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1.
拟南芥AtNHX2启动子的克隆及表达模式分析   总被引:2,自引:0,他引:2  
AtNHX2基因是拟南芥NHX基因家族的一员,编码了一种液泡膜中的Na+/H+反向运输体并对拟南芥的耐盐能力起着重要的作用.采用PCR扩增的方法克隆了拟南芥AtNHX2基因启始密码子上游约2.8kb的DNA片段,并将其克隆到植物表达载体pCAMBIA1301-1中,通过基因枪轰击洋葱表皮瞬时表达的方法,初步检测启动子的活性.将重组质粒pCAMBIA1301-1/AtNHX2 promoter转化拟南芥并筛选纯合子.AtNHX2 promoter-GUS分析显示AtNHX2在所有的组织中均有表达,包括根尖.在保卫细胞中检测到了强烈的GUS表达,这一结果表明,AtNHX2对特殊细胞的pH调控和K+自身稳定方面起着重要的作用.AtNHX2启动子的活性可被NaCl抑制,并且抑制的强度和NaCl的浓度成正相关.300 mmol/L KCl处理可增强启动子的活性,说明NaCl和KCl是在转录水平上调控AtNHX2的表达.在老叶中GUS活性比在新叶中GUS活性强,这说明了AtNHX2优先将有毒的离子积累在老叶中,从而有利于植物的正常发育.在根毛细胞中也观测到了强烈的GUS活性,这就暗示了AtNHX2在扩大的液泡中储存Na+.  相似文献   

2.
为揭示多细胞盐腺对阳离子的选择性分泌机理, 在室内水培条件下, 研究了不同盐分胁迫(NaCl, KCl和NaCl+KCl)对多枝柽柳和短穗柽柳Na+, K+的分泌和累积, 以及不同盐腺抑制剂(orthovanadate, Ba2+, ouabain, tetraethylammonium[TEA]和verapami)对Na+和K+分泌的抑制及其在体内累积的影响. 结果表明, NaCl处理明显增加了盐腺对Na+分泌, 而KCl处理则显著促进K+分泌; Na+和K+的分泌量同累积量的比值表明, Na+的比值高于K+; 单一盐溶液中添加不同离子成分后, Na+和K+分泌表现不同: KCl处理中添加NaCl后, K+分泌速率显著降低, 但在NaCl处理中添加KCl, Na+的分泌则不受影响, 这些结果表明, 柽柳对Na+的分泌具有较高的选择性. 此外, 添加盐腺抑制剂后, 柽柳对Na+分泌分别受orthovanadate, ouabain, tetraethylammonium[TEA]和verapami的显著抑制, 而K+的分泌则分别受ouabain, tetraethylammonium[TEA]和verapami的显著抑制. orthovanadate对Na+, K+分泌抑制效应的差异, 可能是引起多细胞盐腺分泌Na+和K+能力不同的主要原因.  相似文献   

3.
通过农杆菌介导法将拟南芥液泡膜Na+/H+反向转运蛋白基因AtNHX1转入荞麦中,在2.0mg/L 6-BA、0.1mg/L IAA、1mg/L KT、50mg/L卡那霉素和500mg/L头孢霉素的MS培养基上进行选择培养,从来源于864块外植体的36块抗性愈伤组织中共获得426棵再生植株(转化频率为4.17%)。经PCR、Southern印迹分析、RT-PCR和Northern检测,初步证实AtNHX1基因已整合至荞麦基因组中。用200mmol/L的盐水对转基因植株和对照植株进行胁迫处理6周,转基因植株能够生存,而对照植株死亡。用不同浓度的NaCl溶液处理转基因植株和对照植株,发现Na+及脯氨酸含量在转基因植株中的积累水平显著高于对照植株,而K+的含量在转基因植株中的积累水平低于对照植株。次生代谢产物黄酮类化合物芦丁在转基因植株根、茎和叶片中的含量也比对照植株明显要高。这些结果表明利用基因工程手段提高作物的耐盐性是可行的。  相似文献   

4.
通过农杆菌介导法将拟南芥液泡膜Na+/H+反向转运蛋白基因AtNHX1转入荞麦中,在2.0mg/L 6-BA、0.1mg/L IAA、1mg/L KT、50mg/L卡那霉素和500mg/L头孢霉素的MS培养基上进行选择培养,从来源于864块外植体的36块抗性愈伤组织中共获得426棵再生植株(转化频率为4.17%)。经PCR、Southern印迹分析、RT-PCR和Northern检测,初步证实AtNHX1基因已整合至荞麦基因组中。用200mmol/L的盐水对转基因植株和对照植株进行胁迫处理6周,转基因植株能够生存,而对照植株死亡。用不同浓度的NaCl溶液处理转基因植株和对照植株,发现Na+及脯氨酸含量在转基因植株中的积累水平显著高于对照植株,而K+的含量在转基因植株中的积累水平低于对照植株。次生代谢产物黄酮类化合物芦丁在转基因植株根、茎和叶片中的含量也比对照植株明显要高。这些结果表明利用基因工程手段提高作物的耐盐性是可行的。  相似文献   

5.
以栽培烟草‘云烟87’为材料,通过同源克隆方法分离了烟草NHX(Na+,K+/H+ exchanger)基因NtNHX1 3。结果表明:NtNHX1 3基因CDS长度1 617 bp,编码蛋白质长度为538 aa,蛋白理论等电点为8.67,分子量为59.34 kD。预测NtNHX1 3属于膜蛋白,含有11个跨膜区,且含有NHX类蛋白保守位点氨氯吡嗪咪结合位点。进化树分析显示,NtNHX1 3与菊苣、野菊花NHX遗传距离最近。qRT PCR组织特异性表达分析表明,NtNHX1 3在烟草叶片中表达量最高,根、茎、花中也有表达;盐胁迫处理后NtNHX1 3基因的表达上调,表明该基因参与了盐胁迫反应;打顶初期NtNHX1 3基因的表达呈逐渐上调的趋势,与该时期钾含量逐渐升高相吻合。研究推测,NtNHX1 3具有将钾离子从细胞质转运至液泡的功能。  相似文献   

6.
为了解NtLAR基因的表达调控机制,该研究以中国水仙(Narcissus tazetta var. chinensis)‘金盏银台’ DNA为模版,采用染色体步移法克隆了NtLAR基因起始密码子ATG上游启动子片段序列,测序结果显示,该克隆片段共995 bp(GenBank登录号:MH371155)。通过PlantCare数据库对获得的启动子序列顺式作用元件预测发现,NtLAR启动子序列中包含有大量顺式作用元件,如光反应元件ACE、G box、GATA motif、GT1 motif,激素响应元件CGTCA motif、ABRE、TGACG motif、TGA element,胁迫响应元件和MYB 结合位点 MBS等。成功构建了植物表达载体pBI121 pNtLAR∷GUS和pGreenII 0800 pNtLAR Luc。pBI121 pNtLAR∷GUS在烟草叶片的瞬时表达结果显示,克隆的启动子片段具有活性;pBI121 pNtLAR∷GUS在水仙不同组织器官的瞬时表达实验发现,NtLAR基因的表达具有组织特异型,其在鳞茎盘的表达量较高,在花瓣和副冠中的表达量较低;将pBI121 pNtLAR∷GUS分别和中国水仙R2R3 MYB转录因子NtMYB2、NtMYB5混合注射烟草叶片,GUS染色结果显示NtMYB2和NtMYB5并不能抑制NtLAR启动子的活性,定量PCR结果与GUS染色结果一致。采用pGreenII 0800 pNtLAR Luc载体进行双荧光素酶实验进一步验证了GUS染色实验和定量PCR结果。  相似文献   

7.
Na+H+逆向转运蛋白对植物耐盐起着重要作用 ,它利用质膜H+ATPase或液泡膜H+ATPase及Ppiase泵H+产生的驱动力把Na+排出细胞或在液泡中区隔化以消除Na+的毒害。主要讨论植物中Na+H+逆向转运蛋白研究在分子水平的最新进展.  相似文献   

8.
为深入探究叶原基分化成叶器官的形态建成机制,该研究以北美鹅掌楸为材料,采用RT-PCR和RACE克隆技术获得LtAGO1的cDNA全长和启动子序列并预测其功能,通过RT-qPCR分析LtAGO1在鹅掌楸属中的组织表达模式。同时,经抗性筛选和DNA鉴定获得ProAGO1 ∷ GUS的转基因拟南芥株系,并进一步对T2代阳性植株进行表型和GUS组织化学染色分析。结果表明:(1) LtAGO1基因包含3 300 bp的开放阅读框,编码1 100个氨基酸,分子量为122.14 kD,理论等电点(pI)为9.36。(2)氨基酸序列分析显示LtAGO1含Gly-rich-AGO1和Piwi两个典型的AGO基因结构域,同源性分析显示LtAGO1蛋白与沉水樟AGO1蛋白(RWR84608.1)亲缘关系最近。(3)组织表达特异性分析显示LtAGO1在北美鹅掌楸不同组织间的相对表达量为雄蕊>花芽>花瓣>花萼>叶片>雌蕊>叶芽>茎,LtAGO1在北美鹅掌楸叶片不同发育阶段的相对表达量为叶芽萌动期>幼叶期>衰老期>成熟期,AGO1在鹅掌楸属叶缘的表达量高于叶片的其他部位且北美鹅掌楸叶凹陷部位的表达量高于叶尖部位。(4)获得叶中-侧轴向和基-顶轴向的极性缺失、叶缘锯齿、重瓣花型的转化株系,GUS组织染色显示ProAGO1启动GUS基因在叶芽顶端稳定表达且在新分化的叶柄上表达较强,在成熟期的茎、叶、花和果的维管束中均特异表达。LtAGO1启动子的GUS活性强度为叶顶芽>花>维管束,这与实时定量PCR结果相一致。综上认为,LtAGO1基因在顶端分生组织特异表达且受到多种途径的调控而参与到叶和花器官的发育进程中。该研究结果为进一步了解北美鹅掌楸LtAGO1基因的基本功能及其调控叶形发育机制提供了理论基础。  相似文献   

9.
为了研究外整流钾通道蛋白(stelar K+ outward rectifier channels,SKOR)基因SKOR在长穗偃麦草中的功能,利用热不对称交错PCR(Tail PCR)技术,克隆了长穗偃麦草EeSKOR启动子,并进行启动子顺式作用元件及基因表达分析。结果表明:(1)成功获得长穗偃麦草EeSKOR基因起始密码子上游798 bp启动子序列,命名为pEeSKOR。 (2)EeSKOR启动子除必须具备的核心启动元件外,还含有特异转录因子结合位点、植物激素响应元件、光响应元件、组织特异的启动元件和胁迫响应元件。(3)成功构建植物表达载体pEeSKORGUS,经农杆菌介导的瞬时转化,EeSKOR启动子驱动GUS报告基因可在拟南芥的叶、叶柄和根中表达。(4)实时定量PCR检测显示,在NaCl、PEG、ABA和SA处理下长穗偃麦草EeSKOR基因在根中呈现不同的表达模式,NaCl处理下EeSKOR的表达量呈先下调后上调趋势;PEG处理下EeSKOR的表达量呈上调趋势,且随着时间的延长显著上调;ABA处理下EeSKOR的表达受到抑制且随处理时间延长呈显著下调趋势;SA处理下EeSKOR表现出先上调后下调趋势,且在处理72 h时表达量显著低于正常表达水平。研究认为,EeSKOR基因的表达受NaCl、PEG、ABA和SA的诱导调节。该研究结果为进一步系统研究长穗偃麦草EeSKOR基因功能提供重要理论依据。  相似文献   

10.
Na+/H+交换泵(Na+/H+ exchanger, NHE)是存在于所有脊椎动物细胞中的重要跨膜蛋白,该蛋白质涉及细胞的多种功能,包括细胞内pH值调节、细胞体积的控制以及离子转运等.目前已克隆了五个亚型NHE的cDNA,它们构成了脊椎动物细胞离子转运泵的一个基因家族. 这五个亚型的表达水平及活性可受多种因素的调节.在肿瘤、高血压及糖尿病等疾病中,已发现NHE-1亚型的表达水平和活性显著增高.因此,研究NHE-1的转录及活性调节机制,将可能为这些疾病的诊治提供新的手段.  相似文献   

11.
为了探明拟南芥内膜反向转运体AtNHX6基因的组织表达模式,从基因组中克隆了AtNHX6基因开放阅读框(ORF)上游侧翼调控区1 922bp序列,并成功构建AtNHX6基因启动子与GUS融合表达载体pCAM-BIA1381-proNHX6-GUS,通过农杆菌花序浸染法转化野生型拟南芥获得T3代纯合转基因拟南芥株系,经PCR检测扩增得到2 187bp目的条带。利用组织染色法鉴定转基因拟南芥的GUS表达模式发现,在子叶、下胚轴和花中GUS活性显著。在这些广泛表达的部位中,微管系统中的表达最为显著,真叶中只有局部检测到GUS表达;在根中GUS在根毛和侧根生长部位表达;在未成熟果荚中只有在果荚顶端和基部存在GUS活性,成熟果荚中只在果柄检测到GUS表达;在花中,雄蕊的花丝和花粉粒及雌蕊的柱头中检测到GUS表达。GUS染色分析结果表明,AtNHX6基因启动子与GUS的融合表达载体成功构建并正常启动GUS基因表达,且AtNHX6基因主要在拟南芥的子叶、下胚轴、根、花、果荚中的微管系统、根毛和侧根生长部位以及花丝、花粉、柱头中表达。  相似文献   

12.
The gene expression chip of a salt‐tolerant wheat mutant under salt stress was used to clone a salt‐induced gene with unknown functions. This gene was designated as TaSR (Triticum aestivum salt‐response gene) and submitted to GenBank under accession number EF580107. Quantitative polymerase chain reaction (PCR) analysis showed that gene expression was induced by salt stress. Arabidopsis and rice (Oryza sativa) plants expressing TaSR presented higher salt tolerance than the controls, whereas AtSR mutant and RNA interference rice plants were more sensitive to salt. Under salt stress, TaSR reduced Na+ concentration and improved cellular K+ and Ca2+ concentrations; this gene was also localized on the cell membrane. β‐Glucuronidase (GUS) staining and GUS fluorescence quantitative determination were conducted through fragmentation cloning of the TaSR promoter. Salt stress‐responsive elements were detected at 588–1074 bp upstream of the start codon. GUS quantitative tests of the full‐length promoter in different tissues indicated that promoter activity was highest in the leaf under salt stress. Bimolecular fluorescence complementation and yeast two‐hybrid screening further showed the correlation of TaSR with TaPRK and TaKPP. In vitro phosphorylation of TaSR and TaPRK2697 showed that TaPRK2697 did not phosphorylate TaSR. This study revealed that the novel TaSR may be used to improve plant tolerance to salt stress.  相似文献   

13.
14.
In yeast, the plasma membrane Na+/H+ antiporter and Na+-ATPase are key enzymes for salt tolerance.Saccharomyces cerevisiae Na+-ATPase (Enalp ATPase) is encoded by theENA1/PMR2A gene; expression ofENA1 is tightly regulated by Na+ and depends on ambient pH. Although Enalp is active mainly at alkaline pH values inS. cerevisiae, no Na+-ATPase has been found in flowering plants. To test whether this yeast enzyme would improve salt tolerance in plants, we introducedENA1 intoArabidopsis (cv. Columbia) under the control of the cauliflower mosaic virus 35S promoter. Transformants were selected for their ability to grow on a medium containing kanamyin. Southern blot analyses confirmed thatENA1 was transferred into theArabidopsis genome and northern blot analyses showed thatENA1 was expressed in the transformants. Several transgenic homozygous lines and wild-type (WT) plants were evaluated for salt tolerance. No obvious morphological or developmental differences existed between the transgenic and WT plants in the absence of stress. However, overexpression ofENA1 inArabidopsis improved seed germination rates and salt tolerance in seedlings. Under saline conditions, transgenic plants accumulated a lower amount of Na+ than did the wild type, and fresh and dry weights of the former were higher. Other experiments revealed that expression ofENA1 promoted salt tolerance in transgenicArabidopsis under both acidic and alkaline conditions. These authors contributed equally to this article.  相似文献   

15.
Mitsuya S  Taniguchi M  Miyake H  Takabe T 《Planta》2005,222(6):1001-1009
For plant salt tolerance, it is important to regulate the uptake and accumulation of Na+ ions. The yeast pmp3 mutant which lacks PMP3 gene accumulates excess Na+ ions in the cell and shows increased Na+ sensitivity. Although the function of PMP3 is not fully understood, it is proposed that PMP3 contributes to the restriction of Na+ uptake and consequently salt tolerance in yeasts. In this paper, we have investigated whether the lack of RCI2A gene, homologous to PMP3 gene, causes a salt sensitive phenotype in Arabidopsis (Arabidopsis thaliana (L.) Heynh.) plants; and to thereby indicate the physiological role of RCI2A in higher plants. Two T-DNA insertional mutants of RCI2A were identified. Although the growth of rci2a mutants was comparable with that of wild type under normal conditions, high NaCl treatment caused increased accumulation of Na+ and more reduction of the growth of roots and shoots of rci2a mutants than that of wild type. Undifferentiated callus cultures regenerated from rci2a mutants also accumulated more Na+ than that from wild type under high NaCl treatment. Furthermore, when wild-type and rci2a plants were treated with NaCl, NaNO3, Na2SO4, KCl, KNO3, K2SO4 or LiCl, the rci2a mutants showed more reduction of shoot growth than wild type. Under treatments of tetramethylammonium chloride, CaCl2, MgCl2, mannitol or sorbitol, the growth reduction was comparable between wild-type and rci2a plants. These results suggested that RCI2A plays a role directly or indirectly for avoiding over-accumulation of excess Na+ and K+ ions in plants, and contributes to salt tolerance.  相似文献   

16.
Höfig KP  Moyle RL  Putterill J  Walter C 《Planta》2003,217(6):858-867
Four male cone-specific promoters were isolated from the genome of Pinus radiata D. Don, fused to the -glucuronidase (GUS) reporter gene and analysed in the heterologous host Arabidopsis thaliana (L.) Heynh. The temporal and spatial activities of the promoters PrCHS1, PrLTP2, PrMC2 and PrMALE1 during seven anther developmental stages are described in detail. The two promoters PrMC2 and PrMALE1 confer an identical GUS expression pattern on Arabidopsis anthers. DNA sequence analysis of the PrMC2 and PrMALE1 promoters revealed an 88% sequence identity over 276 bp and divergence further upstream (<40% sequence identity). GUS expression driven by a 276-bp PrMALE1 promoter fragment showed the same pattern in Arabidopsis anthers as observed for the full-length PrMALE1 promoter. Within the 276-bp promoter fragment a region of high homology to a previously described 16-bp anther-box was identified. In gain-of-function experiments the putative PrMALE1 anther-box was fused upstream of a 90-bp CaMV 35S minimal promoter, as a single copy in the sense direction and as an inverted repeat. No GUS expression was conferred to Arabidopsis anthers by either of these two constructs. In a loss-of-function experiment a 226-bp PrMALE1 deletion construct, which did not contain the putative PrMALE1 anther-box, still maintained the originally observed PrMALE1 GUS expression pattern. Hence, gain-of-function as well as loss-of-function experiments consistently showed that the putative anther-box of the PrMALE1 promoter is non-functional in the Arabidopsis genetic background. For the analysis of the four full-length pine promoters PrCHS1, PrLTP2, PrMC2 and PrMALE1, transformation vectors based on pCAMBIA2200 and pCAMBIA1302 were used. It will also be demonstrated in this article that sequences within the T-DNA borders of these vectors caused a characteristic histological background expression in Arabidopsis, with staining observed in vascular tissue of leaves, sepals, roots, filaments of stamens and in stems and pistils.Abbreviation GUS -glucuronidaseGenBank accession numbers for the analysed promoters: AF 337656 (PrCHS1), AF 337655 (PrLTP2), AF 337657 (PrMC2) and AF 337658 (PrMALE1).  相似文献   

17.
Qiao WH  Zhao XY  Li W  Luo Y  Zhang XS 《Plant cell reports》2007,26(9):1663-1672
Agropyron elongatum, a species in grass family, has a strong tolerance to salt stress. To study the molecular mechanism of Agropyron elongatum in salt tolerance, we isolated a homolog of Na+/H+ antiporters from the root tissues of Agropyron plants. Sequence analysis revealed that this gene encodes a putative vacuolar Na+/H+ antiporter and was designated as AeNHX1. The AeNHX1–GFP fusion protein was clearly targeted to the vacuolar membrane in a transient transfection assay. Northern analysis indicated that AeNHX1 was expressed in a root-specific manner. Expression of AeNHX1 in yeast Na+/H+ antiporter mutants showed function complementation. Further, overexpression of AeNHX1 promoted salt tolerance of Arabidopsis plants, and improved osmotic adjustment and photosynthesis which might be responsible for normal development of transgenic plants under salt stress. Similarly, AeNHX1 also functioned in transgenic Festuca plants. The results suggest that this gene might function in the roots of Agropyron plants, and its expression is involved in the improvement of salt tolerance.  相似文献   

18.
Expression of the gene (OsCA1) coding for carbonic anhydrase (CA) in leaves and roots of rice was induced by environmental stresses from salts (NaCl, NaHCO3 and Na2CO3), and osmotic stress (10%, w/v, PEG 6000). CA activity of rice seedlings more than doubled under some of these stresses. Transgenic Arabidopsis over-expressing OsCA1 had a greater salt tolerance at the seedling stage than wild-type plants in 1/2 MS medium with 5 mM NaHCO3, 50 mM NaCl, on 100 mM NaCl. Thus CA expression responds to environmental stresses and is related to stress tolerance in rice.  相似文献   

19.
Twenty days’ exposure to 50 or 100 mM NaCl in the rooting medium substantially increased fresh and dry weights of seedling shoots of the recretohalophyte Limonium sinense while 200 or 300 mM were increasingly inhibitory. KCl treatment was only slightly stimulating (50 mM) or strongly inhibitory (100–300 mM). Lesser effects on leaf area were also seen. Diameter of foliar salt glands was significantly larger than that of controls in 100 and 200 mM NaCl with the effect being reversed at higher concentrations. Gland enlargement was also observed in the presence of 100 mM KCl, while larger concentrations reduced gland size. Generally, gland diameter was larger in the presence of NaCl than in KCl. NaCl and KCl also increased gland number per leaf and secretion rate per gland. At 100 and 200 mM NaCl or KCl, Na+ secretion per leaf from NaCl-treated plants exceeded K+ secretion rate from KCl-treated plants while at 200 mM, Na+ secretion per gland was significantly higher for Na+ than for K+. Evidence of cell death in leaves of salt-treated plants using Evans blue staining indicates that release of cell contents through loss of membrane integrity contributed to the secretion values. We conclude that the greater tolerance of L. sinenseto to NaCl compared to KCl is linked to the more effective secretion of Na+ than of K+ and, in turn, to a greater stimulation of salt gland formation and activity and larger gland diameter.  相似文献   

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