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1.
固定化青霉素酰化酶的研究 总被引:7,自引:4,他引:7
将巨大芽孢杆菌胞外青霉素酰化酶通过共价键连接到醋酸纤维素载体上,制成的固定化青霉素酰化酶的表观活力达2000 u/g左右(PDAB法)。水解lO%(w/v)的青霉素G钾盐落液,使用30批,保留活力70%以上。6-氨基青毒烷酸(6-APA)总收率平均达88.37%。固定化青霉素酰化酶水解青霉素G的最适pH为9.95,最适温度为55℃,表观米氏常数为1.093×10-2mol/L,在pH 5.8-10.7,温度45℃以下酶的活力稳定。 相似文献
2.
青霉素G酰化酶是近几十年来β内酰胺类抗生素领域应用最广、开发最成功的酶之一。伴随着β-内酰胺类抗生素由化学合成法变更为酶法在中国的大规模产业化,得到了充分的开发与应用,取得了成功。青霉素G酰化酶不但用于水解制备6-APA、7-ADCA,更重要的是用于氨苄西林、头孢氨苄、阿莫西林、头孢拉定、头孢克洛等抗生素的制备。本文综述了近15年青霉素G酰化酶在我国研究与应用的历史沿革、基因与蛋白质结构、工业应用表达体系、工业评价标准与进化研究,还对各种突变株在具体医药工业领域的开发应用进行了综述,旨在梳理青霉素G酰化酶结构与性能的进化趋势以及在医药工业领域取得的巨大成就,同时也为相关人员在此领域进行深耕提供参考。 相似文献
3.
以聚丙烯腈纤维为载体制备固定化青霉素G酰化酶的研究 总被引:6,自引:0,他引:6
以酸部分水解聚丙烯腈纤维为载体 ,以戊二醛为交联剂 ,共价键结合制备了固定化胞外青霉素G酰化酶。当水解后的载体中 NH2 基含量为 690 μmol g和含水量为 64%时 ,对酶蛋白的固定量达 1 0 0mg g以上 ,固定化酶的活力达 2 30 0IU g ,酶活力总产率为 30 % ,固定化效率为 56%。酶活力的总产率和固定化率随加酶量的增加而降低。该酶可以将浓度为 2 5%~1 2 5%的青霉素G钾盐水解 98%以上。批投青霉素G钾盐为 1 0g,酶负荷为 1 50IU g(PGK) ,经2 0批水解反应后 ,剩余酶活力为 80 %。用二硫基苏醣醇处理固定化酶 ,对水解青霉素G钾盐的操作稳定性有促进作用。固定化酶的室温保存半衰期为 1 30d。用戊二醛和硼氢化钠溶液处理固定化酶后 ,酶活力的室温保存稳定性有所降低。 相似文献
4.
目的:以活性炭为载体固定化粪产碱杆菌来源的青霉素G酰化酶,考察固定化酶的性质。方法:对影响酶固定化的因素优化筛选,确定有显著影响的因素:pH、离子强度、酶量、固定化时间进行L934的正交实验,获得最佳固定化条件,并对固定化酶的最适反应温度、pH及批次稳定性进行研究。结果:最佳固定化条件为:载体0.3g,酶量5mL,总反应体系为12mL,离子强度1mol/L,温度4℃,pH 7.0,固定化40h;最高固定化酶活性为135.9U/g湿载体。固定化酶性最适反应温度为55℃,最适pH为10,重复使用12次后没有活性损失。结论:活性炭吸附固定化青霉素G酰化酶的活性高,批次反应稳定,具有工业应用潜力。 相似文献
5.
以环氧乙烷为活性基的多孔颗粒状固定化青霉素酰化酶的制备 总被引:1,自引:0,他引:1
报道了用以环氧乙烷为活性基的多孔颗粒状载体(Eupergit-C)制备固定由巨大芽孢杆菌(B.megaterium)产生的青霉素酰化酶的研究。用已二胺,赖氨酸对载体进行化学修饰后制备固定化酶,获得了较好的固定结果。用未修饰的载体制备固化酶,经24h固定反应,酶活力达176.5IU/g(wet),酶活力总叫率达53.7%,酶蛋白的固定量为19=7mg/g(dr),酶蛋白的固定效率达87.5%。游离酶的酶浓度对制备固定化酶的活力无显影响。当加酶量从312IU/g(dry)上升到6250IU/g(dry)时,固定化酶活力从89IU/g(wet)上升到475IU/g(wet),总收率和固定化效率分别从99%和99%下降到26.5%和32.5%,酶蛋白的固定量从6.9mg/g(dry)上升到112mg/g(dry),酶蛋白的固定效率从99%下降至80.5%。以酶活力为155IU/g(wet),酶蛋白固定量为22mg/g(dry)的固定化酶水解青霉素G钾盐,经过20批循环水解后,剩余酶活力为92.5%。 相似文献
6.
用聚丙烯腈纤维固定化青霉素酰化酶水解头孢菌素G制备7-ADCA,固定化酶对头孢菌素G的最适pH为9.0,最适温度50℃。在37℃、pH8.0固定化酶对头孢菌素G的表观米氏常数为1.67×10~(-2)mol/L。最大反应速度为3.01mmol·g~(-1)·min~(-1)。头孢菌素G溶液浓度在2%以上时,对固定化酶有明显的抑制作用。固定化酶水解头孢菌素G的最佳投料浓度为5%~6%,水解时用酶量以每克头孢菌素G投300U以上为好。按上述条件水解头孢菌素G,操作25批后固定化酶保留活力77.8%,7-ADCA平均收率92.68%。 相似文献
7.
固定化青霉素V酰化酶的制备及性质 总被引:2,自引:0,他引:2
尖镰孢(Fusarium oxysporum)FP941青霉素V酰化酶经γ氧化铝吸附洗脱、硫酸铵沉淀和脱盐处理后,固定在环氧丙烯聚合物载体上,湿固定化酶表现活力为217 IU/g,固定化产率为53%。固定化酶作用最适温度为55℃,最适pH为80;在pH50~110及50℃以下稳定;37℃使用25次后,酶活力保留90%。 相似文献
8.
聚丙烯腈纤维固定化青霉素酰化酶性质的研究 总被引:3,自引:0,他引:3
将巨大芽孢杆菌(Bacillusmegaterium)青霉素酞化酶连接到聚丙烯腈纤维载体上,制成固定化青霉素酰化酶。其表现活力约为2000u/g。水解青霉素G的最适温度为50℃;最适PH为9.0;在PHS.5~10.3、温度50℃以下酶的活力稳定;表观米氏常数Ka为1.33×10-8mol/L;最大反应速度Vm为2.564mmol·min-1;苯乙酸为竞争性抑制剂,抑制常数为0.16mol/L。水解10%的青霉素G钾盐溶液,使用20批,保留酶活力80%。 相似文献
9.
颗粒状固定化青霉素酰化酶的研究 总被引:10,自引:0,他引:10
将巨大芽孢杆菌 (Bacillusmegaterium)胞外青霉素酰化酶通过共价键结合到聚合物载体EupergitC颗粒环氧基团上 ,制成的颗粒状固定化青霉素酰化酶表现活力达 1 40 0 μ/g左右。固定化酶水解青霉素的最适 pH8 0 ,最适温度为 55℃。在pH6 0~ 8 5、温度低于 40℃时固定化酶活力稳定。在 pH8 0、温度 37℃时 ,固定化酶对青霉素的表现米氏常数Ka为 2×1 0 - 2 mol/L ;苯乙酸为竞争性抑制剂 ,抑制常数Kip为 2 8× 1 0 - 2 mol/L ;6 APA为非竞争性抑制剂 ,抑制常数Kia为 0 1 2 5mol/L。固定化酶水解青霉素 ,投料浓度为 8% ,在使用 2 0 0批后 ,保留活力 80 %左右 ,6 APA收率平均达 89 48%。 相似文献
10.
聚丙烯腈纤维固定化青霉素酰化酶合成头孢氨苄的研究 总被引:4,自引:0,他引:4
将巨大芽孢杆菌胞外青霉素酰化酶通过共价键结合到聚丙烯腈纤维的衍生物上。制成的丝状固定化青霉素酰化酶表现活力达 1 5 3U g(湿重 )。固定化酶合成头孢氨苄的最适pH为 6 5 ,最适温度为 40℃。 7 ADCA的投料浓度以 4%为好 ,7 ADCA与PGME的投料量比率为1∶2 ,最佳用酶量为 1 70U g 7 ADCA。在pH6 5、温度 3 0℃时 ,固定化酶对 7 ADCA的表观米氏常数K7 ADCA为 0 1 6 2mol L ,对PGME的表观米氏常数KPGME为 0 3 6 4mol L ,最大反应速度Vmax为0 0 4 6 2mol·L- 1·min- 1,用固定化酶合成头孢氨苄 ,使用 5 0次保留酶活力 83 9% 相似文献
11.
《Process Biochemistry》2010,45(4):598-601
One key problem of aqueous two-phase systems (ATPS) is that phase-forming polymers could not be recycled efficiently. This results in high cost and environmental pollution. In this study, we introduced novel aqueous two-phase systems which are composed by pH-sensitive polymer PADB and light-sensitive polymer PNNC. PNNC is enriched in the top phase while PADB is found in the bottom phase. And recoveries of two-phase-forming polymers can both reach over 96%. This aqueous two-phase system was used for purification of lipase from its crude material. The influences of various process parameters such as concentration of the phase-forming polymer, system pH, different types and concentrations of neutral salts on partitioning of lipase are evaluated. It has been found that partition coefficient of pure lipase could reach 0.061 under optimized conditions. Lipase from crude material was purified with 83.7% recovery and a purification factor of approximately 18 folds. 相似文献
12.
《Process Biochemistry》1999,34(5):417-420
The deacylation of Pen G was carried out by using recombinant E. coli in an aqueous two-phase system consisting of polyethylene glycol and potassium phosphate solution, which partitions the cells to the bottom phase and the products to the top phase. Bioconversion and product separation were carried out in the same reactor. Repeated batch conversion was employed ten times and enzymic activity showed only a slight decline. When pure enzyme was used for bioconversion in an aqueous two-phase system, the decline was fast and bioconversion using whole cell penicillin acylase was better than that obtained using the pure acylase. 相似文献
13.
Elis Andersson Bo Mattiasson Bärbel Hahn-Hägerdal 《Enzyme and microbial technology》1984,6(7):301-306
The conversion of benzylpenicillin (BP) to 6-aminopenicillanic acid (6-APA) using penicillin acylase (penicillin amidohydrolase, EC 3.5.1.11) has been studied in aqueous two-phase systems. In a system composed of 8.9% (w/w) PEG 20000/7.6% (w/w) potassium phosphate the enzyme was almost completely partitioned to the bottom phase (K < 0.01), which allowed repeated batch conversions, recirculating the enzyme several times. The initial specific productivities were 0.31–1.47 μmol 6-APA mg protein?1 min?1 in repeated conversions over five steps. The yield obtained from the top phase was 0.47–0.71 mol 6-APA mol BP?1. The results are discussed in relation to recirculating the enzyme by immobilizing it to a solid matrix. Despite the high phosphate concentration in the bottom phase the system needs to be titrated in order for the reaction to proceed. Titration of the top phase alone protected the enzyme from denaturation by strong alkali used for the titration. 相似文献
14.
Cefprozil is an important semi-synthetic cephalosporin antibiotic. In this study, immobilized penicillin G acylase (PGA) is used to catalyze the acylation of 7- amino-3-(1-propenyl)-4-cephalosporanic acid (7-APRA) and 4-hydroxyphenylglycine methyl ester (HPGME) and a recyclable thermo-pH responsive PNB/PADB aqueous twophase system (ATPS) is used to synthesize cefprozil. In this system, the partition coefficient of cefprozil was 2.24 with 60 mmol/L (NH4)2SO4. In addition, the optimal enzymatic reaction conditions were found to be pH 6.5, 20°C, 78 u/mL immobilized PGA, 30 mmol/L 7-APRA and 90 mmol/L HPGME. In the PNB/PADB ATPS, the maximal yield of cefprozil was 75.81% with 60 mmol/L (NH4)2SO4 and in the single aqueous system the yield was 56.02%. The yields are thought to improve because there is a reduction in product inhibition. 相似文献
15.
Production of 6-aminopenicillanic acid in aqueous two-phase systems by recombinant Escherichia coli with intracellular penicillin acylase 总被引:4,自引:0,他引:4
Bioconversion of penicillin G in PEG 20000/dextran T 70 aqueous two-phase systems was achieved using the recombinant Escherichia coli A56 (ppA22) with an intracellular penicillin acylase as catalyst. The best conversion conditions were attained for: 7% (w/v) substrate (penicillin G), enzyme activity in bottom phase 52 U ml(-1), pH 7.8, temperature 37 degrees C, reaction time 40 min. Five repeated batches could be performed in these conditions. Conversions ratios between 0.9-0.99 mol of 6-aminopenicillanic acid (6-APA) per mol of penicillin G, were obtained and volumetric productivity was 3.6-4.6 micromol min(-1) ml(-1). In addition the product 6-APA could be directly crystallized from the top phase with a purity of 96%. 相似文献
16.
Application of surface response analysis to the optimization of penicillin acylase purification in aqueous two-phase systems 总被引:3,自引:0,他引:3
J. C. Marcos L. P. Fonseca M. T. Ramalho J. M. S. Cabral 《Enzyme and microbial technology》2002,31(7):1006-1014
Penicillin acylase purification from an Escherichia coli crude extract using PEG 3350–sodium citrate aqueous two-phase systems (ATPS) was optimized. An experimental design was used to evaluate the influence of PEG, sodium citrate and sodium chloride on the purification parameters. A central composite design was defined centred on the previously found conditions for highest purification from an osmotic shock extract. Mathematical models for the partition coefficient of protein and enzyme, balance of protein and enzyme, yield and purification were calculated and statistically validated. Analysis of the contours of constant response as a function of PEG and sodium citrate concentrations for three different concentrations of NaCl revealed different effects of the three factors on the studied parameters. A maximum purification factor of 6.5 was predicted for PEG 3350, sodium citrate and NaCl concentrations of 15.1, 11.0 and 8.52% respectively. However, under these conditions the predicted yield was 61%. A better compromise between these two parameters can be found by superimposing the contour plots of the purification factor and yield for 10.3% NaCl. A region in the experimental space can be defined where the purification factor is always higher than 5.5 with yields exceeding 80%. 相似文献
17.
Pushparani Devi Philem Vidya V. Sonalkar Mahesh S. Dharne 《Preparative biochemistry & biotechnology》2016,46(5):524-530
Members of the bacterial genus Acinetobacter have attracted great attention over the past few decades, on account of their various biotechnological applications and clinical implications. In this study, we are reporting the first experimental penicillin V acylase (PVA) activity from this genus. Penicillin acylases are pharmaceutically important enzymes widely used in the synthesis of semisynthetic beta-lactam antibiotics. The bacterium, identified as Acinetobacter sp. AP24, was isolated from the water of Loktak Lake (Manipur, India), an Indo-Burma biodiversity hotspot. PVA production was increased threefold in an optimized medium with 0.2% sodium glutamate and 1% glucose as nitrogen and carbon sources respectively, after 24 hr of fermentation at 28°C and pH 7.0 with shaking at 180 rpm. The enzyme was purified to homogeneity by cation-exchange chromatography using SP-sepharose resin. The PVA is a homotetramer with subunit molecular mass of 34 kD. The enzyme was highly specific toward penicillin V with optimal hydrolytic activity at 40°C and pH 7.5. The enzyme was stable from pH 5.0 to 9.0 at 25 °C for 2 hr. The enzyme retained 75% activity after 1 hr of incubation at 40°C at pH 7.5. 相似文献
18.
A method of enzyme release and aqueous two-phase extraction is described for the separation of penicillin acylase from Escherichia coli cells. Butyl acetate, 12% (v/v), treatment combined with freeze-thawing gives up to 70% enzyme release. For polyethylene glycol (PEG) + phosphate two-phase extraction systems the enzyme purity and yield were rather low. Modified PEG, including PEG-ampicillin, PEG-aniline, PEG-phosphate, and PEG-trimethylamine, were synthesized and used in aqueous two-phase systems; PEG-trimethylamine is the most satisfactory. A system containing 12% (w/w) PEG4000, 8% (w/w) of which is PEG-trimethylamine, with 0.7M potasium phosphate at pH 7.2, resulted in the enzyme selective partition being greatly enhanced by charge directed effects. Possible mechanisms for the separation process are discussed. (c) 1992 John Wiley & Sons, Inc. 相似文献
19.
Min Lu Per- Ake Albertsson G te Johansson Folke Tjerneld 《Journal of chromatography. B, Analytical technologies in the biomedical and life sciences》1996,680(1-2):65-70
Benzoyl dextran with a degree of substitution of 0.18 was synthesized by reacting dextran T500 with benzoyl chloride. A new type of aqueous two-phase system composed of benzoyl dextran as bottom phase polymer and the random copolymer of ethylene oxide and propylene oxide (Ucon 50-HB-5100) as top phase polymer has been formed. The phase diagram for the system Ucon 50-HB-5100-benzoyl dextran with a degree of substitution of 0.18 was determined at room temperature. This two-phase system has been used to purify 3-phosphoglycerate kinase from bakers' yeast. The top-phase polymer (Ucon) can be separated from target enzyme by increasing the temperature. The bottom-phase polymer (benzyol dextran) could be recovered by addition of salt. Yeast homogenate was partitioned in a primary Ucon 50-HB-5100-benzoyl dextran aqueous two-phase system. After phase separation the top phase was removed and temperature-induced phase separation was used for formation of a water phase and a Ucon-rich phase. The benzoyl dextran-enriched bottom phase from the primary system was diluted, and the polymer was separated from water by addition of Na2SO4. 相似文献