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1.
华丽曲霉Z58有机磷农药降解酶的纯化和性质   总被引:29,自引:0,他引:29  
华丽曲霉(Aspergillus ornatus)Z58有机磷农药降解酶经硫酸铵分级沉淀、Sephadex G100凝胶过滤、DEAE52离子交换层析得到了分离纯化,用聚丙烯酰胺凝胶电泳(PAGE)鉴定为单一组分。凝胶过滤法测得分子量为67 000,提纯倍数为34.2,收率为17.8%。该酶的最适反应温度45℃,最适反应pH72,对热较稳定,并且能在pH6~10范围保持活性。重金属Cu2+对该酶具有明显的促进作用,而SDS对酶具有抑制作用。此酶对所试的有机磷农药都有较好降解作用。  相似文献   

2.
产气肠杆菌几丁质酶的分离纯化及性质研究   总被引:13,自引:0,他引:13  
从自然罹病死亡的草原毛虫(Gynephorap ruoergnesis)体内分离到一株产气肠杆菌(Enterobacter aerogenes),它在几丁质的诱导下能产生较高活性的几丁质酶。发酵液经硫酸铵盐析、DEAE纤维素柱层析和Sephadex G-100柱层析分离出几丁质酶。用SDSPAGE测得该酶的分子量为425kD。水解几丁质的Km值为2.88mg/mL-1。酶反应的最适温度为55℃,最适pH值为60,金属离子对几丁质酶活性影响较大,其中Zn2+、Ba2+、Ca2+和Mn2+对酶有较强的激活作用,而Hg2+、Co2+和Mg2+则有较强的抑制作用。  相似文献   

3.
从云南西北部土样中分离到一株卡瑞苯西思伯克霍尔德氏菌(Burkholderia caribensis),它在氯乙酸培养基中能产生较高活性的卤乙酸脱卤酶。经硫酸铵盐析、DEAE SephadexA50柱层析、羟基磷灰石柱层析、Sephadex G200 凝胶过滤后,获得电泳纯酶。用SDSPAGE测定酶分子量为46kD。水解氯乙酸的Km值为3.7×10-3mol/L。酶反应的最适温度为40℃,最适pH值为9.5。金属离子及CN-、EDTA对该酶有不同程度的影响,Hg2+和CN-则对该酶有强烈的抑制作用。  相似文献   

4.
枯草芽孢杆菌(Bacillus subtilis)BM9602产生的中性内切β甘露聚糖酶(endoβ1,4Dmannan mannanohydrolase,EC,3.2.1.78)经硫酸铵分级沉淀、DEAE纤维素(DE22)离子交换柱层析,得到电泳纯的样品,提纯了455倍,收率为59%。用SDSPAGE测得该酶的分子量为35kD。用PAGEIEF测得其等电点pI为45。酶反应的最适pH为5.8,最适温度为50℃。该酶在pH60~80,50℃以下稳定。金属离子Hg2+和Ag+对酶活性强烈抑制。酶对槐豆胶、羟丙基瓜胶、田菁胶和魔芋粉的Km值分别为38、149、113和24mg/mL,Vmax值分别为245、865、384和198μmol.min-1mg-1。酶水解甘露聚糖为甘露寡糖(不含单糖)。  相似文献   

5.
探讨了液体发酵嗜热毛壳菌(Chaetomium thermophile)产生的内切β葡聚糖酶的分离纯化及特性。粗酶液经硫酸铵分级沉淀、DEAE\|Sepharose Fast Flow阴离子层析、Pheny1\|Sepharose疏水层析、Sephacry1 S\|100分子筛层析等步骤便可获得凝胶电泳均一的内切β\|葡聚糖酶。经125%SDS\|PAGE和凝胶过滤层析法分别测得所分离纯化酶蛋白的分子量约为67.8kD和69.8kD。该酶反应的最适温度和pH分别为60℃和40~45在pH50条件下,该酶在60℃下稳定;70℃保温1h后,仍保留30%的活性;在80℃的半衰期为25min。金属离子对内切β\|葡聚糖酶的活性影响较大,其中Na+对酶有激活作用;Fe2+、Ag+、Cu2+、Ba2+、Zn2+等对酶有抑制作用。该酶对结晶纤维素没有水解能力。  相似文献   

6.
灰色链霉菌RX-17溶菌酶R1的纯化及性质研究   总被引:6,自引:0,他引:6  
通过硫酸铵分级沉淀,CM-Sephadex C50、CM-Sepharose Fast Flow离子交换层析及Sephadex G-75凝胶过滤层析,从灰色链霉菌(Streptomyces griseus)RX17的发酵上清液中得到了电泳纯的溶菌酶R1,回收率6.89%。测得该酶分子量和等电点分别为16.8kD和9.10,作用于变链球菌(Streptococcus mutans)Ingbritt的最适温度和pH分别为70℃和6.6。R1酶在50℃以下及pH6~9的范围内保持稳定,60℃保温1h,残存酶活20.3%。Mg2+对酶有激活作用,而Zn2+、Cu2+、Fe2+、Cd2+、Pb2+则使酶完全丧失活性,螯合剂、盐酸羟胺、碘乙酸抑制酶活,β-巯基乙醇及表面活性剂则对溶菌有部分促进作用。R1酶溶菌谱广泛,对多种卵清溶菌酶不能作用的G+、G细菌均有溶解能力,对变链球菌、金黄色葡萄球菌(Staphylococcus aureus)、乳杆菌(Lactobacillus)等则呈现高活性。  相似文献   

7.
极耐热性阿拉伯糖苷酶基因的表达、纯化及酶学性质研究   总被引:2,自引:0,他引:2  
采用PCR从海栖热袍菌(Thermotoga maritima)克隆出编码极耐热稳定性阿拉伯糖苷酶基因,以pET20b为表达质粒,与其C末端6个组氨酸标签序列融合,在大肠杆菌中得到高效表达。基因表达产物通过热处理和亲和层析柱纯化后,酶纯度达电泳均一。纯化重组酶稳定性检测表明,阿拉伯糖苷酶活性最适作用温度和最适作用pH分别为90~95℃和pH 5.0~5.5,在pH 4.2~8.2之间酶活力稳定,95℃的半衰期为4h;SDSPAGE测得酶的分子量为56.57 kD,与理论推算值相吻合。在所测定的底物中,阿拉伯糖苷酶仅对对硝基苯阿拉伯呋喃糖苷(pNPAF)有专一性水解作用,其动力学参数Km值为018mmol/L, Vmax为139μmol/min·mg。  相似文献   

8.
甲基对硫磷水解酶的重组表达及其纯化和性质研究   总被引:6,自引:0,他引:6  
用PCR方法获得甲基对硫磷水解酶编码基因,构建了重组表达质粒pET29a_mpd,将其转化至Escherichia coli BL21(DE3)中,经IPTG诱导表达,得到C末端含有6个寡聚组氨酸的甲基对硫磷水解酶,用NiNTA亲和层析纯化得到具有活性的甲基对硫磷水解酶。测定了环境因素对酶活性的影响及酶动力学参数。甲基对硫磷水解酶水解甲基对硫磷时,最适pH86~8.8,最佳反应温度15℃;Mn2+、Zn2+、Cu2+可使酶活性增加15%~20%,Ca2+、Mg2+微弱地促进酶的作用,Ni2+对酶活性几乎无影响;1mmol/L EDTA·Na2+几乎不影响酶的活性,而10mmol/L EDTA·Na2+对甲基对硫磷水解酶有较强的抑制作用。甲基对硫磷水解酶水解乙基对硫磷时,最适pH86。25℃时,该酶对甲基对硫磷的米氏常数Km为(68.6 ± 5.1)μmol/L,kcat为(45 ± 6 )S-1;对乙基对硫磷的米氏常数Km为(59.5 ± 6.0)μmol/L,kcat为(8 ± 1) S-1。Kcat/Km表明甲基对硫磷水解酶对甲基对硫磷的催化效率更高。  相似文献   

9.
从黄海深海海底淤泥中筛选出一株产纤维素酶的适冷革兰氏阴性杆菌MB1,克隆和分析了MB1的16S rDNA序列(GenBank接受号:AY551321),经鉴定为交替假单胞菌(Pseudoalt eromonas),命名为Pseudoalteromonas sp.MB1。克隆了该菌适冷内切葡聚糖酶基因celA(GenBank接受号:AY551322),并在大肠杆菌(Escherichia coli)BL21中进行了表达。重组E.coli菌体破碎后,获取上清液,其中融合蛋白GSTCelA浓度约为78.5mg/L。分析了融合酶GSTCelA的性质,其最适反应温度为35℃,最适反应pH值为72,为中性适冷酶。实验结果为交替假单胞菌低温纤维素酶的基础理论和应用研究奠定了基础。  相似文献   

10.
产气肠杆菌EAM-Z1尿苷磷酸化酶的分离纯化及性质研究   总被引:1,自引:0,他引:1  
从产气肠杆菌(Enterobacter aerogenes)突变株EAMZ1中分离出一种具有较高转移酶活性的尿苷磷酸化酶(Upase)。经测定这种Upase的分子量为12.8×104,亚基分子量为4.3×10.4,由3个同型亚基组成。N端氨基酸序列为:MRMVDLIATKRDGGE。等电点为4.46。对尿苷的Km为0.29mmol/L。酶反应的最适pH为7.8,最适温度为50℃。该酶能磷酸化尿苷、胸苷、5氟尿苷、2′脱氧5氟尿苷及尿嘧啶βD阿拉伯呋喃糖,且具有较高的转移酶活性,能将尿苷和5氟尿嘧啶转化成5氟尿苷(一种抗癌药物的中间体),其转化率为47%。该酶的这些特性对于酶法合成核苷类抗肿瘤药物和抗病毒药物是十分有用的。  相似文献   

11.
An alginate lyase with high specific enzyme activity was purified from Vibrio sp. YKW-34, which was newly isolated from turban shell gut. The alginate lyase was purified by in order of ion exchange, hydrophobic and gel filtration chromatographies to homogeneity with a recovery of 7% and a fold of 25. This alginate lyase was composed of a single polypeptide chain with molecular mass of 60 kDa and isoelectric point of 5.5–5.7. The optimal pH and temperature for alginate lyase activity were pH 7.0 and 40 °C, respectively. The alginate lyase was stable over pH 7.0–10.0 and at temperature below 50 °C. The alginate lyase had substrate specificity for both poly-guluronate and poly-mannuronate units. The kcat/Km value for alginate (heterotype) was 1.7 × 106 s−1 M−1. The enzyme activity was completely lost by dialysis and restored by addition of Na+ or K+. The optimal activity exhibited in 0.1 M of Na+ or K+. This enzyme was resistant to denaturing reagents (SDS and urea), reducing reagents (β-mercaptoethanol and DTT) and chelating reagents (EGTA and EDTA).  相似文献   

12.
随着大型褐藻生产燃料乙醇以及褐藻寡糖重大药用价值的发现,褐藻胶裂解酶成为国内外多个领域的研究重点。文中对解藻酸弧菌上与褐藻胶降解相关的5个基因分别进行克隆表达,通过SDS-PAGE和酶活性定量测定,发现该基因簇中的4个基因有降解褐藻胶活性。对酶活最高的rAlgV3进行了诱导条件的优化、酶蛋白纯化及酶性质研究,发现优化诱导条件后重组酶rAlgV3的酶活由2.34×10~4 U/L上升为1.68×10~5 U/L,比优化前提高了7.3倍;对酶性质进行表征发现该酶在4–70℃均有活性,最适反应温度为40℃,在4–20℃酶相对稳定;该酶在pH 6.5-9.0环境下均有较高的酶活,最适pH为8.0;pH稳定性好,在pH 4.5–9.5环境下可以稳定存在;适量的NaCl浓度和Fe~(2+)、Fe~(3+)等离子具有促进酶活的作用,SDS和Cu~(2+)离子可明显抑制酶活力。对该酶的底物特性的研究发现,该酶不仅可以降解褐藻胶中的Poly-M片段,也能降解Poly-G片段,具有广泛底物特性;其降解海藻酸钠主要释放二糖和三糖,是一种内切酶。该酶对于第三代燃料乙醇的发展及褐藻寡糖的生产具有重要作用。  相似文献   

13.
Salt-active acharan sulfate lyase (no EC number) has been purified from Bacteroides stercoris HJ-15, which was isolated from human intestinal bacteria with GAG degrading enzymes. The enzyme was purified to apparent homogeneity by a combination of QAE-cellulose, diethylaminoethyl (DEAE)-cellulose, CM-Sephadex C-50, HA ultrogel and phosphocellulose column chromatography with the final specific activity of 81.33 micro mol x min-1 x mg-1. The purified salt-active acharan sulfate lyase was activated to 5.3-fold by salts (KCl and NaCl). The molecular weight of salt-active acharan sulfate lyase was 94 kDa by SDS/PAGE and gel filtration. The salt-active acharan sulfate lyase showed optimal activity at pH 7.2 and 40 degrees C. Salt-active acharan sulfate lyase activity was potently inhibited by Cu2+, Ni2+ and Zn2+. This enzyme was inhibited by some agents, butanediol and p-chloromercuric sulfonic acid, which modify arginine and cysteine residues. The purified Bacteroidal salt-active acharan sulfate lyase acted to the greatest extent on acharan sulfate, to a lesser extent on heparan sulfate and heparin. The biochemical properties of the purified salt-active acharan sulfate lyase are different from those of the previously purified heparin lyases. However, these findings suggest that the purified salt-active acharan sulfate lyase may belong to heparin lyase II.  相似文献   

14.
Chitinase (EC 3.2.1.14) was isolated from the culture supernatant of a marine bacterium, Alteromonas sp. strain O-7. The enzyme (Chi-A) was purified by anion-exchange chromatography (DEAE-Toyopearl 650 M) and gel filtration (Sephadex G-100). The purified enzyme showed a single band on sodium dodecyl sulfate polyacrylamide gel electrophoresis. The molecular size and pI of Chi-A were 70 kDa and 3.9, respectively. The optimum pH and temperature of Chi-A were 8.0 and 50 degrees C, respectively. Chi-A was stable in the range of pH 5-10 up to 40 degrees C. Among the main cations, such as Na+, K+, Mg2+, and Ca2+, contained in seawater, Mg2+ stimulated Chi-A activity. N-Bromosuccinimide and 2-hydroxy-5-nitrobenzyl bromide inhibited Chi-A activity. The amino-terminal 27 amino acid residues of Chi-A were sequenced. This enzyme showed sequence homology with chitinases from terrestrial bacteria such as Serratia marcescens QMB1466 and Bacillus circulans WL-12.  相似文献   

15.
A novel peroxidase isolated from a local chick pea (Cicer arietinum L.) cultivar (Balksar 2000) was purified by means of ammonium sulfate precipitation, DEAE-cellulose chromatography and two runs on gel filtration. The purified enzyme has a specific activity of 2045 U/mg with 17 % activity recovery. The molecular mass of the enzyme was estimated to be 39 kDa by SDS-polyacrylamide gel electrophoresis. Optimum pH and temperature of the enzyme were 5.5 and 45 degrees C respectively. The thermal denaturation of local chick pea peroxidase was studied in aqueous solution at temperatures ranging from 45 degrees C to 65 degrees C. The temperature of 50% inactivation of the enzyme was found to be 68 degrees C. The enthalpy (DeltaH*) and free energy (DeltaG*) of thermal denaturation of chick pea peroxidase were 101.4 and 103.4 k J/mol respectively at 65 degrees C.Metals like Zn2+, Mn2+, Hg2+, Co2+ and Al3+ slightly inhibited the peroxidase activity while Ca2+, Mg2+ and Ba2+ have no effect on enzyme activity. The high specific activity and thermal stability make chick pea peroxidase an alternative to horseradish peroxidase (HRP) in various applications.  相似文献   

16.
Extracellular alginate lyase secreted by marine Vibrio sp.YWA,isolated from decayedLaminaria japonica,was purified by a combination of ammonium sulfate precipitation and diethylaminoethyl-Sephacel column chromatography.The results show that the molecular mass of alginate lyase wasapproximately 62.5 kDa,with an optimal pH and temperature at pH 7.0 and 25℃,respectively.K_m wasapproximately 72.73 g/L.The activity of the enzyme was enhanced by EDTA and Zn~(2 ),but inhibited by Ba~(2 ).The substrates specificity analysis shows that it was specific for hydrolyzing poly-β-D-1,4-mannuronate inalginate.  相似文献   

17.
诺卡氏菌形放线菌β-甘露聚糖酶的纯化和性质   总被引:11,自引:0,他引:11  
产β-1,4-D甘露聚糖酶的诺卡氏菌形放线菌(Nocardioform actinomycetes)菌株NA3-540,发酵培养72h,发酵液离心去菌体,上清经硫酸铵沉淀,95%乙醇沉淀,CM-Sephadex A50柱层析、羟基磷灰石柱层析、DEAE-纤维素离子交换及Sephadex G-100分子凝胶过滤柱等步骤,β-甘露聚糖酶的比活提高了137倍,获得凝胶电泳均一的蛋白样品。经SDS-PAG  相似文献   

18.
An extracellular pectate lyase (EC 4.2.2.2) was purified from the culture filtrate of a newly isolated Bacillus pumilus DKS1 grown in pectin containing medium. Using ion-exchange and gel filtration chromatography, this enzyme was purified and found to have a molecular weight of around 35kDa. The purified enzyme exhibited maximal activity at a temperature of 75 degrees C and pH 8.5. The presence of 1mM calcium and manganese enhanced pectate lyase activity and was strongly inhibited by zinc, nickel and EDTA. The thermal inactivation studies revealed an entropy-enthalpy compensation pattern below a critical temperature. The alkaliphilicity and high thermostability of this pectate lyase may have potential implications in fibre degumming.  相似文献   

19.
Two novel chondroitinases, chondroitin ABC lyase (EC 4.2.2.4) and chondroitin AC lyase (EC 4.2.2.5), have been purified from Bacteroides stercoris HJ-15, which was isolated from human intestinal bacteria with glycosaminoglycan degrading enzymes. Chondroitin ABC lyase was purified to apparent homogeneity by a combination of QAE-cellulose, CM-Sephadex C-50, hydroxyapatite and Sephacryl S-300 column chromatography with a final specific activity of 45.7 micromol.min-1.mg-1. Chondroitin AC lyase was purified to apparent homogeneity by a combination of QAE-cellulose, CM-Sephadex C-50, hydroxyapatite and phosphocellulose column chromatography with a final specific activity of 57.03 micromol.min-1.mg-1. Chondroitin ABC lyase is a single subunit of 116 kDa by SDS/PAGE and gel filtration. Chondroitin AC lyase is composed of two identical subunits of 84 kDa by SDS/PAGE and gel filtration. Chondroitin ABC and AC lyases showed optimal activity at pH 7.0 and 40 degrees C, and 5.7-6.0 and 45-50 degrees C, respectively. Both chondroitin lyases were potently inhibited by Cu2+, Zn2+, and p-chloromercuriphenyl sulfonic acid. The purified Bacteroidal chondroitin ABC lyase acted to the greatest extent on chondroitin sulfate A (chondroitin 4-sulfate), to a lesser extent on chondroitin sulfate B (dermatan sulfate) and C (chondroitin 6-sulfate). The purified chondroitin AC lyase acted to the greatest extent on chondroitin sulfate A, and to a lesser extent on chondroitin C and hyaluronic acid. They did not act on heparin and heparan sulfate. These findings suggest that the biochemical properties of these purified chondroitin lyases are different from those of the previously purified chondroitin lyases.  相似文献   

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