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1.
5-氨基乙酰丙酸(5-aminolevulinate,ALA)由5-氨基乙酰丙酸合酶(5-aminolevulinate synthase,ALAS)催化产生。利用重组细菌在大肠杆菌合成ALA已有不少研究。重组真核生物ALAS在大肠杆菌合成ALA的研究没有报道。酿酒酵母ALAS在大肠杆菌重组表达,在摇瓶培养条件下,分析了胞外ALA的产量,重组菌的生长状况和细胞中ALAS的活性,利用两种国产树脂纯化ALA,毛细管电泳分析确定ALA纯度在LB培养基中,初始pH6.5,含有20mmol/L的酮戊酸、20mmol/L琥珀酸和20mmol/L的甘氨酸,37℃下诱导培养12h,胞外ALA的产量为162mg/L培养基。纯化的ALA纯度达到90%。  相似文献   

2.
将编码光合细菌Rhodobactersphaeroides 5- 氨基乙酰丙酸合酶(ALAS)的同工酶基因hemA、hemT转入E .coli中进行高表达,并将高表达的同工酶进行分离、纯化.纯化的hemA是可溶的,并具有催化活性,而hemT大部分是不溶的,且在体外条件下无活性.与其它重组ALAS相比,R .sphaeroides的hemA活性表达需PLP作为催化因子,除去PLP或用硼酸钠破坏与PLP的连接,hemA活性下降90 % .hemA PLP的紫外 可见光谱分析表明hemA与PLP之间形成一个醛亚胺键,而hemT与PLP之间未形成该键.hemA对修饰组氨酸、精氨酸、胱氨酸残基的试剂很敏感,对可切割Arg15 1和Ser15 2的类胰蛋白酶也很敏感,PLP也不能阻止该酶的切割作用.抗血清试验表明,hemA、hemT的抗血清均可与小鼠的ALAS杂交,并都有一个抗原决定簇.  相似文献   

3.
5-氨基乙酰丙酸(5-aminolevulinate,ALA)由5-氨基乙酰丙酸合酶(5-aminolevulinate synthase,ALAS)催化产生。利用重组细菌在大肠杆菌合成ALA已有不少研究。重组真核生物ALAS在大肠杆菌合成ALA的研究没有报道。酿酒酵母ALAS在大肠杆菌重组表达,在摇瓶培养条件下,分析了胞外ALA的产量,重组菌的生长状况和细胞中ALAS的活性,利用两种国产树脂纯化ALA,毛细管电泳分析确定ALA纯度在LB培养基中,初始pH 6.5,含有20mmol/L的酮戊酸、20mmol/L琥珀酸和20mmol/L的甘氨酸,37℃下诱导培养12h,胞外ALA的产量为162mg /L培养基。纯化的ALA纯度达到90%。  相似文献   

4.
5-氨基乙酰丙酸(5-aminolevulinate acid,ALA)在农业,工业,医药业具有广泛的应用。ALA由5-氨基乙酰丙酸合酶(5-aminolevulinate acid synthase, ALAS)催化产生,其生物合成受终产物血红素的反馈抑制。本研究克隆一种浑球红细菌的hemA基因,序列分析其与已报道的基因具有96%的同源性,蛋白质编码区域也发生改变,并利用生物信息学软件进行同源关系的分析。采用大肠杆菌重组技术,构建表达载体pET28a—hemA,表达了有活性的浑球红细菌(Rhodobacter sphaeroides)的ALAS,研究了IPTG诱导和PH对研究ALAS的影响,同时分析了重组菌株合成ALA的能力,测定胞外产量。结果表明,在PH6.5,30mmol/L琥珀酸和60mmol/L甘氨酸培养条件下,胞外ALA的最大合成量达到669mg/L。  相似文献   

5.
5-氨基乙酰丙酸(ALA)可作为除草剂、杀虫剂和植物生长调节剂在农业上应用,但由于其成本较高而限制了它的大面积使用。利用常规基因工程操作方法结合载体介导PCR法(Vecterette PCR)克隆了嗜酸柏拉红菌(Rhodoblastus acidophilus)的5-氨基乙酰丙酸合成酶(ALAS)基因。并将编码ALAS的基因插入到原核表达载体pQE30中,在大肠杆菌不同菌株(E.coli JM109、M15及BL21(DE3))中进行诱导表达。对产物进行SDS-PAGE分析表明,ALAS基因已在细菌中成功表达。使用Ni-NTA亲和层析法对表达的ALAS进行分离、纯化,得到大小约为44kD的ALAS蛋白。通过优化工程菌株的培养条件,建立了发酵生产ALA的方法,其胞外分泌ALA产量达5.379g/L,ALAS酶活力高达333U/min.mg。这是目前国内外利用生物法生产ALA产量最高的报道,为ALA的产业化应用打下了良好的基础。  相似文献   

6.
通过对产普鲁兰酶的重组大肠杆菌E.coli BL21(DE3)/p ET28a-s-pul菌株在发酵过程中质粒稳定性和普鲁兰酶生成量的考察,发现不同宿主对质粒稳定性及酶活性有重要影响。本文利用E.coli BL21(DE3)p Lys S菌株为宿主,构建重组菌E.coli BL21(DE3)p Lys S/p ET28a-s-pul,通过控制外源蛋白的本底表达,提高了重组菌株的质粒稳定性。优化发酵培养基和发酵条件以后,重组菌产普鲁兰酶能力由480 U/m L提高至627 U/m L,增幅为30.6%。研究结果认为,严格控制外源蛋白的本底表达,是改善重组菌稳定性的重要方法之一。  相似文献   

7.
目的:用pGAP启动子在P.pastoris中组成型表达漆酶.方法:用PCR从枯草芽孢杆菌基因组中扩增漆酶基因lac2.用Not和EcoRⅠ双酶切将lac2基因重组于表达载体PGAP9K.通过电转法将其转化于P.pastoris基因组,筛选高G418抗性以及高表达Lac2酶的重组子作为工程菌Gs115( pGAP9k - lac2).用甘油作为碳源在50L生物反应器中表达重组漆酶Lac2.用ABTS法测定发酵液中的漆酶活力.结果:在发酵30h时,其Lac2酶的表达达峰值,其活性为136.67U/L.其峰值的Lac2酶的表达量为50mg/L.表达产物具有分解ABTs的活性.结论:成功克隆了漆酶基因lac2,并首次实现用pGAP启动子在P.pastorris中组成型表达漆酶,为用P.Pastoris规模化生产漆酶奠定了基础.  相似文献   

8.
从糖化酶工业生产菌株Aspergillus nigerCICIM F0410基因组DNA中扩增糖化酶基因启动子(PglaA),并将该启动子替换质粒pRS303K上KmR基因启动子,构建成糖化酶基因启动子功能检测质粒pRS-PglaA-KmR。将pRS-PglaA-KmR转入E.coliJM109中,得到重组菌E.coli(pRS-PglaA-KmR)。通过对重组菌的氨基糖苷磷酸转移酶基因活性检测,表明PglaA在E.coli中具有驱动KmR基因表达的活性。采用不同诱导物进行培养发现,葡萄糖、蔗糖、乳糖、麦芽糖或玉米淀粉,可以不同程度增强PglaA的强度。  相似文献   

9.
杨燕  郑珂  潘梅  唐蕾 《微生物学通报》2019,46(12):3216-3224
【背景】Escherichia coli BL21(DE3)是基因工程的常用宿主,以C5途径合成5-氨基乙酰丙酸(5-Aminolevulinicacid,ALA),ALA是合成血红素的重要前体物质,但ALA分泌对血红素合成的影响尚不清楚。【目的】阐明参与ALA外运的RhtA在血红素合成途径中的作用。【方法】利用Red同源重组,敲除Escherichia coli BL21(DE3)的rhtA,同时构建重组质粒pEA过表达血红素合成途径中的关键酶基因hemA,检测分析血红素及其前体物质含量,以及血红素合成途径中10个关键基因的表达水平。【结果】敲除rhtA对菌体生长没有显著影响,敲除菌株BL21(DE3)Δrht A与原始菌株BL21(DE3)比较,ALA的胞外含量下降23%,血红素含量提高12%,尿卟啉III (Uroporphyrin III,UIII)、粪卟啉III (Coproporphyrin III,CIII)和原卟啉IX (Protoporphyrin IX,PPIX)的含量分别提高25%、15%和18%;敲除rhtA同时过表达hemA的菌株BL21(DE3)ΔrhtA/pEA与仅过表达hemA的菌株BL21(DE3)/pEA比较,胞外ALA减少了16%,血红素含量提高了24%,UIII和CIII含量分别提高55%和64%,PPIX含量显著增加,约为4.7倍。实时定量PCR结果表明,rhtA缺失后,hemC基因转录水平下调,其余9个基因转录水平均有不同程度的上调。【结论】rhtA敲除减少了ALA的外运,使得胞内血红素产量得到提高。  相似文献   

10.
利用木糖和葡萄糖合成乙醇的新型重组大肠杆菌的研究   总被引:11,自引:1,他引:10  
利用PCR方法从运动发酵单孢菌染色体DNA扩增出乙醇合成途径的关键酶基因pdc、adhB,分别用tac启动子控制表达,构建了可以在Escherichia coli JM109中表达的重组质粒pKK-PA、pEtac-PA.初步的乙醇发酵结果表明,在E.coli中只引入adhB基因不能拓宽其中的产乙醇途径,引入pdc基因可以与宿主自身的ADH酶协同作用,使碳流有效导向产乙醇方向.同时引入pdc、adhB基因可以在宿主E.coli中成功建立产乙醇途径.  相似文献   

11.
5-aminolevulinate (ALA) synthase (E.C. 2.3.1.37), which mediates the pyridoxal phosphate-dependent condensation of glycine and succinyl-CoA, encoded by the Rhodobacter sphaeroides hemA gene, enables Escherichia coli strains to produce ALA at a low level. To study the effect of the enhanced C4 metabolism of E. coli on ALA biosynthesis, NADP-dependent malic enzyme (maeB, E.C. 1.1.1.40) was coexpressed with ALA synthase in E. coli. The concentration of ALA was two times greater in cells coexpressing maeB and hemA than in cells expressing hemA alone under anaerobic conditions with medium containing glucose and glycine. Enhanced ALA synthase activity via coupled expression of hemA and maeB may lead to metabolic engineering of E. coli capable of large-scale ALA production.  相似文献   

12.
Aminolevulinic acid (ALA) is formed by the enzyme ALA synthase (hemA gene). Then ALA is converted to Porphobilinogen (PBG) by the ALA dehydratase (hemB gene). For the overproduction of ALA, we used an Escherichia coli BL21(DE3) containing a hemA gene from Bradyrhzobium japonicum, which was created in our previous work. The effects of pH on the ALA synthase and ALA dehydratase were investigated. The ALA synthase and ALA dehydratase activities were dependent on the pH of the medium, with maximal activities occurring at pH 6.5 and 8.0 respectively. At pH 6.5, extracellular ALA reached 23 mM in a jar-fermenter. In addition, the effects of some nutritional factors, such as nitrogen source and the ratio of carbon to nitrogen (C/N) on the fermentative production of ALA were investigated. The highest ALA production was found with 8:1 of C/N ratio. Among various nitrogen sources, the tryptone might be a useful one for ALA production.  相似文献   

13.
The Rhodobacter sphaeroides pgsA gene (pgsARs), encoding phosphatidylglycerophosphate synthase (PgsARs), was cloned, sequenced, and expressed in both R. sphaeroides and Escherichia coli. As in E. coli, pgsARs is located immediately downstream of the uvrC gene. Comparison of the deduced amino acid sequences revealed 41% identity and 69% similarity to the pgsA gene of E. coli, with similar homology to the products of the putative pgsA genes of several other bacteria. Comparison of the amino acid sequences of a number of enzymes involved in CDP-diacylglycerol-dependent phosphatidyltransfer identified a highly conserved region also found in PgsARs. The pgsARs gene carried on multicopy plasmids was expressed in R. sphaeroides under the direction of its own promoter, the R. sphaeroides rrnB promoter, and the E. coli lac promoter, and this resulted in significant overproduction of PgsARs activity. Expression of PgsARs activity in E. coli occurred only with the E. coli lac promoter. PgsARs could functionally replace the E. coli enzyme in both a point mutant and a null mutant of E. coli pgsA. Overexpression of PgsARs in either E. coli or R. sphaeroides did not have dramatic effects on the phospholipid composition of the cells, suggesting regulation of the activity of this enzyme in both organisms.  相似文献   

14.
15.
Several promoters from Propionibacterium freudenreichii subsp. shermanii were isolated using a promoter probe vector, pCVE1, containing the Streptomyces cholesterol oxidase gene (choA) as a reporter gene. Three of four promoters isolated exhibiting a strong activity in Escherichia coli also expressed a strong activity in P. freudenreichii subsp. shermanii IFO12426. Using two promoters with a strong activity and a previously constructed shuttle vector, pPK705, shuttling between E. coli and Propionibacterium. we constructed expression vectors for propionibacteria. To overproduce 5-aminolevulinic acid (ALA), which is the first intermediate in the synthesis of porphyrins, the ALA synthase gene (hemA) from Rhodobacter sphaeroides was recombined with the expression vectors. The activity of ALA synthase in the recombinant P freudenreichii subsp. shermanii increased about 70-fold that in the strain without a vector. The recombinant Propionibacterium produced ALA at a maximum concentration of 8.6 mM in the absence of levulinic acid, an inhibitor of ALA dehydratase, with 1% glucose as a carbon source. The recombinant P. freudenreichii accumulated 18.8 mmol/g cells ALA in the presence of 1 mM levulinic acid and 30 mM glycine. The construction of an efficient expression vector will facilitate genetic studies of a vitamin B12 producer, Propionibacterium.  相似文献   

16.
Extracellular accumulation of 5-aminolevulinic acid (ALA) by an E. coli overexpressing ALA synthase (ALAS) was achieved by inserting a hemA gene from Bradyrhizobium japonicum and expressed under the control of T7 promoter. At pH 7.0 extracellular ALA reached up to 15 mM in a jar fermenter with an addition of glycine (30 mM) and succinate (90 mM) in the medium. ALA accumulation was increased to 20 mM by adding levulinic acid (30 mM) to the cultures.  相似文献   

17.
The Rhodopseudomonas palustris KUGB306 hemA gene codes for 5-aminolevulinic acid (ALA) synthase. This enzyme catalyzes the condensation of glycine and succinyl-CoA to yield ALA in the presence of the cofactor pyridoxal 5'- phosphate. The R. palustris KUGB306 hemA gene in the pGEX-KG vector system was transformed into Escherichia coli BL21. The effects of physiological factors on the extracellular production of ALA by the recombinant E. coli were studied. Terrific Broth (TB) medium resulted in significantly higher cell growth and ALA production than did Luria-Bertani (LB) medium. ALA production was significantly enhanced by the addition of succinate together with glycine in the medium. Maximal ALA production (2.5 g/l) was observed upon the addition of D-glucose as an ALA dehydratase inhibitor in the late-log culture phase. Based on the results obtained from the shake-flask cultures, fermentation was carried out using the recombinant E. coli in TB medium, with the initial addition of 90 mM glycine and 120 mM succinate, and the addition of 45 mM D-glucose in the late-log phase. The extracellular production of ALA was also influenced by the pH of the culture broth. We maintained a pH of 6.5 in the fermenter throughout the culture process, achieving the maximal levels of extracellular ALA production (5.15 g/l, 39.3 mM).  相似文献   

18.
19.
The common precursor to all tetrapyrroles is 5-aminolevulinic acid (ALA), and in Rhodobacter sphaeroides its formation occurs via the Shemin pathway. ALA synthase activity is encoded by two differentially regulated genes in R. sphaeroides 2.4.1: hemA and hemT. In our investigations of hemA regulation, we applied transposon mutagenesis under aerobic conditions, followed by a selection that identified transposon insertion mutants in which hemA expression is elevated. One of these mutants has been characterized previously (J. Zeilstra-Ryalls and S. Kaplan, J. Bacteriol. 178:985-993, 1996), and here we describe our analysis of a second mutant strain. The transposon inserted into the coding sequences of hbdA, coding for S-(+)-beta-hydroxybutyryl-coenzyme A dehydrogenase and catalyzing an NAD-dependent reaction. We provide evidence that the hbdA gene product participates in polyhydroxybutyrate (PHB) metabolism and, based on our findings, we discuss possibilities as to how defective PHB metabolism might alter the level of hemA expression.  相似文献   

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