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1.
孙莹  张荣珍  徐岩 《微生物学报》2008,48(12):1629-1633
【目的】通过研究(R)-专一性羰基还原酶和甲酸脱氢酶基因在大肠杆菌中的共表达,解决较高底物浓度下不对称转化反应的辅酶限制性问题。【方法】分别以近平滑假丝酵母(Candida parapsilosis CCTCC M203011)和博伊丁假丝酵母(Candida boidinii)基因组为模板,采用PCR方法扩增得到(R)-专一性羰基还原酶基因(rcr)和甲酸脱氢酶基因(fdh),克隆到共表达载体pETDuetTM-1中进行表达。共表达质粒pETDuet-rcr-fdh转化稀有密码子优化型菌株E. coli Rosetta,获得重组菌E. coli Rosetta/pETDuet-rcr-fdh。【结果】在30℃条件下,经1 mmol/L IPTG诱导表达8 h后,SDS-PAGE结果表明(R)-专一性羰基还原酶和甲酸脱氢酶均有明显的表达,其相对分子质量分别为37 kDa和 40 kDa。以高浓度(6 g/L)2-羟基苯乙酮为底物时,0.1 g重组菌细胞催化产生(R)-苯基乙二醇,产物光学纯度为100% e.e.,产率为85.9%。与无甲酸脱氢酶参与辅酶再生循环的重组菌E. coli Rosetta/pETDuet-rcr相比,产物光学纯度和产率分别提高了1.3和2.7倍。【讨论】该重组菌的构建为基因工程法生物合成(R)-苯基乙二醇的工业应用奠定了基础。  相似文献   

2.
为开发催化4-氯乙酰乙酸乙酯(COBE)制备(R)-4-氯-3-羟基丁酸乙酯((R)-CHBE)的新型催化剂,挖掘到了来自白色念珠菌SC5314中的一种NADPH辅酶依赖型醛酮还原酶CAK基因(cak),并将该基因在大肠杆菌中表达。将重组酶进行纯化后,测定其酶学性质,并构建了以葡萄糖为辅底物的双酶偶联辅酶再生系统,考察其不对称转化制备(R)-CHBE的能力。结果表明:CAK对多种醛酮类化合物有催化活性,其催化COBE的最适反应温度为40℃,最适p H为5。CAK在40℃下以及酸性条件中能保持较好的稳定性。Mg2+、Na+、K+对酶活有一定的激活作用,而Cu2+存在条件下酶会彻底失活。乙酸乙酯、邻苯二甲酸二丁酯对酶活的抑制作用较小。利用双酶偶联辅酶再生系统不对称转化制备(R)-CHBE。在合适的条件下,转化600 mmol/L的底物,产率达80.6%,产物对映体过量值(e.e.值)99%。  相似文献   

3.
以外消旋4-氯-3-羟基丁酸乙酯为唯一C源的富集培养筛选得到一株菌株WZ009,经16S rDNA测序鉴定为巨大芽胞杆菌(Bacillus megaterium)。B.megaterium WZ009静息细胞可以立体选择性催化(S)-4-氯-3-羟基丁酸乙酯水解和脱氯反应得到光学纯的(R)-4-氯-3-羟基丁酸乙酯(e.e.≥99%)和(S)-3-羟基-γ-丁内酯(e.e.≥95%)。笔者对B.megaterium WZ009不对称催化反应影响因素(温度、pH、中和剂、底物浓度、时间进程以及细胞重复利用)进行优化研究,确定了该反应体系最优条件:底物浓度200 mmol/L,中和剂氨水,pH 7.2,40℃反应12 h,转化率达到50.6%,底物对映体过量值为99.6%。该生物催化合成(R)-4-氯-3-羟基丁酸乙酯和(S)-3-羟基-γ-丁内酯过程具有良好的工业化应用前景。  相似文献   

4.
【目的】探讨红串红球菌中一种醇脱氢酶的性质及其对酮酯类及酮类底物的催化能力。【方法】从红串红球菌(Rhodococcus erythropolis ATCC 4277)中获取一段长度为1047 bp的醇脱氢酶(adh)基因,插入载体pET-22b(+)后,在大肠杆菌中进行重组表达。15℃的低温下用自诱导培养基诱导24 h,以苯乙酮为底物测定醇脱氢酶酶活。【结果】测得该诱导条件下重组菌体细胞破碎上清中醇脱氢酶酶活力为2.6 U/mg。经温度、pH耐受性等分析,发现该酶最适pH在6.0-6.5之间,耐受温度可以达到60℃,并且在该温度下保持5 h后,酶活也能保留80%。对于β酮酯类底物的催化反应,以对乙酰乙酸乙酯的催化能力最高。用4-氯乙酰乙酸乙酯(COBE)为底物进行全细胞水相催化反应,经手性液相色谱分析,发现在催化产物以R型4-氯-3羟基丁酸乙酯(CHBE)为主。【结论】该酶在酮酯类的底物转化方面有良好的开发潜力及应用前景。  相似文献   

5.
基于基因组序列数据库挖掘新酶的技术,从白色念珠菌Candida albicans基因组中克隆了一条新型醇脱氢酶(CADH)基因,并在大肠杆菌Escherichia coli Rosetta(DE3)中表达。为克服游离酶稳定性差、不能重复使用的缺点,探索并优化了交联醇脱氢酶聚集体(CLEAs-CA)的制备条件。结果表明:重组CADH对底物四氯乙酰乙酸乙酯(COBE)的比活力为1.8 U/mg,产物(R)-4-氯-3-羟基丁酸乙酯((R)-CHBE)的对映体过量值大于99%。CLEAsCA沉淀剂选择为60%饱和度的(NH_4)_2SO_4,交联剂为10 mmol/L戊二醛。在固定化操作前,加入50 mmol/L异丙醇和0.1 mmol/L NAD~+对CADH催化活性位点、辅酶结合位点进行保护,CLEAs-CA的活力回收率提高了48.3%。将CLEAs-CA用于不对称合成(R)-CHBE,经过19次的重复使用,CLEAs-CA的活性仍保留有50%。  相似文献   

6.
【目的】微生物活动是引起食品腐败的主要原因,研究食品腐败菌的腐败作用调控机制对于保证食品的质量和安全具有重要意义。荧光假单胞菌是一种代表性的食品腐败菌,本文旨在研究RNA聚合酶的选择性sigma因子Rpo S在荧光假单胞菌致腐败过程中的作用。【方法】运用同源重组的方法构建荧光假单胞菌冷藏鱼分离株的rpo S基因缺失突变株,比较野生型和突变株暴露于不同胁迫条件下的存活率;通过液相色谱-串联质谱(LC-MS/MS)分析野生型和突变株产生高丝氨酸内酯类(AHLs)群体感应信号分子的种类和含量;检测野生型和突变株接种于灭菌三文鱼汁后4°C贮存过程中的菌落总数和挥发性盐基氮的生成量。【结果】成功构建了荧光假单胞菌rpo S基因缺失突变株。rpo S基因的缺失导致荧光假单胞菌对10 mmol/L H2O2和15%乙醇的耐受性显著降低,对150μg/m L结晶紫和175 mmol/L醋酸的耐受性有一定程度增强,不影响其对47°C和20%Na Cl的耐受性。荧光假单胞菌在rpo S基因缺失突变后长链信号分子C_(10)-HSL、C_(12)-HSL和C_(14)-HSL的含量增加。在灭菌三文鱼汁中的腐败活性检测表明rpo S基因缺失可导致荧光假单胞菌挥发性盐基氮的生成量显著降低。【结论】荧光假单胞菌的Rpo S不仅调节细菌对多种胁迫条件的耐受性,还影响AHL群体感应和腐败活性。  相似文献   

7.
【背景】Burkholderia sp. SJ98利用对硝基酚和2-氯-4-硝基酚为唯一碳源和能源进行生长,通过异源表达嗜盐古菌Haloferax sp. D1227中的超氧化物歧化酶SodA,使菌株SJ98在500 mmol/L NaCl条件下仍具有降解对硝基酚的能力。然而该重组细菌在普通和高盐条件下其降解基因的转录和降解酶比活力的高低,以及该菌在高盐条件下是否还能降解对硝基酚衍生物尚未知晓。【目的】研究Burkholderia sp. SJ98的耐盐上限,观察含有sodA的细菌SJ98在普通和高盐条件下降解对硝基酚和2-氯-4-硝基酚的能力,检测重组菌中pnpA基因的转录和硝基酚单加氧酶的活力。【方法】在添加葡萄糖、对硝基酚或2-氯-4-硝基酚的无机盐培养基(分别含400-800 mmol/L NaCl)或M9培养基(含0和500 mmol/L NaCl)中培养细菌SJ98及其重组菌。通过紫外分光光度计和高效液相色谱法检测菌株生长和底物降解。通过实时荧光定量PCR分别以两种硝基酚为诱导物,检测未添加和添加500 mmol/L NaCl时,硝基酚单加氧酶编码基因pnpA的转录量变化。利用紫外分光光度计分别以两种硝基酚为底物,检测在添加500 mmol/L NaCl时,重组菌和空载体菌的粗酶液中硝基酚单加氧酶对两种底物的活力变化。【结果】野生型菌株SJ98以葡萄糖为碳源生长的NaCl耐受浓度是600mmol/L。未添加NaCl时,重组菌SJ98[pCM-pnpR-PpnpA-sodA-rfp]生长和降解对硝基酚的能力远优于野生菌。添加500 mmol/L NaCl时,重组菌SJ98[pBBR-sodA]仍保持了利用2-氯-4-硝基苯酚底物生长和降解该底物的能力,而空载体菌SJ98[pBBR1MCS-2]的生长和降解能力完全丧失;重组菌SJ98[pBBR-sodA]粗酶液中单加氧酶对于对硝基酚和2-氯-4-硝基酚的活力均约为野生菌的1/3。分别以两种硝基酚为诱导物时,无论是否添加NaCl,重组菌SJ98[pBBR-sodA]中硝基酚单加氧酶编码基因pnpA的转录量比野生型中高出约17-25倍;但添加500 mmol/L NaCl时,pnpA的转录均受到部分抑制。【结论】本研究为利用古菌超氧化物歧化酶对细菌进行改造以提高普通环境和高盐环境中细菌降解硝基芳烃污染物能力的应用提供了潜在的可行性。  相似文献   

8.
荧光假单胞菌M18 rpoD克隆及其对抗生素合成的影响   总被引:1,自引:4,他引:1  
荧光假单胞菌M18对多种植物病原真菌具有显著的抑制作用。荧光假单胞菌(Pseuclomones fluo-rescens)M18能同时合成吩嗪-1-羧酸(PCA)和藤黄绿菌素(P1t)两种抗生素。从M18的基因组中克隆了rpoD基因,其相应的氨基酸序列与荧光假单胞菌CHAO中RpoD蛋白的氨基酸序列完全相同。利用基因重组技术和大肠杆菌-荧光假单胞菌穿梭质粒,pME6032,将rpoD置于强启动子Ptac的控制下,导入M18菌株。发现经重组质粒转化的M18,与对照相比,培养基中PCA和Plt开始累积的时间分别提前4h和8h,积累量提高1倍和6倍.  相似文献   

9.
聚羟基脂肪酸酯(PHA)是一类具有广泛应用前景的可降解生物塑料。因其可以以葡萄糖等廉价底物直接发酵生产PHA而日益受到重视。目前的研究表明在积累中长链PHA的假单胞菌中,由phaG基因编码的(R)-3-羟基酯酰载酯蛋白-辅酶A转酰基酶(PhaG)起关键作用,但目前为止对该蛋白还知之甚少。通过聚合酶链式反应(PCR)建立了一种快速、特异鉴定phaG基因的方法,应用该方法成功地从两株积累不同PHA的假单胞菌Pseudomonas stutzeri 1317和Pseudamanas nitroreducens 0802中分别克隆得到phaG基因,并在phaG基因突变株Pseudomonas putida PHAGx-21中表达成功。同时,还首次报道了从非假单胞菌菌株Burkholderia caryophylli AS 1.2741中鉴定得到phaG基因,提示PhaG介导的中长链PHA合成途径作为一种通用的代谢模式在细菌中广泛存在,为进一步实现从廉价的非相关底物合成中长链PHA提供了必要的分子生物学基础。  相似文献   

10.
通过PCR技术从粘质沙雷氏菌H3010基因组DNA中扩增出该D-乳酸脱氢酶基因,连接至pET-28a(+)表达载体,转入大肠杆菌BL21 (DE3)中进行了重组表达,优化了酶纯化的条件,并对其酶学性质进行初步研究.结果表明,获得的该酶编码基因全长993 bp,编码330个氨基酸,大小为37 kDa.经优化表达及纯化条件后重组酶纯度可达90%.酶学性质研究发现,该重组酶最适反应温度为60℃,最适酶促反应pH为7.5(0.2 mol/L磷酸盐缓冲液),37℃下测得对底物丙酮酸的动力学参数Km =3.39 mmol/L,Vmax =6.87 mmol/( mg · min),对辅酶NADH的动力学参数Km=1.43 mmol/L,Vmax=1.61 mmol/( mg· min).为酶法生产D-乳酸及利用代谢工程构建产D-乳酸的基因工程菌打下基础.  相似文献   

11.
Several Sphingomonas spp. utilize polyethylene glycols (PEGs) as a sole carbon and energy source, oxidative PEG degradation being initiated by a dye-linked dehydrogenase (PEG-DH) that oxidizes the terminal alcohol groups of the polymer chain. Purification and characterization of PEG-DH from Sphingomonas terrae revealed that the enzyme is membrane bound. The gene encoding this enzyme (pegA) was cloned, sequenced, and expressed in Escherichia coli. The purified recombinant enzyme was vulnerable to aggregation and inactivation, but this could be prevented by addition of detergent. It is as a homodimeric protein with a subunit molecular mass of 58.8 kDa, each subunit containing 1 noncovalently bound flavin adenine dinucleotide but not Fe or Zn. PEG-DH recognizes a broad variety of primary aliphatic and aromatic alcohols as substrates. Comparison with known sequences revealed that PEG-DH belongs to the group of glucose-methanol-choline (GMC) flavoprotein oxidoreductases and that it is a novel type of flavoprotein alcohol dehydrogenase related (percent identical amino acids) to other, so far uncharacterized bacterial, membrane-bound, dye-linked dehydrogenases: alcohol dehydrogenase from Pseudomonas oleovorans (46%); choline dehydrogenase from E. coli (40%); L-sorbose dehydrogenase from Gluconobacter oxydans (38%); and 4-nitrobenzyl alcohol dehydrogenase from a Pseudomonas species (35%).  相似文献   

12.
A gene encoding an NADH-dependent short-chain dehydrogenase/reductase (gox2036) from Gluconobacter oxydans 621H was cloned and heterogeneously expressed in Escherichia coli. The protein (Gox2036) was purified to homogeneity and biochemically characterized. Gox2036 was a homotetramer with a subunit size of approximately 28 kDa. Gox2036 had a strict requirement for NAD+/NADH as the cofactor. Gox2036 displayed preference for oxidation of secondary alcohols and 2,3-diols as well as for reduction of α-diketones, hydroxy ketones, α-ketoesters, and β-ketoesters. However, Gox2036 was poorly active on 1,2-diols and acetoin and showed no activity on primary alcohols, polyols, and aldehydes. The optimum pH values for the oxidation and reduction reactions were 9 and 6, respectively. Gox2036 was highly selective in the reduction of various β-ketones and β-ketoesters. Among the substrates tested, ethyl 4-chloro acetoacetate was reduced to ethyl (R)-4-chloro-3-hydroxybutanoate ester with an excellent conversion yield of 96.9 % and optical purity of >99 % e.e. using an efficient in situ NADH-recycling system involving glucose and a glucose dehydrogenase from Bacillus subtilis (BsGDH).  相似文献   

13.
Sequencing of a genomic library prepared from Pseudomonas fluorescens DSM 50106 identified an orf showing 29% identity to a C α-dehydrogenase of Pseudomonas paucimobilis and high homology to several sequences with unknown functions derived from genome projects. The corresponding gene adhF1 encodes a dehydrogenase of 296 amino acids with a calculated molecular mass of 31.997 kDa. The gene was functionally expressed in E. coli using a rhamnose inducible expression system. The resulting recombinant enzyme was active in the pH range 6–10 (best pH 8) and at 5–25 °C. This dehydrogenase converts cyclic ketones to the corresponding alcohols utilizing the cofactor NADH. The highest activity was found for cyclohexanone. The enzyme also exhibits high stereoselectivity in the desymmetrization of the prochiral ketone acetophenone, producing optically pure (R)-α-phenyl ethanol (>99%ee) at high conversion (95%). Electronic Publication  相似文献   

14.
以氧化葡萄糖酸杆菌(Gluconobacter oxydans)NH-10基因组DNA为模板,扩增得到D-阿拉伯糖醇脱氢酶基因arDH,将其克隆到大肠杆菌表达载体JM109(DE3)中进行诱导表达。SDS-PAGE电泳分析ArDH的分子量约为30 kDa,是一个短链脱氢酶,既能催化D-阿拉伯糖醇氧化为D-木酮糖,又能催化D-木酮糖还原为D-阿拉伯糖醇。催化氧化反应时,对D-阿拉伯糖醇的Km为60.67 mmol/L,Vmax为0.803 U/mg;它能同时依赖于NAD+和NADP+,但是更加偏好辅酶NAD+;最适pH为12.0。还原反应对D-木酮糖的 Km为36.39 mmol/L,Vmax为1.71 U/mg;最优pH为7.0,最适温度均为30℃。  相似文献   

15.
NAD-dependent 1,2-propanediol dehydrogenase (EC 1.1.1.4) activity was detected in cell-free crude extracts of various propane-grown bacteria. The enzyme activity was much lower in 1-propanol-grown cells than in propane-grown cells of Pseudomonas fluorescens NRRL B-1244, indicating that the enzyme may be inducible by metabolites of propane subterminal oxidation. 1,2-Propanediol dehydrogenase was purified from propane-grown Ps. fluorescens NRRL B-1244. The purified enzyme fraction shows a single-protein band upon acrylamide gel electrophoresis and has a molecular weight of 760,000. It consists of 10 subunits of identical molecular weight (77,600). It oxidizes diols that possess either two adjacent hydroxy groups, or a hydroxy group with an adjacent carbonyl group. Primary and secondary alcohols are not oxidized. The pH and temperature optima for 1,2-propanediol dehydrogenase are 8.5 and 20-25 degrees C, respectively. The activation energy calculated is 5.76 kcal/mol. 1,2-Propanediol dehydrogenase does not catalyze the reduction of acetol or acetoin in the presence of NADH (reverse reaction). The Km values at 25 degrees C, pH 7.0, buffer solution for 1,2-propan1,2-propanediol dehydrogenase are 8.5 and 20-25 degrees C, respectively. The activation energy calculated is 5.76 kcal/mol. 1,2-Propanediol dehydrogenase does not catalyze the reduction of acetol or acetoin in the presence of NADH (reverse reaction). The Km values at 25 degrees C, pH 7.0, buffer solution for 1,2-propan1,2-propanediol dehydrogenase are 8.5 and 20-25 degrees C, respectively. The activation energy calculated is 5.76 kcal/mol. 1,2-Propanediol dehydrogenase does not catalyze the reduction of acetol or acetoin in the presence of NADH (reverse reaction). The Km values at 25 degrees C, pH 7.0, buffer solution for 1,2-propanediol and NAD are 2 X 10(-2) and 9 X 10(-5) M, respectively. The 1,2-propanediol dehydrogenase activity was inhibited by strong thiol reagents, but not by metal-chelating agents. The amino acid composition of the purified enzyme was determined. Antisera prepared against purified 1,2-propanediol dehydrogenase from propane-grown Ps. fluorescens NRRL B-1244 formed homologous precipitin bands with isofunctional enzymes derived from propane-grown Arthrobacter sp. NRRL B-11315, Nocardia paraffinica ATCC 21198, and Mycobacterium sp. P2y, but not from propane-grown Pseudomonas multivorans ATCC 17616 and Brevibacterium sp. ATCC 14649, or 1-propanol-grown Ps. fluorescens NRRL B-1244. Isofunctional enzymes derived from methane-grown methylotrophs also showed different immunological and catalytic properties.  相似文献   

16.
A chimeric bifunctional enzyme composing of galactose dehydrogenase (galDH; from Pseudomonas fluorescens) and lactate dehydrogenase (LDH; from Bacillus stearothermophilus) was successfully constructed. The chimeric galDH/LDH possessed dual characteristics of both galactose dehydrogenase and lactate dehydrogenase activities while exhibiting hexameric rearrangement with a molecular weight of approximately 400 kDa. In vitro observations showed that the chimeric enzyme was able to recycle NAD with a continuous production of lactate without any externally added NADH. Two fold higher recycling rate (0.3 mM/h) than that of the native enzyme was observed at pH values above 8.5. Proximity effects became especially pronounced during the recycling assay when diffusion hindrance was induced by polyethylene glycol. All these findings open up a high feasibility to apply the NAD(H) recycling system for metabolic engineering purposes e.g. as a model to gain a better understanding on the molecular proximity process and as the routes for synthesizing of numerous high-value-added compounds.  相似文献   

17.
1,3-丙二醇(1,3-propanediol,1,3-PD)是一种重要的化工原料,越来越受到广泛的关注。以弗氏柠檬酸菌(Citrobacter freundii)基因组DNA为模板,通过PCR得到1,3-丙二醇氧化还原酶(1,3-propanediol dehydrogenase,PDOR) 的基因dhaT,序列显示与来源于C.freundii DSM 30040 (Genbank U09771)相应基因的相似性为78%。将此基因构建于表达载体pSE380,得到重组质粒pSE-dhaT。重组质粒转化到宿主菌E.coli JM109中进行了表达,重组酶通过镍柱及Sephacral S-300进行纯化,重组酶SDS-PAGE结果显示有非常明显的单一的42kDa特异性蛋白条带出现。以丙醛为底物测定重组酶还原反应的最适温度为37℃、最适pH为8.0,对丙醛的Km值为10.05mmol/L,最大反应速度Vmax为37.27umol/ min /mg;以1,3-PD为底物测定重组酶氧化反应的最适温度为25℃、最适pH为10.5,对1,3-PD的Km值为1.28mmol/L,最大反应速度Vmax为25.55umol/min/mg。重组酶的还原反应比活为49.50U/mg,氧化反应比活为79.72U/mg。该酶同样具有假定的结合Fe2+的G-X-X-H-X-X-A-H-X-X-G-X-X-X-X-X-P-H-G模体保守结构。此研究为工程菌高效生产1,3-PD奠定了基础。  相似文献   

18.
Long-chain 3-hydroxyacyl-CoA dehydrogenase was extracted from the washed membrane fraction of frozen rat liver mitochondria with buffer containing detergent and then was purified. This enzyme is an oligomer with a molecular mass of 460 kDa and consisted of 4 mol of large polypeptide (79 kDa) and 4 mol of small polypeptides (51 and 49 kDa). The purified enzyme preparation was concluded to be free from the following enzymes based on marked differences in behavior of the enzyme during purification, molecular masses of the native enzyme and subunits, and immunochemical properties: enoyl-CoA hydratase, short-chain 3-hydroxyacyl-CoA dehydrogenase, peroxisomal enoyl-CoA hydratase/3-hydroxyacyl-CoA dehydrogenase bifunctional protein, and mitochondrial and peroxisomal 3-ketoacyl-CoA thiolases. The purified enzyme exhibited activities toward enoyl-CoA hydratase and 3-ketoacyl-CoA thiolase together with the long-chain 3-hydroxyacyl-CoA dehydrogenase activity. The carbon chain length specificities of these three activities of this enzyme differed from those of the other enzymes. Therefore, it is concluded that this enzyme is not long-chain 3-hydroxyacyl-CoA dehydrogenase; rather, it is enoyl-CoA hydratase/3-hydroxyacyl-CoA dehydrogenase/3-ketoacyl-CoA thiolase trifunctional protein.  相似文献   

19.
为了利用大肠杆菌高效生产重组磷脂酶,克隆了液化沙雷氏菌磷脂酶A1的编码基因pla,分别使用pET-28a(+)和pET-20b(+)载体,实现了磷脂酶A1在大肠杆菌BL21(DE3)中的功能表达.重组菌利用载体pET-28a(+)在原始信号肽的介导下胞外PLA1酶活达40.8 U/mL,占总酶活的91%.重组菌转接至优化后的发酵诱导培养基:蛋白胨10 g/L,酵母粉5g/L,葡萄糖0.8 g/L,乳糖5 g/L,25 mmol/L Na2HPO4,25 mmol/L KH2PO4和1 mmol/L MgSO4;菌体生长6h后,添加7.5 g/L的甘氨酸,37℃恒温发酵24 h,重组菌胞外PLA1酶活达到128.7 U/mL.  相似文献   

20.
【目的】获得葡萄糖酸氧化杆菌(Gluconobacter oxydans CGMCC 1.637)的木糖醇脱氢酶基因,研究其酶学性质及碳源特别是D-阿拉伯醇和木糖醇对该酶活性的影响。【方法】通过已报道序列的木糖醇脱氢酶的保守区设计引物,用聚合酶链式反应(polymerase chain reaction,PCR)扩增获得目的基因片段。根据获得的片段序列设计引物克隆目的基因的5’和3’片段,将所获得的片段拼接,获得完整的木糖醇脱氢酶基因。通过构建工程菌获得重组蛋白,并利用氧化还原反应测定重组酶的活性。用含不同碳源的培养基培养G.oxydans CGMCC 1.637,并测定其破胞上清液木糖醇脱氢酶氧化木糖醇的活性;用不同碳源培养的G.oxydans CGMCC 1.637转化木酮糖,用高效液相色谱法测定木糖醇的产量。【结果】获得一个新的798bp的木糖醇脱氢酶基因,所编码的木糖醇脱氢酶含265个氨基酸,属于短链脱氢酶家族。酶学性质研究发现,该木糖醇脱氢酶催化木糖醇氧化的最适合条件为35℃、pH 10.0,最高活性为23.27 U/mg,催化木酮糖还原为木糖醇的最适条件为30℃、pH 6.0。最高活性为255.55 U/mg;该木糖醇脱氢酶的对木糖醇的Km和Vmax分别为78.97 mmol/L和40.17 U/mg。碳源诱导实验表明,d-山梨醇对G.oxydans CGMCC 1.637木糖醇脱氢酶的活性有明显的促进作用,而葡萄糖、果糖、木糖、木糖醇、D-阿拉伯醇对木糖醇脱氢酶活性有明显的抑制作用。而在转化实验中,用d-甘露糖培养的G.oxydans CGMCC 1.637的转化能力明显高于其他碳源培养的G.oxydans CGMCC 1.637的转化能力,其中,用阿拉伯醇培养的G.oxydans CGMCC 1.637的转化能力最低,仅为对照的35%。【结论】克隆自G.oxydans CGMCC 1.637的木糖醇脱氢酶基因是一个新的基因,用阿拉伯醇培养的G.oxydans CGMCC 1.637破胞液木糖醇脱氢酶活性低;且阿拉伯醇对G.oxydans CGMCC 1.637木酮糖的还原能力具有抑制作用。  相似文献   

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