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1.
高等植物中的谷氨酸脱氢酶及其生理作用   总被引:7,自引:0,他引:7  
黄国存  田波 《植物学通报》2001,18(4):396-401
谷氨酸脱氢酶普遍存在于植物体内,它虽然不是植物吸收利用氮的主要成员,但在植物氮代谢中起着重要作用,高等植物的谷氨酶主要存在于线粒体中,以烟酰胺腺嘌呤二核苷酸(NADH)为辅酶,该酶分子量为255-258kD,由六个亚基组成,亚基包括α和β两种类型,存在七种同工酶形式,它在植物的衰老过程及逆境如高温和水份胁迫等状况下行使其铵同化功能,但在黑暗或碳胁迫条件下又能氧化脱铵从而为三羧酸循环提供骨架。  相似文献   

2.
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   

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.
大多数生物体中都含有谷氨酸脱氢酶(Glutamate dehydrogenase, GDH)(E.C. 1.4.1.2–1.4.1.4)。在真核生物中,该酶主要存在于线粒体中,并在氮和碳的代谢以及信号通路中起着至关重要的作用。研究发现谷氨酸脱氢酶与肿瘤发生及发展有一定的关系,对于肿瘤研究具有一定意义,但是关于其与人类肿瘤的关系方面的综述很少见。文中对谷氨酸脱氢酶与乳腺癌、胶质瘤、结直肠癌以及卵巢癌等的关系进行了归纳和总结,希望可以为相关研究提供帮助。  相似文献   

5.
从类产碱假单胞菌纯化出电泳纯的谷氨酸脱氢酶,用聚丙烯酰胺梯度凝胶电泳和SDS-聚丙烯酰胺凝胶电泳测得分子量为290 kD,亚基分子量为47 kD,提示该酶为六聚体.该酶对NADP(H)和底物均具有高度专一性,对谷氨酸、α-酮戊二酸及NADP+ 的Km 值分别为:28 m m ol/L、1.2m m ol/L及0.063 m m ol/L.用Hill作图法求得酶对NH+4 和NADPH 的[S]0.5分别为24 m m ol/L和0.037 m m ol/L.最适反应温度为50℃,催化氨化反应和脱氨反应的最适pH 分别为8.0和8.8,在热稳定性方面不及嗜热细菌的谷氨酸脱氢酶稳定.提纯的谷氨酸脱氢酶在低温(4℃)条件下,可在Tris-HCl缓冲液中贮存半年以上,活力无明显下降,冷冻则可导致纯酶液迅速失活.氮源对菌体谷氨酸脱氢酶水平有显著影响.  相似文献   

6.
牛肝L-谷氨酸脱氢酶在压力下的解离   总被引:2,自引:0,他引:2  
运用荧光光谱方法研究了牛肝L-谷氨酸脱氢酶(GDH)在压力下的解离。研究表明,在2kbar时GDH由六聚体解离成亚基,标准解离体积变化为-293ml/mol,解离自由能为48kcal/mol(10℃)。GDH在压力下的解离还显示出异常的浓度依赖性,表明在天然寡聚蛋白的布居中存在着自由能不同的单体聚合。不同温度下的GDH解离研究结果表明,由亚基-六聚体的聚合是一熵增驱动过程。bis-ANS存在时观察到的现象,暗示谷氨酸脱氢酶的亚基解离过程中发生了构象漂移(conformationaldrift)。此外还研究了底物结合对解离的影响  相似文献   

7.
F。。PZ(果糖一2,6一二磷酸)是真核生物中广泛存在的小分子代谢调节物,而PFP则是它的一个广泛存在于植物组织中的重要靶酶(Stilt1990)。该酶在80年代初被发现并为植物生化界所重视。它催化下列可逆反应:F。P+PPi-Fl,。PZ+Pi。此酶既可在酵解或生糖作用中催化形成净碳流(Hatzfeld等1989),也可以与PFK或F;,6Pase形成循环催化PPi的产生和消除(Sung等1988)。许多植物的urn由a和P两种亚基组成(Botha等1988,Yan和Tao1984)。其中a亚基为调节亚基,与F。,。PZ对催化活性的调节有关;卢亚基为催化亚基,具有活性位…  相似文献   

8.
比较研究了固定化谷氨酸棒杆菌细胞和自然细胞的谷氨酸脱氢酶、异拧檬酸脱氢酶,葡萄糖-6-磷酸脱氢酶的一些性质。最适pH、温度对二者酶促反应速度的影响基本相似;pH、热稳定性固定化细胞高于自然细胞;底物表观米氏常数谷氨酸脱氢酶,异柠檬酸脱氢酶有所增大,而葡萄糖-6-磷酸脱氢酶则有所下降;辅酶表观米氏常数均有所增大。这些是影响固定化细胞应用的主要因素。  相似文献   

9.
应用聚丙烯酰胺凝胶电泳酶化学技术显示,腹毛目纤毛虫膜状急纤虫(Tachysoma pellionella)休眠包囊和营养细胞中乳酸脱氢酶、α磷酸甘油脱氢酶、醇脱氢酶、细胞色素氧化酶、葡萄糖-6-磷酸脱氢酶、过氧化物酶和过氧化氢酶等7种同工酶的酶谱组成有明显差异,并且在休眠包囊中其同工酶成分少、活性低,部分同工酶酶谱表现出趋于简单的趋势。ATP酶、苹果酸脱氢酶和谷氨酸脱氢酶等3种同工酶在休眠包囊与营养细胞中有相同的酶谱,但在休眠期包囊酶的活性低于营养期细胞。  相似文献   

10.
趋磁细菌在微好氧和好氧条件下生长时,它们在酯酶、乙醇脱氢酶、过氧化物酶、苹果酸脱氢酶、苹果酸酶、乳酸脱氢酶、谷草转氨酶、谷氨酸脱氢酶和异柠檬酸脱氢酶等同工酶中具有明显不同的酶带或酶活性,呈现酶的多分子形态。  相似文献   

11.
In plants, drought stress coupled with high levels of illumination causes not only dehydration of tissues, but also oxidative damage resulting from excess absorbed light energy. In this study, we analyzed the regulation of electron transport under drought/high-light stress conditions in wild watermelon, a xerophyte that shows strong resistance to this type of stress. Under drought/high-light conditions that completely suppressed CO(2) fixation, the linear electron flow was diminished between photosystem (PS) II and PS I, there was no photoinhibitory damage to PS II and PS I and no decrease in the abundance of the two PSs. Proteome analyses revealed changes in the abundance of protein spots representing the Rieske-type iron-sulfur protein (ISP) and I and K subunits of NAD(P)H dehydrogenase in response to drought stress. Two-dimensional electrophoresis and immunoblot analyses revealed new ISP protein spots with more acidic isoelectric points in plants under drought stress. Our findings suggest that the modified ISPs depress the linear electron transport activity under stress conditions to protect PS I from photoinhibition. The qualitative changes in photosynthetic proteins may switch the photosynthetic electron transport from normal photosynthesis mode to stress-tolerance mode.  相似文献   

12.
Plants contain two genes that code for poly(ADP-ribose) polymerase (PARP): parp1 and parp2. Both PARPs are activated by DNA damage caused by, example reactive oxygen species. Upon activation polymers of ADP-ribose are synthesized on a range of nuclear enzymes using NAD(+) as substrate. Here, we show that in plants stresses such as drought, high light and heat activate PARP causing NAD(+) breakdown and ATP consumption. When the PARP activity is reduced by means of chemical inhibitors or by gene silencing, cell death is inhibited and plants become tolerant to a broad range of abiotic stresses like high light, drought and heat. Plant lines with low poly(ADP-ribosyl)ation activity maintain under stress conditions their energy homeostasis by reducing NAD(+) breakdown and consequently energy consumption. The higher energy-use efficiency avoids the need for a too intense mitochondrial respiration and consequently reduces the formation of reactive oxygen species. From these results it can be concluded that breeding or engineering for a high energy-use efficiency under stress conditions is a valuable, but until today nearly unexploited, approach to enhance overall stress tolerance of crops.  相似文献   

13.
The application of bioluminescent sensors for monitoring key metabolites and enzymes that are indicators of stress in plants is demonstrated. The sensitivity of bioluminescent assay for NAD(P)H and NAD(P)(+) was about 0.5 and 1 nmol, respectively. The levels of NAD(P)H and NAD(P)(+) in radish (Raphanus sativus) root extracts from controls and from stress-induced conditions were compared. To induce environmental stress, the plants were grown in enclosed environmental chambers with low pressure (9 or 32 kPa), high humidity (>80%) and low oxygen partial pressure (down to 3.3-6.5 kPa). The concentrations of NAD(P)(+) and NAD(P)H in plants varied under stress conditions. Decreasing both total pressure from 101.5 to 32 or 9 kPa and partial pressure of oxygen increased the ratio of NAD(P)(+) /NAD(P)H from 0.2 to 4 or 6, respectively. The increase in this ratio suggests that plants are undergoing stress in these hypobaric environments. The developed bioluminescent assay for quantification of pyridine nucleotides in plant tissues is rapid, low-cost and easily performed.  相似文献   

14.
15.
In higher plants, the mitochondrial electron transport chain has non-phosphorylating alternative pathways that include the alternative terminal oxidase (AOX). This alternative pathway has been suggested to act as a sink for dissipating excess reducing power, minimizing oxidative stress and possibly optimizing photosynthesis in response to changing conditions. The expression patterns of the AOX genes have been well characterized under different growth conditions, particularly in response to light and temperature stress. Additionally, it has been suggested that mitochondrial electron transport is important for avoiding chloroplast over-reduction and balancing energy partitioning among photosynthesis, photorespiration and respiration. Nonetheless, the role AOX plays in optimizing photosynthetic carbon metabolism is unclear. Therefore, the response of photosynthesis to the disruption of AOX was investigated in the Arabidopsis thaliana T-DNA mutant aox1a (SALK_084897). Gas exchange analysis revealed a lower net CO(2) assimilation rate (A) at high CO(2) concentrations in the aox1a mutant compared to wild type. This decrease in A was accompanied by a lower maximum electron transport rate and quantum yield of PSII, and higher excitation pressure on PSII and non-photochemical quenching. The aox1a mutant also exhibited a lower estimated rate of ribulose 1,5-bisphosphate regeneration, and the ribulose 1,5-bisphosphate content was lower at high CO(2) concentrations, suggesting an ATP limitation of the Calvin-Benson cycle. Additionally, the activity of the malate-oxaloacetate shuttle was lower in the mutant compared to wild type. These results indicate that AOX is important for optimizing rates of photosynthetic CO(2) assimilation in response to rising CO(2) concentration by balancing the NAD(P)H/ATP ratio and rates of ribulose 1,5-bisphosphate regeneration within the chloroplast.  相似文献   

16.
Chlorophyll a fluorescence rise kinetics (from 50 μs to 1 s) were used to investigate the non-photochemical reduction of the plastoquinone (PQ) pool in osmotically broken spinach chloroplasts (Spinacia oleracea L.). Incubation of the chloroplasts in the presence of exogenous NADPH or NADH resulted in significant changes in the shape of the fluorescence transient reflecting an NAD(P)H-dependent accumulation of reduced PQ in the dark, with an extent depending on the concentration of NAD(P)H and the availability of oxygen; the dark reduction of the PQ pool was saturated at lower NAD(P)H concentrations and reached a higher level when the incubation took place under anaerobic conditions than when it occurred under aerobic conditions. Under both conditions NADPH was more effective than NADH in reducing PQ, however only at sub-saturating concentrations. Neither antimycin A nor rotenone were found to alter the effect of NAD(P)H. The addition of mercury chloride to the chloroplast suspension decreased the NAD(P)H-dependent dark reduction of the PQ pool, with the full inhibition requiring higher mercury concentrations under anaerobic than under aerobic conditions. This is the first time that this inhibitory role of mercury is reported for higher plants. The results demonstrate that in the dark the redox state of the PQ pool is regulated by the reduction of PQ via a mercury-sensitive NAD(P)H-PQ oxidoreductase and the reoxidation of reduced PQ by an O2-dependent pathway, thus providing additional evidence for the existence of a chlororespiratory electron transport chain in higher plant chloroplasts. This revised version was published online in June 2006 with corrections to the Cover Date.  相似文献   

17.
The cyanobacterium Synechocystis PCC6803 induces a photosystem I cyclic electron transfer route independent of type 1 NAD(P)H dehydrogenase. The capacity to tolerate raised salinity conditions was shown to operate in a mutant lacking functional type 1 NAD(P)H dehydrogenase. The mutant showed salt-induced enhancement of photosystem I cyclic electron transfer and respiratory capacities. Moreover, this salt-adapted energetic state also restored the capacity of the mutant to grow under inorganic carbon limitation. Uptake of the latter in these conditions became almost as efficient as in the wild-type. The acquired energetic capacities, in contrast, did not allow restoration of photoheterotrophic growth in the type 1 NAD(P)H dehydrogenase mutant.  相似文献   

18.
The ndh genes encoding for the subunits of NAD(P)H dehydrogenase complex represent the largest family of plastid genes without a clearly defined function. Tobacco (Nicotiana tabacum) plastid transformants were produced in which the ndhB gene was inactivated by replacing it with a mutant version possessing translational stops in the coding region. Western-blot analysis indicated that no functional NAD(P)H dehydrogenase complex can be assembled in the plastid transformants. Chlorophyll fluorescence measurements showed that dark reduction of the plastoquinone pool by stromal reductants was impaired in ndhB-inactivated plants. Both the phenotype and photosynthetic performance of the plastid transformants was completely normal under favorable conditions. However, an enhanced growth retardation of ndhB-inactivated plants was revealed under humidity stress conditions causing a moderate decline in photosynthesis via stomatal closure. This distinctive phenotype was mimicked under normal humidity by spraying plants with abscisic acid. Measurements of CO(2) fixation demonstrated an enhanced decline in photosynthesis in the mutant plants under humidity stress, which could be restored to wild-type levels by elevating the external CO(2) concentration. These results suggest that the plastid NAD(P)H:plastoquinone oxidoreductase in tobacco performs a significant physiological role by facilitating photosynthesis at moderate CO(2) limitation.  相似文献   

19.
Shen W  Wei Y  Dauk M  Tan Y  Taylor DC  Selvaraj G  Zou J 《The Plant cell》2006,18(2):422-441
A mitochondrial glycerol-3-phosphate (G-3-P) shuttle that channels cytosolic reducing equivalent to mitochondria for respiration through oxidoreduction of G-3-P has been extensively studied in yeast and animal systems. Here, we report evidence for the operation of such a shuttle in Arabidopsis thaliana. We studied Arabidopsis mutants defective in a cytosolic G-3-P dehydrogenase, GPDHc1, which, based on models described for other systems, functions as the cytosolic component of a G-3-P shuttle. We found that the gpdhc1 T-DNA insertional mutants exhibited increased NADH/NAD+ ratios compared with wild-type plants under standard growth conditions, as well as impaired adjustment of NADH/NAD+ ratios under stress simulated by abscisic acid treatment. The altered redox state of the NAD(H) pool was correlated with shifts in the profiles of metabolites concerning intracellular redox exchange. The impairment in maintaining cellular redox homeostasis was manifest by a higher steady state level of reactive oxygen species under standard growth conditions and by a significantly augmented hydrogen peroxide production under stress. Loss of GPDHc1 affected mitochondrial respiration, particularly through a diminished capacity of the alternative oxidase respiration pathway. We propose a model that outlines potential involvements of a mitochondrial G-3-P shuttle in plant cells for redox homeostasis.  相似文献   

20.
In the phototrophic nonsulfur bacterium Rhodobacter capsulatus E1F1, L-alanine dehydrogenase aminating activity functions as an alternative route for ammonia assimilation when glutamine synthetase is inactivated. L-Alanine dehydrogenase deaminating activity participates in the supply of organic carbon to cells growing on L-alanine as the sole carbon source. L-Alanine dehydrogenase is induced in cells growing on pyruvate plus nitrate, pyruvate plus ammonia, or L-alanine under both light-anaerobic and dark-heterotrophic conditions. The enzyme has been purified to electrophoretic and immunological homogeneity by using affinity chromatography with Red-120 agarose. The native enzyme was an oligomeric protein of 246 kilodaltons (kDa) which consisted of six identical subunits of 42 kDa each, had a Stokes' radius of 5.8 nm, an s20.w of 10.1 S, a D20,w of 4.25 x 10(-11) m2 s-1, and a frictional quotient of 1.35. The aminating activity was absolutely specific for NADPH, whereas deaminating activity was strictly NAD dependent, with apparent Kms of 0.25 (NADPH), 0.15 (NAD+), 1.25 (L-alanine), 0.13 (pyruvate), and 16 (ammonium) mM. The enzyme was inhibited in vitro by pyruvate or L-alanine and had two sulfhydryl groups per subunit which were essential for both aminating and deaminating activities.  相似文献   

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