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1.
李森 《生物学通报》2011,46(5):23-24
光合作用与呼吸作用所涉及的[H]指NADH、FADH2与NADPH中的还原性氢。光合作用与呼吸作用中产生和利用的[H]不同,光合作用产生及利用NADPH,而呼吸作用产生与利用的[H]主要是NADH与FADH2。  相似文献   

2.
纯牛脾胆绿素还原酶是单一蛋白质,分子量约34 000,等电点约6.2。该酶对胆绿素具有专一性,在还原胆绿素为胆红素中,以还原胆绿素Ⅸ_α最快,Ⅸ_β、Ⅸ_γ和Ⅸ_δ皆很慢。于还原反应中,此酸可以NADH为电子和氢供体,NADPH亦然。然而,NADH依赖性酸与NADPH依赖性酶动力学性质不同:与NADH反应的最适pH7.0,而与HADPH反应时为8.5;两者活性均为过量的胆绿素所抑制,不过,NADPH依赖性酶更敏感。  相似文献   

3.
谷氨酸脱氢酶(GDH)是谷氨酸生物合成的关键酶,谷氨酸棒杆菌S9114是目前我国味精工业应用最广泛的生产菌种,其谷氨酸脱氢酶的研究尚未见报道。分离纯化该菌中的谷氨酸脱氢酶,研究其辅酶组成,对揭示谷氨酸脱氢酶的分子结构和性质,提高谷氨酸产率很有必要。将培养至对数期中期的细胞离心收集并用含适量DTT、EDTA的Tris-HCl缓冲液 (pH 7.5)洗涤,用French pressure cell press 破碎,离心去除菌体碎片得无细胞抽提液。然后使用?KTA_100快速纯化系统经DEAE_纤维素柱、疏水柱(HIC)、G-200凝胶过滤柱层析得到纯化大约70倍的以NADPH为辅酶的GDH和部分纯化的以NADH辅酶的GDH。这两个酶分别对NADPH、NADH高度专一,不能相互代替。经HPLC和SDS_PAGE测得前一种酶的分子量和亚基分子量分别为188kD和32kD,表明该酶为具有相同亚基的六聚体。酶活性测定使用HITACHI U-3000 分光光度计利用NAD(P)H在340nm氧化的初速度进行。蛋白质含量测定利用Bradford 方法进行,并以牛血清白蛋白为标准蛋白。纯化结果表明S9114中确实存在两种GDH,其中以NADH为辅酶的GDH尚未见报道。和某些具有两种GDH的微生物一样,S9114可能也是以NADPH为辅酶的GDH参与谷氨酸的合成代谢,以NADH为辅酶的GDH参与谷氨酸的分解代谢。同时发现以NADPH为辅酶的GDH在280nm吸收很弱,在215nm吸收很强。说明此酶中酪氨酸、苯丙氨酸含量较低。  相似文献   

4.
答:这里的[H]并不是指氢离子(H+),而是指辅酶中的氢(还原性氢),[H]的产生与利用即NADH、FADH。和NADPH的产生与利用。光合作用与呼吸作用中产生和利用的[H]不同,光合作用产生及利用NADPH.而呼吸作用产生与利用的[H]主要是NADH与FADH2。  相似文献   

5.
谷氨酸脱氢酶 (GDH)是谷氨酸生物合成的关键酶 ,谷氨酸棒杆菌S91 1 4是目前我国味精工业应用最广泛的生产菌种 ,其谷氨酸脱氢酶的研究尚未见报道。分离纯化该菌中的谷氨酸脱氢酶 ,研究其辅酶组成 ,对揭示谷氨酸脱氢酶的分子结构和性质 ,提高谷氨酸产率很有必要。将培养至对数期中期的细胞离心收集并用含适量DTT、ED TA的Tris_HCl缓冲液 (pH 7 5 )洗涤 ,用Frenchpressurecellpress破碎 ,离心去除菌体碎片得无细胞抽提液。然后使用 KTA_10 0快速纯化系统经DEAE_纤维素柱、疏水柱 (HIC)、G_2 0 0凝胶过滤柱层析得到纯化大约 70倍的以NAD PH为辅酶的GDH和部分纯化的以NADH辅酶的GDH。这两个酶分别对NADPH、NADH高度专一 ,不能相互代替。经HPLC和SDS_PAGE测得前一种酶的分子量和亚基分子量分别为 188kD和 32kD ,表明该酶为具有相同亚基的六聚体。酶活性测定使用HITACHIU_30 0 0分光光度计利用NAD(P)H在 340nm氧化的初速度进行。蛋白质含量测定利用Bradford方法进行 ,并以牛血清白蛋白为标准蛋白。纯化结果表明S91 1 4中确实存在两种GDH ,其中以NADH为辅酶的GDH尚未见报道。和某些具有两种GDH的微生物一样 ,S91 1 4可能也是以NADPH为辅酶的GDH参与谷氨酸的合成代谢 ,以NADH为辅酶的GDH参与谷氨酸的分解代谢。  相似文献   

6.
选用对吸胀冷害敏感的大豆[Glycine max(L.)Merr.]品种"黑河23"种子为试材,研究了渗透调节增强大豆种子活力过程中种子质膜氧化还原活性的变化.结果表明,大豆种子活力指数与种子质膜氧化还原活性呈正相关.与对照相比,渗控12 h显著提高大豆种子活力,表现在发芽指数、活力指数和TF生成量的提高,种子质膜NADH和NADPH氧化速率及Fe(CN)63-和EDTA-Fe3 还原速率明显上升;随着引发时间的延长,种子活力上升变缓,种子质膜NADH和NADPH氧化速率及Fe(CN)63-还原速率上升速度变慢,EDTA-Fe3 的还原速率在渗控24 h后开始下降,但渗控72 h仍高于对照.  相似文献   

7.
酵母3-脱氧葡糖醛酮代谢酶的分离纯化及部分性质   总被引:1,自引:0,他引:1  
3-脱氧葡糖醛酮 ( 3- deoxyglucosone)是美拉德反应的主要中间产物 ,对生物体具有毒性作用 .用硫酸铵分部沉淀、DEAE- cellulose52、Hydroxyapatite、DEAE- Sepharose CL- 6B柱层析从酿酒酵母 YBr-M( S.cerevisiae YBr-M)抽提液中分离纯化了 3-脱氧葡糖醛酮代谢酶 (以 NADPH为辅酶 ) .该酶是单一的分子 ,分子量为 44k D,反应最适 p H为 7.0 ,p H6.0~ 8.0之间酶活性相对稳定 ,以 3-脱氧葡糖醛酮为底物的米氏常数 Km 为 2 .2 5mmol/ L.在 35℃以下保温 30 min酶活不变 ,50℃保温 30 min后酶活损失 50 % .该酶对二羰基化合物的活性较高 ,对单羰基化合物则较低 ,其催化作用受碘乙酸、N-乙基顺丁烯二酰亚胺的抑制 ,而被β-巯基乙醇、二硫苏糖醇激活 ,催化作用必须以 NADPH为专一辅酶 ,当用 NADH代替 NADPH时 ,活力只有 5.3% .  相似文献   

8.
木糖还原酶是重组酿酒酵母工程菌利用木糖生成乙醇代谢途径中的关键酶, 该关键酶在利用木糖时依赖NADPH而不是NADH是导致酿酒酵母代谢木糖生成乙醇的最终产率低的主要原因之一。为了改变树干毕赤氏酵母木糖还原酶的辅酶依赖性, 对它的第21位赖基酸Lys进行了突变。利用质粒载体pET28b分别将突变后的基因K21A-XYL1、K21R-XYL1及野生基因WT-XYL1在大肠杆菌E. coli BL21(DE3)中进行表达, 表达后的蛋白经His-Tag纯化柱纯化后测定酶学性质。结果表明: K21R突变子的辅酶依赖性没有改变, 但K21A突变子的辅酶依赖性由NADPH完全逆转为NADH。  相似文献   

9.
木糖还原酶是重组酿酒酵母工程菌利用木糖生成乙醇代谢途径中的关键酶, 该关键酶在利用木糖时依赖NADPH而不是NADH是导致酿酒酵母代谢木糖生成乙醇的最终产率低的主要原因之一。为了改变树干毕赤氏酵母木糖还原酶的辅酶依赖性, 对它的第21位赖基酸Lys进行了突变。利用质粒载体pET28b分别将突变后的基因K21A-XYL1、K21R-XYL1及野生基因WT-XYL1在大肠杆菌E. coli BL21(DE3)中进行表达, 表达后的蛋白经His-Tag纯化柱纯化后测定酶学性质。结果表明: K21R突变子的辅酶依赖性没有改变, 但K21A突变子的辅酶依赖性由NADPH完全逆转为NADH。  相似文献   

10.
毕赤酵母木糖还原酶定点突变改善其对双辅酶的亲和力   总被引:1,自引:0,他引:1  
通过毕赤酵母(Pichia stipitis)木糖还原酶(xylose reductase, XR)基因定点突变,获得NADH高亲和力的毕赤酵母木糖还原酶(PsXR),改善了辅酶不同而导致的酿酒酵母胞内氧化还原失衡.同时克隆了PsXR编码基因,通过BLAST工具进行同源性搜索,并用生物软件进行序列比对和结构分析,确定突变位点.用融合PCR方法进行定点突变,并在大肠杆菌表达系统中进行融合表达,且对表达产物进行HIS-TAG亲和纯化,分光光度法检测酶活性,计算比活力.本研究成功获得突变XR编码基因,并收集了纯化的突变蛋白.酶活性检测和比活力计算显示,3种突变酶对2种辅酶的亲和力在一定程度上都发生了变化.与未突变的PsXR相比,3种突变酶对辅酶NADPH的亲和力均显著下降,突变酶M3对辅酶NADH的亲和力未发生变化,而突变酶M1和M4对辅酶NADH的亲和力显著升高,其中突变酶M1对NADH的亲和力明显提高,对NADPH的亲和力明显下降,其活性主要依赖辅酶NADH,提示K270R位点在XR与辅酶结合中起关键作用.  相似文献   

11.
Biliverdin reductase was purified from pig spleen soluble fraction to a purity of more than 90% as judged by sodium dodecyl sulfate-polyacrylamide gel electrophoresis. The enzyme was a monomer protein with a molecular weight of about 34,000. Its isoelectric point was at 6.1-6.2. The enzyme was strictly specific to biliverdin and no other oxiodoreductase activities could be detected in the purified enzyme preparation. The purified enzyme could utilize both NADPH and NADH as electron donors for the reduction of biliverdin. However, there were considerable differences in the kinetic properties of the NADPH-dependent and the NADH-dependent biliverdin reductase activities: Km for NADPH was below 5 microM while that for NADH was 1.5-2 mM; the pH optimum of the reaction with NADPH was 8.5 whereas that of the reaction with NADH was 6.9; Km for biliverdin in the NADPH system was 0.3 microM whereas that in the NADH system was 1-2 microM. In addition, both the NADPH-dependent and NADH-dependent activities were inhibited by excess biliverdin, but this inhibition was far more pronounced in the NADPH system than in the NADH system. IX alpha-biliverdin was the most effective substrate among the four biliverdin isomers, and the dimethylester of IX alpha-biliverdin could not serve as a substrate. Biliverdin reductase was also purified about 300-fold from rat liver soluble fraction. The hepatic enzyme was also a monomer protein with a molecular weight of 34,000 and showed properties quite similar to those of the splenic enzyme as regards the biliverdin reductase reaction. The isoelectric point of the hepatic enzyme, however, was about 5.4. It was assumed that NADPH rather than NADH is the physiological electron donor in the intracellular reduction of IX alpha-biliverdin. The stimulatory effects of bovine and human serum albumins on the biliverdin reductase reactions were also examined.  相似文献   

12.
The FAD-containing monooxygenase (FMO) has been purified from both mouse and pig liver microsomes by similar purification procedures. Characterization of the enzyme from these two sources has revealed significant differences in catalytic and immunological properties. The pH optimum of mouse FMO is slightly higher than that of pig FMO (9.2 vs. 8.7) and, while pig FMO is activated 2-fold by n-octylamine, mouse FMO is activated less than 20%. Compounds, including primary, secondary and tertiary amines, sulfides, sulfoxides, thiols, thioureas and mercaptoimidazoles were tested as substrates for both the mouse and pig liver FMO. Km- and Vmax-values were determined for substrates representative of each of these groups. In general, the mouse FMO had higher Km-values for all of the amines and disulfides tested. Mouse FMO had Km-values similar to those of pig FMO for sulfides, mercaptoimidazoles, thioureas, thiobenzamide and cysteamine. Vmax-values for mouse FMO with most substrates was approximately equal, indicating that as with pig FMO, breakdown of the hydroxyflavin is the rate limiting step in the reaction mechanism. Either NADPH or NADH will serve as an electron donor for FMO, however, NADPH is the preferred donor. Pig and mouse FMOs have similar affinity for NADPH (Km = 0.97 and 1.1 microM, respectively) and for NADH (Km = 48 and 73 microM, respectively). An antibody, prepared by immunizing rabbits with purified pig liver FMO, reacts with purified pig liver FMO but not with mouse liver FMO, indicating structural differences between these two enzymes. This antibody inhibited pig FMO activity up to 60%.  相似文献   

13.
NADH 5 alpha-reductase is present in microsomes of various rat organs: heart and skeletal muscle, liver, adrenal glands, kidney, testes and prostate. The enzyme from rat liver microsomes utilizes B-hydrogen from the coenzyme NADH for steroid reduction. After solubilization of the enzyme with the nonionic detergent lubrol, phosphatidylcholine is necessary to restore the activity. This reactivation of the enzyme activity is paralleled by a corresponding increase of Vmax for testosterone (17 beta-hydroxy-4-androsten-3-one). Km and Vmax for testosterone change, Km and Vmax for the coenzyme NADH remain constant with an alteration of phosphate concentration in the incubation medium. The NADH 5 alpha-reductase is inhibited by numerous substances: amytal, phenobarbital, mepacrin, thenoyltrifluoracetone, gallic acid propyl ester, dicoumarol, pentachlorophenol, NADP and antibodies against rat liver NADPH ferrihemoprotein reductase. Antibodies against rat liver cytochrome-b5 reductase cause an activation of NADH 5 alpha-reductase.  相似文献   

14.
Coenzyme specificity of mammalian liver D-glycerate dehydrogenase   总被引:1,自引:0,他引:1  
D-Glycerate dehydrogenase (glyoxylate reductase) was partially purified from rat liver by anion- and cation-exchange chromatography. When assayed in the direction of D-glycerate or glycolate formation, the enzyme was inhibited by high (greater than or equal to 0.5 mM), unphysiological concentrations of hydroxypyruvate or glyoxylate much more potently in the presence of NADPH than in the presence of NADH. However, the dehydrogenase displayed a much greater affinity for NADPH (Km less than 1 microM) than for NADH (Km = 48-153 microM). Furthermore, NADP was over 1000-fold more potent than NAD in inhibiting the enzyme competitively with respect to NADH. NADP also inhibited the reaction competitively with respect to NADPH whereas NAD, at concentrations of up to 10 mM had no inhibitory effect. When measured by the formation of hydroxypyruvate from D-glycerate, the enzyme also displayed a much greater affinity for NADP than for NAD. These properties indicate that liver D-glycerate dehydrogenase functions physiologically as an NADPH-specific reductase. In agreement with this conclusion, the addition of hydroxypyruvate or glyoxylate to suspensions of rat hepatocytes stimulated the pentose-phosphate pathway. The coenzyme specificity of D-glycerate dehydrogenase is discussed in relation to the biochemical findings made in D-glyceric aciduria and in primary hyperoxaluria type II (L-glyceric aciduria).  相似文献   

15.
Monodehydroascorbate reductase (EC 1.6.5.4) was purified from cucumber fruit to a homogeneous state as judged by polyacrylamide gel electrophoresis. The cucumber monodehydroascorbate reductase was a monomer with a molecular weight of 47,000. It contained 1 mol of FAD/mol of enzyme which was reduced by NAD(P)H and reoxidized by monodehydroascorbate. The enzyme had an exposed thiol group whose blockage with thiol reagents inhibited the electron transfer from NAD(P)H to the enzyme FAD. Both NADH and NADPH served as electron donors with Km values of 4.6 and 23 microM, respectively, and Vmax of 200 mol of NADH and 150 mol of NADPH oxidized mol of enzyme-1 s-1. The Km for monodehydroascorbate was 1.4 microM. The amino acid composition of the enzyme is presented. In addition to monodehydroascorbate, the enzyme catalyzed the reduction of ferricyanide and 2,6-dichloroindophenol but showed little reactivity with calf liver cytochrome b5 and horse heart cytochrome c. The kinetic data suggested a ping-pong mechanism for the monodehydroascorbate reductase-catalyzed reaction. Cucumber monodehydroascorbate reductase occurs in soluble form and can be distinguished from NADPH dehydrogenase, NADH dehydrogenase, DT diaphorase, microsome-bound NADH-cytochrome b5 reductase, and NADPH-cytochrome c reductase by its molecular weight, amino acid composition, and specificity of electron acceptors and donors.  相似文献   

16.
Summary Three different NAD(P)H-FMN reductases were extracted from Beneckea harveyi MB-20 cells and separated by DEAE-Sephadex A50 column chromatography. Further purification was achieved by affinity chromatography. In determinations of Km values for NADH, NADPH, and FMN, these three reductases exhibited different specificities and kinetic parameters. One reductase utilizes NADH, whereas a second one utilizes NADPH as the preferred substrate. The third, a newly described reductase species, exhibits about the same reaction rates with NADH and NADPH. The reaction mechanisms of the three enzyme forms have been deduced by steady state kinetic analysis. The highly pure (based on gel electrophoresis) NADPH-FMN reductase still exhibited a low (approximately 2%) activity for NADH, which activity was increased upon storage at 4° but suppressed completely by the replacement of the phosphate buffer with sodium citrate buffer. This high specificity of NADPH-FMN reductase for NADPH under these conditions is useful for the assay of NADPH, notably in systems coupled to bacterial luciferase.  相似文献   

17.
delta1-Pyrroline-5-carboxylate (PCA) reductase [L-proline:NAD(P)+5-oxidoreductase, EC 1.5.1.2] has been purified over 200-fold from Escherichia coli K-12. It has a molecular weight of approximately 320,000. PCA reductase mediates the pyridine nucleotide-linked reduction of PCA to proline but not the reverse reaction (even at high substrate concentrations). The partially purified preparation is free of competing pyridine nucleotide oxidase, PCA dehydrogenase, and proline oxidase activities. The Michaelis constant (Km) values for the substrate, PCA, with reduced nicotinamide adenine dinucleotide phosphate (NADPH) or NADH as cofactor are 0.15 and 0.14 mM, respectively. The Km values determined for NADPH and NADH are 0.03 and 0.23 mM, respectively. Although either NADPH or NADH can function as cofactor, the activity observed with NADPH is severalfold greater. PCA reductase is not repressed by growth in the presence of proline, but it is inhibited by the reaction end products, proline and NADP.  相似文献   

18.
Lysine-54 of human dihydrofolate reductase (hDHFR) appears to be involved in the interaction with the 2'-phosphate of NADPH and is conserved as a basic residue in other species. Studies have suggested that in Lactobacillus casei dihydrofolate reductase Arg-43, the homologous residue at this position, plays an important role in the binding of NADPH and in the differentiation of Km values for NADPH and NADH. A Lys-54 to Gln-54 mutant (K54Q) of hDHFR has been constructed by oligodeoxynucleotide-directed mutagenesis in order to study the role of Lys-54 in differentiating Km and Kcat values for NADPH and NADH as well as in other functions of hDHFR. The purpose of this paper is to delineate in quantitative terms the magnitude of the effect of the Lys-54 to Gln-54 replacement on the various kinetic parameters of hDHFR. Such quantitative effects cannot be predicted solely on the basis of X-ray structures. The Km for NADPH for the K54Q mutant enzyme is 58-fold higher, while the Km for NADH for K54Q is only 3.9-fold higher than that of the wild type, indicating that the substitution of Lys-54 with Gln-54 decreases the apparent affinity of the enzyme for NADPH dramatically, but has a lesser effect on the apparent affinity for NADH.(ABSTRACT TRUNCATED AT 250 WORDS)  相似文献   

19.
Cell-free extracts of a streptomycin-bleached strain of Euglena gracilis var. bacillaris have been examined for enzyme systems primarily responsible for the oxidation of reduced pyridine nucelotides. NADH lipoyl dehydrogenase, NADH and NADPH oxidase, NADH and NADPH diaphorase, and NADH and NADPH cytochrome c reductase have been demonstrated. The NADPH-linked enzymes had lower activity rates and were less sensitive to N-ethyl maleimide and p-hydroxymercuribenzoate than their NADH-linked counterparts. NADH cytochrome c reductase was the most sensitive to antimycin A. Michaelis-Menten constants (Km) determined were as follows: NADH diaphorase, 350 muM; NADPH oxidase 150 muM ; NADH lipoyl dehydrogenase, 0.35 muM. Enzyme activities after storage at -5 C indicate that the diaphorases are less labile than the other tested enzymes, and the differential activities of the NADH and NADPH linked enzymes suggest that functionally they may have different roles.  相似文献   

20.
The catalytic properties of a new type of dihydropteridine reductase, NADPH-specific dihydropteridine reductase [EC 1.6.99.10], from bovine liver, were studied and compared with those of the previously characterized enzyme, NADH-specific dihydropteridine reductase [EC 1.6.99.7]. With quinonoid-dihydro-6-methylpterin, approximate Km values of NADPH-specific dihydropteridine reductase for NADPH and NADH were estimated to be 1.4 micron and 2,900 microns, respectively. The Vmax values were 1.34 mumol/min/mg with NADPH and 1.02 mumol/min/mg with NADPH. With NADPH, the Km values of the enzyme for the quinonoid-dihydro forms of 6-methylpterin and biopterin were 1.4 micron and 6.8 microns, respectively. The enzyme was inhibited by its reaction product, NADP+, in a competitive manner, and the inhibition constant was determined to be 3.2 microns. The enzyme was severely inhibited by L-thyroxine and by 2,6-dichlorophenolindophenol.  相似文献   

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