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1.
将星星草中分离的质膜型Na^+/H^+逆向转运蛋白基因PtSOSJ(GenBank登录号EF440291)构建到pGWB2植物表达载体上,转化拟南芥,获得抗卡那霉素的抗性植株。PCR和Northem检测表明,PtSOS1已整合到拟南芥基因组中并过量表达。耐盐性实验表明,PtSOS1过量表达提高了拟南芥植株的耐盐性。盐分测定表明,盐胁迫下PtSOS1转基因植株中Na^+积累低于野生型的,K^+含量则高于野生型的,转基因植株中K^+/Na^+比值高于野生型。  相似文献   

2.
为了研究AtNHX5基因在植物耐盐中的作用,构建了植物过量表达载体pROKⅡ-AtNHX5,并转化拟南芥。结果显示:(1)RT-PCR检测表明,转基因拟南芥中AtNHX5基因的表达大幅提高。(2)对转基因纯合株系进行耐盐性分析显示,AtNHX5过量表达提高了植株在种子萌发和苗期的耐盐性。(3)转基因植株在盐处理下的干重、鲜重以及地上部分Na+、K+含量均高于野生型对照。在200mmol/L NaCl处理下,以转基因株系a1-4为例,其地上部分单株鲜重、单株干重、K+含量分别是野生型的1.27、1.54、1.16倍,较野生型显著升高。研究表明,过量表达AtNHX5基因促进了盐胁迫下转基因植株对K+的吸收,转基因拟南芥的耐盐性明显提高。  相似文献   

3.
利用植物表达载体pCAMBIA1301和农杆菌GV3101将LgNHX1(全长1 656 bp)基因在拟南芥中过量表达.在含30 mg/L潮霉素的培养基上筛选获得LgNHX1的纯合转化子,并对其进行了分子鉴定和耐盐性分析.结果显示,经PCR和RT-PCR鉴定,野生型植株(对照)没有出现扩增条带,而转基因株系有相应的扩增条带,表明LgNHX1的确已经整合到拟南芥的基因组中,并已正常转录.在不同盐浓度处理下,转基因株系生长情况好于野生型对照;转基因植株地上部分和根的干重、鲜重相对高于野生型对照,但差异没有达到显著水平;当盐浓度达到150-200 mmol/L时,两个特基因株系的Na+含量显著高于野生型,K+含量极显著高于野生型.以上结果表明,过量表达LgNHX1基因可能增强了拟南芥将Na+区隔化至液泡的能力,提高了转基因拟南芥的耐盐能力.  相似文献   

4.
高粱是一种抗旱性较强的禾谷类作物。本研究在高粱中克隆到一个全长为693 bp的编码ATP合成酶E亚基的基因(SbATPase-E)。在高粱幼苗期,SbATPase-E基因受Na Cl和脱落酸(ABA)处理诱导上调表达。该基因在拟南芥中过量表达可提高转基因植株的耐旱性和耐盐性,在逆境胁迫条件下转基因拟南芥植株较野生型植株根系发达,可能是转基因植株耐旱性和耐盐性提高的主要原因。在干旱胁迫条件下,转基因植株中DREB2A、P5CS1、RD29A、RAB18和ABI1基因的表达量相对于野生型植株中的表达量提高更为显著;在高盐处理条件下,转基因植株中SOS1和SOS2基因的表达量也较野生型植株中的表达量明显提高。这些抗逆相关基因的上调表达可能是转基因植株抗逆性提高的主要分子机制。  相似文献   

5.
超表达AVP1基因提高转基因百脉根的耐盐性和抗旱性   总被引:1,自引:0,他引:1  
本研究以超表达拟南芥液泡膜H+-焦磷酸酶编码基因AVPI的转基因百脉根为材料,对其耐盐性和抗旱性进行了检测。结果显示:在200mmol·L^-1 NaCl下处理或自然干旱7d后,转基因植株的生长虽然受到抑制,但受抑程度明显低于野生型植株,前者叶片相对含水量比后者分别高18%和14%,净光合速率分别高20%和21%,而MDA含量则分别低35%和27%,相对质膜透性分别低28%和27%。此外,随着盐和干旱胁迫的加剧,与野生型植株相比,转基因植株体内积累了更多Na+、K+和Ca2+。以上结果表明,AVPI基因的超表达可能提高了百脉根细胞Na+区域化能力,既减轻了过量Na+对细胞质的毒害作用,也提高了植株的渗透调节能力,从而增强了百脉根的耐盐性和抗旱性。  相似文献   

6.
旨在探讨枣树抗坏血酸过氧化物酶基因ZjAPX在植物渗透胁迫中的作用。将ZjAPX基因转入到模式植物拟南芥,以野生型(WT)、转ZjAPX拟南芥株系T2为试材,进行不同浓度NaCl胁迫和干旱胁迫。结果表明,转基因株系的种子萌发、植株生长均优于野生型株系;荧光定量PCR检测转基因拟南芥植株在干旱和盐胁迫处理10 d后目的基因ZjAPX的表达量显著高于野生拟南芥,表明ZjAPX的高表达明显提高了植株的抗旱和耐盐性。  相似文献   

7.
对从北美海蓬子中分离的Na+/H+逆向转运蛋白基因SbNHX1进行了耐盐性及功能结构域分析.利用套叠PCR技术去除SbNHX1基因C末端162个核苷酸,得到SbNHX1-C基因,然后将SbNHX1、SbNHX1-C和拟南芥Na+/H+ 逆向转运蛋白基因AtNHX1分别插入pET22b(+)表达载体,转化大肠杆菌B菌株,进行各种金属盐离子胁迫分析.结果表明,北美海蓬子Na+/H+ 逆向转运蛋白基因SbNHX1只对Na+ 、K+离子有抗性,且耐盐性强于拟南芥Na+/H+ 逆向转运蛋白基因AtNHX1.缺失C末端的SbNHX1-C基因对Na+、K+离子胁迫无抗性,说明北美海蓬子Na+/H+ 逆向转运蛋白基因SbNHX1的耐盐作用与该基因C末端1 353 bp至1 514 bp的序列密切相关.  相似文献   

8.
AtNHX1基因对草木樨状黄芪的转化和耐盐性表达研究   总被引:5,自引:0,他引:5  
应用RT-PCR技术从100mmol/LNaCl胁迫处理的拟南芥幼中克隆得到编码液泡膜Na /H 逆向转运蛋白的AtNHX1基因cDNA 编码ORF.并在该ORF上游分别插入CaMV 35启动子和TMV RNA5'UTR的Ω片段,而在下游插入NOS polyA构建真核表达盒,进而将该表达盒插入双元植物表达栽体pNT质粒的T-DNA区构建了携带AtNHX1 基因的植物表达载体质粒pNT-AtNHX1.将pNT-AtNHX1 导入农杆菌LBA4404,用农杆菌介导法将AtNHX1 基因导入豆科牧草草木樨状黄芪中,共获得103株Kan抗性再生植株.通过对农杆菌茵液浓度、侵染时间和乙酰丁香酮浓度等影响转化效率的因素进行优化,初步建立了稳定的草木樨状黄芪农杆菌转化体系.经过PCR检测、Southern杂交和RT-PCR检测表明,AtNHX1 基因已被成功整合到草木樨状黄芪基因组中,并且能够正常转录.野生型和转基因株系诱发的愈伤组织进行耐盐生长实验,结果显示相同盐胁迫条件下,转基因愈伤组织的相对生长率显著高于野生型愈伤组织.施加梯度NaCl胁迫后,植株叶片K ,Na 含量和叶片相对电导率测定结果显示,转基因植物叶片比野生型积累更多的Na 和K ,维持较高的K /Na ;转基因株系叶片相对电导率显著低于野生型.上述结果表明,AtNHX1 基因的导入和表达在提高草木樨状黄芪耐盐性的同时减轻了盐胁迫对植物细胞膜的伤害.关键词: AtNHX1 草木樨状黄芪农杆菌遗传转化耐盐性.  相似文献   

9.
从耐盐植物无苞芥中克隆获得了1个Na+/H+逆向转运蛋白基因NHX1,命名为OpNHX1(GenBank登录号:KC200248)。OpNHX1基因cDNA全长2 153 bp,包含一个1 605 bp的开放阅读框,编码534个氨基酸。系统进化树分析表明,OpNHX1编码产物与拟南芥、小盐芥亲缘关系较近,属于同一进化分支。实时荧光定量PCR分析表明,该蛋白基因在无苞芥根、茎、叶、花和荚果中均有表达,其中茎中表达量最高。半定量RT-PCR分析表明,该基因受高盐、干旱、低温及ABA的诱导上调表达。进一步将该基因在拟南芥中过量表达,显著提高了转基因植株在盐胁迫下的存活率,说明OpNHX1基因参与了植物的耐盐性。酵母功能互补试验结果显示,该基因转化酵母Δnhx1后可以补充NHX1的缺失,表明OpNHX1参与Na+/H+的转运。  相似文献   

10.
为阐明拟南芥中黑芥子酶TGG1对抗旱性的影响,构建了35S启动子驱动的TGG1过表达载体,并将其转入拟南芥获得了转基因植株。以野生型和过量表达TGG1的转基因植株为材料,进行干旱胁迫实验,结果显示,在甘露醇模拟的干旱胁迫下35S∶TGG1种子平均发芽率显著高于野生型,平均相对电导率则显著低于野生型;自然干旱胁迫下,35S∶TGG1的相对失水速率显著慢于野生型,而干旱复水后的平均存活率则显著高于野生型。对气孔的观察结果表明,过表达TGG1的转基因植株气孔对ABA处理具有更高的敏感性,气孔关闭程度显著高于野生型植株。以上研究结果表明,过量表达TGG1基因可显著提高拟南芥的抗旱能力,而且其抗性机制很可能与气孔在逆境下的关闭程度有关。  相似文献   

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12.
Sesbania grandiflora (L.) pers (Fabaceae) and Arabidopsis thaliana (L.) (Brassicaceae) were genetically engineered to constitutively express the rabbit cytochrome p450 2E1 enzyme aiming at increasing their activity toward trichloroethylene (TCE) and dichlorodiphenyltrichloroethane (DDT) removal Successful generation of Sesbania and Arabidopsis transgenic plants was verified using p450 2E1 specific PCR and confirmed by western blot analysis. Gas chromatography (GC) analysis revealed that small cuttings of Sesbania and third generation (F3) Arabidopsis transgenic plants exposed to TCE and DDT in small hydroponics' vessels accumulated more TCE and DDT compared to plants transformed with the empty vector. Furthermore, both transgenic plants were more effective in breaking down TCE and DDT with a 2-fold increase in TCE metabolism. Two independent Arabidopsis lines showed that DDT was metabolized about 4-fold higher than that detected in non transformed plants. Similarly, S. grandiflora cuttings removed 51 to 90% of the added DDT compared with only 3% removal in controls transformed with the null vector. Notably, stability of rabbit cytochrome p450 2E1 was confirmed using third generation Arabidopsis plants that displayed higher potential for the removal of two important pollutants, TCE and DDT compared with the controls.  相似文献   

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PPF1是一个与植物营养生长相关的基因。它编码的产物可能是一个膜蛋白并与拟南芥叶绿体中的类囊体蛋白ALB3有很高的同源性。免疫电镜分析表明PPF1蛋白同样主要定位于类囊体膜 ,而且在短日照G2豌豆开花两周后仍发育良好的叶绿体中有很高的表达 ,在长日照豌豆同时期非正常叶绿体中丰度非常低。对转基因拟南芥和野生型植株的叶片衰老进程比较发现 ,PPF1在拟南芥中的过量表达可以延缓叶片的衰老 ,而用PPF1反义mRNA抑制拟南芥中的同源基因ALB3则明显加快叶片衰老速度。对转基因拟南芥的超微结构分析显示 ,PPF1在拟南芥中过量表达时 ,转基因植株的叶绿体比野生型植株的叶绿体大并含有更多的基粒和基质类囊体膜 ;相反 ,反义PPF1表达抑制其在拟南芥中的同源物时 ,转基因植株的叶绿体比野生型植株的叶绿体小并含有较少的基粒和发育较差的类囊体膜系统。这些数据表明叶绿体的发育状况与PPF1或拟南芥同源物ALB3的表达水平呈正相关。我们的结果提示PPF1基因可能通过控制叶绿体的发育状况来调节植物的发育。  相似文献   

15.
Arabidopsis thaliana is frequently used as a model for the study of oilseed biology and metabolism. However, the very small seeds of Arabidopsis can complicate analysis of their oil content and influence the application of results to larger-seeded plants. Here, we describe how seed anatomy, light, and plant-to-plant variation influence the content and measurement of oil in Arabidopsis seeds. The anatomy of Arabidopsis and Brassica napus seeds were compared and the distribution of mass, oil and the fatty acid composition of different seed parts were determined. In Brassica, 90% of the seed oil resides in the cotyledons that contribute 74% of seed mass. By contrast, the values for Arabidopsis are 60% and 45%, respectively, with a higher fraction of the oil deposited in the radicle, hypocotyl, endosperm and seed coat. Growth of Arabidopsis plants with 600 micromol m(-2) s(-1) light resulted in a two-fold higher seed yield, a 40% increase in mass per seed and a 60% increase in oil per seed compared to growth at 100 micromol m(-2) s(-1). Factors that influence the analysis of oil content were evaluated. Intact-seed transmethylation followed by gas chromatography (GC) analysis provided reproducible analysis of Arabidopsis seed oil. However, plant-to-plant variation in oil content is large and we analyzed how this influences the ability to detect statistically valid changes in oil between different genotypes. These observations establish a reference data set on the fatty acid composition and distribution of mass and oil between tissues of Arabidopsis seeds that should help to predict the applicability of results obtained with Arabidopsis to other oilseeds.  相似文献   

16.
The pathogen- and ethylene-inducible pepper-basic pathogenesis-related (PR)-1 gene, CABPR1 , was strongly expressed in pepper leaves by osmotic and oxidative stresses. The pepper CABPR1 was introduced into the Arabidopsis plants under the control of the cauliflower mosaic virus 35S promoter. Polymerase chain reaction-amplification with the Arabidopsis genomic DNA and Northern blot analyses confirmed that the pepper CABPR1 gene was integrated into the Arabidopsis genome, where it was overexpressed in the transgenic Arabidopsis plants under normal growth conditions. The constitutive overexpression of CABPR1 induced the expression of the Arabidopsis PR-genes including PR-4 , PR-5 and PDF1.2 . Enhanced resistance to phytopathogenic bacteria, Pseudomonas syringae pv. tomato DC3000, was also observed in the transgenic Arabidopsis plants. CABPR1 overexpression in the transgenic Arabidopsis caused enhanced seed germination under NaCl (ionic) and mannitol (non-ionic) osmotic stresses. Enhanced tolerances to high salinity and dehydration stresses during seed germination of the transgenic plants were not found at the early seedling stage. The transgenic Arabidopsis plants exhibited a higher tolerance to oxidative stress by methyl viologen at the seed germination, seedling and adult plant stages. These results suggest that the CABPR1 gene may function in the enhanced disease resistance and oxidative stress tolerance of transgenic Arabidopsis plants.  相似文献   

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The Arabidopsis thaliana (L.) Heynh. minD gene (AtMinD1) was isolated and constitutively expressed in tobacco (Nicotiana tabacum L.) plants using the CaMV 35S promoter. Confocal and electron-microscopic analysis of the AtMinD1 transgenic tobacco lines revealed that the chloroplasts were abnormally large and fewer in number compared with wild-type tobacco plants. The abnormal chloroplasts were less prevalent in guard cells than in mesophyll cells. Chloroplast and nuclear gene expression was not significantly different in AtMinD1-overexpressing plants relative to wild-type tobacco plants. Chloroplast DNA copy number was not affected, based on the relative level of the rbcL gene in transgenic plants. Transgenic tobacco plants constitutively overexpressing AtMinD1 were completely normal phenotypically with respect to growth and development, and also displayed normal photosynthetic electron transport rates. These results show that the Arabidopsis MinD1 gene also functions in a heterologous system and confirm the role of the MinD protein in regulation of chloroplast division.  相似文献   

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20.
KCO1 is a component of the slow-vacuolar (SV) ion channel   总被引:15,自引:0,他引:15  
The Arabidopsis double pore K+ channel KCO1 was fused to green fluorescent protein and expressed in tobacco protoplasts. Microscopic analysis revealed a bright green fluorescence at the vacuolar membrane. RT-PCR experiments showed that KCO1 is expressed in the mesophyll. Vacuoles from Arabidopsis wild-type and kco1 knockout plants were isolated for patch-clamp analyses. Currents mediated by slow-activating vacuolar (SV) channels of mesophyll cell vacuoles were significantly smaller in kco1 plants compared to the wild-type. This shows that KCO1 is involved in the formation of SV channels.  相似文献   

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