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1.
阿维菌素的生物合成与途径工程   总被引:4,自引:0,他引:4  
阿维菌素是一种高效安全的大环内酯杀虫杀螨剂。本文介绍了阿维菌素生物合成的步骤及参与合成步骤的有关酶系统和基因簇。对阿维菌素 8个组分合成的遗传控制基因 ,特别是对其中B1a组分合成的遗传控制位点进行讨论分析 ,并介绍了利用途径工程改造阿维链霉菌生产合成单一高效组分B1a和提高活性组分产量的研究进展。  相似文献   

2.
核黄素基因工程研究进展   总被引:5,自引:0,他引:5  
核黄素 (维生素B2 )为天然水溶性的B族维生素 ,是维持机体正常代谢所必须的物质 ,具有重要的生理功能。目前核黄素的生产方法主要有化学合成法和微生物发酵法。其中微生物发酵法是后来发展起来的一种十分经济有效的方法 ,并在核黄素主产中开始占据主导地位。为进一步获得核黄素高产菌株 ,人们对核黄素合成基因及其表达调控的机制做了深入细致的研究 ,并以此为依据 ,通过基因工程手段构建出了核黄素高产菌株 ,大大提高了核黄素的产量 ,其中尤以枯草芽孢杆菌最为成功。综述发酵法生产核黄素的现状、核黄素生物合成的分子生物学以及基因工程研究进展 ,讨论了其进一步的发展方向。  相似文献   

3.
代谢工程在核黄素生产上的应用   总被引:2,自引:0,他引:2  
核黄素(维生素B2)为天然水溶性的B族维生素,是维持机体代谢所必须的营养物质。目前核黄素的工业化生产主要有微生物发酵法和化学半合成法两种,其中微生物发酵法以生产工艺简单、原料廉价、环境友好以及资源可再生等优点而倍受世界核黄素生产商的青睐。代谢工程是近二十年来发展起来的新型学科,主要利用分子生物学技术对细胞进行遗传修饰,从而改进产物生成或细胞特性。为进一步提高核黄素产量,通过代谢工程手段构建出了核黄素高产菌株,其中尤以枯草芽孢杆菌最为成功。要得到较高的核黄素产率,必须保证碳架、能量等价物以及氧化还原辅(酶)因子在细胞代谢过程中处于适当的比率。以枯草芽孢杆菌进行核黄素生产为例,主要从增强碳源和能源利用效率、增强核黄素生物合成途径代谢流以及解除核黄素生物合成过程中的反馈调节方面综述了代谢工程在指导核黄素生产方面的应用,并讨论了其未来的发展方向。  相似文献   

4.
在全球石油资源不断减少和温室气体不断积累的情况下,急需发展可再生燃料能源及各种生物化工原料和产品。基于该目的,能够生产高能量密度液体生物燃料和高附加值化工品的微生物脂肪酸合成系统备受关注。首先介绍了大肠杆菌脂肪酸代谢系统的组成,然后详细总结了通过改造脂肪酸代谢途径生产脂肪酸以及脂肪酸衍生物的最新研究进展,并介绍了利用体外重建体系来研究脂肪酸合成途径对该系统进行深入挖掘,以及根据得到的信息指导体内脂肪酸途径的改造来释放脂肪酸合成系统的潜能。  相似文献   

5.
烷烃在自然界中广泛存在。它不仅是化石能源的主要组成部分,而且在润滑剂、化妆品、水果保藏、植物防护等方面具有广泛的应用价值。本文概述了天然产烷烃的微生物及其烷烃的天然合成途径及其途径中关键酶催化的作用机理,并对近几年国内外运用代谢工程手段改造微生物使其细胞合成烷烃的研究进展作了介绍。微生物生产烷烃可以通过改造烷烃的天然合成菌株或通过在模式微生物中引入异源烷烃合成途径两种方法来强化。最后文章讨论了微生物法生产烷烃存在的不足和今后研究的方向与展望。  相似文献   

6.
3-脱氢莽草酸,是芳香族氨基酸生物合成代谢途径中一种重要的中间产物,可作为一些化学合成制剂和药物中间原料。这样以无毒可再生物质为起始原料的合成方法与传统的有机合成化学制剂的方法相比,对环境更加有利。此外,它还是一种十分有效的抗氧化剂。工业上一般采用化学合成法和发酵法来生产3-脱氢莽草酸,随着代谢工程的兴起,使得更加理性改造菌株成为可能,这更加促进了发酵法的广泛应用。本文主要介绍了代谢工程在生物合成3-脱氢莽草酸生产菌改造中的应用情况,其中涉及3-脱氢莽草酸生物合成途径中相关基因及其酶的调控、中心代谢途径的改造和3-脱氢莽草酸合成支路的修饰等,并探讨了将来的发展前景。  相似文献   

7.
在调查阿舒假囊酵母(Eremothecium ashbyii)营养要求的基础上,设计了适合该菌生长的合成培养基,在合成培养基上诱变筛选得到了数株抗嘌呤拮抗物8-AG的突变株。选择其中三株U_(95-1)、U_(95-2)和U_(95-3)进行传代和摇瓶发酵试验,U_(95-3)的核黄素发酵单位低于出发菌,未经传代的U_(95-1)、U_(95-2)比出发菌株的发酵水平分别提高15.5%和9.8%,经5~10代传接,其产核黄素的遗传性状稳定。该研究表明,从代谢控制角度通过减轻核黄素合成途径中重要调节酶的反馈抑制对提高E. ashbyii的核黄素产量和稳定性是可行的,为该菌的菌种改良提供了一条遗传育种途径。  相似文献   

8.
在调查阿舒假囊酵母(Eremothecium ashbyii)营养要求的基础上,设计了适合该菌生长的合成培养基,在合成培养基上诱变筛选得到了数株抗嘌呤拮抗物8-AG的突变株。选择其中三株U_(95-1)、U_(95-2)和U_(95-3)进行传代和摇瓶发酵试验,U_(95-3)的核黄素发酵单位低于出发菌,未经传代的U_(95-1)、U_(95-2)比出发菌株的发酵水平分别提高15.5%和9.8%,经5~10代传接,其产核黄素的遗传性状稳定。该研究表明,从代谢控制角度通过减轻核黄素合成途径中重要调节酶的反馈抑制对提高E. ashbyii的核黄素产量和稳定性是可行的,为该菌的菌种改良提供了一条遗传育种途径。  相似文献   

9.
Fu AS  Liu R  Zhu J  Liu TG 《遗传》2011,33(10):1121-1133
生物柴油是一种能替代柴油的可再生燃料,然而通过植物油料化学转酯化生产的第一代生物柴油在性能和生产工艺上有很多缺点。近年来随着合成生物学和代谢工程的迅速发展,通过选择合适的微生物并利用各种生物技术改造其代谢合成途径,如脂肪酸合成途径、异戊二烯合成途径,研究人员能利用微生物直接生产性能更加优越、品质更高的新型第二代生物柴油——长链烷烃。文章总结了目前遗传改造微生物代谢途径生产新型柴油的研究进展,并指出目前该领域存在的问题以及今后的发展方向。  相似文献   

10.
酿酒酵母(Saccharomyces cerevisiae)作为最简单的真核模式生物被广泛应用于生命科学的各项研究中。目前,大多数天然产物的主要生产途径是从原材料中直接提取,该方法效率较低,同时消耗了大量的生物资源,已逐渐被新兴的合成生物学方法所取代。其中通过改造酿酒酵母自身的代谢途径并加入异源代谢途径生产目标天然产物已成为一种高效的资源获取途径。通过对外源基因启动子的优化及改造,调控外源基因在宿主中的表达水平,从而协调宿主自身代谢途径,定向合成目的代谢产物是酵母合成生物学和代谢工程的研究热点。从构建酿酒酵母合成天然产物过程中启动子结构、类型及优化表达的方法进行了综述,为相关研究者利用酿酒酵母作为底盘细胞进行合成生物学的研究提供参考。  相似文献   

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13.
In this paper, we report the identification, cloning, and complete nucleotide sequence of four genes from Actinobacillus pleuropneumoniae that are involved in riboflavin biosynthesis. The cloned genes can specify production of large amounts of riboflavin in Escherichia coli, can complement several defined genetic mutations in riboflavin biosynthesis in E. coli, and are homologous to riboflavin biosynthetic genes from E. coli, Haemophilus influenzae, and Bacillus subtilis. The genes have been designated A. pleuropneumoniae ribGBAH because of their similarity in both sequence and arrangement to the B. subtilis ribGBAH operon.  相似文献   

14.
The incorporation of 14C-labelled guanosine and xanthosine into riboflavin was studied. It is concluded that the ribose mojety of guanosine is converted to the ribityl side chain of riboflavin. Thus the immediate precursor of riboflavin biosynthesis is a guanosine compound. Two classes of the riboflavin-dependent mutants of Bacillus subtilis were studied. They are closely linked to the lysine markers and probably correspond to the initial steps of riboflavin biosynthesis pathway.  相似文献   

15.
We developed a stoichiometric model of Bacillus subtilis metabolism for quantitative analysis of theoretical growth and biochemicals production capacity. This work concentrated on biochemicals that are derived from the purine biosynthesis pathway; inosine, guanosine, riboflavin, and folic acid. These are examples of commercially relevant biochemicals for which Bacillus species are commonly used production hosts. Two previously unrecognized, but highly desirable properties of good producers of purine pathway-related biochemicals have been identified for optimally engineered product biosynthesis; high capacity for reoxidation of NADPH and high bioenergetic efficiency. Reoxidation of NADPH, through the transhydrogenase or otherwise, appears to be particularly important for growth on glucose, as deduced from the corresponding optimal carbon flux distribution. The importance of cellular energetics on optimal performance was quantitatively assessed by including a bioenergetic efficiency parameter as an unrestricted, ATP dissipating flux in the simulations. An estimate for the bioenergetic efficiency was generated by fitting the model to experimentally determined growth yields. The results show that the maximum theoretical yields of all products studied are limited by pathway stoichiometry at high bioenergetic efficiencies. Simulations with the estimated bioenergetic efficiency of B. subtilis, growing under glucose-limiting conditions, indicate that the yield of these biochemicals is primarily limited by energy and thus is very sensitive to the process conditions. The maximum yields that can reasonably be expected with B. subtilis on glucose were estimated to be 0.343, 0.160, and 0.161 (mol product/mol glucose) for purine nucleosides, riboflavin, and folic acid, respectively. Potential strategies for improving these maximum yields are discussed.  相似文献   

16.
Using the methods of molecular cloning permitted to show that riboflavin operon of Bacillus subtilis contains four promoters. Three of them are functionally active in the Bacillus subtilis system. The main promoter of the operon with regulatory region was cloned in plasmid pPL603. Cells containing the constructed plasmid pGM32 are resistant to chloramphenicol. The level of resistance is regulated by concentration of riboflavin (the effector of operon). The following model of rib-operon has been proposed: (Formula: see text).  相似文献   

17.
Genetic alterations of carbon flux into the acetoin biosynthesis pathway as a possible means to reduce acid accumulation were investigated in the riboflavin-producing Bacillus subtilis during growth on glucose. The lower rates of cell growth and riboflavin production were found in the pta-disrupted mutant while the rate of acetate formation was reduced. In contrast, acid accumulation was significantly reduced, to one-fifth that of the parental strain RH33::[pRB63](n), and a 50% increase in the riboflavin yield was obtained when the expression of the gene encoding acetolactate synthase was increased in the pta-disrupted mutant. Metabolic analysis, together with enzyme activity assays, indicated that the tricarboxylic acid cycle fluxes are significantly increased in response to acetolactate synthase overexpression in pta-disrupted mutant. Moreover, the intracellular ATP-to-ADP ratio also increased 5.8-fold. The high concentration of ATP could explain the increased riboflavin production.  相似文献   

18.
All the structural genes of riboflavin biosynthesis are shown to be located on the 2.8 MD DNA fragment, using the collection of plasmids, carrying the Bacillus subtilis riboflavin operon fragments and Bacillus subtilis strains, containing various deletions of rib-operon for analysis. The proximal Bgl II site is shown to be located between promoter P1 and the first structural gene ribG. The distal Hind III site of fragment C is the left bound of the rib-operon.  相似文献   

19.
Simultaneous growth and riboflavin overproduction were investigated using a previously developed stoichiometric model of Bacillus subtilis metabolism. A fit of model predictions to experimental data was used to obtain estimates of fundamental energetic parameters of B. subtilis. Although multiple solutions describe the experimental data, evidence for a P-to-O ratio of about 1(1/3) mole of ATP produced per atom of oxygen consumed in oxidative phosphorylation was provided by genomic analysis of electron transport components, because no homologue of the proton-translocating NADH dehydrogenase I was found in the B. subtilis genome database. These results allow us to devise a rational metabolic engineering strategy to improve riboflavin production. The potential influence of increased energy coupling in oxidative phosphorylation on riboflavin yield is discussed. Higher coupling is most significant under carbon-limiting conditions in slow-growing cells, that is, in fed-batch processes of industrial interest.  相似文献   

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