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1.
采用非甲羟戊酸途径抑制剂磷甘霉素和甲羟戊酸途径抑制剂洛伐它汀对中国红豆杉悬浮细胞培养物进行处理.在添加和未添加茉莉酸甲酯诱导的情况下,前者使紫杉醇产量减少了2/5和1/5,后者使紫杉醇产量减少了1/6和1/10,表明两种途径对紫杉醇的生物合成都具有贡献,其中非甲羟戊酸途径贡献较大;通过定量PCR技术分别检测两条途径的关键酶5-磷酸脱氧木酮糖还原异构酶(DXR)和3-羟基-3-甲基戊二酰辅酶A还原酶(HMGR)mRNA水平的变化,发现两种抑制剂都能够激活hmgr和dxr的转录,表明两种代谢途径之间存在协同作用,共同为紫杉醇的生物合成提供前体.  相似文献   

2.
微生物发酵法是生产辅酶Q10的最佳工艺.辅酶Q10的生物合成途径包括异戊二烯焦磷酸合成、聚十异戊二烯焦磷酸合成、苯环修饰等过程.1-脱氧-D-木酮糖-5-磷酸合成酶、聚十异戊二烯焦磷酸合成酶、对羟基笨甲酸聚十异戊二烯焦磷酸转移酶等是Q10合成的关键酶.生产辅酶Q10的菌种可通过诱变、基因重组和支路敲除等方法获得.氧化还原电位控制、pH控制补料分批发酵、发酵萃取耦合技术等新工艺逐浙应用于辅酶Q10生产.  相似文献   

3.
细胞分裂素、赤霉素、脱落酸、叶绿素、萜类等类异戊二烯物质,是植物中广泛存在的一类代谢产物,在植物生长发育过程中起着非常重要的作用。一些萜类化合物作为药物的合成前体或有效的药用成分在工农业及医药生产上具有重要的经济价值。类异戊二烯物质主要通过甲羟戊酸代谢途径中的一系列酶催化合成,其中,3-羟基-3-甲基戊二酰辅酶A还原酶(3-hydroxy-3-methylglutaryl coenzyme A reductase, HMGR)是该代谢途径中的第一个关键限速酶,能够将3-羟基-3-甲基戊二酰辅酶A转化成中间代谢产物甲羟戊酸。对植物HMGR基因的克隆、酶结构和功能分析、基因组织表达及调控等方面进行了综述,旨在为其在重要农作物的遗传改良、代谢产物工程植物创制以及植物亲缘关系分析中的应用等研究提供理论依据。  相似文献   

4.
红豆杉细胞非甲羟戊酸途径关键酶基因dxr的克隆与分析   总被引:6,自引:0,他引:6  
近几年的研究表明,非甲羟戊酸途径可能是紫杉醇合成的主要途径,通过对各种不同来源的非甲羟戊酸途径关键酶5-磷酸脱氧木酮糖还原异构酶(DXR)基因同源区域进行比较,设计出简并引物,利用RT-PCR技术从中国红豆杉(Taxus chinensis)悬浮细胞中扩增出535bp的基因片段。同源序列比对发现,推断的蛋白质序列与Arabidopsis thaliana(Q9XFS9)、Mentha x piperita(Q9XES0)、Synechococcus elongatus(Q8DK30)、synechocystis sp.PCC 6803(Q55663)、Nostoc sp.PCC7120(QSYP49)、Synechococcus leopoliensis(Q9RKT1)的一致性分别达到95%、94%、80%、78%、78%和73%。结合蛋白质保守区、特征区以及进化树分析,证实该基因确为dxr基因,首次报道从裸子植物中克隆到非甲羟戊酸途径关键酶的基因片段。  相似文献   

5.
以‘西伯利亚’百合(Lilium ‘Siberia’)花蕾期、半开期、盛开期、衰败期的花瓣为材料,利用RNA-seq技术对其转录组进行高通量测序,分析单萜合成途径中差异表达的基因并阐明其分子机制。结果显示,‘西伯利亚’百合通过转录组测序分析共得到56.28 Gb clean base,223.40 Mb clean reads和124 233个unigene,其中35 749个基因得到注释。萜骨架合成途径中的基因表达水平在不同花期表现出显著差异。其中,甲基赤藓糖醇磷酸(MEP)中的1-脱氧-D-木酮糖-5-磷酸合成酶(DXS)、1-脱氧-D-木酮糖-5-磷酸还原异构酶(DXR)、4-羟基-3-甲丁-2-烯基二磷酸合成酶(HDS)、4-羟基-3-甲丁-2烯基二磷酸还原酶(HDR)、牻牛儿基二磷酸合成酶(GPS)基因的表达水平随花期变化呈先升高后降低的趋势。罗勒烯合成酶(OCS)基因表现出相似变化规律,在盛开期表达量最高。甲羟戊酸(MVA)途径中的3-羟基-3-甲基戊二酸单酰辅酶A还原酶(HMGR)的基因表达同样出现先升高后降低的趋势。单萜合成下游的分支途径中,茄尼基二磷酸合成酶(SDS)、牻牛儿基牻牛儿基二磷酸合成酶(GGDR)基因的表达则出现相反的趋势,在盛开期的表达量最低。研究结果表明MEP途径中的关键基因可随花期变化规律性的表达,以调控单萜的生物合成,在盛开期有较高释放量,且盛开期MVA途径的活化以及泛醌和萜醌代谢支路基因的低表达也促进了单萜的生物合成。  相似文献   

6.
以‘西伯利亚’百合(Lilium‘Siberia’)花蕾期、半开期、盛开期、衰败期的花瓣为材料,利用RNA-seq技术对其转录组进行高通量测序,分析单萜合成途径中差异表达的基因并阐明其分子机制。结果显示,‘西伯利亚’百合通过转录组测序分析共得到56.28 Gb clean base,223.40 Mb clean reads和124 233个unigene,其中35 749个基因得到注释。萜骨架合成途径中的基因表达水平在不同花期表现出显著差异。其中,甲基赤藓糖醇磷酸(MEP)中的1-脱氧-D-木酮糖-5-磷酸合成酶(DXS)、1-脱氧-D-木酮糖-5-磷酸还原异构酶(DXR)、4-羟基-3-甲丁-2-烯基二磷酸合成酶(HDS)、4-羟基-3-甲丁-2烯基二磷酸还原酶(HDR)、牻牛儿基二磷酸合成酶(GPS)基因的表达水平随花期变化呈先升高后降低的趋势。罗勒烯合成酶(OCS)基因表现出相似变化规律,在盛开期表达量最高。甲羟戊酸(MVA)途径中的3-羟基-3-甲基戊二酸单酰辅酶A还原酶(HMGR)的基因表达同样出现先升高后降低的趋势。单萜合成下游的分支途径中,茄尼基二磷酸合成酶(SDS)、牻牛儿基牻牛儿基二磷酸合成酶(GGDR)基因的表达则出现相反的趋势,在盛开期的表达量最低。研究结果表明MEP途径中的关键基因可随花期变化规律性的表达,以调控单萜的生物合成,在盛开期有较高释放量,且盛开期MVA途径的活化以及泛醌和萜醌代谢支路基因的低表达也促进了单萜的生物合成。  相似文献   

7.
黄龙全  张剑韵 《西北植物学报》2015,35(10):2124-2131
维生素B6是一组可相互转换的吡啶衍生物的总称,包括吡哆醇、吡哆胺、吡哆醛、磷酸吡哆醇、磷酸吡哆胺和磷酸吡哆醛。其中,磷酸吡哆醛是140多种细胞酶的辅酶。至今发现两种VB6从头合成途径,DXP(1-脱氧-D-木酮糖-5-磷酸)依赖途径和DXP非依赖途径,前者仅存在于大肠杆菌和少量其他细菌,后者存在于其他所有VB6自养生物。除了VB6的从头合成,所有细胞生物体内还存在一条相似的补救途径,补救途径实现VB6各型的代谢转换。该文对近年来国内外有关植物VB6从头合成和代谢转换研究进展进行综述。  相似文献   

8.
植物类萜生物合成途径及关键酶的研究进展   总被引:1,自引:0,他引:1  
萜类化合物是植物中广泛存在的一类代谢产物,在植物的生长、发育过程中起着重要的作用。植物中的萜类化合物有两条合成途径:甲羟戊酸途径和5-磷酸脱氧木酮糖/2C-甲基4-磷酸-4D-赤藓糖醇途径。这两条途径中都存在一系列调控萜类化合物生成、结构和功能各异的酶,其中关键酶的作用决定了下游萜类化合物的产量。植物类萜生物合成途径的调控以及该途径中关键酶的研究已成为目前国内外生物学领域的一大热点。综述了植物类萜生物合成途径和参与该途径的关键酶及其基因工程的研究进展,并展望了其应用前景。  相似文献   

9.
近几年的研究表明,非甲羟戊酸途径可能是紫杉醇合成的主要途径,通过对各种不同来源的非甲羟戊酸途径关键酶5_磷酸脱氧木酮糖还原异构酶(DXR)基因同源区域进行比较,设计出简并引物,利用RT_PCR技术从中国红豆杉(Taxus chinensis)悬浮细胞中扩增出535bp的基因片段。同源序列比对发现,推断的蛋白质序列与Arabidopsis thaliana (Q9XFS9)、Mentha x piperita (Q9XES0)、Synechococcus elongatus (Q8DK30)、Synechocystissp. PCC 6803 (Q55663)、Nostocsp. PCC 7120 (Q8YP49)、Synechococcus leopoliensis (Q9RKT1)的一致性分别达到95%、94%、80%、78%、78%和73%。结合蛋白质保守区、特征区以及进化树分析,证实该基因确为dxr基因,首次报道从裸子植物中克隆到非甲羟戊酸途径关键酶的基因片段。  相似文献   

10.
类胡萝卜素生物合成途径及其控制与遗传操作   总被引:11,自引:1,他引:10  
类胡萝卜素在真菌和植物细胞胞液/内质网上是由乙酰CoA经甲羟戊酸途径合成的,在细菌与植物质体中由磷酸甘油醛与丙酮酸经1-脱氧木酮糖-5-磷酸途径合成。形成的异戊烯基焦磷酸经多次缩合生成第一个类胡萝卜素八氢番茄红素,再经脱氢、环化、羟基化、环氧化等转变为其它类胡萝卜素。类胡萝卜素生物合成中涉及的酶都是膜结合的或整合入膜中的。类胡萝卜素合成是通过底物可利用性与环化分支方式进行控制的。白色体到叶绿体的转变以及花与果实成熟时类胡萝卜素合成增加是在基因转录水平调节的。进行类胡萝卜素合成酶基因的转化,可增加转化体类胡萝卜素的积累。  相似文献   

11.
The recently discovered non-mevalonate pathway of isoprenoid biosynthesis serves as the unique source of terpenoids in numerous pathogenic eubacteria and in apicoplast-type protozoa, most notably Plasmodium, but is absent in mammalian cells. It is therefore an attractive target for anti-infective chemotherapy. The first committed step of the non-mevalonate pathway is catalyzed by 2C-methyl-D-erythritol 4-phosphate synthase (IspC). Using photometric and NMR spectroscopic assays, we screened extracts of Mediterranean plants for inhibitors of the enzyme. Strongest inhibitory activity was found in leaf extracts of Cercis siliquastrum.  相似文献   

12.
The non-mevalonate or 2-C-methyl-d-erythritol-4-phosphate (MEP) pathway is responsible for generating isoprenoid precursors in plants, protozoa, and bacteria. Because this pathway is absent in humans, its enzymes represent potential targets for the development of herbicides and antibiotics. 1-Deoxy-d-xylulose (DXP) reductoisomerase (DXR) is a particularly attractive target that catalyzes the pathway’s first committed step: the sequential isomerization and NADPH-dependent reduction of DXP to MEP. This article provides a comprehensive review of the mechanistic and structural investigations on DXR, including its discovery and validation as a drug target, elucidation of its chemical and kinetic mechanisms, characterization of inhibition by the natural antibiotic fosmidomycin, and identification of structural features that provide the molecular basis for inhibition of and catalysis.  相似文献   

13.

Background  

Isopentenyl diphosphate (IPP), a common biosynthetic precursor to the labdane diterpene forskolin, has been biosynthesised via a non-mevalonate pathway. Geranylgeranyl diphosphate (GGPP) synthase is an important branch point enzyme in terpenoid biosynthesis. Therefore, GGPP synthase is thought to be a key enzyme in biosynthesis of forskolin. Herein we report the first confirmation of the GGPP synthase gene in Coleus forskohlii Briq.  相似文献   

14.
15.
Enzymes of the 1-deoxy-D-xylulose 5-phosphate/2-C-methylerythritol 4-phosphate (DOXP/MEP) pathway are targets for new herbicides and antibacterial drugs. Until now, no inhibitors for the DOXP synthase have been known of. We show that one of the breakdown products of the herbicide clomazone affects the DOXP synthase. One inhibitor of the non-mevalonate pathway, fosmidomycin, blocks the DOXP reductoisomerase (DXR) of plants and bacteria. The I(50) values of plants are, however, higher than those found for the DXR of Escherichia coli. The DXR of plants, isolated from barley seedlings, shows a pH optimum of 8.1, which is typical for enzymes active in the chloroplast stroma.  相似文献   

16.
The temperature-sensitive mutant of Arabidopsis , chs5 , developed chlorotic leaves at restrictive temperatures (15°C), but almost normal green leaves at permissive temperatures (22°C). At the restrictive temperature, the chs5 mutation blocked the accumulation of chlorophylls and carotenoids. A temperature-shift analysis revealed that the manifestation of the chlorotic phenotype occurred in young leaf tissues, but did not in mature leaf tissues. Genetic and sequence analysis demonstrated that the chs5 mutation was caused by a single-base change in the coding region of a recently identified CLA1 gene. The CLA1 gene exhibited a high sequence similarity to the genes encoding 1-deoxy- d -xylulose 5-phosphate synthase (DXS) localized to the non-mevalonate pathway, which was recently discovered in bacteria and higher plants. In addition, the application of 1-deoxy- d -xylulose, the free sugar of 1-deoxy- d -xylulose 5-phosphate, rescues the defect in the chs5 mutant. These results indicated that the chlorotic phenotype of the chs5 mutant was caused by a defect in DXS activity and that DXS functions preferentially at an early stage of leaf cell development. A transiently expressed green fluorescent protein fused with the CLA1 transit peptide was localized within the chloroplasts in the green cultured cells of tobacco, which suggests that the putative localization of the non-mevalonate pathway is in plastids.  相似文献   

17.
Terpenoids are known to have many important biological and physiological functions. Some of them are also known for their pharmaceutical significance. In the late nineties after the discovery of a novel non-mevalonate (non-MVA) pathway, the whole concept of terpenoid biosynthesis has changed. In higher plants, the conventional acetate-mevalonate (Ac-MVA) pathway operates mainly in the cytoplasm and mitochondria and synthesizes sterols, sesquiterpenes and ubiquinones predominantly. The plastidic non-MVA pathway however synthesizes hemi-, mono-, sesqui- and di-terpenes, along with carotenoids and phytol chain of chlorophyll. In this paper, recent developments on terpenoids biosynthesis are reviewed with respect to the non-MVA pathway.  相似文献   

18.
Metabolic engineering of the early non-mevalonate terpenoid pathway of Escherichia coli was carried out to increase the supply of prenyl pyrophosphates as precursor for carotenoid production. Transformation with the genes dxs for over-expression of 1-deoxy-d-xylulose 5-phosphate synthase, dxr for 1-deoxy-d-xylulose 5-phosphate reductoisomerase and idi encoding an isopentenyl pyrophosphate stimulated carotenogenesis up to 3.5-fold. Co-transformation of idi with either dxs or dxr had an additive effect on ß-carotene and zeaxanthin production which reached 1.6 mg g–1 dry wt.  相似文献   

19.
Isoprenoids are biosynthesized from isopentenyl diphosphate and the isomeric dimethylallyl diphosphate via the mevalonate pathway or a mevalonate-independent pathway that was identified during the last decade. The non-mevalonate pathway is present in many bacteria, some algae and in certain protozoa such as the malaria parasite Plasmodium falciparum and in the plastids of higher plants, but not in mammals and archaea. Therefore, these enzymes have been recognised as promising drug targets. We report the crystal structure of Escherichia coli 2C- methyl-d-erythritol-2,4-cyclodiphosphate synthase (IspF), which converts 4-diphosphocytidyl-2C-methyl-d-erythritol 2-phosphate into 2C-methyl-d-erythritol 2,4-cyclodiphosphate and CMP in a Mg-dependent reaction. The protein forms homotrimers that tightly bind one zinc ion per subunit at the active site, which helps to position the substrate for direct attack of the 2-phosphate group on the beta-phosphate.  相似文献   

20.
2C-methyl-D-erythritol 2, 4-cyclodiphosphate synthase (MECPS, EC: 4.6.1.12) is the fifth enzyme of the non-mevalonate terpenoid pathway for isopentenyl diphosphate biosynthesis and is involved in the methylerythritol phosphate (MEP) pathway for ginkgolide biosynthesis. The full-length mecps cDNA sequence (designated as Gbmecps) was cloned and characterized for the first time from gymnosperm plant species, Ginkgo biloba, using RACE (rapid amplification of cDNA ends) technique. The full-length cDNA of Gbmecps was 874 bp containing a 720 bp open reading frame (ORF) encoding a peptide of 239 amino acids with a calculated molecular mass of 26.03 kDa and an isoelectric point of 8.83. Comparative and bioinformatic analyses revealed that GbMECPS showed extensive homology with MECPSs from other species and contained conserved residues owned by the MECPS protein family.Phylogenetic analysis indicated that GbMECPS was more ancient than other plant MECPSs. Tissue expression pattern analysis indicated that GbMECPS expressed the highest in roots, followed by in leaves, and the lowest in seeds. The color complementation assay indicated that GbMECPS could accelerate the accumulation of beta-carotene. The cloning, characterization and functional analysis of GbMECPS will be helpful to understand more about the role of MECPS involved in the ginkgolides biosynthesis at the molecular level.  相似文献   

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