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1.
模拟谷胱甘肽过氧化物酶活性三肽的制备及其性质研究   总被引:1,自引:0,他引:1  
开发一种制备硒代谷胱甘肽(GSeH)的新方法,以合成的谷氨酰-γ丝氨酰-甘氨酸(Glu-Ser-Gly)三肽为原料,经苯甲基磺酰氟(PMSF)活化,用H2Se突变Ser成硒代半胱氨酸(SeCys)制成GSeH.用元素分析及氨基酸分析确定此三肽的组成并推导出此三肽的结构,研究了GSeH的性质,结果表明,此三肽具有谷胱甘肽过氧化物酶(GPX)的活性,其活力比其它一些小分子有机模拟物高,在性质上出有于它  相似文献   

2.
化学修饰单克隆抗体模拟谷胱甘肽过氧化物酶   总被引:1,自引:0,他引:1  
化学修饰具有底物谷胱甘肽(GSH)结合部位的单克隆抗体(4A4)使其结合部位上的丝氨酸(Ser)转变成谷胱甘肽过氧化物酶(GPX)的催化基因硒代半胱氨酸(SeCys)因而产生高活力的含硒抗体酶(Se-abzyme)突变的4A4(m4A4)的GPX活力达到了天然酶活力的19%并对m4A4的酶学性质和动力学性质进行了研究;硒代谷胱甘肽(GSeH)连到4A4结合部位,其GPX活力由3.86U/μmol提  相似文献   

3.
化学修饰具有底物谷胱甘肽(GSH)结合部位的单克隆抗体(4A4),使其结合部位上的丝氨酸(Ser)转变成谷胱甘肽过氧化物酶(GPX)的催化基团硒代半胱氨酸(Se-Cys),因而产生高活力的含硒抗体酶(Se-abzyme).突变的4A4(m4A4)的GPX活力达到了天然酶活力的19%,并对m4A4的酶学性质和动力学性质进行了研究;硒代谷胱甘肽(GSeH)连到4A4结合部位,其GPX活力由3.86U/μmol提高到598.9U/μmol用黄嘌呤氧化酶/次黄嘌呤为中心的心肌线粒体自由基损伤模型证明Se-abzyme(m4A4)可减轻活性氧对线粒体的损伤。  相似文献   

4.
化学突变具有底物结合部位的单克隆抗体制备含硒抗体酶   总被引:3,自引:1,他引:2  
开发了一种制备抗体酶的新方法。用二硝基氯苯(DNCB)专一地与谷胱甘肽(GSH)的巯基反应,合成出半抗原GSH-S-DNP。用戊二醛将半抗原偶联到牛血清白蛋白(BSA)上,制成全抗原。再用标准的单抗制备法获得具有GSH结合部位的单抗(4A4IgG)。用苯甲基磺酞氟(PMSF)和H2Se相继处理该单抗,则将单拉结合部位上的丝氨酸(Ser)突变成硒代半胱氨酸(SeCys,因而在单抗结合部位上引入了谷胱甘肽过氧化物酶(GPX)的催化基团。突变后的单抗具有GPX活性,其活力已达到天然GPX的数量级水平。动力学行为也与天然GPX类似。这种新的含硒抗体酶有优于GPX的一些特点。  相似文献   

5.
兼具SOD和GPX活力的双功能酶的制备及性质研究   总被引:3,自引:0,他引:3  
用苯甲基磺酰氟(PMSF)和H2Se相继处理铜锌超氧化物歧化酶(Cu,Zn-SOD),将酶分子中的丝氨酸(Ser)转化为硒代半胱氨酸(SeCys),从而引入了谷胱甘肽过氧化物酶(GPX)的催化基因,使其在SOD酶活性大部分保留的情况下,具有GPX活性,其GPX活力是PZ51活力的30倍,研究了双功能酶的最佳制备条件,包括PMSF的剂量、反应最适温度及H2Se处理时间等,并用电子能谱、DTNB等方法  相似文献   

6.
用苯甲基磺酰氟(PMSF)和H_2Se相继处理铜锌超氧化物岐化酶(Cu,Zn-SOD),将酶分子中的丝氨酸(Ser)转化为硒代半胱氨酸(SeCys),从而引入了谷胱甘肽过氧化物酶(GPX)的催化基团,使其在SOD酶活性大部分保留的情况下,具有GPX活性,其GPX活力是PZ51活力的30倍。研究了双功能酶的最佳制备条件,包括PMSF的剂量、反应最适温度及H_2Se处理时间等,并用电子能谱、DTNB等方法测定了双功能酶的硒含量;测定了双功能酶对不同底物的米氏常数及双功能酶的荧光光谱、紫外吸收光谱及稳定性。  相似文献   

7.
2-位硒桥联β-环糊精的合成及催化性质   总被引:2,自引:0,他引:2  
将β-环糊精(β-CD)2位羟基选择性磺酰化后,再用NaHSe处理使谷胱甘肽过氧化物酶(GPX)的催化基团-SeH引入β-CD的2位上,经空气氧化得到了GPX模拟物双硒桥联β-环糊精.利用元素分析、核磁共振、红外光谱对此模拟物进行了表征.X光电子能谱技术测定了模拟物中硒的价态和含量.测活结果表明模拟物的GPX活性是PZ51的7.5倍  相似文献   

8.
用诱变剂苯甲基磺酰氟(PMSF)活化兔抗人IgM(Fcμ)片段上特殊活性部位的丝氨酸(Ser)残基,经硒化氢(H_2Se)处理,则将丝氨酸转变成硒代半胱氨酸(SeCys)。诱变后的抗体具有谷胱甘肽过氧化物酶(GSH-Px)活性,其活性为世界最好的GSH-Px模拟物PZ51的70多倍。抗体效价为1:8,与没诱变的抗体相似。  相似文献   

9.
硒对培养人胚肝细胞Ⅲ型前胶原,羟脯氨酸合成的影响   总被引:7,自引:0,他引:7  
原代培养人胚肝细胞经1.156×10 ̄(-7)mol/L硒预处理4h,加入20mmol/L四氟化碳作用20h,观察硒对其Ⅲ型前胶原(PCⅢ)和羟脯氨酸(Hyp)生成的影响。结果培养液中PCⅢ水平、细胞内Hyp含量及细胞内外丙二醛(MDA)水平均降低,与未加硒对照组比较差别有显著性(P<0.01)。而硒谷腕甘肽过氧化物酶(Se-GSH-PX)活性则较对照组显著增高(P<0.001),且PCⅢ水平与Se-GSH-P_X/MDA比值呈负相关(r=-0.9156,P<0.01)。提示硒可提高Se-GSH-P_X/MDA比值,抑制脂质过氧化激发的肝细胞胶原合成。  相似文献   

10.
在成功地制备了具有谷胱甘肽过氧化物酶(GPX)活性含硒抗体酶(Se-abzyme)的基础上,我们筛选了制备Se-abzyme的最佳条件,并对其理化性质及酶学性质和稳定性进行了深入的研究。结果表明,Se-abzyme的等电点为6.95和7.08,一为158kd;适PH和最适温度范围比天然酶宽广;抗体酶的贮藏稳定性比天然酶高。高X射线光电子能谱技术测得在Se-abzyme中含硒量为5molSe/mol  相似文献   

11.
Lv SW  Wang XG  Mu Y  Zang TZ  Ji YT  Liu JQ  Shen JC  Luo GM 《The FEBS journal》2007,274(15):3846-3854
A 6A,6A'-dicyclohexylamine-6B,6B'-diselenide-bis-beta-cyclodextrin (6-CySeCD) was designed and synthesized to imitate the antioxidant enzyme glutathione peroxidase (GPX). In this novel GPX model, beta-cyclodextrin provided a hydrophobic environment for substrate binding within its cavity, and a cyclohexylamine group was incorporated into cyclodextrin in proximity to the catalytic selenium in order to increase the stability of the nucleophilic intermediate selenolate. 6-CySeCD exhibits better GPX activity than 6,6'-diselenide-bis-cyclodextrin (6-SeCD) and 2-phenyl-1,2-benzoisoselenazol-3(2H)-one (Ebselen) in the reduction of H(2)O(2), tert-butyl hydroperoxide and cumenyl hydroperoxide by glutathione, respectively. A ping-pong mechanism was observed in steady-state kinetic studies on 6-CySeCD-catalyzed reactions. The enzymatic properties showed that there are two major factors for improving the catalytic efficiency of GPX mimics. First, the substrate-binding site should match the size and shape of the substrate and second, incorporation of an imido-group increases the stability of selenolate in the catalytic cycle. More efficient antioxidant ability compared with 6-SeCD and Ebselen was also seen in the ferrous sulfate/ascorbate-induced mitochondria damage system, and this implies its prospective therapeutic application.  相似文献   

12.
Vegetables are generally recognized as rich sources of dietary antioxidants for inhibiting lipid peroxidation. Here we investigated lipid hydroperoxide (LOOH)-reducing activity of several vegetables to estimate their role on the prevention of lipid peroxidation in food and the digestive tract. By using HPLC analysis, we screened vegetables possessing the ability to convert 13-hydroperoxyoctadecadienoic acid (13-HPODE) to its reduced derivative, 13-hydroxyoctadecadienoic acid (13-HODE). Welsh onion (Allium fistulosum L.) was found to be highly active in the reduction of 13-HPODE among tested vegetables. There was no relationship between 13-HPODE reducing activity and GSH peroxidase (GPX) activity in the tested vegetables. 13-HPODE-reducing activity of welsh onion was enhanced by the addition of sulfhydryl compounds including glutathione (GSH). Neither GPX inhibitor nor heat treatment suppressed 13-HPODE-reducing activity effectively. These results suggest that welsh onion and other vegetables contain GPX mimics responsible for the reduction of LOOH. GPX mimics may be helpful in the attenuation of harmful effect of LOOH from food.  相似文献   

13.
Glutathione peroxidase (GPX), superoxide dismutase (SOD) and catalase (CAT) play crucial roles in the metabolism and homeostasis of reactive oxygen species (ROS) in living organisms. From examination of the steady state and pre-steady state kinetic behavior of natural GPX it was found that, in contrast to accepted theories, the affinity of the enzyme for H2O2 rather than reduced glutathione (GSH) most significantly affects its kinetic behavior. Consequently, an enzyme mimic was produced with a similar affinity for the substrate H2O2. A salicylaldehyde Schiff base containing a dimanganese centre was selected as a precursor, because it has high H2O2-binding affinity for such a relatively small molecule and similar catalytic activity to that of SOD and CAT. Selenium was also incorporated into the catalytic center to provide activity similar to that of GPX, and thus trifunctional enzymatic activity. The KmH2O2 of the mimic (7.32 × 10-2 mM) was found quite close to that of natural enzyme (1.0 × 10-2 mM), indicating that the affinity of the mimic to H2O2 was successfully increased to approach natural GPX. The steady state kinetic performance of the enzyme mimic showed that the ratio between kcat/KmGSH and kcat/ KmH2O2 was quite similar to that of native GPX, indicating that the Mn(III)2(L-Se-SO3Na) had the same selectivity for both substrates GSH and H2O2 as native GPX, which put it among the best existing GPX mimics. Moreover, the new mimic was confirmed to strongly inhibit lipid peroxidation and mitochondrial swelling, probably due to the synergism between the three antioxidant enzymatic activities.  相似文献   

14.
Glutathione peroxidase (GPX) is a crucial antioxidant selenocysteine (Sec) containing enzyme which plays a significant role in protecting cells against oxidative damage by catalyzing the reduction of hydroperoxides with glutathione (GSH). Several methods have been used to generate GPX mimics, however, only a few of these methods involved genetic engineering and none of them have achieved specific site-directed incorporation of Sec without other modifications, which has hampered further structure-function studies. Here, we report for the first time the conversion of human glutathione transferase Zeta (hGSTZ1-1) into seleno-hGSTZ1-1 by means of genetic engineering in eukaryotes. Fluorescence microscopy images of the expression of Seleno-GST-green fluorescent protein chimaera indicated that we successfully achieved the read-through of the UGA codon to specifically incorporate Sec. Therefore, we achieved the conversion of human glutathione transferase Zeta (hGSTZ1-1) into a seleno-GST (seleno-hGSTZ1-1) by means of genetic engineering in eukaryotes. These results show that recombinant selenoproteins with incorporation of specific selenocysteine residues may be heterologously produced in eukaryotes by using a Sec insertion sequence in the 3' untranslated region (3'-UTR) of the mRNA, and the recombinant selenoproteins is single catalytically active residue and well-characterized structure. In this case a novel GPX activity of 2050±225 U/μmol was introduced into hGSTZ1-1 by substitution of serine 15 by Sec 15. This result will lay a foundation for preparing much smaller GPX mimics with higher activity.  相似文献   

15.
Many diseases are associated with the overproduction of hydroperoxides that inflict cell damage. A novel cyclodextrin derivative, 6A,6B-diseleninic acid-6A',6B'-selenium bridged beta-cyclodextrin (6-diSeCD), was synthesized to be a functional mimic of glutathione peroxidase (GPX) that normally removes these hydroperoxides. The mimic had high catalytic GPX activity of 13.5 U/micromol, which is 13.6-fold higher than ebselen (PZ51), and was chemically and biologically stable in vitro. Antioxidant activity was studied by ferrous sulfate/ascorbate-induced mitochondria damage model system. These data show that the mimic has great antioxidant activity. Such mimics may result in better clinical therapies for diseases mediated by hydroperoxides.  相似文献   

16.
Glutathione peroxidase (GPX) is a critical antioxidant selenoenzyme in organisms that protects cells against oxidative damage by catalyzing the reduction of hydroperoxides by glutathione (GSH). Thus, some GPX mimics have been generated because of their potential therapeutic value. The generation of a semisynthetic selenoenzyme with peroxidase activity, which matches the catalytic efficiencies of naturally evolved GPX, has been a great challenge. Previously, we semisynthesized a GPX mimetic with high catalytic efficiency using a rat theta class glutathione transferase (rGST T2-2) as a scaffold, in which the highly specific GSH-binding site is adjacent to an active site serine residue that can be chemically modified to selenocysteine (Sec). In this study, we have taken advantage of a new scaffold, hGSTZ1-1, in which there are two serine residues in the active site, to achieve both high thiol selectivity and highly catalytic efficiency. The GPX activity of Se-hGSTZ1-1 is about 1.5 times that of rabbit liver GPX, indicating that the selenium content at the active site plays an important role in enhancement of catalytic performance. Kinetic studies revealed that the catalytic mechanism of Se-hGSTZ1-1 belong in a ping-pong mechanism similar to that of the natural GPX.  相似文献   

17.
A chemical derivative of trypsin, selenotrypsin, was prepared to imitate glutathione peroxidase (GPX) by converting active serine residues in the active site of trypsin into selenocysteines. The strategy for preparation of selenotrypsin contained selective sulfonation by phenylmethanesulfonyl fluoride and nucleophilic substitution by NaHSe. Seleno-trypsin displayed enzyme activity of GPX, which is 150U/(mol. The kinetic properties of selenotrypsin was demonstrated to be similar to that of native GPX. © Rapid Science Ltd. 1998  相似文献   

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