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1.
以甜瓜ACC氧化酶反义基因抑制水果成熟过程中内源乙烯的合成为基础,建立甜瓜特异性启动子调控下ACC氧化酶反义基因表达载体。以pCB-ACO1载体为基础,进行平末端连接加入特异性启动子pCAM-ACO1-promoter,对转基因甜瓜表达载体的构建进行特异性启动子的研究,通过叶盘法转化的烟草经过PCR检测已转入含有特异性启动子promoter调控下ACC氧化酶反义基因表达载体,为下一阶段用该反义基因载体转化甜瓜栽培品种奠定基础。  相似文献   

2.
通过表达ACC脱氨酶基因控制番茄果实的成熟   总被引:19,自引:0,他引:19  
乙烯在跃变型果实的成熟过程中起着触发呼吸跃变和促进果实成熟的作用。细菌来源的1-氨基环丙烷-1-羧酸(ACC)脱氨酶能降解乙烯的直接前体ACC,从而抑制植物体内乙烯的合成。我们用PCR方法从假单孢杆菌中克隆到ACC脱氨酶基因并通过农杆菌介导的方法将其转入番茄(Lycopersicun esculentum)中。再生植株经Southern blot检测证明,ACC脱氨酶基因已整合到番茄基因组中并稳定表达。转基因番茄果实成熟期的推迟时间与体内乙烯的抑制程度有相关性。转基因番茄植株乙烯的合成降低80%左右,果实在离体条件下可保鲜75d左右。研究ACC脱氢酶基因在植物体内的作用可阐明高等植物体内乙烯的作用机理并为培育耐贮藏果蔬品种打下基础。  相似文献   

3.
LeETR1反义基因对番茄的遗传转化   总被引:15,自引:0,他引:15  
从番茄果实中提取总RNA,根据GeneBank中LeETR1序列,设计合成特异性引物,利用RT-PCR及技术克隆了LeETR1基因3’端非编码区313bp的cDNA,经酶切图谱和序列分析鉴定无误后,反向插入到植物表达载体pPZP11A中,构建了表达LeETR1反义RNA的双元载体。经农杆菌途径转化番茄品种B1后,通过PCR检测从抗卡那霉素再生植株中筛选到13株阳性植株,Southern blot杂交确证反义基因已经整合到番茄染色体中。对果实乙烯释放的测定结果表明,转基因番茄乙烯释放高峰的出现比对照果实推迟10天,番茄红素的合成受到显抑制,果实不能形成正常的红色。推测LeETR1和番茄的成熟有着密切的关系。  相似文献   

4.
新加坡大学利用编码1-氨基环丙烷-1-羧酸盐(ACC)氧化酶(一种催化ACC转化成乙烯的酶)的反义基因转化了芥菜植株。结果发现,与未转化的对照植株相比,转基因植株的乙烯生产量降低,离体培养物再生苗能力显著增加。高效再生性转基因植株始终保持ACC氧化酶活性和乙烯生产量降低。在R1代亦出现反义基因的效应。  相似文献   

5.
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   

6.
利用多聚半乳糖醛酸酶反义基因转化选育耐贮中国樱桃   总被引:1,自引:0,他引:1  
目的:利用多聚半乳糖醛酸酶(PG)反义基因转化选育耐贮中国樱桃。方法:以2个中国樱桃品种为实验材料,研究了激素浓度、叶片生理状态、光照条件等因素对叶片再生的影响,建立了中国樱桃叶片培养高频再生体系。以继代生长40d左右的组培苗顶部充分展开的叶片为外植体,整片放在含6-BA1.5mg/L、IBA0.5mg/L、KT0.5mg/L和腺嘌呤30mg/L的MS分化培养基上,在适宜的光照和处理条件下,芽分化率高达80%以上。以上述叶片为受体,用含有PG反义基因的农杆菌进行侵染。结果:经PCR和PCR-Southern检测证明PG反义基因已整合进樱桃核基因组中。结论:以培养的叶片为受体,用农杆菌介导法进行转基因在中国樱桃上是可行的。  相似文献   

7.
以成熟苹果果实的RNA为模板,经RT—PCR扩增并克隆苹果多酚氧化酶(APPO)长度为710bp的反义、正义基因片段。以副球菌中类胡罗卜素合成有关的(crtW crtY)融合基因片段YYT为间隔区。将APPO反义基因片段、YYT和APPO正义基因片段串联,构成全长为2446bp的DNA并插入到植物双元载体pYPX145中,构成可表达苹果多酚氧化酶双链RNA的植物双元载体pYF7704。以根癌农杆菌介导的叶盘转化法转化苹果栽培品种红富士,通过50mg/L卡那霉素筛选和GUS检测,获得了转基因苹果抗性芽。荧光定量RT—PCR检测结果显示,转基因苹果抗性芽内多酚氧化酶基因的干扰效果达91.69%以上,研究结果证实多酚氧化酶双链RNA干扰在转基因苹果上是可行的。  相似文献   

8.
菠菜甜菜碱醛脱氢酶基因在烟草中的表达   总被引:74,自引:0,他引:74  
质粒pLS9含有1.5kb的编码菠菜甜菜碱醛脱氢酶(BADH)基因。经限制酶切后克隆到植物表达载体的35S启动子和PolyA终止子之间。经农杆菌介导转化烟草,获得90多株抗卡那霉素再生植株。经PCR检测证明60%以上再生植株含有BADH基因。转基因植株经Western blot,BADH酶活性测定,BADH酶活性特异性染色法检查和耐盐性分析,证明菠菜BADH基因在烟草正常表达。在叶绿体和胞液中均有BADH酶存在。转基因植株能耐较高浓度盐。  相似文献   

9.
王晖孙超  彭学贤 《生物工程学报》2001,17(4):423-427,T001
将多肽抗生素apidaecin基因与病程相关蛋白的信号肽序列融合,构建了apidaecin的分泌型植物表达载体、apidaecin与另一多肽抗生素Shiva\|I的双价分泌型植物表达载体,以本实验室原来构建的Shiva-I分泌型植物表达载体做对照,转化了模式植物烟草。对3种转基因植物进行了分子检测,转化再生苗95%为PCR阳性,Southern杂交结果进一步证明外源基因已经整合到了烟草基因组中,RT-PCR检测表明外源基因可以在转基因烟草内正常转录。对T0代转基因烟草进行烟草野火病的抗病性实验,从3种转基因烟草中都得到了抗病植株,病情指数分析的初步结果显示,双价转基因烟草抗病性最好,apidaecin的次之,Shiva-I的最差。  相似文献   

10.
WUSCHEL(WUS)是近年报道的一个重要的干细胞调控基因.本实验用RT-PCR技术从拟南芥(Arabidopsisthaliana L.)中克隆到其cDNA并构建了双增强的CaMV3 5S启动子驱动的超表达载体pBKB.借助农杆菌(Agrobacterium tumefaciens)介导转化烟草(Nicotiana tabacum L.),获得转基因植株.PCR和RT-PCR鉴定分别证明,外源WUS已整合到烟草基因组并已表达.转基因烟草地上部分出现大量异位增生的突起,扫描电镜观察表明:突起部分的细胞与分生组织细胞相似,部分突起能够发育为叶芽、花芽,表明WUS超表达引起烟草细胞异常分裂并在已分化组织中重新启动了器官形成.茎尖和花的内两轮器官没有上述变化.结合拟南芥的有关研究,推测烟草中可能也存在类似拟南芥WUS和其阻抑蛋白CLAVATA3、AGAMOUS间的反馈调节机制.转基因烟草叶发育表型变化明显,与生长素极性运输受抑制引起的表型相似,因此,作为生长点调控基因,WUS可能通过生长素对叶的发育进行调控.本研究为WUS基因的功能分析和有关生物技术应用提供了有意义的信息.  相似文献   

11.
The role of ethylene in shoot regeneration was investigated using transgenic Cucumis melo plants expressing an antisense 1-aminocyclopropane-1-carboxylate (ACC) oxidase gene. ACC oxidase catalyses the last step of ethylene biosynthesis. Leaf and cotyledon explants from the transgenic plants exhibited low ACC oxidase activity and ethylene production, whereas the regeneration capacity of the tissues was greatly enhanced (3.5- and 2.8-fold, respectively) compared to untransformed control tissues. Addition of ethylene released by 50 or 100 μm 2-chloroethylphosphonic acid dramatically reduced the shoot regeneration rate of the transgenic tissues. The results clearly demonstrate that ethylene plays an important role in C. melo morphogenesis in vitro. Received: 23 April 1997 / Revision received: 9 June 1997 / Accepted: 2 July 1997  相似文献   

12.
The role of ethylene in vegetative bud formation was investigated using transgenic tobacco plants expressing an antisense tomato 1-aminocyclopropane-carboxylic acid synthase (ACS) gene. Northern blot hybridization showed that the accumulation of ACS mRNA was strongly reduced in the bud-forming leaf explants of the transgenic plants. Consequently, these transgenic tissues exhibited low ACS enzyme activity, 1-aminocyclopropane-carboxylic acid (ACC) content and ethylene production, and at the same time the tissue capacity to generate buds was greatly enhanced. However, it was also noted that the antisense ACS gene did not inhibit the endogenous ACS gene expression in intact transgenic tobacco plants. The growth and development of the transgenic tobacco was almost identical to control plants with respect to height, internode number, leaf morphology, and flowering time. Furthermore, mature leaves of transgenic tobacco had similar chlorophyll content, stomatal conductance, photosynthetic ability, and transpiration rates compared to control plants. These results demonstrated that ethylene plays an important role in bud formation in tobacco tissue culture.  相似文献   

13.
Ethylene production was measured during vegetative and reproductive development in normal tobacco plants and in transgenic tobacco plants carrying antisense genes for tomato ACC oxidase driven by the 35S CaMV promoter (Hamilton et al., 1990). When expressed in three independently derived transgenic plants, the antisense ethylene gene failed to affect ethylene production in young/mature leaves or in stems but it did inhibit ethylene production in roots by 37–58%. Ethylene production in developing flowers (i.e. from small unopened flower buds up until open flowers at anthesis) was not affected in transgenic plants but ethylene production in fruits was inhibited by 35%. The most dramatic effect on ethylene production in transgenic plants was seen immediately after wounding leaf tissue, in which case the antisense gene inhibited wound ethylene production by 72%. Thus, the antisense gene composed of a 35S CaMV promoter driving a heterologous ACC oxidase sequence had differential effects on ethylene production in tobacco plants.  相似文献   

14.
15.
16.
不同结构的外源ACO基因导入香石竹对瓶插寿命的影响   总被引:13,自引:0,他引:13  
余义勋  包满珠   《生物工程学报》2004,20(5):704-707
以香石竹叶片为外植体 ,利用根癌农杆菌 (Agrobacteriumtumefaciens)介导法 ,将香石竹ACC氧化酶 (ACO)基因核DNA的正义 (sense)、反义 (antisense)、正义重复 (sensedirectrepeat)和反义重复 (antisensedirectrepeat)等 4种T DNA结构导入香石竹‘Master’品种。经Southern杂交检测证明目的基因已整合到香石竹基因组 ,共获得 14个转化株系。在 25℃条件下比较瓶插寿命 ,对照植株花朵瓶插寿命为 5.8d ,多数转化株系花朵瓶插寿命达 11d ,最长者可达 12.8d。大多数转基因株系切花衰老过程中乙烯释放量显著减少 ,部分转基因株系切花衰老过程中几乎检测不到乙烯 ,而对照有明显的峰值。通过对本研究转化ACO基因核DNA与前人转化ACO基因cDNA延长瓶插寿命比较以及对不同T DNA结构的转化抑制内源基因表达的程度进行比较后 ,初步判断用核DNA转化后对内源基因的抑制效果与cDNA相当甚至更明显 ,反义基因可以比正义基因更有效地抑制内源的同源基因的表达 ,转重复基因比转单个基因能更有效地抑制内源的同源基因的表达。  相似文献   

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18.
铁是植物生长发育的必需元素。由于土壤中的三价铁离子不能被植物直接利用, 使一些植物经常表现出缺铁症状。为探讨利用铁蛋白基因提高植物耐低铁胁迫的作用, 利用农杆菌介导法将大豆铁蛋白基因SoyFer1和内源反义铁蛋白基因NtFer2的cDNA分别导入烟草基因组, 采集转基因烟草种子。对T1转基因烟草的卡那霉素抗性分析表明, 整合到烟草基因组的外源基因多为单拷贝基因, 也有少数为多拷贝基因。对具有卡那霉素抗性的转基因植株进行PCR检测和Northern杂交分析表明, 外源基因已整合到烟草基因组中, 并且得到了正确表达。将转基因株系移栽到铁离子浓度不同的培养基中生长2个月后进行比较表明, 转大豆铁蛋白基因烟草株系的生长量明显高于非转基因烟草株系, 而转内源反义铁蛋白基因烟草株系的生长量则明显低于非转基因烟草株系。转大豆铁蛋白基因和转内源反义铁蛋白基因烟草株系的叶绿素含量、丙二醛(MDA)含量和过氧化物酶(POD)活性等生理性状也发生了明显变化, 表现为转大豆铁蛋白基因株系的叶绿素含量明显增加, POD活性明显增强, MDA含量明显降低; 而转内源反义铁蛋白基因株系的叶绿素含量、POD活性和MDA含量等则表现为与转大豆铁蛋白基因株系的相反。铁蛋白过量表达提高了烟草耐低铁能力, 而铁蛋白抑制表达则降低了烟草耐低铁能力。  相似文献   

19.
Yu Y  Steinmetz A  Meyer D  Brown S  Shen WH 《The Plant cell》2003,15(12):2763-2777
Although most of the components of the cell cycle machinery are conserved in all eukaryotes, plants differ strikingly from animals by the absence of a homolog of E-type cyclin, an important regulator involved in G1/S-checkpoint control in animals. By contrast, plants contain a complex range of A-type cyclins, with no fewer than 10 members in Arabidopsis. We previously identified the tobacco A-type cyclin Nicta;CYCA3;2 as an early G1/S-activated gene. Here, we show that antisense expression of Nicta;CYCA3;2 in tobacco plants induces defects in embryo formation and impairs callus formation from leaf explants. The green fluorescent protein (GFP)-Nicta;CYCA3;2 fusion protein was localized in the nucleoplasm. Transgenic tobacco plants overproducing GFP-Nicta;CYCA3;2 could not be regenerated from leaf disc transformation, whereas some transgenic Arabidopsis plants were obtained by the floral-dip transformation method. Arabidopsis plants that overproduce GFP-Nicta;CYCA3;2 showed reduced cell differentiation and endoreplication and a dramatically modified morphology. Calli regenerated from leaf explants of these transgenic Arabidopsis plants were defective in shoot and root regeneration. We propose that Nicta;CYCA3;2 has important functions, analogous to those of cyclin E in animals, in the control of plant cell division and differentiation.  相似文献   

20.
CDC48 is a member of the AAA ATPase superfamily. Yeast CDC48 and its mammalian homolog p97 are implicated in diverse cellular processes, including mitosis, membrane fusion, and ubiquitin-dependent protein degradation. However, the cellular functions of plant CDC48 proteins are largely unknown. In the present study, we performed virus-induced gene silencing (VIGS) screening and found that silencing of a gene encoding a tobacco CDC48 homolog, NgCDC48, resulted in severe abnormalities in leaf and shoot development in tobacco. Furthermore, transgenic tobacco plants (35S:anti-NgCDC48), in which the NgCDC48 gene was suppressed using the antisense RNA method, exhibited severely aberrant development of both vegetative and reproductive organs, resulting in arrested shoot and leaf growth and sterile flowers. Approximately 57–83% of 35S:anti-NgCDC48 plants failed to develop mature organs and died at early stage of development. Scanning electron microscopy showed that both adaxial and abaxial epidermal pavement cells in antisense transgenic leaves were significantly smaller and more numerous than those in wild type leaves. These results indicate that NgCDC48 is critically involved in cell growth and development of tobacco plants. An in vivo targeting experiment revealed that NgCDC48 resides in the endoplasmic reticulum (ER) in tobacco protoplasts. We consider the tantalizing possibility that CDC48-mediated degradation of an as-yet unidentified protein(s) in the ER might be a critical step for cell growth and expansion in tobacco leaves.  相似文献   

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