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1.
植物二酰甘油酰基转移酶基因(DGAT)研究进展   总被引:2,自引:0,他引:2  
三酰甘油(TAG)是油料作物最主要的储藏脂类,二酰甘油酰基转移酶(DGAT,EC2.3.1.20)是TAG合成途径的限速酶,其主要作用是催化二酰甘油加上酰基脂肪酸形成三酰甘油.在植物中已发现了3种不同类型的DGAT基因,分别为DGAT1、DGAT2和DGAT3.该文对近年来国内外有关植物DGAT相关基因及其蛋白分类、定位、结构及其在脂肪酸合成、种子发育与萌发、幼苗发育、叶片新陈代谢等过程中的作用等研究进展进行综述.为提高油料作物种子油含量以及特定脂肪酸积累提供理论参考.  相似文献   

2.
DGAT相关基因研究进展   总被引:8,自引:0,他引:8  
马海明  施启顺  柳小春 《遗传学报》2005,32(12):1327-1332
DGAT是一种甘油酰基转移酶(Diacylgycerol Acyltransferase,DGAT),该酶与脂肪代谢、脂类在组织中的沉积有很大关系,它的主要作用机制是使二酰甘油加上脂肪酸酰基形成三酰甘油。编码该酶的基因有DGAT1和GAAT2,前者属于ACAT基因家族,后者属于MGAT1基因家族。本文综述了动物DGAT相关基因定位、结构、生物学效应及其多态性与生产性能的关系。  相似文献   

3.
二脂酰甘油酰基转移酶(diacylglycerol acyltransferase,DGAT2)是植物储存油脂生物合成过程中的关键酶,对种子储存油脂累积具有重要的生理作用。本文采用电子克隆与实验相结合的方法,从烟草种子cDNA中克隆到DGAT2基因的开放阅读框序列,命名为NtDGAT2(GenBank登录号JX843807),其序列长999bp,编码332个氨基酸。多序列比对和进化分析表明该基因编码蛋白与其他植物DGAT2具有较高相似性和典型的DGAT2结构域。利用Real-time PCR定量表达分析显示Nt-DGAT2在烟草种子、花、茎、叶和根里面都有表达,且在发育中的种子和花的发育过程大量表达。酵母互补实验证实该基因编码蛋白具有DGAT酶活性。  相似文献   

4.
以油棕(Elaeis guineensis Jacq.)叶片基因组DNA为模板,克隆获得长度为1035 bp的二酰甘油酰基转移酶基因(DGAT2)的启动子区序列。序列分析结果表明,DGAT2基因启动子含有大量光反应元件、激素响应元件及部分转录因子结合位点。本研究同时构建了DGAT2基因启动子和GUS基因植物融合表达载体,通过蘸花法侵染拟南芥(Arabidopsis thaliana L.),并对转基因拟南芥中GUS基因表达的特异性进行了分析。结果显示,GUS基因在拟南芥各组织中均有表达,但没有明显的组织特异性;荧光定量PCR分析结果表明DGAT2在油棕不同器官中的转录水平存在明显差异。  相似文献   

5.
二酰甘油酰基转移酶2(Diacylglycerol O-acyltransferase 2,DGAT2)是植物中三羧酸甘油酯(TAG)合成途径的限速酶,其编码基因属于酰基转移酶基因超家族。本研究依托植物全基因组数据库Phytozome,通过BLAST搜索获得了蓖麻(Ricinus communis L.)、拟南芥(Arabidopsis thaliana Heynh.)、毛果杨(Populus tricho-carpa Torr.A.Gray.)和木薯(Manihot esculenta Crantz.)4种双子叶植物酰基转移酶基因超家族所编码的73条多肽序列,并从中鉴定出5条DGAT2序列。理化性质和跨膜结构域分析表明,5条DGAT2序列均为疏水性跨膜蛋白,其中木薯DGAT2为一次跨膜蛋白且在叶绿体膜中大量分布,这与其他植物的DGAT2序列存在差异;木薯DGAT2蛋白在进化过程中发生了功能分化且可能与木薯的抗逆作用有关。  相似文献   

6.
甘油三酯(TG)是真核细胞中最重要的能量储存形式,尽管它是正常生理所必需,但过量堆积,就会导致肥胖.因此抑制TG的合成可能改善肥胖以及与之相关的症状.脂酰辅酶A:二酰基甘油酰转移酶(DGAT)是以甘油二酯和脂酰辅酶A为底物,催化甘油三酯合成途径的最后一步反应的关键酶.DGAT1基因敲除(Dgat1-/-)小鼠对肥胖有抵抗力,并且增加了对胰岛素和瘦素的敏感性,这种小鼠对饮食诱导的脂肪肝也有抵抗力.此外,DGAT1的缺乏影响脂肪源性因子的表达和分泌,从而调节能量和葡萄糖的代谢.这些研究提示DGAT1有望成为治疗肥胖和2-型糖尿病的新靶点.  相似文献   

7.
哺乳动物DGAT基因及其生物学功能研究进展   总被引:1,自引:0,他引:1  
王彦  许恒勇  朱庆 《遗传》2007,29(10):1167-1167―1172
二酰基甘油酰基转移酶(DGAT, EC2.3.1.20)是一种微粒体酶, 与脂肪代谢、脂类在组织中的沉积有很大关系, 它的主要作用机制是使二酰甘油加上脂肪酸酰基形成三酰甘油。DGAT在细胞甘油代谢中起根本性的作用, 并在高等真核生物甘油三酯代谢途径如肠脂肪吸收、脂蛋白集合、脂肪形成和泌乳中发挥着重要的功能, 提示DGAT不仅是调控甘油三酯与脂肪酸之间的关键因子, 而且可能在动物脂肪沉积中起着关键的调控作用。  相似文献   

8.
蒺藜苜蓿DGAT1基因的克隆和功能鉴定   总被引:1,自引:0,他引:1  
该研究采用RT-PCR与电子克隆的方法,从蒺藜苜蓿cDNA中克隆得到2个编码二脂酰甘油酰基转移酶(diacylglycerol acyltransferase,DGAT)的基因MtDGAT1-1和MtDGAT1-2。MtDGAT1-1长1 620bp,编码539个氨基酸;MtDGAT1-2长1 524bp,编码507个氨基酸。多序列比对显示,MtDGAT1-1和MtDGAT1-2编码蛋白具有典型的植物DGAT1结构域。表达分析显示,MtDGAT1-1和MtDGAT1-2在根、茎、叶、花、种子中都有表达,在种子发育中高表达,且MtDGAT1-1于种子发育的中前期高表达,而MtDGAT1-2于种子发育的中后期高表达。酵母互补实验证实,MtDGAT1-2编码蛋白具有DGAT酶活性,能够恢复H1246的TAG合成和油体形成;而MtDGAT1-1编码蛋白不能恢复H1246的TAG合成和油体形成。  相似文献   

9.
为提高大豆Glycine max种子含油量和营养品质,文中以二酰甘油酰基转移酶1(Diacylglycerol acyltransferase 1,DGAT1)基因为遗传修饰靶标。将来自高油植物斑鸠菊Vernonia galamensis L.编码DGAT1酶蛋白的c DNA克隆Vg DGAT1A在大豆种子特异超表达。连续选择获得高代(T7)Vg DGAT1A转基因大豆株系。转基因株系表型鉴定显示,在大豆种子发育中期(30–45 DAF),Vg DGAT1A高表达,相应地DGAT酶活性是非转基因野生型和空载体转化对照的7.8倍。转基因成熟种子含油量比对照提高了5.1%,淀粉含量比对照减少2%–3%,蛋白质含量与对照无显著差异。此外,转基因大豆种子百粒重(14.5 g)和种子萌发率(95.6%)与对照亦无明显差异。种子油脂脂肪酸成分分析显示,转基因大豆种子油中抗氧化的油酸(C18:1Δ9)含量比对照提高8.2%,相应地易氧化的亚油酸(C18:2Δ9,12)和亚麻酸(C18:3Δ9,12,15)分别减少6%和2%。这些数据表明,种子特异超表达外源Vg DGAT1A基因,打破了大豆种子含油量和蛋白质含量的负连锁,显著提高种子含油量且未导致蛋白含量降低。转基因大豆种子重量和萌发率亦未显负效应,而且种子油脂抗氧化性和营养品质得以改善。研究表明应用这一高酶活性Vg DGAT1A的基因工程是提高种子含油量和改善油脂品质的一条有效途径。  相似文献   

10.
白玫  吴鸿 《植物学通报》2009,44(6):735-741
三酰甘油(TAG)是真核生物中能量贮存的最主要形式。植物中贮存的三酰甘油是食用油类和工业用油的主要来源。TAG1基因的表达产物甘油二酯酰基转移酶(DGAT)能够调控三酰甘油的合成。as11是TAG1基因突变获得的脂类代谢相关突变体。该文概述了拟南芥(Arabidopsis thaliana)突变体as11的生物学特征及TAG1基因对脂类合成调控的最新进展。  相似文献   

11.
Triacylglycerol (TAG), the common energy storage molecule, is formed from diacylglycerol and a coenzyme A-activated fatty acid by the action of an acyl coenzyme A:diacylglycerol acyltransferase (DGAT). In order to conduct this step, most organisms rely on more than one enzyme. The two main candidates in Dictyostelium discoideum are Dgat1 and Dgat2. We show, by creating single and double knockout mutants, that the endoplasmic reticulum (ER)-localized Dgat1 enzyme provides the predominant activity, whereas the lipid droplet constituent Dgat2 contributes less activity. This situation may be opposite from what is seen in mammalian cells. Dictyostelium Dgat2 is specialized for the synthesis of TAG, as is the mammalian enzyme. In contrast, mammalian DGAT1 is more promiscuous regarding its substrates, producing diacylglycerol, retinyl esters, and waxes in addition to TAG. The Dictyostelium Dgat1, however, produces TAG, wax esters, and, most interestingly, also neutral ether lipids, which represent a significant constituent of lipid droplets. Ether lipids had also been found in mammalian lipid droplets, but the role of DGAT1 in their synthesis was unknown. The ability to form TAG through either Dgat1 or Dgat2 activity is essential for Dictyostelium to grow on bacteria, its natural food substrate.  相似文献   

12.
Acyl-coenzyme A:diacylglycerol acyltransferase (DGAT) enzyme plays a significant role in dietary triacylglycerol (TAG) absorption in the small intestine. However, the characteristics of human intestinal DGAT enzyme have not been examined in detail. The aim of our study was to characterize the human intestinal DGAT enzyme by examining acyl-CoA specificity, temperature dependency, and selectivity for 1,2-diacylglycerol (DAG) or 1,3-DAG. We detected DGAT activity of human intestinal microsome and found that the acyl-CoA specificity and temperature dependency of intestinal DGAT coincided with those of recombinant human DGAT1. To elucidate the selectivity of human intestinal DGAT to 1,2-DAG or 1,3-DAG, we conducted acyl-coenzyme A:monoacylglycerol acyltransferase assays using 1- or 2-monoacylglycerol (MAG) as substrates. When 2-MAG was used as acyl acceptor, both 1,2-DAG and TAG were generated; however, when 1-MAG was used, 1,3-DAG was predominantly observed and little TAG was detected. These findings suggest that human small intestinal DGAT, which is mainly encoded by DGAT1, utilizes 1,2-DAG as the substrate to form TAG. This study will contribute to understand the lipid absorption profile in the small intestine.  相似文献   

13.
Triacylglycerol (TAG) synthesis and secretion are important functions of the liver that have major impacts on health, as overaccumulation of TAG within the liver (steatosis) or hypersecretion of TAG within very low density lipoproteins (VLDL) both have deleterious metabolic consequences. Two diacylglycerol acyltransferases (DGATs 1 and 2) can catalyze the final step in the synthesis of TAG from diacylglycerol, which has been suggested to play an important role in the transfer of the glyceride moiety across the endoplasmic reticular membrane for (re)synthesis of TAG on the lumenal aspect of the endoplasmic reticular (ER) membrane (Owen, M., Corstorphine, C. C., and Zammit, V. A. (1997) Biochem. J. 323, 17-21). Recent topographical studies suggested that the oligomeric enzyme DGAT1 is exclusively lumen facing (latent) in the ER membrane. By contrast, in the present study, using two specific inhibitors of human DGAT1, we present evidence that DGAT1 has a dual topology within the ER of HepG2 cells, with approximately equal DGAT1 activities exposed on the cytosolic and lumenal aspects of the ER membrane. This was confirmed by the observation of the loss of both overt (partial) and latent (total) DGAT activity in microsomes prepared from livers of Dgat1(-/-) mice. Conformational differences between DGAT1 molecules having the different topologies were indicated by the markedly disparate sensitivities of the overt DGAT1 to one of the inhibitors. These data suggest that DGAT1 belongs to the family of oligomeric membrane proteins that adopt a dual membrane topology.  相似文献   

14.
Acyl-coenzyme A:monoacylglycerol acyltransferase 3 (MGAT3) is a member of the MGAT family of enzymes that catalyze the synthesis of diacylglycerol (DAG) from monoacylglycerol (MAG), a committed step in dietary fat absorption. Although named after the initial identification of its MGAT activity, MGAT3 shares higher sequence homology with acyl-coenzyme A:diacylglycerol acyltransferase 2 (DGAT2) than with other MGAT enzymes, suggesting that MGAT3 may also possess significant DGAT activity. This study compared the catalytic properties of MGAT3 with those of MGAT1 and MGAT2 enzymes using both MAG and DAG as substrates. Our results showed that in addition to the expected MGAT activity, the recombinant MGAT3 enzyme expressed in Sf-9 insect cells displayed a strong DGAT activity relative to that of MGAT1 and MGAT2 enzymes in the order MGAT3 > MGAT1 > MGAT2. In contrast, none of the three MGAT enzymes recognized biotinylated acyl-CoA or MAG as a substrate. Although MGAT3 possesses full DGAT activity, it differs from DGAT1 in catalytic properties and subcellular localization. The MGAT3 activity was sensitive to inhibition by the presence of 1% CHAPS, whereas DGAT1 activity was stimulated by the detergent. Consistent with high sequence homology with DGAT2, the MGAT3 enzyme demonstrated a similar subcellular distribution pattern to that of DGAT2, but not DGAT1, when expressed in COS-7 cells. Our data suggest that MGAT3 functions as a novel triacylglycerol (TAG) synthase that catalyzes efficiently the two consecutive acylation steps in TAG synthesis.  相似文献   

15.
Metabolic flux to triacylglycerol (TAG) may be limited by the level of acyl-CoA:diacylglycerol acyltransferase (DGAT, EC 2.3.1.20) activity. In some species, this enzyme also appears to play a role in the channeling of specific fatty acyl moieties into TAG. The objective of this work is to implement a directed evolution approach to enhance the catalytic efficiency of type-1 DGAT from Brassica napus (BnDGAT1). We generated randomly mutagenized libraries of BnDGAT1 in a yeast expression vector using error-prone PCR. The mutagenized libraries were used to transform a Saccharomyces cerevisiae strain devoid of neutral lipid biosynthesis and analyzed using a high-throughput screening (HTS) system. The HTS, recently developed for this purpose, consisted of a positive selection of clones expressing active DGAT mutants followed by quantification of DGAT activity by fluorescence detection of TAG in yeast cells. The initial results indicated that the positive selection system efficiently eliminated DGAT mutants lacking enzyme activity. Screening of 1528 selected mutants revealed that some DGAT clones had enhanced ability to synthesize TAG in yeast. This was confirmed by analysis of individual clones that could carry mutations resulting in an increased catalytic efficiency. The directed evolution approach could lead to the development of an improved plant DGAT1 for increasing seed oil content in oleaginous crops.  相似文献   

16.
Kroon JT  Wei W  Simon WJ  Slabas AR 《Phytochemistry》2006,67(23):2541-2549
Seed oil from castor bean (Ricinus communis) contains high amounts of hydroxy fatty acid rich triacylglycerols (TAGs) that can serve as raw material for production of bio-based products such as nylon, cosmetics, lubricants, foams, and surfactants. Diacylglycerol acyltransferase (DGAT) catalyses the terminal reaction in the acyl-CoA dependent Kennedy pathway of triglyceride biosynthesis. There is still some debate whether there are three or four enzymes in yeast that have DGAT activity and catalyse the synthesis of TAG but of these the DGAT2 homologue Dga1 contributes in a major way to TAG biosynthesis. Here we report on the cloning of a cDNA for DGAT2 from castor bean and prove its biological activity following expression in yeast and enzymatic assays using diricinolein as the acceptor and ricinoleoyl-CoA as the donor. Previous reports of DGAT in castor have focussed on DGAT1 which has little amino acid sequence homology to DGAT2. Expressional studies demonstrate that DGAT2 is 18-fold more highly expressed in seeds than in leaves and shows temporal specific expression during seed development. In contrast, DGAT1 shows little difference in expression in seeds versus leaves. We conclude that in castor bean DGAT2 is more likely to play a major role in seed TAG biosynthesis than DGAT1.  相似文献   

17.
Yang Y  Yu X  Song L  An C 《Plant physiology》2011,156(2):873-883
  相似文献   

18.
Diacylglycerol acyltransferase (DGAT) is a crucial enzyme in the triacylglycerol (TAG) biosynthesis pathway. The oleaginous fungus Mortierella alpina can accumulate large amounts of arachidonic acid (ARA, C20:4) in the form of TAG. Therefore, it is important to study the functional characteristics of its DGAT. Two putative genes MaDGAT1A/1B encoding DGAT1 were identified in M. alpina ATCC 32222 genome by sequence alignment. Sequence alignment with identified DGAT1 homologs showed that MaDGAT1A/1B contain seven conserved motifs that are characteristic of the DGAT1 subfamily. Conserved domain analysis showed that both MaDGAT1A and MaDGAT1B belong to the Membrane-bound O-acyltransferases superfamily. The transforming with MaDGAT1A/1B genes could increase the accumulation of TAG in Saccharomyces cerevisiae to 4·47 and 7·48% of dry cell weight, which was 7·3-fold and 12·3-fold of the control group, respectively, but has no effect on the proportion of fatty acids in TAG. This study showed that MaDGAT1A/1B could effectively promote the accumulation of TAG and therefore may be used in metabolic engineering aimed to increase TAG production of oleaginous fungi.  相似文献   

19.
Diacylglycerol acyltransferase (DGAT, EC 2.3.1.20) is a membrane enzyme that drives the final step in the formation of oils using diacylglycerol (DAG) and acyl-CoA to yield triacylglycerol (TAG). We identified a putative plant DGAT gene (TRIACYLGLYCEROL1: TAG1) and demonstrated its function by the cloning of two mutated alleles, designated AS11 (tag1-1) and ABX45 (tag1-2). One allele, AS11, has been previously characterised at the biochemical level. Mutant seeds contained less oil with a modified fatty acid profile and have reduced germination rates compared to wild-type controls. The TAG1 cDNA encodes for a 520-aa protein that possesses multiple putative transmembrane domains and shows 70 % similarity to a human DGAT cDNA.  相似文献   

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