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1.
FAD2(Δ~(12) fatty acid desaturase,Δ~(12)FAD或FAD2)是催化油酸在脂肪酸碳链Δ~(12)位脱氢生成亚油酸的关键酶。在花生中,FAD2酶活性下降或失活可提高籽粒中油酸的相对含量,改善花生籽粒及制品的品质和氧化稳定性。通过将种子特异性表达Lectin启动子和Ca MV35S启动子驱动的倒位重复Ah FAD2基因RNAi干扰结构转入花生,获得了以丰花1号(FH1)和花育23(HY23)为受体、携带上述2种转化结构、稳定遗传的花生转基因纯合体株系,转基因花生主要农艺性状与非转基因对照基本一致。实时荧光定量分析发现,各转基因株系发育种子中Ah FAD2基因的转录水平普遍下调。气相色谱法进一步测定了部分转基因后代株系种子的脂肪酸含量及组成,籽粒中油酸含量分别平均提高了15.09%(HY23为受体)、36.40%(FH1为受体),相应地,亚油酸含量平均下降了16.19%、29.81%,油亚比平均增加了38.02%、98.10%。各转基因株系的油酸含量显著提高;且在以FH1为受体的转基因株系后代籽粒以及种子特异性启动子驱动的转化结构中,RNAi的抑制效果更明显。通过RNAi技术抑制花生FAD2基因的表达,可以有效提高花生籽粒油酸含量。该技术体系可以为花生品质育种提供借鉴。  相似文献   

2.
甘蓝型油菜是一种重要的油料作物,为了改良其种子脂肪酸组分,提升其经济价值,本研究分析了油菜种子发育时期脂肪酸合成积累模式及BnFAD2、BnFAD3、BnFATB基因的表达规律,认为这3个基因在种子发育中后期(授粉后25d起)的高效表达对油酸合成积累有着重要影响。通过Napin启动子诱导对油菜植株中BnFAD2、BnFAD3、BnFATB基因进行RNAi共干扰抑制,以达到提升油酸含量的目的。试验结果表明,转基因油菜种子中BnFAD2、BnFAD3、BnFATB基因的表达受到强烈抑制,种子中油酸含量由66.76%提升至82.98%,且油脂合成的相关基因同步出现表达上调。  相似文献   

3.
茶油是从油茶种子中提取的食用植物油,富含油酸、亚油酸以及亚麻酸等多种人体必需的不饱和脂肪酸。在植物的不饱和脂肪酸生物合成途径中,脂肪酸脱饱和酶(Fatty Acid Desaturase,FAD)有多个家族成员,可以将单不饱和脂肪酸转化成多不饱和脂肪酸,其中FAD2可以将油酸(18∶1Δ9)和棕榈油酸(16∶1Δ9)转化成亚麻酸(18∶2Δ9,11)和十六碳二烯酸(16∶2Δ9,11)。为了揭示油茶FAD2基因的功能,本研究在原有的基础上构建了这个基因的植物表达载体p BI121-Co FAD2以及RNA干扰载体p BI121-Co FAD2 RNAi,并分别对相应的拟南芥突变体和野生型植株进行了转基因研究。结果表明,同野生型相比,fad突变体中,18∶1和16∶1含量较高,18∶2和16∶2含量较低;突变体植株经过植物表达载体的转化后,脂肪酸组分得到了恢复;而野生型植株经过RNA干扰载体的转化后,18∶1和16∶1含量升高,18∶2和16∶2含量降低。由此说明,油茶FAD2基因在植物体内具有调控18∶1和16∶1转变成18∶2和16∶2的功能,对于茶油脂肪酸组分的构成起着关键的调控作用。  相似文献   

4.
为探讨沙棘种子油高积累碳十八不饱和脂肪酸的多基因协同作用机制,以近缘低油沙棘品系‘绥棘1号’和高油品系‘新俄3号’6个不同发育期的种子为材料,利用气相色谱飞行时间质谱法测定种子油脂肪酸组份,采用qRT-PCR方法分析不饱和脂肪酸合成积累相关基因KAR、FATB、Δ9 D、KASⅡ、SAD、FAD2、FAD3、FAD7和FAD8的表达模式,验证多基因表达对碳十八不饱和脂肪酸积累的影响。结果表明:(1)‘绥棘1号’和‘新俄3号’种子油均高积累碳十八不饱和脂肪酸,分别占总脂肪酸的87.71%和88.68%;种子发育期间,油酸相对含量一直呈上升趋势,亚油酸相对含量短时下降后上升趋稳,而亚麻酸相对含量则呈先上升后下降趋稳。(2)FATB基因下调表达协同Δ9 D基因低表达,使C16∶0-ACP转化为棕榈酸和棕榈油酸的代谢减弱,而KAR和KASⅡ基因的相对上调表达,促进了硬脂酸合成,为碳十八不饱和脂肪酸的合成积累了较多前体。(3)SAD基因的持续高表达催化硬脂酸去饱和为油酸,且持续上升的SAD/FATB基因表达比直接提高了脂肪酸的去饱和速率;FAD2、FAD3、FAD7和FAD8基因在亚油酸和亚麻酸快速合成期间同时出现明显的表达量峰值,进而促进油酸逐步去饱和为亚油酸和亚麻酸。研究认为,沙棘种子油高积累碳十八不饱和脂肪酸源于FATB和Δ9 D基因的低表达及KAR、KASⅡ、SAD、FAD2、FAD3、FAD7和FAD8基因的协同高表达,本研究结果为进一步理解种子油中碳十八不饱和脂肪酸的合成积累提供了理论依据,对改良植物油脂的不同脂肪酸比具有重要意义。  相似文献   

5.
将含单拷贝Anti-Waxy基因的纯合植株分别作为父本或母本进行正反交,获得两组含双拷贝Anti-Waxy基因的杂交后代,分析了未转基因对照、转基因亲本及两组杂交后代糙米直链淀粉含量以揭示不同Anti-Waxy基因拷贝数对降低稻米直链淀粉含量程度的影响.结果显示,2个单拷贝转基因水稻糙米直链淀粉平均含量分别为10.72%和11.13%,比对照分别降低17.98%和14.84%;两组正交和反交杂交后代糙米直链淀粉平均含量分别为8.96%和8.23%,其平均值为8.60%,比2个转基因杂交亲本糙米直链淀粉含量分别降低19.78%和22.73%,比对照降低了34.20%.结果表明,增加转基因水稻基因组中Anti-Waxy基因拷贝数在一定程度上能够进一步降低稻米直链淀粉含量,通过将独立转化获得同品种转基因植株之间杂交可以成为获得高表达转基因植物的途径.  相似文献   

6.
用根癌农杆菌介导法将源于紫穗槐的尿苷二磷酸葡萄糖焦磷酸化酶(UGPase)基因、反义4-香豆酸辅酶A连接酶(4CL)基因以及两者的双价基因分别转移至烟草中。PCR和Southern杂交检测证实外源基因已整合到转基因烟草基因组中。测定全纤维素和Klason木质素含量的结果显示,增强UGPase基因的表达可提高转基因植株的纤维素含量,但对木质素含量没有影响;抑制4CL基因的表达可显著降低转基因植株的木质素含量,但对纤维素含量没有影响;转移双价基因的转基因植株中纤维素含量增加而木质素含量降低。  相似文献   

7.
采用RT-PCR和RACE技术从油葵(Helianthus annuus L.)种子中克隆了DGAT基因的cDNA全长序列,命名为HaDl(GenBank登录号为HM 015632).将HaDl与CaMV 35S组成型启动子融合,构建植物表达载体pBI-HaDl,通过根癌农杆菌介导转化烟草.对转基因植株进行GUS及PCR检测,同时采用气相色谱-质谱法(GC-MS)分析转基因烟草叶片中脂肪酸各成分的含量.结果表明:HaDl基因cDNA全长1 936 bp,最大开放阅读框为1 524 bp,编码507个氨基酸;推测的氨基酸序列与其它植物已报道的DGAT1基因的氨基酸序列一致性为70%~80%,具有DGAT1蛋白保守的二酰甘油结合基序"HKWIVRHLYFP",因此HaDl基因属于DGAT1基因家族.GUS活性染色及PCR检测均证明外源HaDl整合到烟草基因组并成功表达.转基因烟草叶片脂肪酸含量测定发现,油酸、软脂酸和硬脂酸的含量得到提高,推测HaDl是植物油脂合成相关的重要基因.  相似文献   

8.
利用已获得的油莱种子贮存蛋白——十字花科蛋白(cruciferin)基因的启动子和终止子,构建了无选择标记基因且同时具有正义及反义结构的油酰去饱和酶基因(Fad2)种子特异表达RNAi载体,并通过农杆菌介导的转化,获得了只含有油菜原有基因且Fad2基因表达受抑制的转基因植株。RT—PCR分析结果表明,在油酸含量达到83.9%的转基因植株中未检测到在非转基因植株中普遍存在的Fad2基因转录mRNA——一种典型的RNA干扰现象。通过对植株生长发育状态的观察比较,该高油酸含量转基因株系并未表现出双突变体中由于Fad2基因的失活所引起的植株抗寒能力差、发育迟缓、花蕾死亡、结实率低等不利农艺学性状。  相似文献   

9.
【目的】ERF转录因子生物功能广泛,在调控植物生长发育和响应胁迫中发挥重要作用。前期研究显示,丹参SmERF1参与植物响应胁迫反应。该研究旨在进一步明确SmERF1潜在的生物功能,并为药用植物抗性及种子发育研究奠定基础。【方法】该研究采用农杆菌介导的方法在模式植物烟草中异源表达了丹参SmERF1基因;通过抗性相关酶活性变化检测,对转基因植株抗性进行评价;通过酶联免疫方法和qPCR方法分析GA和ABA等激素含量及合成途径关键酶基因的表达变化。【结果】(1)表达SmERF1的烟草植株在幼苗期表现出生长缓慢、生物量和叶绿素减少,而在其他生长阶段与对照植株没有明显差异;此外,表达SmERF1的烟草植株种子比野生对照的种子小、轻;(2)在盐处理下,转基因烟草株系中脯氨酸含量、SOD和POD活性高于对照株系,而MDA含量低于对照株系,转基因烟草株系表现出较高的耐盐性;(3)在转烟草株系中,ABA含量上调,GA水平降低。实时定量PCR结果显示,表达SmERF1调节了与植物激素生物合成相关的关键酶基因的表达,如NtSDR、NtGA20ox、NtACO和NtACS。【结论】SmERF1通过ABA依赖途径...  相似文献   

10.
深黄被孢霉Δ6-脂肪酸脱氢酶基因在转基因烟草中的表达   总被引:4,自引:0,他引:4  
γ 亚麻酸 (GLA)是人体和动物饮食中具有营养作用的重要的多烯不饱和脂肪酸 ,在大多数油料作物种子中不含有GLA ,而只含有其前体物亚油酸 ,只有少数油料植物种子中含有GLA ,如夜来香 (Oenotheraspp) ,琉璃苣(Boragoofficinalis)等。Δ6 脂肪酸脱氢酶可将亚油酸转化为γ 亚麻酸 ,为了能够在传统的油料作物种子中产生GLA ,我们将从深黄被孢霉中克隆的Δ6 脂肪酸脱氢酶基因 ,与植物表达载体pGA6 43连接 ,构建了重组质粒pGAMICL6 ,将其通过农杆菌介导法 ,导入模式植物烟草中。经PCR和Southern杂交分析表明该基因已导入并整合到烟草的基因组中 ,Northern杂交结果表明该基因在转基因烟草的mRNA水平上获得表达。对转基因植株进行脂肪酸分析 ,结果显示 ,GLA和十八碳四烯酸 (OTA)分别占总脂肪酸含量的 19 7%和 3 5 %。  相似文献   

11.
周丽霞  吴翼  杨耀东 《广西植物》2021,41(7):1165-1172
为筛选控制椰子果实中低碳链脂肪酸积累的关键FatB基因,本研究以海南本地高种绿椰四个发育时期的果实为试验材料,参考国家标准GB/T2906-1982谷类、油料作物种子粗脂肪测定方法,用索氏提取法提取果肉脂肪酸,应用气质联用检测技术测定各发育时期脂肪酸含量及组分,同时应用qRT-PCR对椰子脂肪酸合成相关基因FatB1、FatB2及FatB3进行相对定量分析,明确各发育时期椰子果实脂肪酸积累与FatB基因表达量变化之间的关系。结果表明:(1)椰子油含9种脂肪酸成分,在椰子果实发育的早期(第6和第7个月),棕榈酸、硬脂酸和油酸的含量较高,月桂酸和肉豆蔻酸相对含量较低,通过实时荧光定量PCR发现,此时FatB1基因的相对表达量较高。(2)而在椰子果实发育的后期(第8和第9个月),棕榈酸、硬脂酸和油酸的相对含量迅速降低,月桂酸和肉豆蔻酸相对含量迅速升高,FatB2和FatB3基因的相对表达量较高,FatB1的表达量略有降低。该研究初步掌握了椰果各发育时期FatB基因表达量与脂肪酸成分间的变化趋势,该结果为将来筛选控制椰子果实中低碳链脂肪酸积累的关键FatB基因奠定基础,同时为椰子脂肪酸成分的分子改良提供理论依据。  相似文献   

12.
为了揭示铁皮石斛(Dendrobium officinale)甾醇C-24甲基转移酶2基因(DoSMT2)在甾醇代谢过程的功能,该研究通过根癌农杆菌介导法将来源于铁皮石斛的DoSMT2基因转化烟草(Nicotiana tabacum),并采用qRT-PCR技术检测DoSMT2基因在转基因烟草叶片中的表达,采用气相色谱质谱法分析菜油甾醇和谷甾醇的含量。结果显示:(1)成功获得DoSMT2基因的开放阅读框(1 119 bp),并成功构建正义植物表达载体质粒pCXSN-DoSMT2,经农杆菌介导的烟草叶盘转化法转化烟草并鉴定,获得4株阳性转基因烟草植株。(2)Southern blot结果表明,4株转基因烟草植株都有1条杂交信号带,而非转基因烟草植株没有,说明外源DoSMT2基因都以单拷贝整合到4株转基因烟草基因组中。(3)qRT-PCR检测显示,非转基因烟草未检测到外源DoSMT2基因的表达,4株转基因烟草都能检测到DoSMT2基因的表达,且表达水平差异极显著,各株系表达量高低依次为P3P1P2(P4)。(4)气相色谱质谱分析显示,转DoSMT2基因烟草叶片的菜油甾醇含量均极显著低于非转基因烟草叶片,而谷甾醇含量均极显著高于非转基因烟草叶片。研究表明,DoSMT2具有催化24-亚甲基胆甾烯醇转化形成24-亚乙基胆甾烯醇活性。  相似文献   

13.
该研究以转彩色马铃薯StAN1基因烟草为材料、野生型烟草(WT)为对照,测定分析转StAN1基因烟草在种子萌发期、幼苗期和苗期对干旱(甘露醇)处理的耐受情况,并对苗期旱热共同胁迫的耐受情况进行测定分析,以探讨彩色马铃薯StAN1基因的功能,为耐旱彩色马铃薯育种提供新路径。结果显示:(1)转StAN1基因烟草鉴定显示,阳性率为82.6%,且转基因烟草的叶片明显变紫,花青素含量极显著高于野生型烟草。(2)在培养基甘露醇浓度为150 mmol/L时,点播在培养基上的转基因烟草种子第5天时的萌发率达到了7%,是野生型烟草萌发率的2.3倍。(3)在甘露醇浓度为0和100 mmol/L的培养基上竖直培养时,转基因烟草的根长分别是野生型烟草的1.46和1.30倍,根长比野生型烟草显著增长。(4)在干旱胁迫下,转基因烟草幼苗叶片中的脯氨酸含量以及超氧化物歧化酶活性均显著高于野生型烟草,丙二醛含量均显著低于野生型烟草。(5)转基因烟草LEA基因和ERF基因在干旱和旱热处理中的相对表达量均高于野生型烟草。研究表明,StAN1基因在提高植物花青素含量的同时也提高了植物的耐旱性。  相似文献   

14.
To manipulate the quantity and quality of storage components in Brassica napus seeds, we have constructed an antisense gene for the storage protein napin. The antisense gene was driven by the 5-flanking region of the B. napus napin gene to express antisense RNA in a seed-specific manner. Seeds of transgenic plants with antisense genes often contained reduced amounts of napin. In some transgenic plants, no accumulation of napin was observed. However, the total protein content of transgenic and wild-type seeds did not differ significantly. Seeds lacking napin accumulated 1.4 to 1.5 times more cruciferin than untransformed seeds, although the oleosin content was not affected. Fatty acid content and composition in the seeds of transgenic plants were also analyzed by gas chromatography. Though the total fatty acid content of the transformants was the same as that of non-transformants, there was a reduction in 18:1 contents and a concomitant increase of 18:2 in seeds with reduced napin levels. This observed change in fatty acid composition was inherited in the next generation.  相似文献   

15.
该研究根据已克隆的华南象草(Pennisetum purpureum cv.Huanan)肉桂醇脱氢酶(CAD)基因PpCAD的cDNA序列,构建亚细胞定位载体pAN580-PpCAD,用PEG介导法转化象草原生质体,以探究PpCAD蛋白在细胞内的定位;同时构建植物过表达载体pBA002-PpCAD,通过农杆菌介导法在烟草中异源表达,以研究PpCAD基因与植物木质素合成的关系。结果显示:(1)PpCAD定位在象草原生质体的细胞质内;(2)过表达载体pBA002-PpCAD转化烟草后获得27株转基因烟草,其中25株PCR鉴定为阳性;(3)半定量RT-PCR检测6株转基因烟草后发现,PpCAD基因在不同植株的表达量存在差异,通过Southern杂交检测后发现该差异与目的基因插入的拷贝数有关;(4)6株转基因烟草和野生型烟草表型上没有明显差异,除目的基因多拷贝插入的植株OEC6外,木质素含量有不同程度的提高,最高比野生型提高了56.50%。研究表明,PpCAD是一个细胞质蛋白,在烟草中过表达PpCAD能够提高植株木质素含量,表明PpCAD基因参与了植物的木质素合成,可用于象草的木质素调控研究。  相似文献   

16.
Embryo axes excised from mature seeds of pea (Pisum sativum L.) cv. ‘Sponsor’ were used as explants for Agrobacterium-mediated transformation using pGreenII 0229 binary vectors. The vectors harbored a chimeric chitinase gene (chit30), driven by the constitutive 35S promoter or the elicitor inducible stilbene synthase (vst) promoter from grape (Vitis vinifera L.). The secretion signal of the bacterial chitinase gene from Streptomyces olivaceoviridis ATCC 11238 (DSM 41433) was replaced by the A. thaliana basic chitinase leader sequence. Functional properties of the recombinant gene were tested in tobacco as a model system before the long process of pea transformation was undertaken. Several transgenic pea clones were obtained and the transgenic nature confirmed by different molecular methods. The accumulation and activity of chitinase in stably transformed plants were examined by Western blot analysis and in-gel assays, which showed the presence of an additional 3 isoform bands. Using in vitro bioassays with Trichoderma harzanium as a model, we found an inhibition or delay of hyphal extension, which might indicate enhanced antifungal activity compared with non-transformed pea plants. Up to the 4th generation, the transgenic plants did not show any phenotypic alterations compared with non-transgenic control plants.  相似文献   

17.
A cDNA encoding a 1-acyl-sn-glycerol-3-phosphate acyltransferase from Limnanthes douglasii was introduced into oil seed rape (Brassica napus) under the control of a napin promoter. Seed triacylglycerols from transgenic plants were analysed by reversed-phase HPLC and trierucin was detected at a level of 0.4% and 2.8% in two transgenic plants but was not found in untransformed rape seed. Total fatty acid composition analysis of seeds from these selected plants revealed that the erucic acid content was no higher than the maximum found in the starting population. Analysis of fatty acids at the sn-2 position showed no erucic acid in untransformed rape but in the selected transgenic plants 9% (mol/mol) and 28.3% (mol/mol) erucic acid was present. These results conclusively demonstrate that the gene from L. douglasii encodes a 1-acyl-sn-glycerol-3-phosphate acyltransferase which can function in rape and incorporate erucic acid at the sn-2 position of triacylglycerols in seed. Additional modifications may further increase levels of trierucin.  相似文献   

18.
19.
In both plants and bacteria, de novo fatty acid biosynthesis is catalysed by a type II fatty acid synthetase (FAS) system which consists of a group of eight discrete enzyme components. The introduction of heterologous, i.e. bacterial, FAS genes in plants could provide an alternative way of modifying the plant lipid composition. In this study the Escherichia coli fabD gene, encoding malonyl CoA-ACP transacylase (MCAT), was used as a model gene to investigate the effects of over-producing a bacterial FAS component in the seeds of transgenic plants. Chimeric genes were designed, so as not to interfere with the household activities of fatty acid biosynthesis in the earlier stages of seed development, and introduced into tobacco and rapeseed using the Agrobacterium tumefaciens binary vector system. A napin promoter was used to express the E. coli MCAT in a seed-specific and developmentally specific manner. The rapeseed enoyl-ACP reductase transit peptide was used successfully, as confirmed by immunogold labelling studies, for plastid targeting of the bacterial protein. The activity of the bacterial enzyme reached its maximum (up to 55 times the maximum endogenous MCAT activity) at the end of seed development, and remained stable in mature transgenic seeds. Significant changes in fatty acid profiles of storage lipids and total seed lipid content of the transgenic plants were not found. These results are in support of the notion that MCAT does not catalyse a rate-limiting step in plant fatty acid biosynthesis.  相似文献   

20.
To see the effects of foreign gene introduction on the physiological performance and the quality and quantity of seed lipids, we studied transgenic tobacco plant as a model system, as tobacco seeds are oil seeds. Using Agrobacterium Ti plasmid based vectors, tobacco plants cv Petit Havana were transformed by NPT II gene as selectable marker. Transformed T0 generation plants raised in tissue culture were transferred to pots and selfed. From the seeds, T1 generation plants were grown in pots and their physiological performance was assessed. The transgenic plants showed slightly slower rates of germination and growth. Total chlorophyll content, chlorophyll a/b ratio and specific leaf weight, however, remained unchanged. The transgenic plants also had delayed flowering. However, total protein, lipid content and fatty acid composition of lipids of seeds in transgenic plants did not show appreciable difference from the seeds from control plants. Thus the physiological cost of transgenic plant for the extra genetic load was only marginal, if any.  相似文献   

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