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1.
[目的]球形芽孢杆菌缺乏EMP、HMP、ED途径的关键酶,如磷酸果糖激酶等被认为是其不能以糖类物质进行生长的主要原因.杀蚊球形芽孢杆菌C3-41全基因组序列分析表明,在染色体DNA上存在的磷酸果糖激酶基因pfk,为了进一步分析球形芽孢杆菌糖酵解途径,进一步确定磷酸果糖激酶在糖酵解途径中的功能.[方法]通过pfk基因在球形芽孢杆菌菌株中的Southern-blot拷贝数鉴定,在C3-41pfk基因克隆的基础上进行pfk基因在大肠杆菌中的融合表达、序列分析和序列比对等方法进行研究.[结果]证明了球形芽孢杆菌pfk基因由960 bp核苷酸组成,表达42 kDa的PFK融合蛋白,有保守的底物结合域和ATP结合域,同时pfk基因重组表达质粒可以回复大肠杆菌pfk缺陷型菌株DFl020代谢糖的能力.[结论]杀蚊球形芽孢杆菌C3-41的pfk表达产物具有磷酸果糖激酶活性,为今后深入研究球形芽孢杆菌产能代谢机理奠定了基础.  相似文献   

2.
张中青  李春  刘宁 《微生物学通报》2011,38(10):1554-1560
NaCl刺激影响保加利亚乳杆菌磷酸果糖激酶(PFK)活性及其冻干存活率。在对数期末期保加利亚乳杆菌液中添加2%(W/V)NaCl刺激2 h后,收获菌体,其冻干存活率明显提高。同时采用反相高效液相色谱法(RP-HPLC)对NaCl刺激后的保加利亚乳杆菌胞内PFK活性变化进行测定,NaCl刺激使PFK活性显著增加。利用半定量RT-PCR法对NaCl刺激后PFK基因mRNA表达水平进行了比较和分析,NaCl刺激后冻干前PFK基因的表达量增加,冻干后表达量基本无变化。NaCl刺激能够提高保加利亚乳杆菌的冻干存活率,PFK可能影响保加利亚乳杆菌的存活。  相似文献   

3.
【目的】通过基因工程手段增加糖酵解途径中编码限速酶6-磷酸果糖激酶基因Pfk在乳酸链球菌素(nisin)产生菌Lactococcus lactis N8中的表达,增快nisin的产生,从而提高单位时间内nisin的产量,缩短发酵周期。【方法】将pfk基因及编码以c AMP为依赖的蛋白激酶催化亚基基因pka C克隆到表达质粒p MG36e上,将共表达重组质粒转入L.lactis N8中,使Pfk-pka C基因过量表达,得到重组菌株L.lactis N8-p MG36epfk-pka C,并比较该重组菌株与野生菌的生长曲线、胞内6-磷酸果糖激酶活性、发酵上清液的抑菌活性及效价,并从转录水平分析两株菌nis A及pfk-pka C的转录差异,比较野生菌与重组菌在不同葡萄糖含量下培养产nisin的变化。【结果】Pfk基因与pka C基因的过表达对重组菌的生长速度没有明显的影响,却能提高重组菌产nisin的速度,在发酵10 h时nisin的产量比野生菌提高了20%,使得发酵周期缩短近2 h。野生菌及重组菌在不同葡萄糖含量下培养发酵上清液的nisin效价没有明显的变化。【结论】糖酵解途径中6-磷酸果糖激酶基因Pfk的过表达可以加快乳酸乳球菌N8产nisin的速率,缩短发酵周期。  相似文献   

4.
从大肠杆菌E.coli K-12中通过PCR扩增出磷酸果糖激酶编码基因(pfkA),将其与表达载体pCMVTNTTMvector连接构建成重组质粒pKu-2,转化谷氨酸棒杆菌B10,并得到表达。酶活性测定表明pfkA基因在受体菌B66中得到表达水平为(126.6±0.76)U/g蛋白,解除了磷酸果糖激酶对已经改造的赖氨酸的整个代谢途径的限制。同时,转化菌对糖转化率比B10高11.59%,产酸率高16.52%。  相似文献   

5.
构建了含大肠杆菌磷酸果糖激酶(EC 2.7.1.11)基因pfkA的重组质粒pSDK1,利用大肠杆菌pfk缺陷株筛选含目的基因的重组质粒,通过接合转移的方式将其导入氧化硫硫杆菌TtZ2中,接合转移频率达2.6×10-6。重组质粒在TtZ2中有较好的稳定性,在无选择压力条件下传代50次基本保持稳定(重组质粒保留68%以上)。酶活性测定、SDSPAGE及RTPCR结果表明,pfkA基因在氧化硫硫杆菌中得到表达,但其表达水平低于大肠杆菌。葡萄糖可促进含pSDK1的氧化硫硫杆菌TtZ2的生长,而对照菌株的生长则未受明显影响,说明重组菌可部分利用葡萄糖作为碳源生长。  相似文献   

6.
从大肠杆菌E.colik-12中通过PCR克隆出磷酸果糖激酶编码基因(pfkA),将其连到表达载体pCMVTNTTMvector。连接构建成重组质粒Ku-1,导入谷氨酸棒杆菌B4(已经诱变改造),并得到表达。酶活性测定表明Ku-1的pfkA基因在B44中得到表达(磷酸果糖激酶为128.6±0.86U/g蛋白)。解除磷酸果糖激酶对已经改造的谷氨酸的整个代谢途径的限制。同时,B44对糖转化率比B4(由出发菌株B1诱变而来)高10.64%,产酸率比B4高17.1%。  相似文献   

7.
抗菌肽是生物体内经诱导产生的一类具有生物活性的小分子多肽。天蚕素B(Cecropin B)是最早从天蚕体内分离得到的一种热稳定的可溶性多肽,在已分离的众多抗菌肽中抗性较强。纳豆芽胞杆菌具有优良的益生特性,本研究选择枯草芽胞杆菌的一种表达载体p HT43,将抗菌肽天蚕素B基因导入纳豆芽胞杆菌中,验证其在目的菌中是否能够表达和稳定传代以及进行抗菌活性分析。结果表明,天蚕素B基因在纳豆芽胞杆菌中表达,并能稳定传代,能够提高纳豆芽胞杆菌的抑菌活性,抗金黄色葡萄球菌的活性优于干酪乳杆菌和枯草芽胞杆菌。本研究为该重组菌作为饲料添加剂的应用提供了技术基础。本文首次报道天蚕素B在纳豆枯草芽胞杆菌中表达。  相似文献   

8.
目的:对家蚕核型多角体病毒(BmNPV)囊膜蛋白P74膜外肽段与枯草芽胞杆菌(Bacillus subtilis)CotC与进行融合表达,制备表面展示有P74蛋白的重组芽孢,为深入研究该重组芽孢的功能提供基础.方法:将CotC基因与BmNPV P74膜外编码序列进行融合,构建表达CotC-P74融合蛋白的重组质粒pJS700-p74.通过双交换使该重组质粒中的CotC-P74表达盒整合到枯草芽胞杆菌染色体淀粉酶基因位点,并对发生同源重组后的菌株进行筛选和PCR鉴定.结果:PCR结果表明CotC-P74成功地整合到枯草芽孢杆菌基因组上,通过作者实验室制备的P74多抗对诱导后的重组芽孢衣壳总蛋白进行Western blot分析,结果在49 kDa位置处能杂交到一条特异的蛋白带.结论:P74蛋白胞外肽段成功地展示在枯草芽胞杆菌芽胞表面.  相似文献   

9.
带cry3Aa启动子的aiiA基因在苏云金芽胞杆菌中的表达   总被引:12,自引:0,他引:12  
N 乙酰高丝氨酸内酯 (N acyl homoserinelactones,AHLs) ,是一类数量感知 (Quorum sensing)系统中的信号分子 ,它参与诱导调控许多植物病原菌致病基因的表达。苏云金芽胞杆菌的AiiA蛋白能降解这类AHLs分子 ,进而可减弱病原菌致病基因表达产生的病害。苏云金芽胞杆菌杀虫晶体蛋白基因cry3Aa的启动子是一种不依赖芽胞形成的启动子 ,它相对于其它cry类基因的启动子有启动基因转录时间早 ,转录时间长的优点。通过重叠延伸PCR ,用杀虫晶体蛋白基因cry3Aa启动子替换编码AiiA蛋白的基因aiiA自身的启动子 ,构建了融合基因pro3A aiiA。将融合基因装入穿梭载体pHT3 0 4的BamHI SphI位点 ,得到重组质粒pBMB686并转化苏云金芽胞杆菌无晶体突变株BMB171,重组菌株BMB686的AiiA蛋白表达量在各个生长时期均高于对照菌株 ,对AHLs分子的降解活性和对胡萝卜软腐欧文氏菌感染马铃薯产生病害的抑制能力也明显优于对照菌株  相似文献   

10.
PeaT1是从极细链格孢菌Alternaria tenuissima中分离的一种蛋白激发子,具有促进植物生长和诱导植物产生系统获得抗性的功能,为了实现peaT1基因在枯草芽胞杆菌Bacillus subtilis中的分泌表达,增加其应用途径,从枯草芽胞杆菌基因组DNA中分别扩增获得P43启动子和nprB基因的信号肽序列,并用SOE (Splicing by over lapping extension) 方法与peaT1基因连接,将连接产物克隆到大肠杆菌-枯草芽胞杆菌穿梭表达载体pHY300-PLK上,构建了重组表达载体pHY43N-peaT1。将重组载体转化枯草芽胞杆菌WB800菌株,SDS-PAGE和Western blotting分析证实,在NprB信号肽的引导下,枯草芽胞杆菌成功分泌表达了PeaT1蛋白。构建的重组菌株能够显著增强幼苗抗旱性,提高小麦株高。  相似文献   

11.
12.
6-Phosphofructokinase (PFK) is a key enzyme for glycolysis in both prokaryotes and eukaryotes. Previously, it was found that the activity of Myxococcus xanthus PFK increased 2.7-fold upon phosphorylation at Thr-226 by the Ser/Thr kinase Pkn4. The pkn4 gene is located 18 bp downstream of the pfk gene forming an operon, and both genes are expressed during vegetative growth and development. Here, we show that glycogen, which accumulates during stationary phase and early in development, is consumed during sporulation. A pfk-pkn4 deletion strain accumulated glycogen at a higher level than the wild-type strain, was unable to consume glycogen during developmental progression and exhibited a poor spore yield. From genetic complementation analysis of the pfk-pkn4 deletion strain with the pfk and pkn4 genes, it was found that glycogen consumption and a high spore yield require not only the pfk gene but also the pkn4 gene. Furthermore, phosphorylation is critical for glycogen consumption because the pfk gene engineered to express the mutant PFK (Thr-226-Ala) did not complement a pfk mutant. We propose that glycogen metabolism in M. xanthus is regulated in a similar manner to that in eukaryotes requiring a protein Ser/Thr kinase.  相似文献   

13.
As the key obligatory step in the glycolytic pathway, the regulation of phosphofructokinase (PFK-1) has been the focus of study of several laboratories. While standard cloning procedures have opened the door to study PFK from a vast array of sources, a good pfk knockout Escherichia coli strain has not previously been developed. Many laboratories rely on DF1020 or similar derivatives for PFK expression. Unfortunately, DF1020 grows poorly and does not have an inherent means for controlling expression of genes from plasmids. More importantly, however, DF1020 has a tendency to grow on minimal media when glucose is used as the sole carbon source. In this study, a new E. coli PFK expression strain lacking both PFK-1 and PFK-2 has been engineered using lambda-red mediated chromosomal deletion. The resulting strain has been designated RL257. In addition to having both pfkA and pfkB deleted, RL257 contains the lacI(q) allele, which allows for inducible expression when coupled with an expression vector containing either the lac or tac promoter.  相似文献   

14.
Yeast phosphofructokinase is a heterooctameric enzyme subject to a complex allosteric regulation. A mutation in the PFK1 gene, encoding the larger -subunits, rendering the enzyme insensitive to allosteric inhibition by ATP was found to be caused by an exchange of proline 728 for a leucine residue. By in vitro mutagenesis, we introduced this mutation in either PFK1 or PFK2 and found that the exchange in either subunit drastically reduced the sensitivity of the holoenzyme to ATP inhibition. This was accompanied by a lack of allosteric activation by AMP, fructose 2,6-bisphosphate, or ammonium and an increased resistance to heat inactivation. Yeast cells carrying either one mutation or both in conjunction did not display a strong phenotype when grown on fermentable carbon sources and did not show any significant changes in intermediary metabolites. Growth on non-fermentable carbon sources was clearly impaired. The strain carrying both mutant alleles was more sensitive to Congo Red than the wild-type strain or the single mutants indicating differences in cell wall composition. In addition, we found single pfk null mutants to be less viable than wild type at different storage temperatures and a pfk2 null mutant to be temperature-sensitive for growth at 37 degrees C. The latter mutant was shown to be respiration-dependent for growth on glucose.  相似文献   

15.
Summary Yeast phosphofructokinase is an octamer composed of two different kinds of subunit. The genes coding for these subunits have been isolated by means of functional complementation in a pfk1 pfk2 double mutant. As a source of DNA the genomic library of Nasmyth and Tatchell (1980) constructed in the yeast multicopy vector YEp13 was used. Plasmids containing the information of one or the other gene were identified by back-transformation into pfk single mutants (pfk1 PFK2, PFK1 pfk2). Restriction maps of the respective insertions are provided. The genomic organization was confirmed by Southern analysis. Northern analysis showed hybridization to mRNAs of about 3.6 kb for both genes, corresponding to the molecular weight of the protein subunits. Transformation with one of the plasmids did not lead to an increase in phosphofructokinase activity. Subcloning of both genes in one multicopy vector (YEp13) and reintroduction into the yeast cell resulted in a 3.5-fold higher specific activity compared to the wild type. Overproduction of the protein subunits in this transformant was confirmed by SDS-polyacrylamide electrophoresis of crude extracts stained with Coomassie-blue. This was not accompanied by an increased ethanol production. The sequences encoding the two subunits were shown to share homology.  相似文献   

16.
The ATP-dependent phosphofructokinase (ATP-PFK) of Streptomyces coelicolor A3(2) was purified to homogeneity (1,600-fold) and characterized (110 kDa, with a single type of subunit of 40 kDa); it is allosterically inhibited by phosphoenolpyruvate. Cloning of the pfk gene of S. coelicolor A3(2) and analysis of the deduced amino acid sequence (343 amino acids; 36,667 Da) revealed high similarities to the PPi-PFK enzyme from Amycolatopsis methanolica (tetramer, nonallosteric; 70%) and to the allosteric ATP-PFK enzymes from other bacteria, e.g., Escherichia coli (tetramer; 37%) and Bacillus stearothermophilus (tetramer, 41%). Further structural and functional analysis of the two actinomycete PFK enzymes should elucidate the features of these proteins that determine substrate specificity (ATP versus PPi) and allosteric (in)sensitivity.  相似文献   

17.
We have used the two PFK genes of Saccharomyces cerevisiae encoding the alpha and beta-subunit of the enzyme phosphofructokinase (Pfk) as heterologous probes to isolate fragments of the respective genes from the dimorphic pathogenic fungus Candida albicans. The complete coding sequences were obtained by combining sequences of chromosomal fragments and fragments obtained by inverse polymerase chain reaction (PCR). The CaPFK1 and CaPFK2 comprise open reading frames of 2961 bp and 2838 bp, respectively, encoding Pfk subunits with deduced molecular masses of 109 kDa and 104 kDa. The genes presumably evolved by a duplication event from a prokaryotic type ancestor, followed by another duplication. Heterologous expression in S. cerevisiae revealed that each gene alone was able to complement the glucose-negative phenotype of a pfk1 pfk2 double mutant. In vitro Pfk activity in S. cerevisiae was not only obtained after coexpression of both genes, but also in conjunction with the respective complementary subunits from S. cerevisiae. This indicates the formation of functional hetero-oligomers consisting of C. albicans and S. cerevisiae Pfk subunits. In C. albicans, specific Pfk activity was shown to decrease twofold upon induction of hyphal growth. CaPfk cross-reacts with a polyclonal antiserum raised against ScPfk and displays similar allosteric properties, i.e. inhibition by ATP and activation by AMP and fructose 2,6-bisphosphate.  相似文献   

18.
Molecular genetics of phosphofructokinase in the yeast Kluyveromyces lactis   总被引:1,自引:1,他引:0  
We have undertaken a study of phosphofructokinase (PFK; E.C. 2.7.1.11) in the yeast Kluyveromyces lactis. Like other eukaryotic PFKs, the K. lactis enzyme is activated by the allosteric effectors AMP and fructose-2,6-bisphosphate. PFK activity is induced in cells grown on glucose as compared to ethanol-grown cells, in contrast to the constitutive expression of PFK in Saccharomyces cerevisiae. We show here that phosphofructokinase of the yeast K. lactis is composed of two non-identical types of sub-units, encoded by the genes KIPFK1 and KIPFK2. We have cloned and sequenced both genes. KIPFK1 and KIPFK2 encode the α- and the β-PFK subunits with deduced molecular weights of 109.336 Da and 104.074Da, respectively. Sequence analysis indicates that the genes evolved from a double duplication event. Null mutants in either of the genes lack detectable PFK activity in vitro and the respective subunits cannot be detected on Western blots. In contrast to the situation in S. cerevisiae, Klpfk1 Klpfk2 double mutants retain the ability to grow on glucose. However. Klpfk2 mutants and the double mutants do not grow on glucose, when respiration is blocked. These data suggest that the pentose phosphate pathway and respiration play a substantial role in glucose utilization by K. lactis. The K. lactis PFK genes can be expressed independently in S. cerevisiae and each of them complements the glucose-negative phenotype of pfk1 pfk2 double deletion mutants in this yeast. Expression of both K. lactis PFK genes simultaneously in S. cerevisiae pfk double deletion mutants complements for PFK activity. However, expression of a combination of PFK genes from K. lactis and S. cerevisiae does not lead to the production of a functional enzyme.  相似文献   

19.
S. Velmurugan  Z. Lobo    P. K. Maitra 《Genetics》1997,145(3):587-594
  相似文献   

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