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1.
以介孔分子筛MCM-41材料为载体,采用物理吸附法对中性脂肪酶进行了固定化处理,并研究不同条件对固定化脂肪酶催化活性的影响,从而得到该种材料对脂肪酶的最佳固定化条件。给酶量为45960 U/g,固定化温度为45℃,pH值为7.5,时间为3 h,此时固定化酶的活力约为4666 U/g。固定化酶和游离酶的最适反应温度都为40℃,最适pH值为7.5,比游离酶低。固定化酶温度稳定性和pH稳定性较游离酶有所提高。  相似文献   

2.
以硅藻土为载体,采用吸附法,对脂肪酶进行固定化,研究了固定化条件对固定化脂肪酶的催化活性的影响,得到最佳的固定化条件:给酶量为33374U/g,固定化温度为35℃,pH值为7.5,时间为4h,此时固定化酶的活力约为5833U/g载体。固定化酶的热稳定性较游离酶有了很大的提高,其在80℃以下能保持80%以上的酶活,而游离酶60℃残余酶活仅为5%。最适反应温度和最适pH值也分别由游离酶的40℃上升至50℃和由7上升到7.5。对固定化中的中性脂肪酶在生物柴油合成中的应用也进行了初步研究。  相似文献   

3.
使用LX-1000HFA氨基树脂对N-乙酰神经氨酸醛缩酶(NAL)进行固定化,并对游离酶与固定化酶的酶学性质及稳定性进行了对比研究。结果显示,最佳固定化条件为载体投放量5.0 g,固定化时间12 h,缓冲液浓度1.0 mol/L,pH7.5,温度25℃。在此条件下制备的固定化NAL活力最高,比酶活可达200 U/g湿载体。与游离酶相比,最适反应温度提高了5℃,最适反应pH没有变化,温度和pH耐受性明显提升。同时固定化酶储存稳定性和操作稳定性也显著增强,在4℃条件下储存10 d后其酶活仅损失6%,重复使用10次后仍保持初始酶活的80%。因此,该固定化酶具有良好的温度稳定性、pH稳定性、储存稳定性和操作稳定性,为酶法工业化生产N-乙酰神经氨酸研究提供了理论依据。  相似文献   

4.
以海藻酸钠为载体,戊二醛为交联剂固定化米曲霉F-81产中性蛋白酶,研究了固定化条件及固定化酶的性质。结果表明,固定化的最佳条件为:固定化时间1 h、海澡酸钠浓度4%、戊二醛浓度9%、CaCl2浓度0.7 mol/L。在此条件下固定化的中性蛋白酶活力为游离酶活力的68%。固定化酶的最适作用温度为65℃,最适作用pH值为7.0。60℃下酶稳定性较好,80℃下处理60 min,粗酶中几乎检测不到酶活力;中性蛋白酶pH稳定范围为6.5-9.5。Km值为24.83 mg/mL,最大反应速率Vmax为0.043 12 mg/min。  相似文献   

5.
二氧化硅纳米材料固定中性脂肪酶的条件优化及其特性   总被引:1,自引:0,他引:1  
以二氧化硅纳米材料为载体,采用吸附法对脂肪酶进行固定化,研究了不同条件对固定化脂肪酶的催化活性的影响,得到最佳的固定化条件:给酶量为28300U/g,固定化温度为45oC,pH值为7.5,时间为10h,此时固定化酶的活力约为3867U/g载体。固定化酶的最适反应温度为45oC,比游离酶的反应温度高5oC,最适pH下降到5.5,低于游离酶的反应pH(pH7)。固定化酶的热稳定性和pH稳定性较游离酶有了很大的提高,其在70oC以下能保持70%以上的酶活力,而游离酶在50oC下残余酶活力仅为30%。在pH5~8的范围内,固定化酶的酶活力能保持50%以上,而游离酶只能保持20%左右。用固定化的中性脂肪酶催化不同的油品,即大豆油、菜籽油及泔水油生产生物柴油,菜籽油的酯化率最高。  相似文献   

6.
为有效提高D-泛解酸内酯水解酶的利用效率,笔者选择合适的载体对酶进行固定化,在优化固定化条件的同时研究固定化酶的最佳反应条件和酶学性质。结果表明,选择的最佳固定化载体为树脂D380,最佳固定化条件为:酶的吸附添加量为30 U(以1 g湿树脂计),吸附pH 7.0,吸附温度30℃,吸附时间5 h,戊二醛体积分数0.1%,交联时间1 h。在最优条件下得到的固定化酶的比酶活为(11.5±0.12) U/g。固定化酶的最适反应温度为37℃,最适反应pH为7.5。游离酶和固定化酶的动力学常数K_m分别为170.25和207.60 mmol/L。Ca~(2+)对酶促反应有激活作用,Mn~(2+)对该酶有较强的抑制作用。  相似文献   

7.
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   

8.
分别采用海藻酸钠、明胶和壳聚糖为载体,并以戊二醛为交联剂,通过包埋-交联和吸附-交联两种耦合固定化方法制备固定化锰过氧化物酶。探讨了酶的不同固定化条件和固定化酶的部分性能。与游离酶相比,制备的3种固定化酶最适反应pH分别由7.0降低到5.0、5.0和3.0,最适反应温度分别由35℃升高到75℃、55℃和75℃。3种固定化酶的耐热性都显著提高,其中用壳聚糖制成的固定化酶在pH 2.2~11的宽范围内表现出很好的酸碱耐受性。30℃连续测定6~9次酶活力,重复使用的3种固定化酶显示出良好的稳定性。将固定化酶应用在偶氮染料的脱色中,用明胶制成的固定化酶在静置和摇床条件下,以及用海藻酸钠制成的固定化酶在摇床条件下,均表现出与游离酶相近的脱色能力,并且在重复进行的摇床实验中,脱色能力未降低,反应前后的酶活力均没有损失。  相似文献   

9.
不同载体固定化胰蛋白酶酶学特性的研究   总被引:4,自引:0,他引:4  
目的:研究以壳聚糖、复合硅胶、阴离子交换树脂为载体固定化胰蛋白酶的酶学特性。方法:通过测定不同载体固定化胰蛋白酶的活力得其最适反应温度值、最适反应pH值和米氏常数(Km)值。结果:以壳聚糖、复合硅胶、阴离子交换树脂为载体制备固定化胰蛋白酶的最适反应温度分别为70℃、60℃、60℃;最适反应pH值分别为7.5、8.0、8.0;表观米氏常数K’m分别为22.72mg/ml、25.12mg/ml、29.04mg/ml。结论:与游离酶相比,固定化胰蛋白酶均表现出一定的热稳定性、酸碱稳定性,利于工业化生产。  相似文献   

10.
以伴刀豆球蛋白为介质定向固定化脲酶的研究   总被引:1,自引:0,他引:1  
将戊二醛将伴刀豆球蛋白(ConA)和壳聚糖载体交联,然后利用ConA与脲酶糖链的特异性结合作用,实现脲酶的定向固定化.定向固定化的最适条件为戊二醛浓度3.5%、ConA浓度1mg/mL、ConA溶液pH值7.0、脲酶浓度0.4mg/mL.定向固定化脲酶的最适pH 5.0~6.0、最适温度77℃,米氏常数Km11.76mmol/L,与游离酶及非定向固定化脲酶比较,定向固定化脲酶的最适pH向酸性范围发生了偏移并有更宽的pH适用范围,最适温度提高,与底物的亲和力较大,且有较好的操作稳定性.  相似文献   

11.
以自制的壳聚糖作为载体,用戊二醛作交联剂,优化了固定化条件,研制成壳聚糖固定化木瓜蛋白酶。其活性回收率达到42—53%,操作半衰期达到一个月以上,对热、乙醇以及尿素的稳定性有很大的提高,Km值为0.67×10~2mg/mL,最适温度65—70℃,最适pH8.0,能使啤酒中的蛋白质浓度从56.5mg/L减少到2.7mg/L,可以消除啤酒的低温混浊现象。  相似文献   

12.
以壳聚糖为载体,成二醛为交联剂将木瓜蛋白酶固定化。5%戊二醛在4-6℃下处理载体5h,加酶液(3.5mg/mL蛋白,pH7.2)固定12h,活力回收达32%,作用于酪蛋白的半衰期为36天,其表观K_m(酪蛋白)值为0.075%(W/V),溶液酶的K_m值为0.086%;最适pH7.0~7.5,溶液酶为7.0~8.5。固定化酶在pH8.5以下,溶液酶在9.0以下活力稳定。固定化酶在45℃以下,溶液酶在75℃以下稳定。用6mol/L脲洗脱固定化酶4次(5.5h)活力仍有54.5%。用固定化酶处理啤酒浊度比对照下降了1.5-3.7倍,蛋白质含量下降了44%,冷藏(4℃)120天无冷混浊现象发生并保持了啤酒原有风味和理化性状。  相似文献   

13.
The esterification of some N-benzyloxycarbonyl (Z)-dipeptides in ethanol-containing water was investigated using papain as a catalyst. The esterification took place in ethanol containing a samll amount of water (2% v/v, pH 9) with free papain at room temperature. The yield (after 24 h) of the ethyl ester was in the range of 25% to 50%. Any peptide bond cleavage of the substrates was not observed during esterification, indicating that the unfavorable amidase activity of papain was well depressed under these conditions. However, dipeptides having a D-amino amino acid (Z-valyl-D-alanine) or a bulky amino acid (Z-valylvaline) at the C-terminal position could not be esterified. It was found that the immobilization of papain on Amberlite XAD-8 increased the yield of the ester significantly as compared with free papain. In the esterification of Z-valylalanine using immobilized papain, the optimum water content, pH of an added buffer, and temperature were found to be 2% (v/v), 9, and 40 degrees C, respectively. The water content affected the yield of the product ester significantly.(c) 1993 John Wiley & Sons, Inc.  相似文献   

14.
Immobilization of papain on Sepharose 6B in the presence of different concentrations of cysteine affected the enzyme activity depending on cysteine concentration. The maximum specific activity was observed when papain was immobilized with 200 mM cysteine. The immobilization process brought significant enhancement of stability to temperature and extreme pH values with respect to free papain. After immobilization, the optimum temperature of papain activity increased by 20°C (from 60 to 80°C) and its optimum pH activity shifted from 6.5 to 8.0. Catalytic efficiency (kcat/Km) and specific activity of the immobilized enzyme do not significantly change after immobilization. The temperature profile of this form of immobilized papain showed a broad range of activity compared with both free and immobilized form of papain in the absence of cysteine. This significant behavior in terms of activation energy is also discussed.  相似文献   

15.
The immobilization of papain on the mesoporous molecular sieve MCM‐48 (with a pore size of 6.2 nm in diameter) with the aid of glutaraldehyde, and the characteristics of this immobilized papain are described. The optimum conditions for immobilization were as follows: 20 mg native free enzyme/g of the MCM‐48 and 0.75 % glutaraldehyde, 2 h at 10–20 °C and pH 7.0. Under these optimum conditions for immobilization, the activity yield [%] of the immobilized enzyme was around 70 %. The influence of the pH on the activity of the immobilized enzyme was much lower compared to the free enzyme. The thermostability of the immobilized enzyme, whose half‐life was more than 2500 min, was greatly improved and was found to be significantly higher than that of the free enzyme (about 80 min). The immobilized enzyme also showed good operational stability, and the activity of the immobilized enzyme continued to maintain 76.5 % of the initial activity even after a 12‐day continuous operation. Moreover, the immobilized enzyme still exhibited good storage stability. From these results, papain immobilized on the MCM‐48 with the aid of glutaraldehyde, can be used as a high‐performance biocatalyst in biotechnological processing, in particular in industrial and medical applications.  相似文献   

16.
A method has been developed to immobilize papain on cotton fabric by means of sol–gel technique. The activity of free papain and papain in silica sol under sonication was studied. Scanning electron microscopy, energy dispersive spectrometer and the Bradford method were used to characterize papain immobilization. The efficiency of the immobilization was investigated by examining the relative enzymatic activity of free and immobilized papain, respectively. The results show that the optimum pH value in the medium for immobilized papain is shifted to alkaline side. In addition, the adaptability of papain to environmental acidity is significantly increased. The thermostability of immobilized papain shows no significant change compared to the free enzyme. The papain immobilized on fabric by sol–gel technique retains more than 30% of the original activity after six reuses continuously.  相似文献   

17.
Reactive continuous rods of macroporous poly(glycidyl methacrylate-co-ethylene dimethacrylate) were prepared within the confines of a stainless steel column. Then papain was immobilized on these monoliths either directly or linked by a spacer arm. In a further step, a protein A affinity column was used for the characterization of the digestion products of human immunoglobulin G (IgG) by papain. The results showed that papain immobilized on the monolithic rod through a spacer arm exhibits higher activity for the digestion of human IgG than that without a spacer arm. The apparent Michaelis-Menten kinetic constants of free and immobilized papain, K(m) and V(max), were determined. The digestion conditions of human IgG with free and immobilized papain were optimized. Comparison of the thermal stability of free and immobilized papain showed that the immobilized papain exhibited higher thermal stability than the free enzyme. The half-time of immobilized papain reaches about a week under optimum pH and temperature conditions.  相似文献   

18.
 以自制的脱乙酰壳多糖作载体,戊二醛为交联剂,对胰蛋白酶的固定化条件及其固定化酶的性质进行了研究。考查了交联剂的用量、pH值、以及载体与酶的比例等因素对胰蛋白酶固定化的影响。在所选择的固定化条件下,固定化酶的活性回收可达50%以上。同时研究了固定化胰蛋白酶的一些性质;最适温度60℃,最适PH8.0,Km值比可溶性酶升高,热稳定性、pH贮存稳定性以及在乙醇水溶液中的稳定性明显高于可溶性胰蛋白酶。在柱式反应器内,以2%酪蛋白为底物对,操作半衰期为40天。  相似文献   

19.
The adsorption of papain on Reactive Blue 4 dye–ligand affinity membrane was investigated in a batch system. The combined effects of operating parameters such as initial pH, temperature, and initial papain concentration on the adsorption were analyzed using response surface methodology. The optimum adsorption conditions were determined as initial pH 7.05, temperature 39 °C, and initial papain concentration 11.0 mg/ml. At optimum conditions, the adsorption capacity of dye–ligand affinity membrane for papain was found to be 27.85 mg/g after 120 min adsorption. The papain was purified 34.6-fold in a single step determined by fast protein liquid chromatography. More than 85% of the adsorbed papain was desorbed using 1.0 M NaCl at pH 9.0 as the elution agent. The purification process showed that the dye–ligand immobilized composite membrane gave good separation of papain from aqueous solution.  相似文献   

20.
近年来溶胶-凝胶法固定脂肪酶已成为研究热点。选用TMOS、MTMS、ETMS和PTMS 4种硅烷试剂对黑曲霉脂肪酶进行了固定化研究。固定化的最佳配方为ETMS/TMOS=5:1、水与硅烷试剂分子比为8;固定化脂肪酶的固定率为80.2%、相对活性为136.3%;以乳化橄榄油作为底物,在50℃和pH4.0的条件下,固定化脂肪酶与游离脂肪酶Km分别为1.899×10-4M和2.789×10-4M;最适反应pH均为pH4.0,固定化脂肪酶在pH4.0~pH5.5之间其活性能保持95%以上;固定化脂肪酶最适反应温度为60℃,较游离脂肪酶提高了10℃;固定化脂肪酶的酸碱稳定性和热稳定性较非固定化酶有显著的提高。固定化脂肪酶的使用寿命和保存稳定性良好,使用12次后仍能够保留71.7%活性,在室温避光条件下保存180天后仍可保留79.2%活性。  相似文献   

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