析,并考察其在最适条件下不对称还原DKTP的过程。【结果】筛选获得产物构型为(S)-型的催化活性最高的酶为CR2,该酶米氏常数Km为0.135 mmol/L,kcat/Km为3.689 L/(mmol·s),最适p H 8.4(0.1 mol/L三乙醇胺缓冲液),最适反应温度为35°C,在10-45°C条件下和p H 7.5-8.5较为稳定,Zn2+离子对酶活有促进作用。CR2催化DKTP不对称还原反应6 h后,DHTP的产率达92.1%、光学纯度达99.9%。【结论】基于活性和选择性分析,获得不对称还原DKTP的目标酶CR2,其催化特性有利于高立体选择性还原DKTP生成度洛西汀中间体(S)-DHTP,从而为进一步提高酶促不对称还原DKTP的转化效率提供研究基础。 相似文献
11.
A haloalkane dehalogenase, DpcA, from Psychrobacter cryohalolentis K5, representing a novel psychrophilic member of the haloalkane dehalogenase family, was identified and biochemically characterized. DpcA exhibited a unique temperature profile with exceptionally high activities at low temperatures. The psychrophilic properties of DpcA make this enzyme promising for various environmental applications. 相似文献
12.
A gene encoding halohydrin dehalogenase (HHDH) from Agrobacterium tumefaciens CCTCC M 87071 was cloned and expressed in Escherichia coli. To increase activity and stability of HHDH, 14 amino acid residues around the active site and substrate-binding pocket based on the structural analysis and molecular docking were selected as targets for site-directed mutagenesis. The studies showed that the mutant HHDH (Mut-HHDH) enzyme had a more accessible substrate-binding pocket than the wild-type HHDH (Wt-HHDH). Molecular docking revealed that the distance between the substrate and active site was closer in mutant which improved the catalytic activity. The expressed Wt-HHDH and Mut-HHDH were purified and characterized using 1,3-dichloro-2-propanol (1,3-DCP) as substrates. The specific activity of the mutant was enhanced 26-fold and the value of k cat was 18.4-fold as compared to the Wt-HHDH, respectively. The Mut-HHDH showed threefold extension of half-life at 45 °C than that of Wt-HHDH. Therefore it is possible to add 1,3-DCP concentration up to 100 mM and epichlorohydrin (ECH) was produced at a relatively high conversion and yield (59.6 %) using Mut-HHDH as catalyst. This Mut-HHDH could be a potential candidate for the upscale production of ECH. 相似文献
13.
Halohydrin dehalogenase (HheC) from Agrobacterium radiobacter AD1 catalyzes the reversible intramolecular nucleophilic displacement of a halogen by a hydroxyl group in vicinal haloalcohols, producing the corresponding epoxides. The enzyme displays high enantioselectivity toward some aromatic halohydrins. To understand the kinetic mechanism and enantioselectivity of the enzyme, steady-state and pre-steady-state kinetic analysis was performed with p-nitro-2-bromo-1-phenylethanol (PNSHH) as a model substrate. Steady-state kinetic analyses indicated that the k(cat) of the enzyme with the (R)-enantiomer (22 s(-1)) is 3-fold higher than with the (S)-enantiomer and that the K(m) for the (R)-enantiomer (0.009 mM) is about 45-fold lower than that for the (S)-enantiomer, resulting in a high enantiopreference for the (R)-enantiomer. Product inhibition studies revealed that HheC follows an ordered Uni Bi mechanism for both enantiomers, with halide as the first product to be released. To identify the rate-limiting step in the catalytic cycle, pre-steady-state experiments were performed using stopped-flow and rapid-quench methods. The results revealed the existence of a pre-steady-state burst phase during conversion of (R)-PNSHH, whereas no such burst was observed with the (S)-enantiomer. This indicates that a product release step is rate-limiting for the (R)-enantiomer but not for the (S)-enantiomer. This was further examined by doing single-turnover experiments, which revealed that during conversion of the (R)-enantiomer the rate of bromide release is 21 s(-1). Furthermore, multiple turnover analyses showed that the binding of (R)-PNSHH is a rapid equilibrium step and that the rate of formation of product ternary complex is 380 s(-1). Taken together, these findings enabled the formulation of an ordered Uni Bi kinetic mechanism for the conversion of (R)-PNSHH by HheC in which all of the rate constants are obtained. The high enantiopreference for the (R)-enantiomer can be explained by weak substrate binding of the (S)-enantiomer and a lower rate of reaction at the active site. 相似文献
14.
Halohydrin dehalogenases are remarkable enzymes which possess promiscuous catalytic activity and serve as potential biocatalysts for the synthesis of chiral halohydrins, epoxides and β-substituted alcohols. The enzyme HheC exhibits a highly R enantioselectivity in the processes of dehalogenation of vicinal halohydrins and ring-opening of epoxides, which attracts more attentions in organic synthesis. Recently dozens of novel potential halohydrin dehalogenases have been identified by gene mining, however, most of the characterized enzymes showed low stereoselectivity. In this study, a novel halohydrin dehalogenase of HheA10 from Tsukamurella sp. 1534 has been heterologously expressed, purified and characterized. Substrate spectrum and kinetic resolution studies indicated the HheA10 was a highly S enantioselective enzyme toward several halohydrins, which produced the corresponding epoxides with the ee (enantiomeric excess) and E values up to >99% and >200 respectively. Our results revealed the HheA10 was a promising biocatalyst for the synthesis of enantiopure aromatic halohydrins and epoxides via enzymatic kinetic resolution of racemic halohydrins. What’s more important, the HheA10 as the first individual halohydrin dehalogenase with the highly S enantioselectivity provides a complementary enantioselectivity to the HheC. 相似文献
16.
The biocatalytic cascade conversion of ethyl 4-chloroacetoacetate (COBE) to ethyl ( R)-4-cyano-3-hydroxybutyrate (( R)-HN) for the preparation of atorvastatin represents significant economic and environmental benefits, and is catalyzed by alcohol dehydrogenase and halohydrin dehalogenase (HHDH). However, as the activity of HHDH is inhibited by COBE, the cascade reaction is an inefficient one-pot reaction. In this study, substrate inhibition kinetics analysis was performed and the inhibition by COBE was found to be competitive reversible inhibition. Molecular simulation analysis was used to determine the inhibition mechanism by COBE. The results showed that COBE bound to the active center of HHDH via the formation of hydrogen bonds with the OH groups of S132 and Y145. Site saturation mutagenesis of residues around the active site and at the entrance of the access tunnel was performed, and two target mutant residues were identified, F136 and W249. Small focused mutagenesis on these two residues was performed and the F136V/W249F mutant was successfully found to relieve the activity inhibition of HHDH by COBE. The half inhibiting concentration of mutant F136V/W249F was found to be 20-fold higher than wild-type HHDH. The efficiency of the multi-enzymatic one-pot system for the synthesis of ( R)-HN from COBE using mutant F136V/W249F was improved significantly. 相似文献
17.
A gene (tap) encoding a thermostable alkaline phosphatase from the thermophilic bacterium Thermus thermophilus XM was cloned and sequenced. It is 1506 bp long and encodes a protein of 501 amino acid residues with a calculated molecular mass of 54.7 kDa. Comparison of the deduced amino acid sequence with other alkaline phosphatases showed that the regions in the vicinity of the phosphorylation site and metal binding sites are highly conserved. The recombinant thermostable alkaline phosphatase was expressed as a His6-tagged fusion protein in Escherichia coli and its enzymatic properties were characterized after purification. The pH and temperature optima for the recombinant thermostable alkaline phosphatases activity were pH 12 and 75 ℃. As expected, the enzyme displayed high thermostability, retaining more than 50% activity after incubating for 6 h at 80 ℃. Its catalytic function was accelerated in the presence of 0.1 mM Co^2+, Fe^2+, Mg^2+, or Mn^2+ but was strongly inhibited by 2.0 mM Fe^2+. Under optimal conditions, the Michaelis constant (Kin) for cleavage of p-nitrophenyl-phosphate was 0.034 mM. Although it has much in common with other alkaline phosphatases, the recombinant thermostable alkaline phosphatase possesses some unique features, such as high optimal pH and good thermostability. 相似文献
18.
An equol-producing bacterium was newly isolated from the feces of healthy humans and its morphological and biochemical properties were characterized. The cells were obligate anaerobes. They were non-sporulating, non-motile, gram-positive bacilliform bacteria with a pleomorphic morphology. The strain was catalase-positive, and oxidase-, urease-, and indole-negative. The only other sugar utilized by the strain was glycerin. The strain also degraded gelatin, but not esculin. It was most closely related to Eggerthella hongkongensis HKU10, with 93.3% 16S rDNA nucleotide sequence homology. Based on these features, the isolate was identified as a novel species of the genus Eggerthella. It was named Eggerthella sp. YY7918. Strain YY7918 converted substrates daidzein and dihydrodaidzein into S-equol, but did not convert daidzin, glysitein, genistein, or formononetin into it. An antimicrobial susceptibility assay indicated that strain YY7918 was susceptible to aminoglycoside-, tetracycline-, and new quinolone-antibiotics. 相似文献
19.
As a crucial factor for biocatalysts, protein thermostability often arises from a combination of factors that are often difficult to rationalize. In this work, the thermostable nature of halohydrin dehalogenase from Agrobacterium radiobacter AD1 (HheC) was systematically explored using a combinatorial directed evolution approach. For this, a mutagenesis library of HheC mutants was first constructed using error-prone PCR with low mutagenesis frequency. After screening approximately 2000 colonies, six mutants with eight mutation sites were obtained. Those mutation sites were subsequently combined by adopting several rounds of iterative saturation mutagenesis (ISM) approach. After four rounds of saturation mutagenesis, one best mutant ISM-4 with a 3400-fold improvement in half-life (t
1/2) inactivation at 65 °C, 18 °C increase in apparent T
m value, and 20 °C increase in optimum temperature was obtained, compared to wild-type HheC. To the best of our knowledge, the mutant represents the most thermostable HheC variant reported up to now. Moreover, the mutant was as active as wild-type enzyme for the substrate 1,3-dichloro-2-propanol, and they remained most enantioselectivity of wild-type enzyme in the kinetic resolution of rac-2-chloro-1-phenolethanol, exhibiting a great potential for industrial applications. Our structural investigation highlights that surface loop regions are hot spots for modulating the thermostability of HheC, the residues located at these regions contribute to the thermostability of HheC in a cooperative way, and protein rigidity and oligomeric interface connections contribute to the thermostability of HheC. All of these essential factors could be used for further design of an even more thermostable HheC, which, in turn, could greatly facilitate the application of the enzyme as a biocatalyst. 相似文献
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