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1.
植物种子中脂肪酸代谢途径的遗传调控与基因工程   总被引:23,自引:3,他引:20  
本文介绍了植物种子中脂肪酸代谢的基本途径,并从工业用和食用两方面对近年来植物脂肪酸代谢的遗传调控与基因工程研究的进展进行了较为详细的总结。植物种子中的脂肪酸成分可通过人为遗传调控发生改变。阐明利用基因工程技术调控植物种子脂肪酸代谢途径是一个新兴的、具有巨大潜力的研究领域,并将在人们生活的各方面发挥巨大作用。  相似文献   

2.
植物种子脂肪酸代谢途径的遗传调控与基因工程   总被引:2,自引:0,他引:2  
本文介绍了植物种子中有肪酸代谢的基本途径,并从工业用和食用两方面对近年来植物脂肪酸代谢的遗传调控与基因工程的研究的进展进行了较为详细的总结。植物种子中的脂肪酸分可通过过人为遗传调控发生改变。阐明利用基因工程技术调控植物种子脂肪酸代谢途径是一个新兴的、具有巨大潜力的研究领域,并将在人们生活的各方面发挥巨大作用。  相似文献   

3.
植物脂肪酸调控基因工程研究   总被引:18,自引:0,他引:18  
石东乔  周奕华  陈正华 《生命科学》2002,14(5):291-295,317
脂肪酸代谢是植物最重要的代谢途径之一,脂肪酸在人们日常生活及工业生产上有重要用途,作者阐明了植物脂肪酸代谢的基本途径,并对近些年来植物脂肪酸代谢的遗传调控及基因工程的研究进展做了较为详细的总结,同时对植物脂肪酸调控基因工程发展提出了展望。  相似文献   

4.
油桐是我国四大木本油料植物之一,当前对油桐的研究主要集中在栽培选优及低产林改造方面,而对油桐脂肪酸延长代谢的分子机理研究尚未见报道。本研究以油桐果实膨大期、油脂转化初期和油脂转化高峰期的种子为材料,采用高通量RNA测序技术对油桐种子脂肪酸延长代谢的3个不同时期转录组进行比较,以nr、Swiss-Prot、KEGG和COG 4个蛋白数据库为参考,对油桐种子脂肪酸延长代谢进行了综合性分析。研究结果表明,参与油桐种子脂肪酸延长代谢途径的非冗余基因序列共37条,涉及的主要酶功能基因有9种;在果实膨大期、油脂转化初期和油脂转化高峰期中,调控脂肪酸延长代谢途径的基因存在明显的表达差异。综合分析结果绘制了油桐种子脂肪酸延长代谢途径,揭示了调控油桐种子脂肪酸延长代谢过程的基因作用规律。这些研究结果为油脂合成的遗传改良提供了资源和技术基础,同时为油桐分子设计育种提供了一定的科学依据。  相似文献   

5.
食用植物油脂的代谢工程   总被引:1,自引:0,他引:1  
植物种子油可提供人类营养所需的多种脂肪酸,也是工业用油的原料之一。文章结合我们对植物种子发育、脂肪酸生物合成途径和大豆油脂遗传改良的研究,重点论述参与脂肪酸合成及其调控的一些关键酶的基因、代谢工程改良植物油脂营养价值的技术策略及其研究进展,分析目前应用油料作物种子作为“生物反应器”规模化生产有重要营养价值和特殊用途的脂肪酸的问题及技术“瓶颈”,讨论未来植物脂肪酸代谢工程主攻方向以及在培育可再生资源和推动人类社会及经济可持续发展中的应用前景。  相似文献   

6.
植物油脂合成调控的研究进展   总被引:1,自引:0,他引:1  
植物种子是人们日常生活所需油脂的重要来源。近年来研究者对植物种子的研究阐明了油脂合成的机理,并挖掘了一些调控合成途径的关键酶和基因。在前人研究的基础之上,补充了成油途径、成油相关基因、转录调控等方面的进展,并从碳源供应、转运及胚乳的影响等方面概述了它们可能对植物油脂形成的影响。  相似文献   

7.
龚淑敏  丁艳菲  朱诚 《遗传》2015,37(6):554-560
MicroRNA(miRNA)是一类小分子非编码RNA,通过降解靶基因途径在转录后水平调控基因表达,参与植物生长、发育以及逆境胁迫应答等多种细胞代谢活动。种子是植物生长的基础要素,是农业生产的重要资料。与种子发育相关的miRNA已在多种植物中得到鉴定。文章综述了参与植物种子发育过程的miRNA及其在种子发育中的具体调控机制,旨在为利用miRNA提高种子遗传特性提供研究思路。  相似文献   

8.
ω-7脂肪酸(C16:1△9,C18:1△11,C20:1△13),特别是棕榈油酸(C16:1△9)具有重要的工业、营养和医药价值。这些珍稀脂肪酸大多在一些野生植物的种子中合成,不能商业化生产。对普通油料作物的油脂代谢途径进行遗传修饰,使其种子大量合成并积累ω-7脂肪酸,已成为生物技术和可再生资源研究的一个热点领域。基因操作的主要靶标包括:不同来源的△9脱氢酶的应用、提高底物(C16:0)的浓度、共表达质体型和内质网型?9脱氢酶以及代谢物流的优化等。该文在解析ω-7脂肪酸生物合成途径及其调控网络的基础上,重点论述了ω-7脂肪酸代谢工程的技术策略、研究进展和存在的问题,并进一步讨论了油脂物组学和转基因组学等组学技术在鉴定参与ω-7脂肪酸生物合成途径及其调控的特异基因和优化油脂代谢工程设计上的应用前景。  相似文献   

9.
藻种的选育和基因工程改造是微藻生物柴油研究的核心。为此,简要综述了微藻从光合作用到甘油三酯(TAG)合成过程中的关键基因及其代谢调控等方面的研究进展。从光合作用固碳、中心碳代谢、脂肪酸合成、TAG的组装、抑制TAG合成的竞争途径及脂类的分解途径等几个方面入手,浅析各个代谢途径中关键基因的作用及其表达调控。在此基础上,探讨微藻基因工程改造的可行性并指出微藻生物柴油在生物质能源领域中的前景及其综合利用的发展优势。  相似文献   

10.
ω-7脂肪酸(C16:1Δ9, C18:1Δ11, C20:1Δ13), 特别是棕榈油酸(C16:1Δ9)具有重要的工业、营养和医药价值。这些珍稀脂肪酸大多在一些野生植物的种子中合成, 不能商业化生产。对普通油料作物的油脂代谢途径进行遗传修饰, 使其种子大量合成并积累ω-7脂肪酸, 已成为生物技术和可再生资源研究的一个热点领域。基因操作的主要靶标包括: 不同来源的Δ9脱氢酶的应用、提高底物(C16:0)的浓度、共表达质体型和内质网型Δ9脱氢酶以及代谢物流的优化等。该文在解析ω-7脂肪酸生物合成途径及其调控网络的基础上, 重点论述了ω-7脂肪酸代谢工程的技术策略、研究进展和存在的问题, 并进一步讨论了油脂物组学和转基因组学等组学技术在鉴定参与ω-7脂肪酸生物合成途径及其调控的特异基因和优化油脂代谢工程设计上的应用前景。  相似文献   

11.
Ricinoleic acid (12-hydroxy-octadeca-9-enoic acid) is a major unusual fatty acid in castor oil. This hydroxy fatty acid is useful in industrial materials. This unusual fatty acid accumulates in triacylglycerol (TAG) in the seeds of the castor bean (Ricinus communis L.), even though it is synthesized in phospholipids, which indicates that the castor plant has an editing enzyme, which functions as a phospholipid:diacylglycerol acyltransferase (PDAT) that is specific to ricinoleic acid. Transgenic plants containing fatty acid Δ12-hydroxylase encoded by the castor bean FAH12 gene produce a limited amount of hydroxy fatty acid, a maximum of around 17% of TAGs present in Arabidopsis seeds, and this unusual fatty acid remains in phospholipids of cell membranes in seeds. Identification of ricinoleate-specific PDAT from castor bean and manipulation of the phospholipid editing system in transgenic plants will enhance accumulation of the hydroxy fatty acid in transgenic seeds. The castor plant has three PDAT genes; PDAT1-1 and PDAT2 are homologs of PDAT, which are commonly found in plants; however, PDAT1-2 is newly grouped as a castor bean-specific gene. PDAT1-2 is expressed in developing seeds and localized in the endoplasmic reticulum, similar to FAH12, indicating its involvement in conversion of ricinoleic acid into TAG. PDAT1-2 significantly enhances accumulation of total hydroxy fatty acid up to 25%, with a significant increase in castor-like oil, 2-OH TAG, in seeds of transgenic Arabidopsis, which is an identification of the key gene for oilseed engineering in production of unusual fatty acids.  相似文献   

12.
魏绍巍  黎茵 《生物工程学报》2011,27(12):1702-1710
植物磷酸烯醇式丙酮酸羧化酶(Phosphoenolpyruvate carboxylase,PEPC,EC 4.1.1.31)是广泛存在的一种细胞质酶,催化磷酸烯醇式丙酮酸(PEP)和HCO3-生成草酰乙酸(OAA),后者可转化生成三羧酸循环的多种中间产物.PEPC在植物细胞中参与植物的光合碳同化等重要代谢途径,并且在不同组织中具有多种生理功能.PEPC同时也参与调控植物种子的营养物质合成与代谢过程,控制糖类物质流向脂肪酸合成或蛋白质合成途径.以下介绍了植物PEPC的种类、蛋白质结构特点及其在植物组织中的调控方式,并重点论述了PEPC在生物基因工程中的应用方面的进展,随着对其功能机制和应用研究的深入,将有助于植物PEPC在高产优质农作物育种、能源植物和工业微生物等的开发利用等方面得到更好的发展与应用.  相似文献   

13.
Brassica juncea plants transformed with the Arabidopsis ADS1 gene, which encodes a plant homologue of the mammalian and yeast acyl-CoA Delta9 desaturases and the cyanobateria acyl-lipid Delta9 desaturase, were found to have a statistically significant decrease in the level of saturated fatty acids in seeds. The decrease in the level of saturated fatty acids is largely attributable to decreases in palmitic acid (16:0) and stearic acid (18:0), although arachidic acid (20:0), behenic acid (22:0) and lignoceric acid (24:0) were also decreased in the transgenic seeds compared to the negative control lines. As a result, the level of oleic acid (18:1) was slightly increased in the transgenic seed lines compared to the non-transformed controls. However, a decrease in saturated fatty acid is not always accompanied by the corresponding increase in mono-unsaturated fatty acids. For example, palmitoleic acid (16:1), gondoic acid (20:1) and nervonic acid (24:1) were all found to be decreased in transgenic seeds. The levels of linoleic acid (18:2) and linolenic acid (18:3) were also notably changed in the transgenic lines compared to the controls. The present study provides preliminary experimental data suggesting that the Arabidopsis ADS1 encodes a fatty acid Delta9 desaturase and could be useful in genetic engineering for modifying the level of saturated fatty acids in oilseed crops. However, the effect of ADS1 gene expression on seed oil fatty acid composition is beyond the changes of total saturated and mono-unsaturated fatty acids, which suggests a complex mechanism is involved in the regulation of fatty acid metabolism.  相似文献   

14.
植物脂肪酸的生物合成与基因工程   总被引:28,自引:1,他引:27  
卢善发 《植物学通报》2000,17(6):481-491
植物脂肪酸既具重要生理功能,又有巨大食用和工业价值。其生物合成途径较为复杂,涉及乙酰-CoA羟化酶、脂肪酸合成酶、脂肪酸去饱和酶和脂肪酸延长酶等一系列酶。近年来,对脂肪酸生物合成途径进行了大量研究,克隆出许多相关基因,初步阐明了脂肪酸合成规律,并在此基础上开展了利用基因工程技术调控脂肪酸合成研究,取得可喜进展。本文详细介绍了植物饱和脂肪酸、不饱和脂肪酸和超长链脂肪酸的生物合成与基因工程研究的新结果  相似文献   

15.
Hu Z  Ren Z  Lu C 《Plant physiology》2012,158(4):1944-1954
We previously identified an enzyme, phosphatidylcholine diacylglycerol cholinephosphotransferase (PDCT), that plays an important role in directing fatty acyl fluxes during triacylglycerol (TAG) biosynthesis. The PDCT mediates a symmetrical interconversion between phosphatidylcholine (PC) and diacylglycerol (DAG), thus enriching PC-modified fatty acids in the DAG pool prior to forming TAG. We show here that PDCT is required for the efficient metabolism of engineered hydroxy fatty acids in Arabidopsis (Arabidopsis thaliana) seeds. When a fatty acid hydroxylase (FAH12) from castor (Ricinus communis) was expressed in Arabidopsis seeds, the PDCT-deficient mutant accumulated only about half the amount of hydroxy fatty acids compared with that in the wild-type seeds. We also isolated a PDCT from castor encoded by the RcROD1 (Reduced Oleate Desaturation1) gene. Seed-specific coexpression of this enzyme significantly increased hydroxy fatty acid accumulation in wild type-FAH12 and in a previously produced transgenic Arabidopsis line coexpressing a castor diacylglycerol acyltransferase 2. Analyzing the TAG molecular species and regiochemistry, along with analysis of fatty acid composition in TAG and PC during seed development, indicate that PDCT acts in planta to enhance the fluxes of fatty acids through PC and enrich the hydroxy fatty acids in DAG, and thus in TAG. In addition, PDCT partially restores the oil content that is decreased in FAH12-expressing seeds. Our results add a new gene in the genetic toolbox for efficiently engineering unusual fatty acids in transgenic oilseeds.  相似文献   

16.
卢善发 《植物学报》2000,17(6):481-491
植物脂肪酸既具重要生理功能,又有巨大食用和工业价值。其生物合成途径较为复杂,涉及乙酰_CoA羧化酶、脂肪酸合成酶、脂肪酸去饱和酶和脂肪酸延长酶等一系列酶。近年来,对脂肪酸生物合成途径进行了大量研究,克隆出许多相关基因,初步阐明了脂肪酸合成规律,并在此基础上开展了利用基因工程技术调控脂肪酸合成研究,取得可喜进展。本文详细介绍了植物饱和脂肪酸、不饱和脂肪酸和超长链脂肪酸的生物合成与基因工程研究的新结果。  相似文献   

17.
Metabolic engineering of edible plant oils]   总被引:1,自引:0,他引:1  
Plant seed oil is the major source of many fatty acids for human nutrition, and also one of industrial feedstocks. Recent advances in understanding of the basic biochemistry of seed oil biosynthesis, coupled with cloning of the genes encoding the enzymes involved in fatty acid modification and oil accumulation, have set the stage for the metabolic engineering of oilseed crops that produce "designer" plant seed oils with the improved nutritional values for human being. In this review we provide an overview of seed oil biosynthesis/regulation and highlight the key enzymatic steps that are targets for gene manipulation. The strategies of metabolic engineering of fatty acids in oilseeds, including overexpression or suppression of genes encoding single or multi-step biosynthetic pathways and assembling the complete pathway for the synthesis of long-chain polyunsaturated fatty acids (e.g. arachidonic acid, eicosapentaenoic acid and docosahexaenoic acid) are described in detail. The current "bottlenecks" in using common oilseeds as "bioreactors" for commercial production of high-value fatty acids are analyzed. It is also discussed that the future research focuses of oilseed metabolic engineering and the prospects in creating renewable sources and promoting the sustainable development of human society and economy.  相似文献   

18.
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