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1.
The activity of highly purified pyrophosphate:fructose-6-phosphate 1-phosphotransferase (PFP) from barley (Hordeum vulgare) leaves was studied under conditions where the catalyzed reaction was allowed to approach equilibrium. The activity of PFP was monitored by determining the changes in the levels of fructose-6-phosphate, orthophosphate, and fructose-1,6-bisphosphate (Fru-1,6-bisP). Under these conditions PFP activity was not dependent on activation by fructose-2,6-bisphosphate (Fru-2,6-bisP). Inclusion of aldolase in the reaction mixture temporarily restored the dependence of PFP on Fru-2,6-bisP. Alternatively, PFP was activated by Fru-1,6-bisP in the presence of aldolase. It is concluded that Fru-1,6-bisP is an allosteric activator of barley PFP, which can substitute for Fru-2,6-bisP as an activator. A significant activation was observed at a concentration of 5 to 25 [mu]M Fru-1,6-bisP, which demonstrates that the allosteric site of barley PFP has a very high affinity for Fru-1,6-bisP. The high affinity for Fru-1,6-bisP at the allosteric site suggests that the observed activation of PFP by Fru-1,6-bisP constitutes a previously unrecognized in vivo regulation mechanism.  相似文献   

2.
PFP的研究进展   总被引:1,自引:0,他引:1  
焦磷酸:果糖-6-磷酸1-磷酸转移酶(PFP)可催化果糖-6-磷酸与果糖-1,6-二磷酸间的可逆转变.该酶广泛存在于各种高等植物及一些微生物体内.文章综述了90年代以来有关PFP的一些研究进展.包括:PFP的种类与亚基构成、活性中心、底物特异性、酶活性的调节及功能等.  相似文献   

3.
When hexavalent chromium (Cr6+) tolerant Pseudomonas ambigua G-l was cultivated in nutrient broth containing 150 ppm Cr6 +, the Cr6+ content of the broth rapidly decreased. The Cr6+ reducing enzyme found in a cell-free extract of P. ambigua G-l required NADH but not NADPH as a hydrogen donor for the reduction of Cr6 +. The specific activities of cell-free extracts of several Cr6+ sensitive mutants derived from P. ambigua G-l showed decreases to one fourth to one tenth of that of P. ambigua G-l. Glucose protected the Cr6+ reducing enzyme against inac-tivation on dialysis.  相似文献   

4.
Pyrphosphate-dependent phosphofructokinase (PFP) was purified to electrophoretic homogeneity from illuminated pineapple (Ananas comosus) leaves. The purified enzyme consists of a single subunit of 61.5 kD that is immunologically related to the potato tuber PFP [beta] subunit. The native form of PFP likely consists of a homodimer of 97.2 kD, as determined by gel filtration. PFP's glycolytic activity was strongly dependent on pH, displaying a maximum at pH 7.7 to 7.9. Gluconeogenic activity was relatively constant between pH 6.7 and 8.7. Activation by Fru-2,6-bisphosphate (Fru-2,6-P2) was dependent on assay pH. In the glycolytic direction, it activated about 10-fold at pH 6.7, but only 2-fold at pH 7.7. The gluconeogenic reaction was only weakly affected by Fru-2,6-P2. The true substrates for the PFP forward and reverse reactions were Fru-6-phosphate and Mg-pyrophosphate, and Fru-1,6-P2, orthophosphate, and Mg2+, respectively. The results suggest that pineapple PFP displays regulatory properties consistent with a pH-based regulation of its glycolytic activity, in which a decrease in cytosolic pH caused by nocturnal acidification during Crassulacean acid metabolism, which could curtail its activity, is compensated by a parallel increase in its sensitivity to Fru-2,6-P2. It is also evident that the [beta] subunit alone is sufficient to confer PFP with a high catalytic rate and the regulatory properties associated with activation by Fru-2,6-P2.  相似文献   

5.
Three forms of pyrophosphate fructose-6-phosphate 1-phosphotransferase (PFP) were purified from both green and red tomato (Lycopersicon esculentum) fruit: (a) a classical form (designated Q2) containing α- (66 kilodalton) and β- (60 kilodalton) subunits; (b) a form (Q1) containing a β-doublet subunit; and (c) a form (Q0) that appeared to contain a β-singlet subunit. Several lines of evidence suggested that the different forms occur under physiological conditions. Q2 was purified to apparent electrophoretic homogeneity; Q1 and Q0 were highly purified, but not to homogeneity. The distribution of the PFP forms from red (versus green) tomato was: Q2, 29% (90%); Q1, 47% (6%); and Q0, 24% (4%). The major difference distinguishing the red from the green tomato enzymes was the fructose-2,6-bisphosphate (Fru-2,6-P2)-induced change in Km for fructose-6-phosphate (Fru-6-P), the `green forms' showing markedly enhanced affinity on activation (Km decrease of 7-9-fold) and the `red forms' showing either little change (Q0, Q1) or a relatively small (2.5-fold) affinity increase (Q2). The results extend our earlier findings with carrot root to another tissue and indicate that forms of PFP showing low or no affinity increase for Fru 6-P on activation by Fru-2,6-P2 (here Q1 and Q0) are associated with sugar storage, whereas the classical form (Q2), which shows a pronounced affinity increase, is more important for starch storage.  相似文献   

6.
The pyrophosphate dependent phosphofructokinase (PFP, EC 2.7.1.90 [EC] )was purified from potato tubers, bean seeds and cucumber seeds.The PFP of all three species appears to contain two subunitswith a molecular weight of approximately 60,000 and 66,000 dalton.The purified proteins were used as the antigens to produce polyclonalantibodies in rabbits. Two of the obtained sera (anti-potatoPFP and anti-cucumber PFP) proved to be monospecific for thePFP polypeptides on protein blots. The antipotato serum crossreacts with the PFP from all the tested higher plant specieson protein blots, but no cross reaction with the PFP of Propionibacteriumsharmanii was found. This shows that the PFP subunits from thehigher plant species have similar antigenic determinants inthe primary structure but differes largely from that of thePropionibacterium. The differences observed in the efficiencyof the sera to inactivate the PFP from the different species,however, indicate that the surface antigenic determinants onthe native PFP enzymes differ between the higher plant speciesand even within the Cucurbitaceae. (Received June 15, 1987; Accepted November 20, 1987)  相似文献   

7.
The significance of the glycolytic and gluconeogenic conversion of fructose-6-phosphate and fructose-1,6-bisphosphate on sugar metabolism was investigated in maize (Zea mays L.) kernels. Maximum extractable activities of the pyrophosphate (PPi) dependent phosphofructokinase, fructose-1,6-bisphosphatase, and the ATP-dependent phosphofructokinase were measured in normal and four maize genotypes, which accumulate relatively more sugars and less starch, to determine how these enzymes are affected by the genetic lesions. Normal endosperm accumulated more dry matter than the high sugar/low starch genotypes, but protein contents did not differ greatly among the genotypes. Mutation of several starch biosynthetic enzymes had little impact on the activities of PPi-dependent phosphofructokinase, fructose-1,6-bisphosphatase, and ATP-dependent phosphofructokinase, despite the altered capacity of the cell to synthesize starch. The PPi-dependent phosphofructokinase appeared to be more active toward glycolysis in all genotypes studied. Activity of the PPi-dependent phosphofructokinase in shrunken (low sucrose synthase genotype) did not differ from the activity in other genotypes, suggesting that the gluconeogenic production of PPi may not be the primary role of the enzyme. As expected, shrunken kernels contained more sugars and less starch than normal kernels throughout kernel development except at the very early stages. Developmental profiles of normal kernels also showed marked changes in the PPi-dependent phosphofructokinase activity, whereas the level of ATP-dependent phosphofructokinase activity remained relatively steady during kernel development. In addition, the ATP-dependent phosphofructokinase, and not the PPi-dependent phosphofructokinase, appeared to correlate more closely with respiration rate. These findings suggest that glycolysis catalyzed by the ATP-dependent phosphofructokinase may serve primarily to support energy production, and glycolysis catalyzed by the PPi-dependent phosphofructokinase may contribute mainly to generation of biosynthetic intermediates.  相似文献   

8.
The aim of this work was to test the proposal that the active site of pyrophosphate:fructose 6-phosphate 1-phosphotransferase (PFP) contains an essential arginyl residue. Enzyme activity was inhibited equally in the glycolytic and gluconeogenic directions by arginine-modifying reagents. The second-order rate constants for 2,3-butanedione and phenylglyoxal were 13.1 [plus or minus] 0.45 and 55.3 [plus or minus] 1.3 M-1 min-1, respectively. The corresponding values for the kinetic order of inactivation by these modifying reagents were 0.84 [plus or minus] 0.049 for 2,3-butanedione and 0.89 [plus or minus] 0.052 for phenylglyoxal. The substrates, fructose 6-phosphate and pyrophosphate, and a range of substrate analogs protected the enzyme from inactivation by 2,3-butanedione. These data suggest that modification of no more than one arginyl residue at, or close to, the active site is required to inhibit the enzyme. This result supports the proposal that the active site of PFP in plants is equivalent to that of the bacterial ATP-phosphofructokinase (S.M. Carlisle, S.D. Blakeley, S.M. Hemmingsen, S.J. Trevanion, T. Hiyoshi, N.J. Kruger, and D.T. Dennis [1990] J Biol Chem 265: 18366-18371).  相似文献   

9.
After initiation of radicle elongation, the pyrophosphate:d-fructose-6-phosphate 1-phosphotransferase (PFP) activity sharply increases in the cotyledons of Citrullus lanatus. Removal of the radicle early during incubation prevents the increase in PFP activity in the cotyledons evident in the control. Removal of the radicle at any stage after germination results in a decrease in PFP activity in the cotyledons. Application of kinetin (0.5 micromolar) or 2-chlorophosphonic acid (0.1 micromolar) to isolated cotyledons replaces the effect of the radicle. Gibberellic acid (0.09 micromolar GA3) also partially mimics the presence of the radicle. Anaerobic conditions, as well as cycloheximide application (0.18 micromolar) to intact embryos or to kinetin and ethrel treated isolated cotyledons prevent the increase in PFP activity evident in the control.  相似文献   

10.
Pyrophosphate:D-fructose-6-phosphate 1-phosphotransferase waspurified over 700-fold from germinating cucumber (Cucumis sativuscv. Fletcher) seeds. The purified enzyme has a specific activityof 5.2 µmol.min–1.mg protein–1 in the presenceof 1 µM fru-2,6-P2. The pH optima is similar for boththe forward and reverse reactions (pH 7.5–7.8). Magnesium,manganese and cobalt activate the enzyme, with the highest affinitybeing for magnesium. The enzyme exhibits normal Michaelis-Mentenkinetics in both the presence and absence of fru-2,6-P2. Half-maximumactivation of the enzyme was obtained with 35 nM fru-2,6-P2.Fru-2,6-P2 stimulates activity by increasing Vmax and increasingthe affinity for fru-6-P, fru-1,6-P2 and PPi. Phosphate causesnoncompetitive inhibition with respect to both fru-6-P and PPi.On the basis of the steadystate substrate interaction and Piinhibition data a sequential ternary complex mechanism is proposed. (Received April 28, 1986; Accepted July 9, 1986)  相似文献   

11.
The distribution of pyrophosphate: fructose 6-phosphate phosphotransferase (PFP) and ATP: fructose-6-phosphate 1-phosphotransferase (PFK) was studied in germinating bean (Phaseolus vulgaris cv Top Crop) seeds. In the cotyledons the PFP activity was comparable with that of PFK. However, in the plumule and radicle plus hypocotyl, PFP activity exceeds that of PFK. Approximately 70 to 90%, depending on the stage of germination, of the total PFP and PFK activities were present in the cotyledons. Highest specific activity of both enzymes, however, occurred in the radicle plus hypocotyl (64-90 nanomoles·min·milligram protein). Fractionation studies indicate that 40% of the total PFK activity was associated with the plastids while PFP is apparently confined to the cytoplasm. The cytosolic isozyme of PFK exhibits hyperbolic kinetics with respect to fructose 6-P and ATP with Km values of 320 and 46 micromolar, respectively. PFP also exhibits hyperbolic kinetics both in the presence and absence of the activator fructose-2,6-P2. The activation is caused by lowering the Km for fructose 6-P from 18 to 1.1 millimolar and that for pyrophosphate (PPi) from 40 to 25 micromolar, respectively. Levels of fructose 2,6-P2 and PPi in the seeds are sufficient to activate PFP and thereby enable a glycolytic role for PFP during germination. However, the fructose 6-P content appears to be well below the Km of PFP for this compound and would therefore preferentially bind to the catalytic site of PFK, which has a lower Km for fructose 6-P. The ATP content appears to be at saturating levels for PFK.  相似文献   

12.
The ATP:D-fructose-6-phosphate 1-phosphotransferase (EC 2.7.1.11 [EC] )isoenzymes from cucumber seeds were separated and purified.The calculated molecular weights of the two isoenzymes (approximately180,000) are similar and the isoenzymes are probably hetro-tetramers.The purified isoenzymes contained three polypeptides of 53.3,41.5 and 39.0 kDa for the plastid and 47.2, 42.4 and 40.4 forthe cytosolic isoenzyme, respectively. The purified phosphofructokinaseisoenzymes were used as the antigen for the production of polyclonalantibodies in rabbits. The obtained antisera clearly indicatedthat there is no immunological similarity between the two isoenzymes.The results also show that the phosphofructokinase isoenzymesin cucumber are not merely different stages of association ofthe same protein. (Received June 29, 1987; Accepted October 21, 1987)  相似文献   

13.
Pyrophosphate:fructose-6-phosphate phosphotransferase (PFP, EC 2.7.1.90) from endosperm of developing wheat (Triticum aestivum L.) grains was purified to apparent homogeneity with about 52% recovery using ammonium sulfate fractionation, ion exchange chromatography on DEAE-cellulose and gel filtration through Sepharose-CL-6B. The purified enzyme, having a molecular weight of about 170,000, was a dimer with subunit molecular weights of 90,000 and 80,000, respectively. The enzyme exhibited maximum activity at pH 7.5 and was highly specific for pyrophosphate (PPi). None of the nucleoside mono-, di- or triphosphate could replace PPi as a source of energy and inorganic phosphate (Pi). Similarly, the enzyme was highly specific for fructose-6-phosphate. It had a requirement for Mg2+ and exhibited hyperbolic kinetics with all substrates including Mg2+. Km values as determined by Lineweaver-Burk plots were 322, 31, 139, and 129 micromolar, respectively, for fructose-6-phosphate, PPi, fructose-1,6-bisphosphate and Pi. Kinetic constants were determined in the presence of fructose-2,6-bisphosphate, which stimulated activity about 20-fold and increased the affinity of the enzyme for its substrates. Initial velocity studies indicated kinetic mechanism to be sequential. At saturating concentrations of fructose-2,6-bisphosphate (1 micromolar), Pi strongly inhibited PFP; the inhibition being mixed with respect to both fructose-6-phosphate and PPi, with Ki values of 0.78 and 1.2 millimolar, respectively. The inhibition pattern further confirmed the mechanism to be sequential with random binding of the substrates. Probable role of PFP in endosperm of developing wheat grains (sink tissues) is discussed.  相似文献   

14.
以来自“掖单4号”的玉米果糖-6-磷酸,2-激酶/果糖-2,6-二磷酸酶(F2KP)基因cDNA片段(AF007582)为基础,运用RT-PCR和RACE技术,从“紫玉糯1号”中获得了1个2469bp的玉米F2KP基因cDNA克隆,命名为mF2KP,GenBank登录号为AF334143。该cDNA包含1个2226bp的开放阅读框,编码741个氨基酸。序列分析表明,两个玉米品种的F2KP基因存在一定差异,mF2KP基因的3′端非编码区比AF007582序列短38bp;在mF2KP的1592、1593和1605位置上,分别比AF007582序列多出1个碱基,导致阅读框在一个小范围内发生了移位,North-ern杂交表明,不同玉米组织中mF2KP的表达差异明显。在茎中mF2KP的表达水平比叶片,苞叶以及雄花序中的表达水平低,但比未成熟种子中的表达水平高,在未成熟种子中,仅能检测到很弱的mF2KP基因表达。  相似文献   

15.
通过RT-PCR,结合RACE技术,得到了玉米(Zea mays L.)果糖-6-磷酸,2-激酶/果糖-2,6-二磷酸酶的全长cDNA克隆,命名为mF2KP.氨基酸序列同源性比较发现,mF2KP蛋白可以分为两个部分:C端包含高度保守的催化功能区,N端为植物中特有的多肽.将mF2KP基因中一段包含完整催化功能区的片段在大肠杆菌(Escherichia coli)中表达,融合蛋白具有果糖-6-磷酸,2-激酶/果糖-2,6-二磷酸酶活性.Northern杂交证明在种子活力不同的幼苗中,mF2KP的转录水平存在明显差异.种子活力越高,幼苗中mF2KP的转录水平越低.  相似文献   

16.
通过RT-PCR,结果RACE技术,得到了玉米(Zea maysL.)果糖-6-磷酸,2-激酶/果糖-2,6-二磷酸酶的全长cDNA克隆。命名为mF2KP,氨基酸序列同源性比较发现,mF2KP蛋白可以分为两个部分;C端包含高度保守的催化功能区。N端为植物中特有的多肽,将mF2KP基因中一段包含完整催化功能区的片段在大肠杆菌(Escherichia coli)中表达,融合蛋白具有果糖-6-磷酸,2-激酶/果糖-2,6-二磷酸酶活性,Northern杂交证明在种子活力不同的幼苗中,mF2KP的转录水平存在明显差异。种子活力越高,幼苗中mF2KP的转录水平越低。  相似文献   

17.
番茄果实由绿转红的过程中,焦磷酸:果糖-6-磷酸1-磷酸转移酶(PFP)的酸型发生转化。在体外通过胰蛋白酶处理部分纯化的番茄绿果实中PFP来探讨酶型转化的原因。蛋白免疫印渍结果证实PFP的α-亚基比β-亚基更容易受到胰蛋白酶的降解,这也是PFP经胰蛋白酶处理后酵解与生糖活性下降的原因。然而PFP的亚基经尿素解离后,以胰蛋白酶处理的蛋白免疫印渍分析却表明PFP的两种亚基均被胰蛋白酶更加有效地降解,显然α-亚基在PFP的高级结构中有更多的酶切位点外露,而β-亚基上的酶切酶点可能位于分子的内部受到有效的保护。  相似文献   

18.
在无二硫苏糖醇(DTT)存在下得到部份纯化的氧化型PFP酶,在广泛的pH范围内(pH6.0~9.0)失去其大部分对果糖2,6-二磷酸的敏感性。活化效应可藉与DTT保温得到恢复而不改变其最适pH值。在与DTT保温过程中,酶对果糖2,6-二磷酸的亲和力逐步增加。氧化型酶的K_a值(对果糖2,6-二磷酸)在酶与DTT保温(pH8)1h之后从1400nmol/L下降到约50nmol/L。 在DTT存在下纯化的酶(还原型)经低浓度5,5′-二硫代双(2-硝基苯甲酸)(DTNB)处理,在使酶活性迅速失活的同时引起酶对果糖2,6-二磷酸脱敏。这一过程可为DTT处理所回复。从小麦胚中纯化的硫氧还蛋白h在恢复酶活性和酶的果糖2,6-二磷酸敏感性的效应中表明,细胞内的氧化还原状态可能藉以改变酶对果糖2,6-二磷酸的亲和力而调节PFP酶的活性。  相似文献   

19.
Activity of pyrophosphate:fructose-6-phosphate phosphotransferase (PFP) was investigated in relation to carbohydrate metabolism and physiological growth stage in mixotrophic soybean (Glycine max Merr.) suspension cells. In the presence of exogenous sugars, log phase growth occurred and the cells displayed mixotrophic metabolism. During this stage, photosynthetic oxygen evolution was depressed and sugars were assimilated from the medium. Upon depletion of medium sugar, oxygen evolution and chlorophyll content increased, and cells entered stationary phase. Activities of various enzymes of glycolysis and sucrose metabolism, including PFP, sucrose synthase, fructokinase, glucokinase, UDP-glucose pyrophosphorylase, and fructose-1,6-bisphosphatase, changed as the cells went from log to stationary phases of growth. The largest change occurred in the activity of PFP, which was three-fold higher in log phase cells. PFP activity increased in cells grown on media initially containing sucrose, glucose, or fructose and began to decline when sugar in the medium was depleted. Western blots probed with antibody specific to the -subunit of potato PFP revealed a single 56 kilodalton immunoreactive band that changed in intensity during the growth cycle in association with changes in total PFP activity. The level of fructose-2,6-bisphosphate, an activator of the soybean PFP, increased during the first 24 hours after cell transfer and returned to the stationary phase level prior to the increase in PFP activity. Throughout the growth cycle, the calculated in vivo cytosolic concentration of fructose-2,6-bisphosphate exceeded by more than two orders of magnitude the previously reported activation coefficient (Ka) for soybean PFP. These results indicate that metabolism of exogenously supplied sugars by these cells involves a PFP-dependent step that is not coupled directly to sucrose utilization. Activity of this pathway appears to be controlled by changes in the level of PFP, rather than changes in the total cytosolic level of fructose-2,6-bisphosphate.  相似文献   

20.
Scott P  Kruger NJ 《Plant physiology》1995,108(4):1569-1577
The aim of this work was to study the effect of elevated fructose-2,6-bisphosphate (Fru-2,6-bisP) levels on carbohydrate metabolism in leaves in the dark. In transgenic tobacco (Nicotiana tabacum L.) lines containing mammalian 6-phosphofructo-2-kinase activity there is an inverse relationship between the level of Fru-2,6-bisP in leaves and the rate of starch breakdown in the dark. Estimates of the flux response coefficient for the rate of net starch degradation with respect to changes in Fru-2,6-bisP level are -0.57 for whole leaves and -0.69 to -0.89 for excised leaf discs. We suggest that this decrease in the net rate of starch breakdown is caused, at least in part, by stimulation of unidirectional starch synthesis. Measurements of the levels of metabolic intermediates and the metabolism of [U-14C]glucose indicate that the stimulation of starch synthesis in the dark is a result of high Fru-2,6-bisP levels, increasing the 3-phosphoglycerate:inorganic phosphate ratio in leaves. We argue that the observed response to changes in the level of Fru-2,6-bisP are effected through activation of pyrophosphate:fructose-6-phosphate 1-phosphotransferase. However, the extent to which changes in Fru-2,6-bisP influence starch metabolism in wild-type plants is not known.  相似文献   

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